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1,485,200 | The terminal of claim 4 , wherein the pin has a straight extension in a longitudinal direction of the pin, thereby allowing the PCB to be mounted as a single in ine package. | 11 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.618671 | 0 | 0 | 0 | 0 | 112.031574 | none | (16085340, 11) | 0.493635 | 1 | 0.848042 | 0.812602 | 1 | 0.512392 | 0.848042 | 0.528922 | 0.667739 | test | 3.58537 | 174 | false |
1,485,201 | The terminal of claim 4 , wherein the pin has a right angled extension in a longitudinal direction of the pin thereby allowing the PCB to be mounted with a lay down design. | 10 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 0 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.593971 | 0 | 0 | 0 | 0 | 107.558786 | none | (16085340, 10) | 0.497296 | 1 | 0.847554 | 0.812528 | 1 | 0.557225 | 0.847554 | 0.549626 | 0.683009 | test | 3.58537 | 174 | false |
1,485,202 | A compound according to claim 5 , wherein the compound is selected from the group consisting of: | 6 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.713114 | 1 | 1 | 0 | 0 | 636.978369 | closed | (16121353, 6) | 0.678603 | 0 | 0.799704 | 0.787594 | 1 | 0.762927 | 0.799704 | 0.675366 | 0.614567 | test | 1.84906 | 514 | false |
1,485,203 | The cell sheet embedding agent according to claim 1 ,\n wherein the polypeptide is recombinant gelatin. | 2 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.761338 | 0 | 0 | 0 | 0 | 192.286089 | none | (16139620, 2) | 0.496508 | 0 | 0.698966 | 0.67872 | 1 | 0.282603 | 0.698966 | 0.503385 | 0.312671 | test | 1.97895 | 530 | true |
1,485,204 | The cell sheet embedding agent according to claim 1 ,\n wherein the polypeptide is a polypeptide represented by the following Formula 2,\n Gly-Ala-Pro-[(Gly-X\u2014Y) 63 ] 3 -Gly (SEQ ID NO: 11)\u2003\u2003Formula 2: \n in the formula, 63 X's each independently represent any amino acid, 63 Y's each independently represent any amino acid, and 63 sequences represented by Gly-X\u2014Y may be the same as or different from each other. | 3 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.866058 | 0 | 0 | 0 | 0 | 218.734481 | none | (16139620, 3) | 0.486801 | 0 | 0.700749 | 0.679354 | 1 | 0.121373 | 0.700749 | 0.554418 | 0.544393 | test | 1.97895 | 530 | true |
1,485,205 | The cell sheet embedding agent according to claim 1 ,\n wherein the polypeptide has (1) amino acid sequence described in SEQ ID NO: 1 or (2) amino acid sequence which shares a sequence identity equal to or higher than 80% with the amino acid sequence described in SEQ ID NO: 1 and has biocompatibility. | 4 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.734675 | 0 | 0 | 0 | 0 | 185.551963 | none | (16139620, 4) | 0.49898 | 0 | 0.698511 | 0.678558 | 1 | 0.510497 | 0.698511 | 0.449773 | 0.47089 | test | 1.97895 | 530 | true |
1,485,206 | The method of claim 21 , wherein the compound is selected from the group consisting of: | 22 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.738916 | 1 | 1 | 0 | 0 | 660.026062 | closed | (16121353, 22) | 0.687651 | 1 | 0.797359 | 0.786388 | 1 | 0.81425 | 0.797359 | 0.738777 | 0.716651 | test | 1.84906 | 514 | false |
1,485,207 | A method for brightening skin in a subject comprising:\n contacting the subject with a compound having the structure of formula (III): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, and R10 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof. | 21 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.951074 | 1 | 1 | 1 | 0 | 849.532364 | open | (16121353, 21) | 0.756775 | 1 | 0.728362 | 0.731203 | 1 | 0.867479 | 0.728362 | 0.666184 | 0.589143 | test | 1.84906 | 514 | false |
1,485,208 | A composition according to claim 19 , wherein the compound is selected from the group consisting of: | 20 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.715778 | 1 | 1 | 0 | 0 | 639.357761 | closed | (16121353, 20) | 0.679543 | 1 | 0.799463 | 0.787471 | 1 | 0.764167 | 0.799463 | 0.686633 | 0.667157 | test | 1.84906 | 514 | false |
1,485,209 | A composition comprising a compound having the structure of formula (III): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, and R10 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof, and a cosmetically or pharmaceutically acceptable vehicle, diluent or carrier. | 19 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.72329 | 1 | 1 | 1 | 0 | 646.067986 | open | (16121353, 19) | 0.682667 | 1 | 0.753069 | 0.746028 | 1 | 0.71704 | 0.753069 | 0.591306 | 0.559964 | test | 1.84906 | 514 | false |
1,485,210 | A composition according to claim 17 , wherein the compound is selected from the group consisting of: | 18 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.788677 | 1 | 1 | 0 | 0 | 704.473639 | closed | (16121353, 18) | 0.704699 | 0 | 0.792777 | 0.783969 | 1 | 0.784648 | 0.792777 | 0.675274 | 0.68072 | test | 1.84906 | 514 | false |
1,485,211 | A composition comprising a compound having the structure of formula (II) wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, R10, and R11 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof, and a cosmetically or pharmaceutically acceptable vehicle, diluent or carrier. | 17 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.745733 | 1 | 1 | 1 | 0 | 666.115124 | open | (16121353, 17) | 0.69049 | 0 | 0.750703 | 0.744681 | 1 | 0.704564 | 0.750703 | 0.618909 | 0.527538 | test | 1.84906 | 514 | false |
1,485,212 | A compound according to claim 15 , wherein the compound is selected from the group consisting of: | 16 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.717529 | 1 | 1 | 0 | 0 | 640.921714 | closed | (16121353, 16) | 0.68016 | 1 | 0.799304 | 0.78739 | 1 | 0.780142 | 0.799304 | 0.680899 | 0.678677 | test | 1.84906 | 514 | false |
1,485,213 | A compound for agonizing the arylhydrocarbon receptor (AhR), the compound having the structure of formula (III): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, and R10 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof. | 15 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.802961 | 1 | 1 | 0 | 0 | 717.232622 | closed | (16121353, 15) | 0.709491 | 1 | 0.791448 | 0.783252 | 1 | 0.699164 | 0.791448 | 0.411946 | 0.463947 | test | 1.84906 | 514 | false |
1,485,214 | A compound according to claim 13 , wherein the compound is selected from the group consisting of: | 14 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.66972 | 1 | 1 | 0 | 0 | 598.217406 | closed | (16121353, 14) | 0.663081 | 0 | 0.803603 | 0.789551 | 1 | 0.774718 | 0.803603 | 0.68093 | 0.666388 | test | 1.84906 | 514 | false |
1,485,215 | A compound for agonizing the arylhydrocarbon receptor (AhR), the compound having the structure of formula (II): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, R10, and R11 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof. | 13 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.781994 | 1 | 1 | 0 | 0 | 698.504795 | closed | (16121353, 13) | 0.702441 | 0 | 0.793397 | 0.784301 | 1 | 0.727992 | 0.793397 | 0.4413 | 0.497051 | test | 1.84906 | 514 | false |
1,485,216 | A compound according to claim 11 , wherein the compound is selected from the group consisting of: | 12 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.716745 | 1 | 1 | 0 | 0 | 640.221702 | closed | (16121353, 12) | 0.679884 | 1 | 0.799375 | 0.787426 | 1 | 0.765808 | 0.799375 | 0.660408 | 0.663527 | test | 1.84906 | 514 | false |
1,485,217 | A compound for inducing melanocyte apoptosis, the compound having the structure of formula (III): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, and R10 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof. | 11 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 1 | 1 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.871058 | 1 | 1 | 0 | 0 | 778.059462 | closed | (16121353, 11) | 0.731694 | 1 | 0.785025 | 0.779692 | 1 | 0.756968 | 0.785025 | 0.525222 | 0.552475 | test | 1.84906 | 514 | false |
1,485,218 | A compound according to claim 9 , wherein the compound is selected from the group consisting of: | 10 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.722308 | 1 | 1 | 0 | 0 | 645.191267 | closed | (16121353, 10) | 0.681843 | 0 | 0.798871 | 0.787168 | 1 | 0.77683 | 0.798871 | 0.678909 | 0.64558 | test | 1.84906 | 514 | false |
1,485,219 | A compound for inducing melanocyte apoptosis, the compound having the structure of formula (II): wherein:\n R1, R2, R3, R4, R5, R6, R7, R8, R9, R10, and R11 are independently selected from the group consisting of hydrogen and methyl; \n or a crystalline form, hydrate, or cosmetically or pharmaceutically acceptable salt thereof. | 9 | 16,121,353 | Utility | 2 | ["514", "414000"] | -1 | 2018-09 | 2018-12 | 24 | The present invention relates to compounds, compositions, and methods for brightening skin. The compounds, compositions, and methods of the present invention generally involve compounds produced by a Malassezia yeast, and chemical analogs thereof. In addition to skin brightening applications, the compounds, compositions, and methods of the present invention may be used to modulate melanocyte activity, induce melanocyte apoptosis, agonize an arylhydrocarbon receptor (AhR), improve hyperpigmentation caused by a hyperpigmentation disorder, and modulate melanin production, melanosome biogenesis, and melanosome transfer. | 97 | 1 | 0 | 0 | 1 | ['15455932', '14112631', '11349339', '14540140', '15974190'] | 893.2351 | 459.949268 | 34 | 2 | 33 | 0.890417 | 1 | 1 | 0 | 0 | 795.3517 | closed | (16121353, 9) | 0.737807 | 0 | 0.783173 | 0.778636 | 1 | 0.747321 | 0.783173 | 0.518568 | 0.49792 | test | 1.84906 | 514 | false |
1,485,220 | A kit comprising:\n a cell sheet; and the cell sheet embedding agent according to claim 1 . | 7 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.597487 | 1 | 0 | 1 | 0 | 150.903282 | open | (16139620, 7) | 0.509402 | 0 | 0.670448 | 0.654343 | 1 | 0.393626 | 0.670448 | 0.433114 | 0.500445 | test | 1.97895 | 530 | true |
1,485,221 | A cell sheet-containing composition comprising:\n a cell sheet; and the cell sheet embedding agent according to claim 1 , wherein the cell sheet is embedded in the cell sheet embedding agent. | 6 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.560176 | 1 | 0 | 1 | 0 | 141.479905 | open | (16139620, 6) | 0.512859 | 0 | 0.669779 | 0.654087 | 1 | 0.436378 | 0.669779 | 0.546803 | 0.51266 | test | 1.97895 | 530 | true |
1,485,222 | The cell sheet embedding agent according to claim 1 ,\n wherein the polypeptide has the amino acid sequence described in SEQ ID NO: 1. | 5 | 16,139,620 | Utility | 2 | ["530", "354000"] | 0 | 2018-09 | 2019-01 | 13 | An object of the present invention is to provide a cell sheet embedding agent, which makes it possible to stably transport a cell sheet at the time of transport at a low temperature and to collect the cell sheet from the cell sheet embedding agent in a simple manner after being transported, a cell sheet-containing composition, and a kit. According to the present invention, there is provided a cell sheet embedding agent containing a polypeptide represented by the following Formula 1, in which in a case where a molecular weight distribution of the polypeptide is measured, a peak area of a maximum molecular weight is equal to or greater than 80% of the total peak area of all molecular weights. A-[(Gly-X—Y) n ] m —B Formula 1: In the formula, X and Y each independently represent an amino acid, m is an integer of 2 to 10, n is an integer of 3 to 100, and A and B each represent any amino acid or any amino acid sequence. | 97 | 1 | 0 | 1 | 0 | ['13582362', '14039910', '13599597', '13582396', '13387632'] | 252.56325 | 247.304936 | 82 | 0 | 41 | 0.728079 | 0 | 0 | 0 | 0 | 183.886049 | none | (16139620, 5) | 0.499592 | 0 | 0.698398 | 0.678517 | 1 | 0.547156 | 0.698398 | 0.544363 | 0.405478 | test | 1.97895 | 530 | true |
1,485,223 | The terminal of claim 4 , wherein the base of the terminal is mainly prism-shaped and wherein a plurality of edges of the prism-shaped base create the press fit with the side wall of the through-hole. | 9 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.61208 | 0 | 0 | 0 | 0 | 110.838012 | none | (16085340, 9) | 0.494612 | 1 | 0.847912 | 0.812582 | 1 | 0.414878 | 0.847912 | 0.56291 | 0.575503 | test | 3.58537 | 174 | false |
1,485,224 | The terminal of claim 5 , wherein a position of the collar on the pin is adapted to a/the required spacing of the PCB to the electrical component adapted to receive the pin. | 8 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.574347 | 0 | 0 | 0 | 0 | 104.005224 | none | (16085340, 8) | 0.500205 | 1 | 0.847165 | 0.812469 | 1 | 0.494794 | 0.847165 | 0.51122 | 0.554934 | test | 3.58537 | 174 | false |
1,485,225 | The terminal of claim 5 , wherein an extension of the collar in the radial direction is adapted to a required spacing of the PCB with respect to the electrical component adapted to receive the pin. | 7 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.557534 | 0 | 0 | 0 | 0 | 100.960627 | none | (16085340, 7) | 0.502698 | 1 | 0.846832 | 0.812418 | 1 | 0.447617 | 0.846832 | 0.504547 | 0.526167 | test | 3.58537 | 174 | false |
1,485,226 | The terminal of claim 5 , wherein the terminal is further adapted to be soldered to the side wall of the through-hole, and wherein the collar further is adapted to prevent solder from wetting out along the pin when the terminal is soldered to the PCB. | 6 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.553827 | 0 | 0 | 0 | 0 | 100.289338 | none | (16085340, 6) | 0.503248 | 1 | 0.846758 | 0.812407 | 1 | 0.627194 | 0.846758 | 0.657979 | 0.662549 | test | 3.58537 | 174 | false |
1,485,227 | The method of claim 24 , wherein a number of null cells is obtained by subtracting a number of active data cells of the SBS from a number of data cells of the SBS. | 31 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.767647 | 0 | 0 | 0 | 0 | 623.328664 | none | (16140000, 31) | 0.672083 | 1 | 0.635409 | 0.639076 | 1 | 0.914454 | 0.635409 | 0.864784 | 0.848657 | test | 2.12281 | 375 | false |
1,485,228 | The method of claim 31 , wherein the number of active data cells of the SBS is obtained based on following equation:\n NoA \u2212( N SP,SBS \u2212NoC+NoA+N NSP-CP )\u00d7( A SP ) 2 , the NoA being the number of active data cells in the data symbol, the N SP,SBS being a number of SBS pilots, the NoC being a number of carriers, the N NSP-CP being a number of non-Scattered Pilot (SP) bearing continual pilots (CPs) and the A SP being an amplitude of scattered pilot. | 32 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.818196 | 0 | 0 | 0 | 0 | 664.375129 | none | (16140000, 32) | 0.687134 | 1 | 0.629732 | 0.635472 | 1 | 0.737208 | 0.629732 | 0.861179 | 0.802594 | test | 2.12281 | 375 | false |
1,485,229 | The broadcast signal receiver of claim 21 , further comprises a signaling decoder to extract from the preamble the first information for indicating Fast Fourier Transform (FFT) size, the second information related to SP pattern and the third information for indicating SP boosting parameter. | 33 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.630937 | 0 | 0 | 0 | 0 | 512.320706 | none | (16140000, 33) | 0.629636 | 1 | 0.65057 | 0.648476 | 1 | 0.909681 | 0.65057 | 0.865211 | 0.837405 | test | 2.12281 | 375 | false |
1,485,230 | The method of claim 30 , further comprising:\n extracting from the preamble the first information for indicating Fast Fourier Transform (FFT) size, the second information related to SP pattern and the third information for indicating SP boosting parameter. | 34 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.626978 | 1 | 0 | 1 | 0 | 509.105661 | open | (16140000, 34) | 0.626224 | 1 | 0.623534 | 0.623803 | 1 | 0.941555 | 0.623534 | 0.858676 | 0.749189 | test | 2.12281 | 375 | false |
1,485,231 | The power supply according to claim 3 ,\n wherein the reference signal outputter, the amplifier, and the control voltage generator are constructed of one of a microcomputer and a digital signal processor. | 4 | 16,136,904 | Utility | 0 | ["323", "282000"] | 0 | 2018-09 | 2019-05 | 5 | A power supply includes: a power converter that converts an input voltage by switching at a switch and supplies an output voltage and an output current to an output terminal connected to a load; a current detector that detects the output current or a current that changes with the output current and outputs a current detection signal whose voltage value changes with the output current; a signal corrector that inputs and corrects the current detection signal and generates and outputs a corrected current detection signal whose voltage value corresponds to the value of the output current; a matching circuit that inputs the corrected current detection signal and outputs to a balanced terminal; and a controller that inputs the corrected current detection signal and a balanced voltage signal generated at the balanced terminal and controls switching operations of the switch to reduce a difference between the two signals. | 97 | 1 | 1 | 1 | 1 | ['14315903', '13824458', '10572981', '14494708', '12485188'] | 163.42696 | 161.399078 | 32 | 4 | 4 | 0.693209 | 0 | 0 | 0 | 0 | 113.289019 | none | (16136904, 4) | 0.476046 | 1 | 0.734263 | 0.708442 | 1 | 0.456202 | 0.734263 | 0.603815 | 0.471944 | test | 2.73214 | 323 | true |
1,485,232 | The power supply according to claim 2 ,\n wherein the reference signal outputter includes an A/D converter, which converts the current detection signal to first voltage information indicating the voltage value of the current detection signal, and a reference signal calculator, which calculates reference signal information indicating a voltage value of the current detection reference signal by correcting the first voltage information based on correction information set in advance, the amplifier includes an A/D converter, which converts the corrected current detection signal to second voltage information indicating a voltage value of the corrected current detection signal, and an amplified signal calculator, which calculates amplified signal information indicating a voltage value of the amplified detection signal based on the second voltage information and amplification information set in advance, and the voltage controller includes a difference calculator, which inputs the reference signal information and the amplification signal information and calculates a difference between the reference signal information and the amplification signal information, and a control voltage generator, which generates one voltage out of a control pulse voltage whose duty ratio changes in keeping with the calculated difference and a control voltage whose voltage value changes in keeping with the calculated difference, the voltage controller controlling the voltage value of the corrected current detection signal based on the one voltage. | 3 | 16,136,904 | Utility | 0 | ["323", "282000"] | 0 | 2018-09 | 2019-05 | 5 | A power supply includes: a power converter that converts an input voltage by switching at a switch and supplies an output voltage and an output current to an output terminal connected to a load; a current detector that detects the output current or a current that changes with the output current and outputs a current detection signal whose voltage value changes with the output current; a signal corrector that inputs and corrects the current detection signal and generates and outputs a corrected current detection signal whose voltage value corresponds to the value of the output current; a matching circuit that inputs the corrected current detection signal and outputs to a balanced terminal; and a controller that inputs the corrected current detection signal and a balanced voltage signal generated at the balanced terminal and controls switching operations of the switch to reduce a difference between the two signals. | 97 | 1 | 1 | 1 | 1 | ['14315903', '13824458', '10572981', '14494708', '12485188'] | 163.42696 | 161.399078 | 32 | 4 | 4 | 0.824532 | 0 | 0 | 0 | 0 | 134.750705 | none | (16136904, 3) | 0.45488 | 1 | 0.738621 | 0.710247 | 1 | 0.689364 | 0.738621 | 0.647842 | 0.713008 | test | 2.73214 | 323 | true |
1,485,233 | The power supply according to claim 1 ,\n wherein the signal corrector includes: a reference signal outputter that inputs the current detection signal and outputs a current detection reference signal generated by correcting a detection error produced in the current detection signal at the current detector; an amplifier that inputs and amplifies the corrected current detection signal and outputs an amplified detection signal; and a voltage controller that inputs the current detection reference signal and the amplified detection signal and controls the voltage value of the corrected current detection signal based on a difference between the current detection reference signal and the amplified detection signal to match the amplified detection signal to the current detection reference signal. | 2 | 16,136,904 | Utility | 0 | ["323", "282000"] | 0 | 2018-09 | 2019-05 | 5 | A power supply includes: a power converter that converts an input voltage by switching at a switch and supplies an output voltage and an output current to an output terminal connected to a load; a current detector that detects the output current or a current that changes with the output current and outputs a current detection signal whose voltage value changes with the output current; a signal corrector that inputs and corrects the current detection signal and generates and outputs a corrected current detection signal whose voltage value corresponds to the value of the output current; a matching circuit that inputs the corrected current detection signal and outputs to a balanced terminal; and a controller that inputs the corrected current detection signal and a balanced voltage signal generated at the balanced terminal and controls switching operations of the switch to reduce a difference between the two signals. | 97 | 1 | 1 | 1 | 1 | ['14315903', '13824458', '10572981', '14494708', '12485188'] | 163.42696 | 161.399078 | 32 | 4 | 4 | 0.788685 | 0 | 0 | 0 | 0 | 128.892367 | none | (16136904, 2) | 0.460645 | 1 | 0.737436 | 0.709757 | 1 | 0.473971 | 0.737436 | 0.515979 | 0.560972 | test | 2.73214 | 323 | true |
1,485,234 | A power supply comprising:\n a power converter that converts an input voltage by switching at a switch and supplies an output voltage and an output current to an output terminal to which a load is connected; a current detector that detects one of the output current and a current that changes in keeping with the output current and outputs a current detection signal whose voltage value changes in keeping with changes in the output current; a signal corrector that inputs the current detection signal, performs correction of the current detection signal, and generates and outputs a corrected current detection signal with a voltage value that corresponds to a current value of the output current; a matching circuit that inputs the corrected current detection signal and outputs to a balanced terminal; and a controller that inputs the corrected current detection signal and a balanced voltage signal generated at the balanced terminal and controls switching operations of the switch so as to reduce a difference between voltage values of the corrected current detection signal and the balanced voltage signal. | 1 | 16,136,904 | Utility | 0 | ["323", "282000"] | 0 | 2018-09 | 2019-05 | 5 | A power supply includes: a power converter that converts an input voltage by switching at a switch and supplies an output voltage and an output current to an output terminal connected to a load; a current detector that detects the output current or a current that changes with the output current and outputs a current detection signal whose voltage value changes with the output current; a signal corrector that inputs and corrects the current detection signal and generates and outputs a corrected current detection signal whose voltage value corresponds to the value of the output current; a matching circuit that inputs the corrected current detection signal and outputs to a balanced terminal; and a controller that inputs the corrected current detection signal and a balanced voltage signal generated at the balanced terminal and controls switching operations of the switch to reduce a difference between the two signals. | 97 | 1 | 0 | 1 | 1 | ['14315903', '13824458', '10572981', '14494708', '12485188'] | 163.42696 | 161.399078 | 32 | 4 | 4 | 0.844164 | 1 | 0 | 1 | 0 | 137.95909 | open | (16136904, 1) | 0.449452 | 0 | 0.715712 | 0.689086 | 1 | 0.300192 | 0.715712 | 0.270626 | 0.298805 | test | 2.73214 | 323 | true |
1,485,235 | A method comprising:\n detecting a change in a context of a computing device; in response to detecting the change, rearranging a first sequence of a plurality of data items into a second sequence different than the first sequence, based on the change in the context of the computing device; and permitting access to the plurality of data items based on at least a first change with respect to the computing device, the first change being different from the change in the context. | 1 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.586942 | 1 | 0 | 1 | 0 | 72.049168 | open | (16121175, 1) | 0.490108 | 1 | 0.248097 | 0.272298 | 1 | 0.192532 | 0.248097 | 0.262112 | 0.19498 | test | 2.2439 | 715 | true |
1,485,236 | The method as claimed in claim 1 , wherein an order of the plurality of data items in the first sequence is based on at least one of:\n a name of each of the plurality of data items; a usage of each of the plurality of data items; an installation sequence of the plurality of data items; a pre-defined order of the plurality of data items; and a memory usage of each of the plurality of data items. | 2 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.7053 | 0 | 0 | 0 | 0 | 86.578018 | none | (16121175, 2) | 0.469532 | 1 | 0.275916 | 0.295277 | 1 | 0.394729 | 0.275916 | 0.536597 | 0.51559 | test | 2.2439 | 715 | true |
1,485,237 | The method as claimed in claim 1 , wherein the first change comprises one or more of:\n a change in a state of the computing device from a sleep state to an active state; a change in an orientation of the computing device from a first orientation to a second orientation; and a movement of the computing device from a current position to a different position from the current position. | 3 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.582407 | 0 | 0 | 0 | 0 | 71.492493 | none | (16121175, 3) | 0.493283 | 1 | 0.270741 | 0.292995 | 1 | 0.377272 | 0.270741 | 0.387048 | 0.305849 | test | 2.2439 | 715 | true |
1,485,238 | The method as claimed in claim 1 , wherein the change in the context is based on at least one context based rule. | 4 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.647919 | 0 | 0 | 0 | 0 | 79.534308 | none | (16121175, 4) | 0.480611 | 1 | 0.273492 | 0.294204 | 1 | 0.335537 | 0.273492 | 0.38708 | 0.327826 | test | 2.2439 | 715 | true |
1,485,239 | The method as claimed in claim 1 , wherein the change in the context of the computing device comprises one or more of:\n a continuous change in a location of the computing device for a pre-defined time duration; at least one physiological parameter of the user being greater than a threshold value; receipt of a notification related to at least one data item from the plurality of data items; and receipt of a notification from another computing device communicatively coupled with the computing device. | 5 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 0 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.668855 | 0 | 0 | 0 | 0 | 82.10435 | none | (16121175, 5) | 0.476566 | 1 | 0.274375 | 0.294594 | 1 | 0.329894 | 0.274375 | 0.556235 | 0.332507 | test | 2.2439 | 715 | true |
1,485,240 | The method as claimed in claim 1 , wherein at least one data item from the plurality of data items is fixed at a predetermined position in the first sequence based on a user input, and the at least one data item that is fixed at the predetermined position in the first sequence is not rearranged when the first sequence is rearranged into the second sequence. | 6 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.582305 | 0 | 0 | 0 | 0 | 71.479974 | none | (16121175, 6) | 0.493303 | 1 | 0.270737 | 0.292994 | 1 | 0.480359 | 0.270737 | 0.424414 | 0.471244 | test | 2.2439 | 715 | true |
1,485,241 | The method as claimed in claim 1 , wherein the permitting access to the plurality of data items comprises determining a distance between the computing device and a body part of the user. | 7 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 0 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.608942 | 0 | 0 | 0 | 0 | 74.749755 | none | (16121175, 7) | 0.488148 | 1 | 0.271853 | 0.293483 | 1 | 0.452857 | 0.271853 | 0.449661 | 0.326626 | test | 2.2439 | 715 | true |
1,485,242 | The method as claimed in claim 1 , further comprising analyzing a contextual score associated with each of the plurality of data items for rearranging the plurality of data items into the second sequence. | 8 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.552382 | 1 | 0 | 1 | 0 | 67.806854 | open | (16121175, 8) | 0.496797 | 1 | 0.246733 | 0.271739 | 1 | 0.501825 | 0.246733 | 0.612377 | 0.511647 | test | 2.2439 | 715 | true |
1,485,243 | The method as claimed in claim 1 , wherein the rearranging the plurality of data items from the first sequence into the second sequence comprises one or more of:\n repositioning at least one data item from the plurality of data items arranged in the first sequence; adding at least one data item to the plurality of data items; removing at least one data item from the plurality of data items; and fixing at least one data item from the plurality of data items at a predetermined position in the second sequence. | 9 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.556174 | 0 | 0 | 0 | 0 | 68.272283 | none | (16121175, 9) | 0.498361 | 1 | 0.269645 | 0.292516 | 1 | 0.624621 | 0.269645 | 0.571027 | 0.536364 | test | 2.2439 | 715 | true |
1,485,244 | The method of claim 24 , wherein the preamble comprises first information for indicating Fast Fourier Transform (FFT) size, second information related to SP pattern and third information for indicating SP boosting parameter. | 30 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.661591 | 0 | 0 | 0 | 0 | 537.211749 | none | (16140000, 30) | 0.639358 | 1 | 0.647195 | 0.646412 | 1 | 0.915926 | 0.647195 | 0.856211 | 0.741416 | test | 2.12281 | 375 | false |
1,485,245 | The method as claimed in claim 10 , wherein the second change comprises one or more of:\n a change in an orientation of the computing device from a first orientation to a second orientation; a change in an orientation of the computing device from the second orientation to the first orientation; and a movement of the computing device from a first position to a second position. | 11 | 16,121,175 | Utility | 0 | ["715", "863000"] | -1 | 2018-09 | 2019-03 | 9 | A method and computing system are provided. The method includes detecting a change in a context of a computing device. In response to detecting the change, a first sequence of plural data items is rearranged into a second sequence different than the first sequence, based on the change in the context of the computing device. Access to the plural data items is permitted based on a first change with respect to the computing device, the first change being different from the change in the context. | 97 | 1 | 1 | 1 | 1 | ['15153246', '14400279', '15054484', '14843504', '14345771'] | 122.75353 | 118.894407 | 42 | 0 | 10 | 0.546844 | 0 | 0 | 0 | 0 | 67.126995 | none | (16121175, 11) | 0.500167 | 1 | 0.269255 | 0.292346 | 1 | 0.386293 | 0.269255 | 0.515904 | 0.336675 | test | 2.2439 | 715 | true |
1,485,246 | The method of claim 24 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =100, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 100 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4307 4307 4851 4851 5395 5395 5667 5667 001 4307 3688 4731 4092 5154 4586 5399 4881 010 3894 2760 4345 3275 4830 3917 5098 4306 011 3591 2029 4040 2710 4575 3390 4901 3852 100 3275 1450 3799 2121 4372 2972 4695 3493 16K 000 8614 8614 9702 9702 10790 10790 11334 11334 001 8614 7374 9461 8182 10306 9169 10797 9758 010 7787 5517 8688 6546 9658 7828 10194 8604 011 7180 4053 8079 5413 9147 6771 9799 7695 100 6549 2894 7597 4236 8743 5934 9388 6974 32K 000 17228 17228 N/A N/A 21580 21580 22668 22668 001 17228 14746 N/A N/A 20612 18335 21593 19512 010 15573 11031 N/A N/A 19315 15651 20387 17202 011 14359 8101 N/A N/A 18292 13534 19596 15380 100 13096 5732 N/A N/A 17433 11859 13773 13938 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 5939 5939 6075 6075 6211 6211 6279 6279 001 5644 5203 5792 5375 5948 5594 6030 5728 010 5411 4732 5591 4961 5784 5256 5886 5438 011 5227 4361 5432 4635 5654 4990 5786 5210 100 5081 4067 5307 4377 5552 4779 5682 5030 16K 000 11878 11878 12150 12150 12422 12422 12558 12558 001 11287 10400 11581 10743 11894 11178 12058 11444 010 10819 9455 11178 9911 11564 10497 11767 10860 011 10450 8710 10861 9255 11304 9960 11566 10399 100 10158 8120 10609 8736 11098 9536 11357 10034 32K 000 23756 23756 24300 24300 24844 24844 25116 25116 001 22572 20794 23160 21478 23785 22345 24112 22877 010 21636 18900 22354 19810 23124 20979 23530 21702 011 20897 17407 21718 18495 22603 19902 23127 20775 100 20312 16225 21215 17454 22190 19049 22708 20042 | 29 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.859363 | 0 | 0 | 0 | 0 | 697.802439 | none | (16140000, 29) | 0.699108 | 1 | 0.625082 | 0.632485 | 1 | 0.980333 | 0.625082 | 0.877852 | 0.952597 | test | 2.12281 | 375 | false |
1,485,247 | The method of claim 24 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =010, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 010 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4433 4433 4993 4993 5553 5553 5833 5833 001 4433 3796 4869 4212 5304 4720 5557 5024 010 4008 2841 4472 3371 4971 4032 5247 4432 011 3695 2088 4158 2788 4708 3488 5044 3964 100 3371 1492 3910 2183 4500 3058 4833 3595 16K 000 8867 8867 9987 9987 11107 11107 11667 11667 001 8867 7591 9739 8422 10609 9438 11114 10045 010 8016 5679 8943 6738 9942 8058 10494 8857 011 7391 4172 8316 5572 9416 6970 10087 7920 100 6741 2979 7820 4360 8999 6108 9664 7179 32K 000 17734 17734 N/A N/A 22214 22214 23334 23334 001 17734 15179 N/A N/A 21217 18873 22227 20085 010 16031 11354 N/A N/A 19882 16110 20986 17707 011 14780 8339 N/A N/A 18829 13932 20171 15831 100 13480 5951 N/A N/A 17996 12207 19324 14347 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6113 6113 6253 6253 6393 6393 6463 6463 001 5810 5355 5961 5532 6122 5757 6207 5890 010 5569 4870 5754 5106 5953 5409 6058 5589 011 5380 4488 5591 4770 5820 5135 5955 5351 100 5229 4186 5462 4504 5714 4918 5848 5164 16K 000 12227 12227 12507 12507 12787 12787 12927 12927 001 11619 10706 11921 11058 12243 11506 12412 11780 010 11137 9732 11507 10202 11903 10805 12113 11178 011 10757 8965 11180 9526 11636 10252 11906 10703 100 10456 8358 10921 8992 11424 9815 11691 10328 32K 000 24454 24454 25014 25014 25574 25574 25854 25854 001 23236 21405 23841 22109 24484 23002 24821 23549 010 22271 19455 23011 20392 23803 21595 24221 22339 011 21511 17918 22356 19038 23267 20486 23806 21385 100 20909 16701 21838 17967 22842 19608 23375 20630 | 27 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.86483 | 0 | 0 | 0 | 0 | 702.241638 | none | (16140000, 27) | 0.700679 | 1 | 0.624463 | 0.632085 | 1 | 0.980347 | 0.624463 | 0.877899 | 0.952837 | test | 2.12281 | 375 | false |
1,485,248 | The terminal of claim 4 , wherein the pin further comprises a collar extending in a radial direction of the pin, wherein the collar is adapted to provide a spacing to an electrical component adapted to receive the pin. | 5 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.614963 | 0 | 0 | 0 | 0 | 111.360102 | none | (16085340, 5) | 0.494184 | 1 | 0.847969 | 0.812591 | 1 | 0.499402 | 0.847969 | 0.559911 | 0.490064 | test | 3.58537 | 174 | false |
1,485,249 | A terminal for mounting on a printed circuit board (PCB) comprising a through-hole that penetrates one or more conductive layers of the PCB, wherein the through-hole has a partially open side wall that is at least partially plated to electrically interconnect said one or more conductive layers, and the side wall is open along at least a part of a length of the through-hole perpendicular to a radius of the through-hole for allowing the terminal to protrude through the open side wall when received by the through-hole such that a position of the terminal is adjustable along the length of the open side wall, the terminal comprising:\n a current conductive material; a base adapted to be received by the through-hole of the PCB and to create a press fit with the side wall of the through-hole; and a pin projecting from a surface of the base, wherein the pin is adapted to protrude through the open side wall when the base is inserted into the through-hole of the PCB. | 4 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.76747 | 1 | 0 | 1 | 0 | 138.976698 | open | (16085340, 4) | 0.469315 | 1 | 0.835241 | 0.798648 | 1 | 0.33373 | 0.835241 | 0.370037 | 0.319324 | test | 3.58537 | 174 | false |
1,485,250 | The PCB of claim 1 , wherein the PCB comprises one or more grooves located on an edge of the PCB adapted to guide one or more terminals of a second PCB positioned next to the PCB, in order to position a terminal of the second PCB in relation to the PCB. | 3 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.653604 | 0 | 0 | 0 | 0 | 118.357382 | none | (16085340, 3) | 0.488457 | 1 | 0.848731 | 0.812703 | 1 | 0.569644 | 0.848731 | 0.424743 | 0.568315 | test | 3.58537 | 174 | false |
1,485,251 | The PCB of claim 1 , wherein the side wall is open along an entirety of the length of the through-hole perpendicular to the radius of the through-hole. | 2 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.598408 | 0 | 0 | 0 | 0 | 108.362262 | none | (16085340, 2) | 0.496638 | 1 | 0.847642 | 0.812542 | 1 | 0.728286 | 0.847642 | 0.52586 | 0.682387 | test | 3.58537 | 174 | false |
1,485,252 | A Printed Circuit Board, PCB, comprising a through-hole for receiving a terminal, wherein the through-hole penetrates one or more conductive layers of the PCB and the through-hole has a partially open side wall, wherein the side wall is at least partially plated to electrically interconnect said one or more conductive layers and wherein the side wall is open along at least a part of a length of the through-hole perpendicular to a radius of the through-hole for allowing the terminal to protrude through the open side wall when received by the through-hole, such that a position of the terminal is adjustable along the length of the open side wall. | 1 | 16,085,340 | Utility | 1 | ["174", "262000"] | 0 | 2018-09 | 2019-03 | 5 | Embodiments herein relate to a Printed Circuit Board, PCB, ( 1 ) and a terminal ( 2 ) for connecting the PCB ( 1 ) to an electrical component. The PCB ( 1 ) comprises a through-hole ( 11 ) for receiving the terminal ( 2 ). The through-hole ( 11 ) has a partially open side wall ( 12 ), wherein the side wall ( 12 ) is open along at least a part of a length (L) of the 5 through-hole ( 11 ) perpendicular to a radius (R) of the through-hole ( 11 ). This allows the terminal ( 2 ) to protrude through the open side wall ( 12 ) when received by the through-hole ( 11 ), such that a position of the terminal ( 2 ) is adjustable along the length of the open side wall ( 12 ). The terminal ( 2 ) comprises a base ( 21 ), adapted to be received by the through-hole ( 11 ) of the PCB ( 1 ) and to create a press fit with the side wall ( 12 ) of the through-hole 10 ( 11 ), and a pin ( 22 ) projecting from a surface ( 23 ) of the base ( 21 ). The pin ( 22 ) is adapted to protrude through the open side wall ( 12 ), when the base ( 21 ) is inserted into the through-hole ( 11 ) of the PCB ( 1 ). Furthermore, embodiments herein relate to a method for assembling a PCB module ( 120 ) comprising the terminal ( 2 ) and the PCB ( 1 ). | 97 | 1 | 1 | 1 | 1 | ['12108328', '10404877', '15962303', '11811826', '14648777'] | 181.08418 | 170.676614 | 114 | 109 | 2 | 0.742243 | 1 | 0 | 1 | 0 | 134.40841 | open | (16085340, 1) | 0.473043 | 1 | 0.834708 | 0.798542 | 1 | 0.253846 | 0.834708 | 0.41539 | 0.236314 | test | 3.58537 | 174 | false |
1,485,253 | A broadcast signal receiver, comprising:\n a demodulator to demodulate a broadcast signal; a pilot detector to detect pilots from the broadcast signal; a de-framer to de-frame a signal frame of the broadcast signal and to extract Physical Layer Pipe (PLP) data, the signal frame comprising a preamble and at least one subframe; wherein the subframe comprises data symbols and at least one Subframe Boundary Symbol (SBS), the data symbols comprising Scattered Pilots (SPs), and the SBS comprises data cells and subframe boundary pilots, the data cells of the SBS comprise active data cells and null cells, the active data cells are at a center and each half of the null cells are at each band edge within data carrier indices, and the de-framer determining a number of the active data cells of the SBS for an Fast Fourier Transform (FFT) size and an SP pattern is determined based on a coefficient to control a number of carriers and an SP boosting parameter for a boosted power level of the SPs; a de-interleaver configured to bit de-interleave the PLP data; and a decoder configured to decode the PLP data. | 15 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.921508 | 1 | 0 | 1 | 0 | 748.263708 | open | (16140000, 15) | 0.714809 | 1 | 0.589589 | 0.602111 | 1 | 0.857327 | 0.589589 | 0.745883 | 0.637001 | test | 2.12281 | 375 | false |
1,485,254 | The broadcast signal receiver of claim 15 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =000, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 000 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4560 4560 5136 5136 5712 5712 6000 6000 001 4560 3904 5009 4332 5456 4856 5716 5168 010 4123 2922 4600 3467 5114 4147 5398 4558 011 3801 2148 4278 2868 4843 3588 5188 4078 100 3467 1534 4022 2245 4629 3146 4971 3697 16K 000 9120 9120 10272 10272 11424 11424 12000 12000 001 9120 7807 10017 8663 10912 9708 11431 10331 010 8244 5841 9199 6930 10225 8288 10793 9109 011 7601 4290 8554 5731 9684 7168 10375 8146 100 6933 3063 8043 4484 9256 6282 9939 7383 32K 000 18240 18240 N/A N/A 22848 22848 24000 24000 001 18240 15612 N/A N/A 21823 19412 22861 20658 010 16488 11678 N/A N/A 20449 16570 21585 18212 011 15202 8576 N/A N/A 19367 14329 20747 16283 100 13865 6121 N/A N/A 18510 12555 19876 14755 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6288 6288 6432 6432 6576 6576 6648 6648 001 5976 5508 6132 5691 6297 5922 6384 6064 010 5729 5010 5919 5252 6123 5564 6231 5757 011 5533 4616 5751 4906 5986 5282 6125 5515 100 5379 4305 5618 4633 5877 5058 6015 5324 16K 000 12576 12576 12864 12864 13152 13152 13296 13296 001 11950 11011 12262 11374 12593 11834 12766 12116 010 11455 10010 11835 10493 12243 11113 12458 11497 011 11064 9221 11499 9798 11968 10544 12245 11008 100 10755 8596 11233 9248 11750 10094 12024 10622 32K 000 25152 25152 25728 25728 26304 26304 26592 26592 001 23899 22016 24521 22740 25183 23658 25529 24221 010 22907 20010 23667 20974 24483 22211 24913 22976 011 22124 18429 22994 19581 23931 21070 24486 21995 100 21505 17177 22481 18479 23494 20167 24042 21218 | 16 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.87968 | 0 | 0 | 0 | 0 | 714.299509 | none | (16140000, 16) | 0.704921 | 1 | 0.622779 | 0.630993 | 1 | 0.980385 | 0.622779 | 0.877678 | 0.953331 | test | 2.12281 | 375 | false |
1,485,255 | The broadcast signal receiver of claim 15 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =001, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 001 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4496 4496 5064 5064 5632 5632 5916 5916 001 4496 3849 4938 4272 5380 4788 5636 5096 010 4065 2881 4535 3419 5042 4089 5322 4494 011 3748 2117 4218 2828 4775 3538 5116 4021 100 3418 1513 3966 2214 4564 3102 4901 3645 16K 000 8992 8992 10128 10128 11264 11264 11832 11832 001 8992 7697 9876 8541 10759 9572 11271 10187 010 8129 5758 9070 6833 10082 8171 10642 8982 011 7495 4229 8434 5650 9549 7068 10229 8032 100 6835 3019 7930 4420 9126 6194 9800 7280 32K 000 17984 17984 N/A N/A 22528 22528 23664 23664 001 17984 15393 N/A N/A 21517 19140 22541 20369 010 16256 11513 N/A N/A 20163 16337 21282 17956 011 14988 8454 N/A N/A 19095 14127 20456 16054 100 13669 6033 N/A N/A 18250 12378 19597 14548 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6200 6200 6342 6342 6484 6484 6555 6555 001 5892 5431 6046 5608 6209 5839 6294 5971 010 5648 4940 5836 5173 6038 5486 6142 5664 011 5456 4552 5671 4831 5902 5208 6037 5422 100 5304 4245 5540 4559 5795 4988 5928 5231 16K 000 12400 12400 12684 12684 12968 12968 13110 13110 001 11783 10857 12090 11215 12416 11668 12587 11941 010 11294 9870 11669 10346 12072 10957 12284 11327 011 10909 9091 11338 9661 11800 10397 12074 10844 100 10604 8475 11075 9118 11585 9953 11856 10461 32K 000 24800 24800 25368 25368 25936 25936 26220 26220 001 23564 21707 24176 22422 24830 23327 25172 23882 010 22586 19730 23336 20680 24140 21900 24564 22654 011 21815 18170 22672 19307 23596 20775 24143 21687 100 21204 16936 22146 18220 23165 19885 23705 20921 | 17 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.890726 | 0 | 0 | 0 | 0 | 723.268704 | none | (16140000, 17) | 0.708053 | 1 | 0.621525 | 0.630177 | 1 | 0.980474 | 0.621525 | 0.877341 | 0.953332 | test | 2.12281 | 375 | false |
1,485,256 | The broadcast signal receiver of claim 15 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =010, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 010 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4433 4433 4993 4993 5553 5553 5833 5833 001 4433 3796 4869 4212 5304 4720 5557 5024 010 4008 2841 4472 3371 4971 4032 5247 4432 011 3695 2088 4158 2788 4706 3488 5044 3964 100 3371 1492 3910 2183 4500 3058 4833 3595 16K 000 8867 8867 9987 9987 11107 11107 11667 11667 001 8867 7591 9739 8422 10609 9438 11114 10045 010 8016 5679 8943 6738 9942 8058 10494 8857 011 7391 4172 8316 5572 9416 6970 10087 7920 100 6741 2979 7820 4360 8999 6108 9664 7179 32K 000 17734 17734 N/A N/A 22214 22214 23334 23334 001 17734 15179 N/A N/A 21217 18873 22227 20085 010 16031 11354 N/A N/A 19882 16110 20986 17707 011 14780 8339 N/A N/A 18829 13932 20171 15831 100 13480 5951 N/A N/A 17996 12207 19324 14347 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6113 6113 6253 6253 6393 6393 6463 6463 001 5810 5355 5961 5532 6122 5757 6207 5890 010 5569 4870 5754 5106 5953 5409 6058 5589 011 5380 4488 5591 4770 5820 5135 5955 5351 100 5229 4186 5462 4504 5714 4918 5848 5164 16K 000 12227 12227 12507 12507 12787 12787 12927 12927 001 11619 10706 11921 11058 12243 11506 12412 11780 010 11137 9732 11507 10202 11903 10805 12113 11178 011 10757 8965 11180 9526 11636 10252 11906 10703 100 10456 8358 10921 8992 11424 9815 11691 10328 32K 000 24454 24454 25014 25014 25574 25574 25854 25854 001 23236 21405 23841 22109 24484 23002 24821 23549 010 22271 19455 23011 20392 23803 21595 24221 22339 011 21511 17918 22356 19038 23267 20486 23806 21385 100 20909 16701 21838 17967 22842 19608 23375 20630 | 18 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.884979 | 0 | 0 | 0 | 0 | 718.602513 | none | (16140000, 18) | 0.706426 | 1 | 0.622177 | 0.630602 | 1 | 0.980389 | 0.622177 | 0.878426 | 0.953204 | test | 2.12281 | 375 | false |
1,485,257 | The broadcast signal receiver of claim 15 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =011, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 011 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4370 4370 4922 4922 5474 5474 5750 5750 001 4370 3742 4800 4152 5229 4653 5478 4953 010 3951 2800 4408 3323 4901 3974 5173 4369 011 3643 2058 4099 2749 4641 3439 4972 3908 100 3323 1471 3855 2152 4436 3015 4764 3544 16K 000 8740 8740 9844 9844 10948 10948 11500 11500 001 8740 7482 9599 8302 10457 9303 10955 9901 010 7901 5597 8815 6642 9799 7943 10344 8730 011 7285 4112 8197 5492 9281 6870 9942 7807 100 6644 2936 7708 4297 8870 6021 9525 7076 32K 000 17480 17480 N/A N/A 21896 21896 23000 23000 001 17480 14962 N/A N/A 20913 18603 21909 19798 010 15801 11192 N/A N/A 19597 15879 20685 17453 011 14568 8219 N/A N/A 18560 13732 19882 15604 100 13287 5866 N/A N/A 17738 12032 19048 14141 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6026 6026 6164 6164 6302 6302 6371 6371 001 5727 5279 5876 5450 6035 5675 6117 5809 010 5490 4801 5672 5028 5868 5333 5970 5514 011 5303 4425 5512 4695 5737 5062 5869 5281 100 5155 4126 5385 4432 5633 4848 5762 5097 16K 000 12052 12052 12328 12328 12604 12604 12742 12742 001 11452 10552 11751 10900 12068 11341 12234 11606 010 10977 9593 11342 10056 11733 10650 11940 11010 011 10603 8837 11020 9390 11469 10106 11735 10540 100 10307 8238 10765 8863 11260 9675 11523 10168 32K 000 24104 24104 24656 24656 25208 25208 25484 25484 001 22903 21099 23500 21793 24133 22673 24465 23212 010 21952 19177 22681 20100 23463 21286 23875 22019 011 21203 17661 22036 18766 22934 20193 23466 21079 100 20609 16462 21525 17710 22515 19328 23040 20335 | 19 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.894006 | 0 | 0 | 0 | 0 | 725.932291 | none | (16140000, 19) | 0.70898 | 1 | 0.621152 | 0.629934 | 1 | 0.980448 | 0.621152 | 0.878565 | 0.953231 | test | 2.12281 | 375 | false |
1,485,258 | The broadcast signal receiver of claim 15 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =100, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 100 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4307 4307 4851 4851 5395 5395 5667 5667 001 4307 3688 4731 4092 5154 4586 5399 4881 010 3894 2760 4345 3275 4830 3917 5098 4306 011 3591 2029 4040 2710 4575 3390 4901 3852 100 3275 1450 3799 2121 4372 2972 4695 3493 16K 000 8614 8614 9702 9702 10790 10790 11334 11334 001 8614 7374 9461 8182 10306 9169 10797 9758 010 7787 5517 8688 6546 9658 7828 10194 8604 011 7180 4053 8079 5413 9147 6771 9799 7695 100 6549 2894 7597 4236 8743 5934 9388 6974 32K 000 17228 17228 N/A N/A 21580 21580 22668 22668 001 17228 14746 N/A N/A 20612 18335 21593 19512 010 15573 11031 N/A N/A 19315 15651 20387 17202 011 14359 8101 N/A N/A 18292 13534 19596 15380 100 13096 5732 N/A N/A 17433 11859 13773 13938 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 5939 5939 6075 6075 6211 6211 6279 6279 001 5644 5203 5792 5375 5948 5594 6030 5728 010 5411 4732 5591 4961 5784 5256 5886 5438 011 5227 4361 5432 4635 5654 4990 5786 5210 100 5081 4067 5307 4377 5552 4779 5682 5030 16K 000 11878 11878 12150 12150 12422 12422 12558 12558 001 11287 10400 11581 10743 11894 11178 12058 11444 010 10819 9455 11178 9911 11564 10497 11767 10860 011 10450 8710 10861 9255 11304 9960 11566 10399 100 10158 8120 10609 8736 11098 9536 11357 10034 32K 000 23756 23756 24300 24300 24844 24844 25116 25116 001 22572 20794 23160 21478 23785 22345 24112 22877 010 21636 18900 22354 19810 23124 20979 23530 21702 011 20897 17407 21718 18495 22603 19902 23127 20775 100 20312 16225 21215 17454 22190 19049 22708 20042 | 20 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.893524 | 0 | 0 | 0 | 0 | 725.541228 | none | (16140000, 20) | 0.708844 | 1 | 0.621206 | 0.62997 | 1 | 0.9805 | 0.621206 | 0.878002 | 0.953376 | test | 2.12281 | 375 | false |
1,485,259 | The broadcast signal receiver of claim 15 , wherein the preamble comprises first information for indicating Fast Fourier Transform (FFT) size, second information related to SP pattern and third information for indicating SP boosting parameter. | 21 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.724568 | 0 | 0 | 0 | 0 | 588.348571 | none | (16140000, 21) | 0.65897 | 1 | 0.640217 | 0.642092 | 1 | 0.859752 | 0.640217 | 0.859364 | 0.774938 | test | 2.12281 | 375 | false |
1,485,260 | The broadcast signal receiver of claim 15 , wherein a number of null cells is obtained by subtracting a number of active data cells of the SBS from a number of data cells of the SBS. | 22 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.809231 | 0 | 0 | 0 | 0 | 657.095299 | none | (16140000, 22) | 0.684492 | 1 | 0.630742 | 0.636117 | 1 | 0.933522 | 0.630742 | 0.86108 | 0.880228 | test | 2.12281 | 375 | false |
1,485,261 | The broadcast signal receiver of claim 22 , wherein the number of active data cells of the SBS is obtained based on following equation:\n NoA \u2212( N SP,SBS \u2212NoC+NoA+N NSP-CP )\u00d7( A SP ) 2 , the NoA being the number of active data cells in the data symbol, the N SP,SBS being a number of SBS pilots, the NoC being a number of carriers, the N NSP-CP being a number of non-Scattered Pilot (SP) bearing continual pilots (CPs) and the A SP being an amplitude of scattered pilot. | 23 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.929326 | 0 | 0 | 0 | 0 | 754.612584 | none | (16140000, 23) | 0.718845 | 1 | 0.617127 | 0.627299 | 1 | 0.9047 | 0.617127 | 0.863541 | 0.80839 | test | 2.12281 | 375 | false |
1,485,262 | A method for receiving a broadcast signal, comprising:\n demodulating the broadcast signal; detecting pilots from the broadcast signal; de-framing a signal frame of the broadcast signal and extracting Physical Layer Pipe (PLP) data, the signal frame comprising a preamble and at least one subframe; the subframe comprises data symbols and at least one Subframe Boundary Symbol (SBS), the data symbols comprising Scattered Pilots (SPs), and the SBS comprises data cells and subframe boundary pilots, the data cells of the SBS comprise active data cells and null cells, the active data cells are at a center and each half of the null cells are at each band edge within data carrier indices, and the de-framing includes determining a number of the active data cells of the SBS for an Fast Fourier Transform (FFT) size and an SP pattern is determined based on a coefficient to control a number of carriers and an SP boosting parameter for a boosted power level of the SPs; bit de-interleaving the PLP data, and decoding the PLP data. | 24 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.920768 | 1 | 0 | 1 | 0 | 747.663174 | open | (16140000, 24) | 0.714602 | 1 | 0.589676 | 0.602169 | 1 | 0.866107 | 0.589676 | 0.743752 | 0.615835 | test | 2.12281 | 375 | false |
1,485,263 | The method of claim 24 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =000, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 000 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4560 4560 5136 5136 5712 5712 6000 6000 001 4560 3904 5009 4332 5456 4856 5716 5168 010 4123 2922 4600 3467 5114 4147 5398 4558 011 3801 2148 4278 2868 4843 3588 5188 4078 100 3467 1534 4022 2245 4629 3146 4971 3697 16K 000 9120 9120 10272 10272 11424 11424 12000 12000 001 9120 7807 10017 8663 10912 9708 11431 10331 010 8244 5841 9199 6930 10225 8288 10793 9109 011 7601 4290 8554 5731 9684 7168 10375 8146 100 6933 3063 8043 4484 9256 6282 9939 7383 32K 000 18240 18240 N/A N/A 22848 22848 24000 24000 001 18240 15612 N/A N/A 21823 19412 22861 20658 010 16488 11678 N/A N/A 20449 16570 21585 18212 011 15202 8576 N/A N/A 19367 14329 20747 16283 100 13865 6121 N/A N/A 18510 12555 19876 14755 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6288 6288 6432 6432 6576 6576 6648 6648 001 5976 5508 6132 5691 6297 5922 6384 6064 010 5729 5010 5919 5252 6123 5564 6231 5757 011 5533 4616 5751 4906 5986 5282 6125 5515 100 5379 4305 5618 4633 5877 5058 6015 5324 16K 000 12576 12576 12864 12864 13152 13152 13296 13296 001 11950 11011 12262 11374 12593 11834 12766 12116 010 11455 10010 11835 10493 12243 11113 12458 11497 011 11064 9221 11499 9798 11968 10544 12245 11008 100 10755 8596 11233 9248 11750 10094 12024 10622 32K 000 25152 25152 25728 25728 26304 26304 26592 26592 001 23899 22016 24521 22740 25183 23658 25529 24221 010 22907 20010 23667 20974 24483 22211 24913 22976 011 22124 18429 22994 19581 23931 21070 24486 21995 100 21505 17177 22461 18479 23494 20167 24042 21218 | 25 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.842844 | 0 | 0 | 0 | 0 | 684.388575 | none | (16140000, 25) | 0.694335 | 1 | 0.626951 | 0.633689 | 1 | 0.9802 | 0.626951 | 0.877585 | 0.952318 | test | 2.12281 | 375 | false |
1,485,264 | The method of claim 24 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =001, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 001 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4496 4496 5064 5064 5632 5632 5916 5916 001 4496 3849 4938 4272 5380 4788 5636 5096 010 4065 2881 4535 3419 5042 4089 5322 4494 011 3748 2117 4218 2828 4775 3538 5116 4021 100 3418 1513 3966 2214 4564 3102 4901 3645 16K 000 8992 8992 10128 10128 11264 11264 11832 11832 001 8992 7697 9876 8541 10759 9572 11271 10187 010 8129 5758 9070 6833 10082 8171 10642 8982 011 7495 4229 8434 5650 9549 7068 10229 8032 100 6835 3019 7930 4420 9126 6194 9800 7280 32K 000 17984 17984 N/A N/A 22528 22528 23664 23664 001 17984 15393 N/A N/A 21517 19140 22541 20369 010 16256 11513 N/A N/A 20163 16337 21282 17956 011 14988 8454 N/A N/A 19095 14127 20456 16054 100 13669 6033 N/A N/A 18250 12378 19597 14548 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6200 6200 6342 6342 6484 6484 6555 6555 001 5892 5431 6046 5608 6209 5839 6294 5971 010 5648 4940 5836 5173 6038 5486 6142 5664 011 5456 4552 5671 4831 5902 5208 6037 5422 100 5304 4245 5540 4559 5795 4988 5928 5231 16K 000 12400 12400 12684 12684 12968 12968 13110 13110 001 11783 10857 12090 11215 12416 11668 12587 11941 010 11294 9870 11669 10346 12072 10957 12284 11327 011 10909 9091 11338 9661 11800 10397 12074 10844 100 10604 8475 11075 9118 11585 9953 11856 10461 32K 000 24800 24800 25368 25368 25936 25936 26220 26220 001 23564 21707 24178 22422 24830 23327 25172 23882 010 22586 19730 23336 20680 24140 21900 24564 22654 011 21815 18170 22672 19307 23596 20775 24143 21687 100 21204 16936 22146 18220 23165 19885 23705 20921 | 26 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.863928 | 0 | 0 | 0 | 0 | 701.508781 | none | (16140000, 26) | 0.70042 | 1 | 0.624565 | 0.632151 | 1 | 0.980345 | 0.624565 | 0.877208 | 0.952368 | test | 2.12281 | 375 | false |
1,485,265 | The method of claim 24 , wherein the number of the active data cells of the SBS for the FFT size of 8K, 16K or 32K and for the SP pattern is determined as following table when C red _ coeff =011, wherein the C red _ coeff is the coefficient and L1_SP Boost is the SP boosting parameter Number of active data carriers in SBS (NoA SBS ) when C red \u2014 coeff = 011 L1_SP_Boost SP3_2 SP3_4 SP4_2 SP4_4 SP6_2 SP6_4 SP8_2 SP8_4 \u20028K 000 4370 4370 4922 4922 5474 5474 5750 5750 001 4370 3742 4800 4152 5229 4653 5478 4953 010 3951 2800 4408 3323 4901 3974 5173 4369 011 3643 2058 4099 2749 4641 3439 4972 3908 100 3323 1471 3855 2152 4436 3015 4764 3544 16K 000 8740 8740 9844 9844 10948 10948 11500 11500 001 8740 7482 9599 8302 10457 9303 10955 9901 010 7901 5597 8815 6642 9799 7943 10344 8730 011 7285 4112 8197 5492 9281 6870 9942 7807 100 6644 2936 7708 4297 8870 6021 9525 7076 32K 000 17480 17480 N/A N/A 21896 21896 23000 23000 001 17480 14962 N/A N/A 20913 18603 21909 19798 010 15801 11192 N/A N/A 19597 15879 20685 17453 011 14568 8219 N/A N/A 18560 13732 19882 15604 100 13287 5866 N/A N/A 17738 12032 19048 14141 L1_SP_Boost SP12_2 SP12_4 SP16_2 SP16_4 SP24_2 SP24_4 SP32_2 SP32_4 \u20028K 000 6026 6026 6164 6164 6302 6302 6371 6371 001 5727 5279 5876 5450 6035 5675 6117 5809 010 5490 4801 5672 5028 5868 5333 5970 5514 011 5303 4425 5512 4695 5737 5062 5868 5281 100 5155 4126 5385 4432 5633 4848 5762 5097 16K 000 12052 12052 12328 12328 12604 12604 12742 12742 001 11452 10552 11751 10900 12068 11341 12234 11606 010 10977 9593 11342 10056 11733 10650 11940 11010 011 10603 8837 11020 9390 11469 10106 11735 10540 100 10307 8238 10765 8863 11260 9675 11523 10168 32K 000 24104 24104 24656 24656 25208 25208 25484 25484 001 22903 21099 23500 21793 24133 22673 24465 23212 010 21952 19177 22681 20100 23463 21286 23875 22019 011 21203 17661 22036 18766 22934 20193 23466 21079 100 20609 16462 21525 17710 22515 19328 23040 20335 | 28 | 16,140,000 | Utility | 8 | ["375", "260000"] | -1 | 2018-09 | 2019-02 | 17 | Disclosed herein is a broadcast signal receiver. The broadcast signal receiver according to an embodiment of the present invention includes a synchronization and demodulation module configured to perform detection and OFDM demodulation on a received broadcast signal, a frame parsing and deinterleaving module configured to parse and deinterleave the signal frame of the broadcast signal, a demapping and decoding module configured to convert the data of at least one Physical Layer Pipe (PLP) of the broadcast signal into a bit domain and to FEC-decode the PLP data, and an output processing module configured to receive the data of the at least one PLP and to output the received data in a data stream form. | 97 | 1 | 1 | 1 | 1 | ['15615663', '16013597', '15646493', '15926389', '15918158'] | 811.9995 | 634.070958 | 120 | 0 | 15 | 0.872023 | 0 | 0 | 0 | 0 | 708.082616 | none | (16140000, 28) | 0.702738 | 1 | 0.623648 | 0.631557 | 1 | 0.980398 | 0.623648 | 0.878118 | 0.952861 | test | 2.12281 | 375 | false |
1,485,266 | The apparatus of claim 10 , wherein:\n the processor circuit is configured for determining whether any one of the one or more identified endpoint devices can serve as a proxy server device for at least partial execution of at least the substitute of the network service or a different network service; the processor circuit further configured for sending at least one of the executable resource, or data associated with at least the substitute of the network service or the different network service, to the proxy server device, for distributed execution of at least the substitute of the network service or the different network service, in response to receiving a grant from the corresponding any one of the one or more identified endpoint devices. | 15 | 16,135,121 | Utility | 1 | ["709", "224000"] | -1 | 2018-09 | 2019-01 | 48 | In one embodiment, a method comprises detecting, by an access network computing node, a network service provided by a service provider for one or more identified endpoint devices via a wide area network connection, the access network computing node within an access network providing connections for the one or more identified endpoint devices to access the network service via the wide area network connection; detecting an unavailability of the network service via the wide area network connection; and supplying, by the access network computing node, at least a substitute of the network service for the one or more identified endpoint devices in response to the detected unavailability of the network service via the wide area network connection. | 97 | 1 | 1 | 0 | 1 | ['14192999', '14034325', '13802619', '14499687', '14103628'] | 288.84488 | 170.141952 | 66 | 0 | 10 | 0.642 | 0 | 0 | 0 | 0 | 185.438298 | none | (16135121, 15) | 0.520627 | 1 | 0.235035 | 0.263594 | 1 | 0.715523 | 0.235035 | 0.763593 | 0.859947 | test | 2.86364 | 709 | false |
1,485,267 | The DC/DC converter according to claim 3 , wherein when the failure detector detects a failure in only any one of the first output-side voltage sensor, the second output-side voltage sensor, and the input-side voltage sensor, the control apparatus fixes the first switching device to an ON state. | 7 | 16,133,863 | Utility | 0 | ["323", "271000"] | 1 | 2018-09 | 2019-10 | 36 | The DC/DC converter is provided with a failure detector that detects a failure in at least one of a first output-side voltage sensor, a second output-side voltage sensor, and an input-side voltage sensor, based on the respective detection values of the input-side voltage sensor, the first output-side voltage sensor, the second output-side voltage sensor, and a DC power source voltage sensor. | 97 | 1 | 1 | 1 | 0 | ['13002221', '14315484', '15259688', '15827392', '12293828'] | 208.44563 | 203.917242 | 38 | 13 | 12 | 0.794355 | 0 | 0 | 0 | 0 | 165.579786 | none | (16133863, 7) | 0.474292 | 1 | 0.762776 | 0.733928 | 1 | 0.410766 | 0.762776 | 0.628486 | 0.371632 | test | 1.94286 | 323 | true |
1,485,268 | The DC/DC converter according to claim 1 , wherein when the failure detector detects a failure in only any one of the first output-side voltage sensor, the second output-side voltage sensor, and the input-side voltage sensor, the control apparatus fixes the first switching device to an ON state. | 5 | 16,133,863 | Utility | 0 | ["323", "271000"] | 1 | 2018-09 | 2019-10 | 36 | The DC/DC converter is provided with a failure detector that detects a failure in at least one of a first output-side voltage sensor, a second output-side voltage sensor, and an input-side voltage sensor, based on the respective detection values of the input-side voltage sensor, the first output-side voltage sensor, the second output-side voltage sensor, and a DC power source voltage sensor. | 97 | 1 | 1 | 1 | 0 | ['13002221', '14315484', '15259688', '15827392', '12293828'] | 208.44563 | 203.917242 | 38 | 13 | 12 | 0.789125 | 0 | 0 | 0 | 0 | 164.489663 | none | (16133863, 5) | 0.474954 | 1 | 0.762658 | 0.733887 | 1 | 0.304349 | 0.762658 | 0.45839 | 0.289167 | test | 1.94286 | 323 | true |
1,485,269 | The method of claim 6 , wherein the biocide constitutes 0.5 to 3.5% (w/w) of the cleaning composition. | 12 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.61791 | 0 | 0 | 0 | 0 | 195.483345 | none | (16135568, 12) | 0.525034 | 1 | 0.740675 | 0.719111 | 1 | 0.905761 | 0.740675 | 0.803259 | 0.819428 | test | 1.72581 | 424 | false |
1,485,270 | The method of claim 6 , wherein the granular absorbent material is selected from the group consisting of ceramic minerals, zeolite, activated carbon, fumed silica, processed clays, cellulosic absorbents, fibrous absorbents and combinations thereof. | 13 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.777336 | 1 | 1 | 0 | 0 | 245.91984 | closed | (16135568, 13) | 0.51532 | 1 | 0.767976 | 0.74271 | 1 | 0.545909 | 0.767976 | 0.673764 | 0.64007 | test | 1.72581 | 424 | false |
1,485,271 | The method of claim 6 , wherein the granular absorbent material comprises a ceramic material. | 14 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.686734 | 0 | 0 | 0 | 0 | 217.256783 | none | (16135568, 14) | 0.522071 | 1 | 0.740896 | 0.719014 | 1 | 0.614925 | 0.740896 | 0.722952 | 0.678732 | test | 1.72581 | 424 | false |
1,485,272 | The method of claim 6 , wherein the granular absorbent material comprises zeolite. | 15 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.689418 | 0 | 0 | 0 | 0 | 218.105672 | none | (16135568, 15) | 0.521955 | 1 | 0.740905 | 0.71901 | 1 | 0.686118 | 0.740905 | 0.790594 | 0.757563 | test | 1.72581 | 424 | false |
1,485,273 | The system according to any of claim 1 , wherein said building material is curable, and said controller is configured to operate said ablation system also for at least partially curing said building material. | 6 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.5193 | 0 | 0 | 0 | 0 | 145.959704 | none | (16126565, 6) | 0.519593 | 1 | 0.404653 | 0.416147 | 1 | 0.365616 | 0.404653 | 0.440922 | 0.476745 | test | 1.72 | 700 | false |
1,485,274 | The system according to any of claim 2 , wherein said controller is configured for elevating a receiving medium receiving said building material prior to said dispensing on said additional building material. | 5 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.528184 | 0 | 0 | 0 | 0 | 148.45665 | none | (16126565, 5) | 0.518967 | 1 | 0.404765 | 0.416186 | 1 | 0.455632 | 0.404765 | 0.553186 | 0.465741 | test | 1.72 | 700 | false |
1,485,275 | The system according to any of claim 2 , wherein said controller is configured for operating said ablation system to remove a debris deposition of said additional building material on non-vacant regions. | 4 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.582412 | 0 | 0 | 0 | 0 | 163.698546 | none | (16126565, 4) | 0.515144 | 1 | 0.405449 | 0.416419 | 1 | 0.744415 | 0.405449 | 0.63512 | 0.565223 | test | 1.72 | 700 | false |
1,485,276 | The method of claim 6 , wherein the biocide forms a surface bonded film on the granular absorbent material. | 11 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.687423 | 0 | 0 | 0 | 0 | 217.474691 | none | (16135568, 11) | 0.522041 | 1 | 0.740898 | 0.719013 | 1 | 0.812884 | 0.740898 | 0.750635 | 0.687931 | test | 1.72581 | 424 | false |
1,485,277 | The system according to claim 2 , wherein said additional building material is curable, and said controller is configured to operate said ablation system also for at least partially curing said additional building material. | 3 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.519633 | 0 | 0 | 0 | 0 | 146.053287 | none | (16126565, 3) | 0.51957 | 1 | 0.404658 | 0.416149 | 1 | 0.511041 | 0.404658 | 0.559031 | 0.543275 | test | 1.72 | 700 | false |
1,485,278 | A system for solid free form fabrication (SFF), the system comprising:\n an input for receiving SFF data, collectively pertaining to a three-dimensional shape of the object, said SFF data comprising a plurality of slice data each defining a layer of the object; a dispensing head configured for dispensing a building material; a leveling device for straightening said building material; an ablation system; and a controller for controlling said ablation system to selectively ablate said building material, for each of at least a few of said layers, according to slice data corresponding to said layer. | 1 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.725211 | 1 | 0 | 1 | 0 | 203.835026 | open | (16126565, 1) | 0.502773 | 1 | 0.378899 | 0.391287 | 1 | 0.409194 | 0.378899 | 0.244676 | 0.268308 | test | 1.72 | 700 | false |
1,485,279 | The method of claim 6 , wherein the granular absorbent material constitutes 25-30% (w/w) of the cleaning composition. | 16 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 1 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.614634 | 0 | 0 | 0 | 0 | 194.446927 | none | (16135568, 16) | 0.525175 | 1 | 0.740665 | 0.719116 | 1 | 0.753406 | 0.740665 | 0.768513 | 0.787857 | test | 1.72581 | 424 | false |
1,485,280 | The method of claim 6 , wherein the granular absorbent material has a surface area per mass ratio of 1,000 m 2 /g or greater. | 17 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.719244 | 0 | 0 | 0 | 0 | 227.541542 | none | (16135568, 17) | 0.52067 | 1 | 0.741001 | 0.718968 | 1 | 0.68373 | 0.741001 | 0.725734 | 0.691609 | test | 1.72581 | 424 | false |
1,485,281 | The method of claim 6 , wherein the granular absorbent material has a surface area per volume ratio of 1,000 m 2 /ml or greater. | 18 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.751498 | 0 | 0 | 0 | 0 | 237.74565 | none | (16135568, 18) | 0.519281 | 1 | 0.741104 | 0.718922 | 1 | 0.706262 | 0.741104 | 0.742465 | 0.727288 | test | 1.72581 | 424 | false |
1,485,282 | The method of claim 6 , wherein the sanitation agent is selected from the group consisting of chlorine bleach solutions, hydrogen peroxide solution, peracetic acid, quaternary amine solutions, alcohol solutions and combinations thereof. | 19 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.746158 | 1 | 1 | 0 | 0 | 236.056282 | closed | (16135568, 19) | 0.516664 | 1 | 0.767883 | 0.742761 | 1 | 0.529005 | 0.767883 | 0.703489 | 0.573487 | test | 1.72581 | 424 | false |
1,485,283 | The method of claim 6 , wherein the sanitation agent constitutes 0.1 to 10% (w/w) of the cleaning solution. | 20 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 1 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.878833 | 0 | 0 | 0 | 0 | 278.029477 | none | (16135568, 20) | 0.513791 | 1 | 0.741512 | 0.71874 | 1 | 0.636178 | 0.741512 | 0.681276 | 0.613423 | test | 1.72581 | 424 | false |
1,485,284 | The method of claim 6 , wherein the modifying agent comprises a thickening agent, a gum, an absorbent polymer or combinations thereof. | 21 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.732478 | 0 | 0 | 0 | 0 | 231.72836 | none | (16135568, 21) | 0.5201 | 1 | 0.741043 | 0.718949 | 1 | 0.60818 | 0.741043 | 0.687082 | 0.5957 | test | 1.72581 | 424 | false |
1,485,285 | The system according to claim 1 , further comprising at least one additional dispensing head configured for dispensing at least one additional building material onto said building material, to fill vacant regions formed in said layer by said selective ablation, wherein a resolution of said dispensing of said additional building material is less than a resolution of said selective ablation. | 2 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.665309 | 1 | 0 | 1 | 0 | 186.998387 | open | (16126565, 2) | 0.507 | 1 | 0.378162 | 0.391046 | 1 | 0.676521 | 0.378162 | 0.550186 | 0.475351 | test | 1.72 | 700 | false |
1,485,286 | The method of claim 6 , wherein the biocide is applied to granular absorbent material by vapor deposition, by a pressure micro droplet spray, or by a fuming or fogging nozzle. | 10 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.707051 | 0 | 0 | 0 | 0 | 223.684319 | none | (16135568, 10) | 0.521196 | 1 | 0.740961 | 0.718985 | 1 | 0.805696 | 0.740961 | 0.783196 | 0.768655 | test | 1.72581 | 424 | false |
1,485,287 | The method of claim 8 , wherein the liquid phase biocide comprises one or more members selected from the group consisting of chlorine bleach solutions, hydrogen peroxide solutions, peracetic acid, quaternary amine solutions, alcohol solutions, periodine solutions, dimethyl benzyl ammonium chloride, dimethyl ethybenzyl ammonium chloride and mixtures thereof. | 9 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.759991 | 1 | 1 | 0 | 0 | 240.432252 | closed | (16135568, 9) | 0.516068 | 1 | 0.767924 | 0.742738 | 1 | 0.826792 | 0.767924 | 0.779192 | 0.827609 | test | 1.72581 | 424 | false |
1,485,288 | The method of claim 6 , wherein the biocide is a liquid phase biocide. | 8 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.649483 | 0 | 0 | 0 | 0 | 205.471695 | none | (16135568, 8) | 0.523675 | 1 | 0.740777 | 0.719066 | 1 | 0.763946 | 0.740777 | 0.762073 | 0.711272 | test | 1.72581 | 424 | false |
1,485,289 | The battery module according to claim 4 , wherein\n a deformation amount of the elastic body disposed at the one arrangement end when the battery cell swells is greater than that of the elastic body disposed at the other arrangement end when the battery cell swells. | 6 | 16,083,154 | Utility | 1 | ["429", "099000"] | 0 | 2018-09 | 2019-03 | 9 | Provided is a battery module, which includes an array for battery cells; an elastic body disposed with respect to the array, a restraining member that restrains the array via the elastic body in an arranging direction of the battery cells, a plurality of harnesses that extend in the arranging direction and have connecting terminals of tips thereof connected to electrode terminals of the predetermined battery cells, and a binding member that binds the plurality of harnesses into a harness bundle. A binding position of the harnesses which is caused by the binding member is located at a side opposite to the elastic body relative to a connecting position between the electrode terminal and the connecting terminal, and the harness that branches off from the binding member has a flexure between the binding position and the connecting position. | 97 | 1 | 1 | 1 | 1 | ['15511539', '15525191', '15505843', '15506808', '15542842'] | 365.14755 | 213.714156 | 27 | 0 | 6 | 0.61232 | 0 | 0 | 0 | 0 | 223.587215 | none | (16083154, 6) | 0.529932 | 1 | 0.874424 | 0.839975 | 1 | 0.671976 | 0.874424 | 0.614491 | 0.573476 | test | 2.30159 | 429 | true |
1,485,290 | The battery module according to claim 1 , wherein\n as the battery cell at a connecting destination of the harness becomes closer to the elastic body, a flexure amount of the harness that branches off from the binding member increases. | 7 | 16,083,154 | Utility | 1 | ["429", "099000"] | 0 | 2018-09 | 2019-03 | 9 | Provided is a battery module, which includes an array for battery cells; an elastic body disposed with respect to the array, a restraining member that restrains the array via the elastic body in an arranging direction of the battery cells, a plurality of harnesses that extend in the arranging direction and have connecting terminals of tips thereof connected to electrode terminals of the predetermined battery cells, and a binding member that binds the plurality of harnesses into a harness bundle. A binding position of the harnesses which is caused by the binding member is located at a side opposite to the elastic body relative to a connecting position between the electrode terminal and the connecting terminal, and the harness that branches off from the binding member has a flexure between the binding position and the connecting position. | 97 | 1 | 1 | 1 | 1 | ['15511539', '15525191', '15505843', '15506808', '15542842'] | 365.14755 | 213.714156 | 27 | 0 | 6 | 0.918568 | 0 | 0 | 0 | 0 | 335.412991 | none | (16083154, 7) | 0.528328 | 1 | 0.873328 | 0.838828 | 1 | 0.521294 | 0.873328 | 0.380888 | 0.384946 | test | 2.30159 | 429 | true |
1,485,291 | The battery module according to claim 1 , wherein\n a mark indicating the binding position caused by the binding member is provided for each of the harnesses. | 8 | 16,083,154 | Utility | 1 | ["429", "099000"] | 0 | 2018-09 | 2019-03 | 9 | Provided is a battery module, which includes an array for battery cells; an elastic body disposed with respect to the array, a restraining member that restrains the array via the elastic body in an arranging direction of the battery cells, a plurality of harnesses that extend in the arranging direction and have connecting terminals of tips thereof connected to electrode terminals of the predetermined battery cells, and a binding member that binds the plurality of harnesses into a harness bundle. A binding position of the harnesses which is caused by the binding member is located at a side opposite to the elastic body relative to a connecting position between the electrode terminal and the connecting terminal, and the harness that branches off from the binding member has a flexure between the binding position and the connecting position. | 97 | 1 | 1 | 1 | 1 | ['15511539', '15525191', '15505843', '15506808', '15542842'] | 365.14755 | 213.714156 | 27 | 0 | 6 | 0.960438 | 0 | 0 | 0 | 0 | 350.701718 | none | (16083154, 8) | 0.528109 | 1 | 0.873177 | 0.83867 | 1 | 0.417751 | 0.873177 | 0.377968 | 0.48135 | test | 2.30159 | 429 | true |
1,485,292 | The battery module according to claim 1 , wherein\n the harnesses are harnesses used to detect voltages of the battery cells. | 9 | 16,083,154 | Utility | 1 | ["429", "099000"] | 0 | 2018-09 | 2019-03 | 9 | Provided is a battery module, which includes an array for battery cells; an elastic body disposed with respect to the array, a restraining member that restrains the array via the elastic body in an arranging direction of the battery cells, a plurality of harnesses that extend in the arranging direction and have connecting terminals of tips thereof connected to electrode terminals of the predetermined battery cells, and a binding member that binds the plurality of harnesses into a harness bundle. A binding position of the harnesses which is caused by the binding member is located at a side opposite to the elastic body relative to a connecting position between the electrode terminal and the connecting terminal, and the harness that branches off from the binding member has a flexure between the binding position and the connecting position. | 97 | 1 | 1 | 1 | 1 | ['15511539', '15525191', '15505843', '15506808', '15542842'] | 365.14755 | 213.714156 | 27 | 0 | 6 | 0.844288 | 0 | 0 | 0 | 0 | 308.289757 | none | (16083154, 9) | 0.528717 | 1 | 0.873594 | 0.839107 | 1 | 0.396151 | 0.873594 | 0.388459 | 0.416323 | test | 2.30159 | 429 | true |
1,485,293 | The battery module according to claim 5 , wherein\n a deformation amount of the elastic body disposed at the one arrangement end when the battery cell swells is greater than that of the elastic body disposed at the other arrangement end when the battery cell swells. | 10 | 16,083,154 | Utility | 1 | ["429", "099000"] | 0 | 2018-09 | 2019-03 | 9 | Provided is a battery module, which includes an array for battery cells; an elastic body disposed with respect to the array, a restraining member that restrains the array via the elastic body in an arranging direction of the battery cells, a plurality of harnesses that extend in the arranging direction and have connecting terminals of tips thereof connected to electrode terminals of the predetermined battery cells, and a binding member that binds the plurality of harnesses into a harness bundle. A binding position of the harnesses which is caused by the binding member is located at a side opposite to the elastic body relative to a connecting position between the electrode terminal and the connecting terminal, and the harness that branches off from the binding member has a flexure between the binding position and the connecting position. | 97 | 1 | 1 | 1 | 1 | ['15511539', '15525191', '15505843', '15506808', '15542842'] | 365.14755 | 213.714156 | 27 | 0 | 6 | 0.773811 | 0 | 0 | 0 | 0 | 282.555359 | none | (16083154, 10) | 0.529086 | 1 | 0.873847 | 0.839371 | 1 | 0.672708 | 0.873847 | 0.615191 | 0.565909 | test | 2.30159 | 429 | true |
1,485,294 | The system according to claim 10 , wherein said controller is configured to receiving input pertaining to a type of said building material, to access a computer readable medium storing pulse energy data corresponding to said type of said building material, and to control said laser ablation system to adjust a pulse energy of said ablation based on said pulse energy data. | 11 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.604173 | 0 | 0 | 0 | 0 | 169.814977 | none | (16126565, 11) | 0.51361 | 1 | 0.405724 | 0.416512 | 1 | 0.488536 | 0.405724 | 0.63744 | 0.451066 | test | 1.72 | 700 | false |
1,485,295 | The system according to claim 9 , wherein said laser ablation system is configured to provide laser pulses. | 10 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.666195 | 0 | 0 | 0 | 0 | 187.247305 | none | (16126565, 10) | 0.509235 | 1 | 0.406506 | 0.416779 | 1 | 0.509398 | 0.406506 | 0.70058 | 0.439318 | test | 1.72 | 700 | false |
1,485,296 | The system according to any of claim 1 , wherein said ablation system comprises a laser ablation system. | 9 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.662448 | 0 | 0 | 0 | 0 | 186.194307 | none | (16126565, 9) | 0.509499 | 1 | 0.406459 | 0.416763 | 1 | 0.42878 | 0.406459 | 0.512286 | 0.394676 | test | 1.72 | 700 | false |
1,485,297 | The system according to any of claim 1 , further comprising a gas flow generator configured for generating gas flow over said layer following or during said ablation, so as to remove building material debris and/or residue. | 8 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.53741 | 1 | 0 | 1 | 0 | 151.049841 | open | (16126565, 8) | 0.516022 | 1 | 0.37659 | 0.390533 | 1 | 0.409978 | 0.37659 | 0.468208 | 0.499584 | test | 1.72 | 700 | false |
1,485,298 | The system according to claim 1 , further comprising a building material curing system. | 7 | 16,126,565 | Utility | 3 | ["700", "119000"] | 6 | 2018-09 | 2019-01 | 2 | A system of solid free form fabrication (SFF) is disclosed. The system comprises: receiving SFF data collectively pertaining to a three-dimensional shape of the object and comprising a plurality of slice data each defining a layer of the object. The system also comprises, for each of at least a few of the layers, dispensing a building material on a receiving medium, straightening the building material, and selectively ablating the building material according to respective slice data. | 97 | 1 | 1 | 1 | 1 | ['15704575', '13677376', '15227049', '13642903', '16335299'] | 281.06995 | 172.793054 | 44 | 0 | 11 | 0.523993 | 1 | 0 | 1 | 0 | 147.278624 | open | (16126565, 7) | 0.516968 | 1 | 0.376425 | 0.390479 | 1 | 0.479789 | 0.376425 | 0.459544 | 0.513969 | test | 1.72 | 700 | false |
1,485,299 | A method of formulating a cleaning composition, comprising the steps of:\n (a) grinding an absorbent material to produce a granular absorbent material, wherein the granular absorbent material is selected from the group consisting of ceramic minerals, zeolite, activated carbon, fumed silica, processed clays, cellulosic absorbents, fibrous absorbents and combinations thereof; (b) coating the granular absorbent material with a biocide to produce a coated absorbent material, wherein the biocide is applied to granular absorbent material by vapor deposition, by a pressure micro droplet spray, or by a fuming or fogging nozzle to form a surface bonded film on the granular absorbent material, and wherein the biocide is selected from the group consisting of silanes, siloxanes, aminopropyltrimethoxysilane, quaternary amines, fumed metal hydroxides, solutions of silver, solutions of copper and combinations thereof; (c) mixing the coated absorbent material with a sanitation agent so that the coated absorbent material absorbs the sanitation agent to form the cleaning composition, wherein the sanitation agent is selected from the group consisting of chlorine bleach solutions, hydrogen peroxide solution, peracetic acid, quaternary amine solutions, alcohol solutions and combinations thereof; and (d) adding to the cleaning composition a modifying agent selected from the group consisting of a tackifier, a thickening agent, a gum, an absorbent polymer, a carboxymethyl cellulose (CMC)-derived polymer, a hierarchically porous carbons (HPC)-derived polymer, or combinations thereof, | 1 | 16,135,568 | Utility | 2 | ["424", "417000"] | 0 | 2018-09 | 2019-01 | 10 | A method for formulating a cleaning composition contains the step of coating a granular absorbent material with a coating agent to produce a coated absorbent material and mixing the coated absorbent material with a sanitation agent, wherein the coated absorbent material absorbs the sanitation agent to form the cleaning composition. The resulting cleaning composition may be used for cleaning up pathogens or hazardous materials. The cleaning composition may also functions as a liquefiable dry cleaning powder for public areas in response to bodily fluid incidents. A coating method of a non-toxic bio static film on a high surface area solid is disclosed. | 97 | 1 | 1 | 0 | 1 | ['15984910', '15696480', '11001335', '15108589', '11697086'] | 316.36215 | 209.31547 | 114 | 109 | 5 | 0.820452 | 1 | 1 | 1 | 0 | 259.559988 | open | (16135568, 1) | 0.514013 | 1 | 0.717883 | 0.697496 | 1 | 0.724947 | 0.717883 | 0.730086 | 0.706921 | test | 1.72581 | 424 | false |