Patent Description:
The goal of <NUM> system (the fifth generation mobile communication system) is to support call communication under high speed moving and MB communication under low speed moving. The user device (UE) looks for a cell with good signal quality to access. The premise of cell reselection and cell handover is to perform cell measurement on the neighboring cell and report the measurement result to the base station. The user device usually performs cell measurement on the cell where it is located and neighboring cells, which consume the power of the user device.

<CIT> relates to a method of mobility management in high speed railway, including: identifying whether a UE is a high speed railway UE; if the UE is identified as a high speed railway UE, obtaining a high speed railway neighbor cell list for the UE, in which the high speed railway neighbor cell list only includes high speed railway cell; and triggering a fast and earlier cell reselection, or cell handover, or both.

<CIT> relates to cell information transmission system. Information about neighbor cells does not necessarily include information about all neighbor cells; instead, the movement history of each mobile station is taken into consideration when information about cells is included. The base station differentiates, according to the content of the movement history of the mobile station that moved into a cell under control of the base station, the content of a neighbor cell list as used by the mobile station.

Embodiments of the present disclosure provide a method for transmitting configuration information related to measurement control performed by a base station according to independent claim <NUM>, a method for transmitting configuration information related to measurement control performed by a user device according to independent claim <NUM>, a device for transmitting configuration information related to measurement control performed by a user device according to independent claim <NUM>, and a device transmitting configuration information related to measurement control performed by a user device according to independent claim <NUM>. Further aspects of the present application are defined by the dependent claims.

According to a first aspect of embodiments of the present disclosure, a method for transmitting configuration information related to measurement control is provided. The method is applied to a base station, and includes:.

The technical solution provided by embodiments of the present disclosure may include the following beneficial effects. In this embodiment, the configuration information for measurement control is configured specifically for the known moving trajectory, the content of the configuration information is improved, and the measurement load of the user device is reduced without affecting the measurement effect basically, thus saving the power consumption of the user device. In this embodiment, whether the user device is on the known moving trajectory may be determined by the number of times of cell reselection and receiving the first set of configuration information, which provides a feasible way for determining.

In an embodiment, the first set of configuration information includes at least one of first measurement frequency points and a first measurement cycle;.

The technical solution provided by embodiments of the present disclosure may include the following beneficial effects. In this embodiment, detailed configuration information is provided, which may effectively reduce the load of the user device and save power when measuring according to the first set of configuration information.

In an embodiment, the one or more determination conditions further include at least one of:.

The technical solution provided by embodiments of the present disclosure may include the following beneficial effects. This embodiment provides a variety of determination conditions related to the moving speed, through which, the user device is controlled to adopt the first set of configuration information.

In an embodiment, the first set of configuration information further includes:.

The technical solution provided by embodiments of the present disclosure may include the following beneficial effects. In this embodiment, the configuration information for measurement control may be configured in greater detail according to the moving direction, which facilitates the user device to further save power.

According to a second aspect of embodiments of the present disclosure, a method for transmitting configuration information related to measurement control. The method is applied to a user device, and includes:.

In an embodiment, the first set of configuration information further includes: a first subset of configuration information related to an upward moving direction in the known moving trajectory; and/or a second subset of configuration information related to a downward moving direction in the known moving trajectory;
the method further includes:.

According to a third aspect of embodiments of the present disclosure, a device for transmitting configuration information related to measurement control is provided. The device includes:.

According to a fourth aspect of embodiments of the present disclosure, a device for transmitting configuration information related to measurement control is provided. The device includes:.

According to a fifth aspect of embodiments of the present disclosure, a computer readable storage medium having computer programs stored on is provided. The computer programs are configured to implement the method at the base station side when being executed by a processor.

According to an sixth aspect of embodiments of the present disclosure, a computer readable storage medium having computer programs stored on is provided. The computer programs are configured to implement the method at the user device side when being executed by a processor.

It should be understood that both the above general description and the following detailed description are exemplary and explanatory only and are not restrictive of the disclosure.

The drawings herein are incorporated into the specification and constitute a part of the specification, show embodiments in conformity with the present disclosure, and explain the principle of the present disclosure together with the specification.

When the following description refers to the accompanying drawings, the same numbers in different drawings represent the same or similar elements, unless otherwise represented. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present disclosure. On the contrary, they are only examples of devices and methods consistent with some aspects of the present disclosure.

Inventors of the present disclosure finds that, given a known moving trajectory, the associated measurement control configuration information may be configured with respect to the known trajectory, to reduce the measurement load on the user device, thereby saving power with little impact on the measurement effect.

<FIG> is a flow chart illustrating a method for transmitting configuration information related to measurement control according to an exemplary embodiment. This method is applied to an access network device such as a base station. As illustrated in <FIG>, the method includes following steps <NUM>-<NUM>.

At step <NUM>, configuration information for measurement control is generated, the configuration information including a first set of configuration information, a second set of configuration information and one or more determination conditions. The first set of configuration information is related to a first measurement target, and the first measurement target is related to a known moving trajectory. The second set of configuration information is related to a second measurement target, and the second measurement target is related to an unknown moving trajectory.

At step <NUM>, the configuration information is sent to a user device, to instruct the user device to adopt the first set of configuration information for cell measurement when the one or more determination conditions are met and to adopt the second set of configuration information for cell measurement when the one or more determination conditions are not met.

In this embodiment, base stations are pre-arranged along a fixed trajectory (i.e., the known moving trajectory), and these base stations are mainly used to provide services to user devices on the fixed trajectory. For example, the fixed trajectory may be a highway or railway line. Although these base stations may be configured without map information to reflect the known moving trajectory, the positions of these base stations in the objective natural environment may reflect that the supported first measurement target is the measurement target of the known moving trajectory. The moving direction of the user device on the fixed trajectory is predictable, as is the cell it may access. Therefore, in this embodiment, in view of the application scenario of a known moving trajectory, the configuration information related to the first measurement target, namely the first set of configuration information, is configured. The base station along the known moving trajectory needs to send the first set of configuration information for the user devices it serves.

For the base station far away from the known moving trajectory, the user device it serves may move in various directions, the moving direction is unpredictable, the possible access to the cell is also unpredictable, so the second measurement target supported by the base station far away from the known moving trajectory is the measurement target related to the unknown moving trajectory. Base stations far away from the known moving trajectory may not send the first set of configuration information, but may send the second set of configuration information.

From the perspective of predictability, the range of the first measurement target is less than that of the second measurement target, so the power consumption of the user device adopting the first set of configuration information for cell measurement may be lower than the power consumption of the user device adopting the second set of configuration information for cell measurement.

Meanwhile, the base station sends the determination condition to the user device and instruct the user device to adopt the corresponding configuration information according to the determination condition. The determination condition is sent by the base station, which facilitates the flexible configuration of the determination condition.

In this embodiment, configuration information for measurement control may be sent to the user device through system information broadcasting and sending measurement control messages, so that the user devices in various states may receive the configuration information.

Regardless of whether it is sent in a system message (such as a system information block, SIB) or a measurement control message, the first set of configuration information, the second set of configuration information, and the determination condition may have a specific location or order in the message. The user device may know whether it receives the first set of configuration information or the second set of configuration information or the determination condition according to the specific location or order.

In this embodiment, the first set of configuration information is suitable for neighboring cells covering the known moving trajectory, that is, a part of neighboring cells in a particular direction. The second set of configuration information is suitable for most neighboring cells in all directions. Thus, the number of the first measurement frequency points is less than the number of the second measurement frequency points. Since the number of the first measurement frequency points is smaller, and the shape of the neighboring cell covering the known moving trajectory is usually elongated, the cell measurement may not be carried out frequently, and thus the first measurement cycle may be greater than the second measurement cycle. Both reducing the number of measurement frequency points and prolonging the measurement cycle can save the power of the user device.

In an embodiment, the one or more determination conditions include:
a number of times of cell reselection and receiving the first set of configuration information within a first preset period being greater than a first threshold number of times.

This embodiment provides a condition for determining the movement trajectory. Each time the user device performs cell reselection and receives the first set of configuration information in the reselected cell, the cumulative number of times is increased by <NUM>. Since the base station sends the first set of configuration information to the user devices along the known moving trajectory, the user device receiving the first set of configuration information can determine that it is located along the known moving trajectory. The cell reselection of the user device may confirm that the user device is moving. Combined with the above two conditions, it can be determined that the user device is moving on the known moving trajectory. If the number of cell reselection and receiving the first group of configuration information within the first preset period is greater than the first threshold number of times, it can be determined that the user device is moving quickly on the known moving trajectory, which is applicable to the first group of configuration information. Other determination conditions for the moving trajectory also apply to this embodiment. The first period may be a hundred milliseconds or a few seconds. The first threshold number of times may be <NUM>-<NUM>.

This embodiment provides the determination condition on the moving speed, making the first set of configuration information applicable to a user device that is moving rapidly on the known moving trajectory, for example, applicable to the user device in the car running on the highway, and the user device on the high-speed train, etc. Other determination conditions on the moving speed also apply to this embodiment. The second period may be a hundred milliseconds or a few seconds, etc. The second threshold number of times may be <NUM>-<NUM>.

In this embodiment, the content information of the determination condition may be carried directly in the system message or in the measurement control message. Alternatively, each determination condition is sent to the user device in advance, and the serial number or identifier is configured for each determination condition. When the first set of configuration information is carried in the message and the determination condition is to be applied, the serial number or identifier of the determination condition may be carried in the message. The user device may determine by the serial number or identifier that the determination condition is to be applied, and it may know which determination condition to apply.

In an embodiment, the first set of configuration information further includes a first subset of configuration information related to an upward moving direction in the known moving trajectory; and/or a second subset of configuration information related to a downward moving direction in the known moving trajectory.

This embodiment further subdivides the moving direction on the basis of the moving trajectory, for example, from Beijing to Shanghai is the upward moving direction, and from Shanghai to Beijing is the downward moving direction. After the moving trajectory and direction are determined, the expected range of neighboring cells may be further reduced, and thus the measurement frequency points may be further reduced and the measurement cycle may be prolonged.

For example, as shown in <FIG>, the currently camped cell is cell <NUM>, the neighboring cell in the upward moving direction of the moving trajectory is cell <NUM>, the neighboring cell in the downward moving direction is cell <NUM>, and the neighboring cells in the other directions include cell <NUM> and cell <NUM>. The second set of configuration information is applicable to neighboring cells in all directions, and thus the measurement frequency points in the second set of configuration information include frequency points from cells <NUM>-<NUM>. Without distinguishing the moving direction, the measurement frequency points in the first set of configuration information include the frequency points of cells <NUM>-<NUM>. The measurement frequency points in the first subset of configuration information include the frequency points of cell <NUM>. The measurement frequency points in the second subset of configuration information include the frequency points of cell <NUM>.

The implementation process on the base station side is introduced above. The corresponding user device side is also improved. The implementation process on the user device side is described below.

<FIG> is a flow chart illustrating a method for transmitting configuration information related to measurement control according to an exemplary embodiment. This method is applied to a user device. The user device may be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc. As illustrated in <FIG>, the method includes following steps <NUM>-<NUM>.

At step <NUM>, configuration information sent by a base station is received, the configuration information including a first set of configuration information, a second set of configuration information and one or more determination conditions. The first set of configuration information is related to a first measurement target, and the first measurement target is related to a known moving trajectory. The second set of configuration information is related to a second measurement target, and the second measurement target is related to an unknown moving trajectory.

At step <NUM>, cell measurement is performed by adopting the first set of configuration information, when the one or more determination conditions are met.

At step <NUM>, cell measurement is performed by adopting the second set of configuration information, when the one or more determination conditions are not met.

In this embodiment, only the base station serving the area with the known moving trajectory sends the first set of configuration information, the second set of configuration information and the determination conditions. When the user device can receive the first set of configuration information, the second set of configuration information, and determination conditions, it indicates that the user device is on a known moving trajectory. The user device on the known moving trajectory needs to determine whether it meets the determination condition received, and adopt the corresponding configuration information to carry out cell measurement according to the determining result. When the first set of configuration information is adopted for cell measurement, compared with the second set of configuration information for cell measurement, electricity can be saved.

In this embodiment, the user device may determine its own moving speed according to the positioning function modules such as GPS (Global Positioning System) carried by itself, and then compare it with the moving speed threshold.

The number of cell changes carried out by the user device within a certain period of time may also reflect the moving speed of the user device. For each cell change (including cell reselection and cell handover), the cumulative number is increased by <NUM>. If the updated number is greater than the second threshold number of times, the moving speed is determined to be fast and the determination condition is met.

This embodiment provides the determination conditions on the moving speed, making the first set of configuration information applicable to a user device that is moving rapidly on the known moving trajectory, for example, applicable to the user device in the car running on the highway, and the user device on the high-speed train, etc. Other determination conditions on the moving speed also apply to this embodiment. The second period may be a hundred milliseconds or a few seconds, etc. The second threshold number of times may be <NUM>-<NUM>.

The method further includes steps A1-A2.

In step A1, its own moving direction is determined.

In step A2, it is determined whether its own moving direction belongs to a preset upward moving direction or a preset downward moving direction.

In step A3, cell measurement is performed according to the first subset of configuration information corresponding to the determined upward moving direction or second subset of configuration information corresponding to the determined downward moving direction.

In this embodiment, the user device may use the positioning function module carried by itself to determine its own moving direction, and then compare it with the pre-configured moving direction to determine whether the current direction is the upward moving direction or the downward moving direction. The system may send the configured moving direction to the user device in advance.

This embodiment may be applied to the scene where the moving trajectory is known, such as the highway and railway, and the system may send the map information with the moving direction to the user device in advance. The user device may use the corresponding subset of configuration information for cell measurement after determining whether the current direction is the upward or downward moving direction.

The implementation process is described in detail by embodiments below.

<FIG> is a flow chart illustrating a method for transmitting configuration information related to measurement control according to an exemplary embodiment. This method is applied to a user device. The user device may be a mobile phone, a computer, a digital broadcasting terminal, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc. As shown in <FIG>, the method includes the following steps <NUM>-<NUM>.

At step <NUM>, its own moving direction is determined when the one or more determination conditions are met.

At step <NUM>, it is determined whether its own moving direction belongs to a preset upward moving direction or a preset downward moving direction.

At step <NUM>, cell measurement is performed according to the first subset of configuration information corresponding to the determined upward moving direction or second subset of configuration information corresponding to the determined downward moving direction.

At step <NUM>, cell measurement is performed by adopting the second set of configuration information when the one or more determination conditions are not met.

The implementation process is described in combination with both the base station side and the user device side.

<FIG> is a flow chart illustrating a method for transmitting configuration information related to measurement control according to an exemplary embodiment. As illustrated in <FIG>, the method includes the following steps <NUM>-<NUM>.

In Step <NUM>, the base station generates configuration information for measurement control, the configuration information including the first set of configuration information, the second set of configuration information and the one or more determination conditions. The first set of configuration information is related to the first measurement target, and the first measurement target is related to the known moving trajectory. The second set of configuration information is related to the second measurement target, and the second measurement target is related to the unknown moving trajectory.

In Step <NUM>, the base station sends the configuration information to the user device, to instruct the user device to adopt the first set of configuration information for cell measurement when the one or more determination conditions are met and adopt the second set of configuration information for cell measurement when the one or more determination conditions are not met.

In Step <NUM>, the user device receives the measurement configuration information sent by the base station. The configuration information includes the first set of configuration information, the second set of configuration information and the one or more determination conditions. The first set of configuration information is related to the first measurement target, and the first measurement target is related to the known moving trajectory. The second set of configuration information is related to the second measurement target, and the second measurement target is related to the unknown moving trajectory.

In step <NUM>, the user device performs cell measurement by adopting the first set of configuration information when the one or more determination conditions are met.

In step <NUM>, the user device performs cell measurement by adopting the second set of configuration information when the one or more determination conditions are not met.

The above embodiments may be freely combined according to actual needs.

The following is device embodiments, which may be configured to execute the method embodiments.

<FIG> is a block diagram of a device for transmitting configuration information related to measurement control according to an exemplary embodiment. The device may be implemented as part or all of an electronic device by software, hardware, or a combination thereof. The device is applied to a base station side, and as illustrated in <FIG>, the device includes a generating module <NUM> and a sending module <NUM>.

The generating module <NUM> is configured to generate configuration information for measurement control. The configuration information includes a first set of configuration information, a second set of configuration information and one or more determination conditions. The first set of configuration information is related to a first measurement target, and the first measurement target is related to a known moving trajectory. The second set of configuration information is related to a second measurement target, and the second measurement target is related to an unknown moving trajectory.

The sending module <NUM> is configured to send the configuration information to a user device, to instruct the user device to adopt the first set of configuration information for cell measurement when the one or more determination conditions are met and to adopt the second set of configuration information for cell measurement when the one or more determination conditions are not met.

In an embodiment, the first set of configuration information further includes: a first subset of configuration information related to an upward moving direction in the known moving trajectory; and/or a second subset of configuration information related to a downward moving direction in the known moving trajectory.

<FIG> is a block diagram of a device for transmitting configuration information related to measurement control according to an exemplary embodiment. The device may be implemented as part or all of an electronic device by software, hardware, or a combination thereof. The device is applied to a user device side, and as illustrated in <FIG>, the device includes a receiving module <NUM>, a first measuring module <NUM> and a second measuring module <NUM>.

The receiving module <NUM> is configured to receive measurement configuration information sent by a base station. The configuration information includes a first set of configuration information, a second set of configuration information and one or more determination conditions. The first set of configuration information is related to a first measurement target, and the first measurement target is related to a known moving trajectory. The second set of configuration information is related to a second measurement target, and the second measurement target is related to an unknown moving trajectory.

The first measuring module <NUM> is configured to perform cell measurement by adopting the first set of configuration information when the one or more determination conditions are met.

The second measuring module <NUM> is configured to perform cell measurement by adopting the second set of configuration information when the one or more determination conditions are not met.

As illustrated in <FIG>, the device further includes a direction module <NUM> and an upward and downward moving module <NUM>.

The direction module <NUM> is configured to determine its own moving direction.

The upward and downward moving module <NUM> is configured to determine whether its own moving direction belongs to a preset upward moving direction or a preset downward moving direction.

As illustrated in <FIG>, the first measuring module <NUM> includes a first measuring submodule <NUM>.

The first measuring submodule <NUM> is configured to perform cell measurement according to first subset of configuration information corresponding to the determined upward moving direction or second subset of configuration information corresponding to the determined downward moving direction.

With respect to the devices in above embodiments, the specific manner in which each module performs the operation has been described in detail in the method embodiments and will not be elaborated here.

<FIG> is a schematic diagram of a device suitable for transmitting configuration information related to measurement control according to an exemplary embodiment. For example, the device <NUM> may be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc..

The device <NUM> may include one or more of the following components: a processing component <NUM>, a memory <NUM>, a power supply component <NUM>, a multimedia component <NUM>, an audio component <NUM>, an input/output (I/O) interface <NUM>, a sensor component <NUM>, and a communication component <NUM>.

The processing component <NUM> generally controls the overall operations of the device <NUM>, such as operations associated with display, telephone calls, data communications, camera operations, and recording operations. The processing component <NUM> may include one or more processors <NUM> to execute instructions to implement all or part of the steps of the foregoing method. In addition, the processing component <NUM> may include one or more modules to facilitate the interaction between the processing component <NUM> and other components. For example, the processing component <NUM> may include a multimedia module to facilitate the interaction between the multimedia component <NUM> and the processing component <NUM>.

Examples of such data include instructions for any application or method operating on the device <NUM>, contact data, phone book data, messages, pictures, videos, etc. The memory <NUM> can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable and Programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk or optical disk.

The power supply component <NUM> provides power for various components of the device <NUM>. The power supply component <NUM> may include a power management system, one or more power supplies, and other components for generating, managing, and distributing power for the device <NUM>.

The multimedia component <NUM> includes a screen that provides an output interface between the device <NUM> and the user. If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user. The touch panel includes one or more touch sensors to sense a touch, a slide, and gestures on the touch panel. The touch sensor may not only sense the boundary of the touch or slide operation, but also detect the duration and pressure related to the touch or slide operation. When the device <NUM> is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera can receive external multimedia data. Each front camera and rear camera can be a fixed optical lens system or have focal length and optical zoom capabilities.

The audio component <NUM> is configured to output and/or input audio signals. For example, the audio component <NUM> includes a microphone (MIC). When the device <NUM> is in an operation mode, such as a call mode, a recording mode, and a voice recognition mode, the microphone is configured to receive external audio signals. The received audio signal may be further stored in the memory <NUM> or transmitted via the communication component <NUM>. In some embodiments, the audio component <NUM> further includes a speaker for outputting audio signals.

The I/O interface <NUM> provides an interface between the processing component <NUM> and a peripheral interface module. The above-mentioned peripheral interface module may be a keyboard, a click wheel, a button, and the like. These buttons may include, but are not limited to: a home button, a volume button, a start button, and a lock button.

The sensor component <NUM> includes one or more sensors for providing the device <NUM> with various aspects of state assessment. For example, the sensor component <NUM> can detect the ON/OFF state of the device <NUM> and the relative positioning of components, such as the display and keypad of the device <NUM>. The sensor component <NUM> can also detect the position change of the device <NUM> or a component of the device <NUM>, presence or absence of contact between the user and the device <NUM>, the orientation or acceleration/deceleration of the device <NUM>, and the temperature change of the device <NUM>. The sensor component <NUM> may include a proximity sensor configured to detect the presence of an object nearby when there is no physical contact. The sensor component <NUM> may also include an optical sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, the sensor component <NUM> may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

The communication component <NUM> is configured to facilitate wired or wireless communication between the device <NUM> and other devices. The device <NUM> can access a wireless network based on a communication standard, such as WiFi, <NUM>, or <NUM>, or a combination thereof. In an exemplary embodiment, the communication component <NUM> receives a broadcast signal or a broadcast related message from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component <NUM> further includes a near field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.

In an exemplary embodiment, the device <NUM> may be implemented by one or more application specific integrated circuits (ASIC), digital signal processors (DSP), digital signal processing devices (DSPD), programmable logic devices (PLD), field programmable gate array (FPGA), controller, microcontroller, microprocessor, or other electronic component, and is configured to implement the above-mentioned method for processing the SI request.

In an exemplary embodiment, there is also provided a non-transitory computer-readable storage medium including instructions, for example, the memory <NUM> including instructions, and the foregoing instructions may be executed by the processor <NUM> of the device <NUM> to implement the foregoing method. For example, the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, etc..

In an exemplary embodiment, there is provided a device for transmitting configuration information related to measurement control, including:.

The processor may be further configured such that:.

The processor may be further configured such that:
the one or more determination conditions include a number of times of cell reselection and receiving the first set of configuration information within a first preset period being greater than a first threshold number of times.

The processor may be further configured such that:
the one or more determination conditions further include at least one of:.

A computer readable storage medium is provided. When instructions in the storage medium are executed by a processor of a device, the device is enabled to implement the above method for transmitting configuration information related to measurement control. The method includes:.

The instructions in the storage medium may further include:.

The instructions in the storage medium may further include:
the one or more determination conditions include:
a number of times of cell reselection and receiving the first set of configuration information within a first preset period being greater than a first threshold number of times.

The instructions in the storage medium may further include:
the one or more determination conditions further include at least one of:.

<FIG> is a schematic diagram of a device for data synchronization according to an exemplary embodiment. For example, the device <NUM> may be provided as a computer. Referring to <FIG>, the device <NUM> includes a processing component <NUM>, which further includes one or more processor, and memory resource represented by a memory <NUM> for storing instructions that can be executed by the processing component <NUM>, such as application programs. The application programs stored in the memory <NUM> may contain one or more modules each corresponding to a set of instructions. In addition, the processing component <NUM> is configured to execute instructions to perform the above methods.

The device <NUM> may further include a power supply component <NUM> configured to perform power management of the device <NUM>, a wired or wireless network interface <NUM> configured to connect the device <NUM> to the network, and an input/output (I/O) interface <NUM>. The device <NUM> can operate based on an operating system stored in the memory <NUM>, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.

Other embodiments of the present disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed here. This application is intended to cover any variations, uses, or adaptations of the invention following the general principles thereof and including such departures from the present disclosure as come within known or customary practice in the art. It is intended that the specification and examples be considered as exemplary only, with a true scope of the invention being indicated by the following claims.

Claim 1:
A method for transmitting configuration information related to measurement control, applied to a base station, wherein the method comprises:
generating configuration information for measurement control, the configuration information comprising a first set of configuration information, a second set of configuration information and one or more determination conditions (<NUM>), the first set of configuration information being related to a first measurement target, the first measurement target being related to a known moving trajectory, the second set of configuration information being related to a second measurement target, the second measurement target being related to an unknown moving trajectory; and
sending the configuration information to a user device (<NUM>), to instruct the user device to adopt the first set of configuration information for cell measurement when the one or more determination conditions are met and to adopt the second set of configuration information for cell measurement when the one or more determination conditions are not met;
characterized in that
the one or more determination conditions comprise: a number of times of cell reselection and receiving the first set of configuration information within a first preset period being greater than a first threshold number of times.