Multi-channel wireless remote control system

A multi-channel wireless remote control system, which has N (an integer greater than one) wireless receiving devices and N (an integer greater than one) wireless transmitting devices. The N wireless transmitting devices corresponds to the N wireless receiving devices. The N wireless transmitting devices transmit frames to the respective N wireless receiving devices by a wireless carrier. Each frame contains a start bit, a device identification field to assign a receiving device, and a data field. Accordingly, i-th (i=1 to N) wireless transmitting device uses the device identification field to assign one of the receiving devices for receiving and sends data signal to the receiving device once every Tdi time.

BACKGROUND OF THE INVENTION

1. Field of the Invention

The invention relates to a multi-channel wireless remote control system and, more particularly, to a multi-channel wireless remote control system using a same carrier.

2. Description of Related Art

Current electronics have developed quickly such that a function of wireless remote control is equipped in a lot of electronics for use convenience, such as a remote racing bicycle. Upon cost consideration, conventional wireless receiving and transmitting devices use an infrared as a carrier to send associated control signal and data. However, due to use habits, multiple remote racing bicycles may be used in a same location, namely, multiple pairs of receiving and transmitting devices exist in the location and use a same carrier frequency to operate, which easily causes interference and thus cannot have an appropriate operation.

To overcome the aforementioned problem, typically frequency hopping spread spectrum (FHSS) technology is used but requires more hardware for communication protocol. Another solution is no improvement, but a user can re-press associated control button(s) on the wireless transmitting device for re-transmission when the interference occurs. This may not increase the cost but definitely wastes the time for reset and re-transmission, which further reduces the use convenience of such a product.

Therefore, it is desirable to provide an improved system to mitigate and/or obviate the aforementioned problems.

SUMMARY OF THE INVENTION

The object of the invention is to provide a multi-channel wireless remote control system, which can allow multiple wireless transmitting devices concurrently using a same carrier to send control signals and data in a same location.

In accordance with one aspect of the present invention, there is provided a multi-channel wireless remote control system. The system includes N (an integer greater than one) wireless receiving devices and N (an integer greater than one) wireless transmitting devices. The N wireless transmitting devices correspond to the N wireless receiving devices. The N wireless transmitting devices transmit frames to the respective N wireless receiving devices by a wireless carrier. Each frame contains a start bit, a device identification field to assign a receiving device, and a data field. Accordingly, i-th (i=1 to N) wireless transmitting device uses the device identification field to assign one of the receiving devices for receiving and sends data signal to the receiving device once every Tdi(i=1 to N) time.

In accordance with another aspect of the present invention, there is provided a multi-channel wireless remote control system. The system includes N (an integer greater than one) wireless receiving devices and N (an integer greater than one) wireless transmitting devices. The wireless transmitting devices correspond to the N wireless receiving devices. The N wireless transmitting devices transmit frames to the N wireless receiving devices by a wireless carrier. Each frame contains a start bit, a device identification field to assign one of the receiving devices, and a data field. Accordingly, i-th (i=1 to N) wireless transmitting device uses the device identification field to assign a respective receiving devices for receiving and sends data signal to the respective receiving device once every Tdi(i=1 to N) time, where Td1, Td2, . . . , TdNare mutually prime such that the wireless receiving devices accurately receive respective wireless data signals in an assigned time.

DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT

FIG. 1is a schematic diagram of a multi-channel wireless remote control system in accordance with the invention. As shown, the system includes four wireless receiving devices101–104and four wireless transmitting devices105–108. The four wireless receiving devices101–104correspond to the four wireless transmitting devices105–108. The four wireless transmitting devices105–108send wireless data signals with a same frequency wireless carrier to the four wireless receiving devices101–104. The wireless carrier can be an infrared or radio frequency.

FIG. 2is a block diagram of a wireless receiving101,102,103, or104and a wireless transmitting devices105,106,107or108in accordance with the invention. As shown, the wireless transmitting device includes a carrier generator210, a transmitting processor220, an input/output (I/O) device230and an infrared diode240. The carrier generator210generates a carrier for transmission. The transmitting processor220modulates digital data to be sent to the wireless receiving device and the carrier generated by the carrier generator210, thereby obtaining a modulation signal. The modulation signal is sent to the infrared diode240through the I/O device230such that the infrared diode240transmits an infrared signal with the modulation signal. The wireless receiving device includes a receiving unit250, an I/O device260and a receiving processor270. The receiving unit250receives the infrared signal. The I/O device260sends the infrared signal to the receiving processor270. The frequency of the carrier can be 36, 38 or 40 KHz. When a radio frequency is used, the infrared diode240can be replaced by a radio frequency (RF) transmitter, and the receiving unit250can be replaced by a RF receiver.

FIG. 3is a graph of signals in accordance with the invention. As shown, signal1is a waveform of digital data1(digital high potential) after modulated by the transmitting processor220, signal0is a waveform of digital data0(digital low potential) after modulated by the transmitting processor220, and the start bit synchronizes wireless transmitting and receiving devices. Signals0and1are represented by different duration and transmitted after modulated by a carrier with a frequency such as 38 KHz, wherein T1is a cutoff time that means no carrier transmission and T4 is a start bit duration. In this embodiment, T4>T3>T2, and T2˜T4are different such that the device250can determine a start bit, signal1or0.

FIG. 4is a transmitted frame in accordance with the invention. As shown, the transmitted frame contains a start bit and a 8-bit digital data having signals1,0, . . . ,1,0each data. In this case, the frame is a value of 0×AA, and the 8-bit digital data contains a device identification field and a command field. The device identification field locates at the first two bits to provide four devices for identification. Accordingly, when a wireless receiving device receives the digital data and compares it with its internal preset addresses, the receiving processor270executes a command of the command field if an internal preset address and a content of the device identification field are identical. On the contrary, the command is ignored. The command field locates at the last six bits to provide 64 commands.

FIG. 5is a timing diagram of transmitting data by wireless transmitting devices in accordance with the invention. The wireless transmitting devices105–108have the transmitting duration of Td1, Td2, Td3and Td4respectively. Td1, Td2, Td3and Td4are mutually prime such that the wireless receiving devices can accurately receive respective wireless data signals in a predetermined time. In this embodiment, Td1, Td2, Td3and Td4are 3T, 5T, 7T and 11T to allow the wireless transmitting devices105,106,107and108transmitting a frame once every 3T, 5T, 7T and 11T respectively. Accordingly, when the transmitted frames mutually interfere, the wireless transmitting device105has the highest priority to complete its frame transmission. As shown inFIG. 5, when frames sent by the wireless transmitting device105at Tb, Tc and Td have an interference with frames sent by the wireless transmitting devices106–108respectively, the device105successfully sends the frames at first. Similarly, the device106has a higher transmission priority than the device107and thus successfully sends its frame earlier than the device107after interference. Therefore, due to the different time set to frame transmission, the wireless transmitting devices have different priorities such that the wireless receiving devices can accurately receive respective wireless data signals in an assigned time.

In view of the foregoing, it is known that the invention gives the wireless transmitting devices different priorities by setting respective frame transmission time such that the wireless receiving devices can accurately receive respective wireless data signals in an assigned time, thereby overcoming the prior problems that multiple wireless transmitting devices cannot use a same carrier to transmit their data in a same location and the cost increases.