WO2016161645A1 - 一种天线配置方法及终端 - Google Patents

一种天线配置方法及终端 Download PDF

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Publication number
WO2016161645A1
WO2016161645A1 PCT/CN2015/076349 CN2015076349W WO2016161645A1 WO 2016161645 A1 WO2016161645 A1 WO 2016161645A1 CN 2015076349 W CN2015076349 W CN 2015076349W WO 2016161645 A1 WO2016161645 A1 WO 2016161645A1
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WO
WIPO (PCT)
Prior art keywords
antenna
data transmission
determining
data
data transmitter
Prior art date
Application number
PCT/CN2015/076349
Other languages
English (en)
French (fr)
Inventor
藍元皓
黄建仁
龍星宇
许浩维
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to PCT/CN2015/076349 priority Critical patent/WO2016161645A1/zh
Priority to US15/559,927 priority patent/US10164701B2/en
Priority to CN201580078320.1A priority patent/CN107431524B/zh
Priority to EP15888201.9A priority patent/EP3258617B1/en
Publication of WO2016161645A1 publication Critical patent/WO2016161645A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/08Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
    • H04B7/0802Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station using antenna selection
    • H04B7/0805Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station using antenna selection with single receiver and antenna switching
    • H04B7/0814Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station using antenna selection with single receiver and antenna switching based on current reception conditions, e.g. switching to different antenna when signal level is below threshold
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/02Services making use of location information
    • H04W4/021Services related to particular areas, e.g. point of interest [POI] services, venue services or geofences
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/08Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • H04W88/06Terminal devices adapted for operation in multiple networks or having at least two operational modes, e.g. multi-mode terminals

Definitions

  • the present invention relates to the field of communications, and in particular, to an antenna configuration method and a terminal.
  • GSM Global System of Mobile
  • SIM card subscriber indentification module card
  • the two data transmission opportunities of the dual card dual standby mobile phone have their own paging cycles, and each data transmission machine receives the signal sent by the base station in its own paging cycle to maintain the network connection.
  • the prior art only allows each data transmitter to use a fixed antenna, and there is no guarantee that each data transmitter uses a good antenna to receive signals.
  • the antenna is configured for the primary data transmitter, and the secondary antenna is configured with a poor antenna.
  • the primary data transmitter uses the antenna to receive signals, and communication can be performed normally.
  • the secondary data transmitter does not receive the signal using the differential antenna (or the received signal is weak), which causes the secondary data transmitter to drop.
  • Embodiments of the present invention provide an antenna configuration method and a terminal, which enable each data transmission machine to use a good antenna to receive signals in turn.
  • an antenna configuration method is disclosed, which is applied to a terminal provided with N user identification data transmitters, wherein the N is an integer greater than 1, including:
  • the first antenna is a good antenna; and when determining that the first data transmitter meets a preset state, configuring the first antenna to N-1 data except the first data transmitter Any data transfer machine in the conveyor.
  • the determining that the first data transmission device meets a preset state includes:
  • the determining that the first data transmitter meets a preset state includes:
  • the second antenna is configured To the first data transmitter.
  • the determining that the second antenna is a difference antenna specifically includes:
  • the signal corresponding to the first data transmission device is not received by the first antenna.
  • the determining that the first antenna is a good antenna Specifically include:
  • a terminal where the terminal is provided with N user identification data transmitters, and the N is an integer greater than 1, including:
  • a configuration unit configured to configure the first antenna to the first data transmission device
  • a determining unit configured to determine whether the antenna is a good antenna or a poor antenna
  • the configuration unit is further configured to: if the determining unit determines that the first antenna is a good antenna; and when the determining unit determines that the first data transmitter meets a preset state, configuring the first antenna Any one of N-1 data transmission machines other than the first data transmission machine is given.
  • the determining unit is specifically configured to determine that the first data transmitter has received the Y paging signals continuously The data transmission device meets a preset state, and the Y is a preset value;
  • the determining unit is specifically configured to determine that the first data transmission device is determined when a paging period of the first data transmitter has ended Meet the preset state.
  • the configuration unit is further configured to: if the determining unit determines The first antenna is a difference antenna and the second antenna is configured to the first data transmitter.
  • the receiving unit is configured to receive, by using the first antenna, a paging signal corresponding to the first data transmission device;
  • the determining unit is specifically configured to: determine that the second antenna is a difference antenna when determining that a signal quality value of the paging signal received by the second antenna is lower than the preset threshold; or The first antenna does not receive the first data transmitter corresponding to The signal determines that the first antenna is a difference antenna.
  • the determining unit is specifically configured to determine Determining that the first antenna is a good antenna when the first antenna receives the paging signal corresponding to the first data transmission;
  • a terminal where the terminal is provided with N user identification data transmitters, and the N is an integer greater than 1, including:
  • a processor configured to configure the first antenna to the first data transmitter
  • the processor is further configured to determine whether the antenna is a good antenna or a difference antenna
  • the processor is further configured to: if it is determined that the first antenna is a good antenna, configure the first antenna to be apart from the first data transmission when determining that the first data transmitter meets a preset state Any of the N-1 data transmitters outside the machine.
  • the processor is specifically configured to determine that the first data transmitter has received the Y paging signals continuously The data transmission device meets a preset state, and the Y is a preset value;
  • the processor is specifically configured to determine that the first data transmission device is determined when a paging period of the first data transmission device has ended Meet the preset state.
  • the processor is further configured to: if it is determined that the first antenna is The difference antenna then configures the second antenna to the first data transmitter.
  • the processor is further configured to receive, by using the first antenna, the first data transmitter corresponding to Paging signal;
  • the processor is specifically configured to: determine that the second antenna is a difference antenna when determining that a signal quality value of the paging signal received by the second antenna is lower than the preset threshold; or The first antenna is determined to be a difference antenna when the first antenna does not receive the signal corresponding to the first data transmitter.
  • the processor is specifically configured to determine Determining, by the first antenna, that the first antenna is a good antenna when receiving a paging signal corresponding to the first data transmission;
  • the present invention provides an antenna configuration method and terminal, and configures a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first antenna may be configured into the remaining data transmitters. Any of the data transmitters. In this way, it can be ensured that each data transmission machine uses the antenna to receive signals in turn, which is different from the prior art because some data transmission machines cannot use each antenna to receive signals, and some data transmission machines are dropped. And the terminal can avoid the problem that the data transmission machine is dropped due to the use of the antenna.
  • FIG. 1 is a schematic flowchart of an antenna configuration method according to Embodiment 1 of the present invention.
  • FIG. 2 is a schematic flowchart of an antenna configuration method according to Embodiment 2 of the present invention.
  • FIG. 3 is a schematic flowchart of an antenna configuration method according to Embodiment 3 of the present invention.
  • FIG. 4 is a structural block diagram of a terminal according to Embodiment 4 of the present invention.
  • FIG. 5 is a structural block diagram of a terminal according to Embodiment 5 of the present invention.
  • the terminal standby state is to maintain a network connection by receiving a paging message sent by the base station in a paging cycle, and the paging message is transmitted by the base station to the mobile phone at a fixed time fixed channel.
  • the terminal receives the paging message sent by the base station through the data transmitter to maintain the network connection.
  • Each data transmitter receives a paging message continuously sent by the base station in its own paging cycle.
  • each data transmission device may overlap (ie, Paging Cycle collision), or each data transmission device needs to pass an antenna to receive the paging message sent by the base station; For example, if two data transmitters have the same definition of the antenna, then the two data transmitters may consider that the same antenna is a good antenna, and the two data transmitters will compete for the antenna.
  • each data transmitter does not need to compete for an antenna, or the paging cycles of each data transmitter do not overlap (ie, Paging Cycle has no collision).
  • the remaining data transmitters may not receive the antennas in their own paging cycle.
  • the quality of the paging signal or the received paging signal is too weak, which causes these data transmissions to fall off.
  • the primary data transmission device is configured with an antenna
  • the secondary data transmission device is configured with a poor antenna. It is assumed that the first to fifth s are the paging cycles of the primary data transmitter, and the sixth to tenth s are the paging cycles of the secondary data transmitter.
  • the primary data transmitter uses the antenna to receive the paging message sent by the base station, thereby maintaining Network connection to maintain normal communication, such as answering a call or receiving a text message.
  • the sub-data transmitter uses the difference antenna to receive the paging message sent by the base station, which causes the network connection to be disconnected, and the normal communication cannot be maintained, such as receiving the call or not receiving the short message.
  • the other data transmitters may also receive the antennas in their own paging cycle due to the inability to use the antennas.
  • the quality of the paging signal or the received paging signal is too weak, which causes these data transmissions to fall off.
  • the embodiment of the invention provides an antenna configuration method, which is applied to a terminal provided with N data transmission machines. As shown in FIG. 1 , the method includes the following steps:
  • the data transmission acquires information in the SIM card set in the terminal for the terminal's control module to configure.
  • the control module of the terminal may be a common control module of the terminal, and is responsible for configuring the antenna to the data transmission machine.
  • the control module of the terminal switches the first antenna to the first data transmitter according to an antenna configuration algorithm, and the control module instructs the first data transmitter to receive a paging signal through the first antenna.
  • the control module is a common control module of N data transmission machines, and the control module configures an antenna for each data transmission machine.
  • the first antenna is a good antenna
  • configuring the first antenna to be N-1 except the first data transmission device. Any of the data transmitters in the data transport.
  • the so-called good antenna that is, a data transmitter that uses the antenna in its own paging cycle can receive a paging signal or a received paging signal with a higher signal quality value.
  • the first data transmission machine is any one of the N data transmission machines of the terminal.
  • the terminal receives a paging signal corresponding to the first data transmission device by using the first antenna.
  • the terminal determines that the signal quality value of the paging signal received by the first antenna is higher than the preset threshold, it is determined that the first antenna is a good antenna; or, when the terminal determines And determining, by the first antenna, a signal corresponding to the first data transmitter to determine that the first antenna is a good antenna.
  • the terminal when determining whether the first data transmission device meets the preset state, the terminal needs to distinguish whether there is a collision in a paging cycle of each data transmission device, and specifically includes:
  • the determining that the first data transmission device meets the preset state includes:
  • the first data transmitter has continuously received Y paging signals, and the Y is a preset value.
  • the antenna when there is a collision in the paging cycle of each data transmission machine, the antenna is configured to be alternately arranged to each data transmission machine.
  • the data transmission machine receives the paging signal (or detects the signal quality value of the received paging signal), and respectively reports the result to the control module of the terminal to complete the antenna configuration according to the result reported by each data transmission.
  • the first antenna ie, a good antenna
  • the control module of the mobile phone determines that the primary data transmission device has continuously received 3
  • the first antenna can be switched to the secondary data transmitter.
  • the paging signal is received by the secondary data transmitter using the first antenna.
  • the threshold is preset, the first antenna can be switched to the primary data transmitter.
  • the determining that the first data transmission device meets the preset state includes: determining that the paging cycle of the first data transmission device has ended, when there is no collision in the paging cycle of each data transmission device.
  • the antenna when there is no collision in the paging cycle of each data transmission machine, the antenna is configured to the data transmission machine in a paging cycle of the data transmission machine.
  • the first antenna ie, a good antenna
  • the control module of the mobile phone determines that the paging cycle of the primary data transmission device ends.
  • the first antenna can be switched to the secondary data transmitter.
  • the paging signal is received by the secondary data transmitter using the first antenna.
  • the first antenna can be switched to the primary data transmitter.
  • each data transmission machine can use the antenna to receive the paging signal in its own paging cycle, ensuring that each data transmission device maintains the network connection normal communication.
  • N is greater than or equal to 3, it is still guaranteed that each data transmitter uses a good antenna.
  • the first antenna is configured to the first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine.
  • the first antenna is configured to a second data transmission machine among N-1 data transmission machines other than the first data transmission machine.
  • the second data transmitter is equivalent to the first data transmitter in the embodiments 101 and 102 of the present invention, so when it is determined that the second data transmitter meets a preset state, the first antenna is Any one of N-1 data transmission machines other than the second data transmission machine is configured.
  • the “N-1 data transmission machines other than the second data transmission machine” is divided into two parts: the first data transmission machine, and the first data transmission machine and the second data transmission machine.
  • the first antenna may be configured to the first data transmission device, or the first antenna may be configured to N-2 data transmissions other than the first data transmission device and the second data transmission device. Any one of the machines is not limited here. Of course, the first antenna is configured to N-2 except the first data transmitter and the second data transmitter. Any of the data transmitters enables more data transmitters to use the antenna to receive paging signals, ensuring more normal communication of the data transmitter. That is, the data transmission machine selected after each of the steps 101 and 102 is a data transmission machine that is not selected when the steps 101 and 102 are performed before, until each data transmission machine uses a good antenna to receive the paging signal.
  • the terminal determines that the first antenna is a difference antenna
  • the second antenna is configured to the first data transmitter, and the paging signal corresponding to the first data transmitter is received by the second antenna.
  • the first antenna antenna in step 102 can be replaced with the second antenna to perform the above step 102.
  • the second antenna is configured to the first data transmitter. If the second antenna is determined to be a good antenna, the second antenna is configured to be configured when the first data transmitter is determined to meet the preset state. Any of the N-1 data transmission machines outside the first data transmission machine.
  • the terminal determines that the signal quality value of the paging signal received by the second antenna is higher than the preset threshold, it is confirmed that the second antenna is a good antenna.
  • the terminal may confirm that the second antenna is a good antenna by the second antenna not receiving the signal corresponding to the first data transmission.
  • the method provided by the present invention is applicable to data transmission machines of the same standard, and is also applicable to data transmission machines of different standards. If the format of the data transmission machine is different, then the definition of the antenna for each data transmission machine is different, and the above competition phenomenon will not occur between the data transmission machines.
  • the method provided by the embodiment of the present invention is applicable to: a scenario in which different types of data transmission machines have the same definition of antennas, and the antennas compete for good antennas. Of course, the same applies to the scenario where the antennas of the same standard data transmission compete for good antennas.
  • the present invention provides an antenna configuration method for configuring a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first The antenna is configured to any of the remaining data transmitters. In this way, it can be ensured that each data transmission machine uses a good antenna to receive signals in turn, which is provided by the present invention because it cannot guarantee that each data transmission machine uses a good antenna to receive signals, which causes some data transmission machines to fall off. The method can avoid the problem that the data transmission machine is dropped due to the use of a good antenna.
  • the terminal is provided with two primary and secondary data transmission machines, two antennas, an upper antenna and a lower antenna. Moreover, there is no collision in the paging cycle of the primary and secondary data transmission machines, or the primary and secondary data transmission devices do not compete for the use of an antenna.
  • An embodiment of the present invention provides an antenna configuration method. As shown in FIG. 2, an execution body is a terminal, and the method includes the following steps:
  • the primary data transmitter determines whether the primary data transmitter can receive the paging signal through the lower antenna, and whether the signal quality value of the paging signal received by the primary data transmitter through the lower antenna is higher than a preset threshold.
  • the primary data transmitter cannot receive the paging signal through the lower antenna, or the signal quality value of the paging signal received through the lower antenna is lower than the preset threshold, and the lower antenna is determined to be the difference antenna, and then the upper antenna is
  • the antennas are alternately configured for the primary and secondary data transmitters.
  • step 202 it is determined whether the primary data transmitter can receive the paging signal through the upper antenna as in step 202, or whether the signal quality value of the paging signal received by the primary data transmitter through the upper antenna is higher than a preset threshold. .
  • the primary data transmitter can receive the paging signal through the upper antenna, or the signal quality value of the paging signal received through the upper antenna is higher than the preset threshold, and it is determined that the upper antenna is a good antenna, and then the upper antenna is The rotation is configured for the primary and secondary data transmitters. If it is determined that the antenna is a difference antenna, then steps 201 and 202 are performed to determine whether the upper antenna is a good antenna or a poor antenna.
  • the primary data transmitter can use the upper antenna (good antenna) to receive the paging signal during its own paging cycle to ensure normal communication.
  • the secondary data transmitter can use the upper antenna (good antenna) to receive the paging signal during its own paging cycle to ensure normal communication.
  • steps 203-206 are performed again.
  • the primary and secondary data transmitters can use the antenna to receive the paging signal in their own paging cycle to ensure that the primary and secondary data transmitters communicate normally.
  • step 204 is deleted, and the upper antennas of steps 203, 205, and 206 are replaced with lower antennas.
  • the upper antenna may be configured to the primary data transmitter before step 203 to determine that the upper Tianshan is a difference antenna.
  • the present invention provides an antenna configuration method for configuring a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first antenna may be configured into the remaining data transmitters. Any of the data transmitters. In this way, it can be ensured that each data transmission machine uses a good antenna to receive signals in turn, which is provided by the present invention because it cannot guarantee that each data transmission machine uses a good antenna to receive signals, which causes some data transmission machines to fall off. The method can avoid the problem that the data transmission machine is dropped due to the use of a good antenna.
  • the terminal is provided with two primary and secondary data transmission machines, two antennas, an upper antenna and a lower antenna.
  • An embodiment of the present invention provides an antenna configuration method. As shown in FIG. 3, an execution body is a terminal, and the method is Includes the following steps:
  • the primary data transmitter determines whether the primary data transmitter can receive the paging signal through the lower antenna, and whether the signal quality value of the paging signal received by the primary data transmitter through the lower antenna is higher than a preset threshold.
  • the primary data transmitter cannot receive the paging signal through the lower antenna, or the signal quality value of the paging signal received through the lower antenna is lower than the preset threshold, and the lower antenna is determined to be the difference antenna, and then the lower antenna
  • the antennas are alternately configured for the primary and secondary data transmitters.
  • step 302 it is determined, as in step 302, whether the primary data transmitter can receive the paging signal through the upper antenna, or whether the signal quality value of the paging signal received by the primary data transmitter through the upper antenna is higher than a preset threshold. .
  • the primary data transmitter can receive the paging signal through the upper antenna, or the signal quality value of the paging signal received through the upper antenna is higher than the preset threshold, and it is determined that the upper antenna is a good antenna, and then the upper antenna is The rotation is configured for the primary and secondary data transmitters. If it is determined that the antenna is a difference antenna, then steps 301 and 302 are performed to determine whether the upper antenna is a good antenna or a poor antenna.
  • the primary data transmitter can use the upper antenna (good antenna) to receive the paging signal during its own paging cycle to ensure normal communication.
  • the secondary data transmitter can receive the paging signal using the upper antenna (good antenna) to ensure normal communication.
  • the primary and secondary data transmission devices can use the antenna to receive the paging signal even if there is a collision in the paging cycle, so as to ensure that the primary and secondary data transmission devices communicate normally.
  • step 302 if it is determined in step 302 that the lower antenna is a good antenna, step 304 is deleted, and the upper antennas of steps 303, 305, and 306 are replaced with lower antennas.
  • the upper antenna may be configured to the primary data transmitter before step 303 to determine that the upper antenna is a poor antenna.
  • the present invention provides an antenna configuration method for configuring a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first antenna may be configured into the remaining data transmitters. Any of the data transmitters. In this way, it can be ensured that each data transmission machine uses a good antenna to receive signals in turn, which is provided by the present invention because it cannot guarantee that each data transmission machine uses a good antenna to receive signals, which causes some data transmission machines to fall off. The method can avoid the problem that the data transmission machine is dropped due to the use of a good antenna.
  • the present invention provides a terminal 40 that is provided with N user identification data transmitters, and the N is an integer greater than one.
  • the terminal 40 includes: a configuration unit 401 and a determining unit 402.
  • the configuration unit 401 is configured to configure the first antenna to the first data transmitter.
  • the determining unit 402 is configured to determine whether the antenna is a good antenna or a poor antenna.
  • the configuration unit 401 is further configured to: if the determining unit 402 determines that the first antenna is a good antenna; and when the determining unit determines that the first data transmitter meets a preset state, the first The antenna is configured for any of the N-1 data transmitters other than the first data transmitter.
  • the determining unit 402 is specifically configured to: determine that the first data transmission device has received the Y paging signals continuously, and determine that the first data transmission device meets a preset state, where Said Y is a preset value;
  • the determining unit 402 is specifically configured to determine that the first data transmitter meets a preset state when the paging cycle of the first data transmitter has ended.
  • the configuration unit 401 is further configured to configure the second antenna to the first data transmitter if the determining unit 402 determines that the first antenna is a difference antenna.
  • the method further includes a receiving unit, configured to receive, by the first antenna, a paging signal corresponding to the first data transmission device.
  • the determining unit 402 is specifically configured to: determine that the second antenna is a difference antenna when determining that a signal quality value of the paging signal received by the second antenna is lower than the preset threshold; or When the first antenna does not receive the signal corresponding to the first data transmission device, it is determined that the first antenna is a difference antenna.
  • the determining unit 401 is specifically configured to: determine that the first antenna is a good antenna when determining that a paging signal corresponding to the first data transmitter is received by the first antenna; and determine to receive by using the first antenna When the signal quality value of the obtained paging signal is higher than the preset threshold, it is determined that the first antenna is a good antenna.
  • the present invention provides a terminal for configuring a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first antenna may be configured into the remaining data transmitters. Any of the data transmitters. In this way, it can be ensured that each data transmission machine uses the antenna to receive signals in turn. Compared with the prior art, since some data transmission machines cannot use the antenna to receive signals, some data transmission machines are dropped, and the terminal provided by the present invention It can avoid the problem that the data transmission machine is dropped due to the use of a good antenna.
  • the embodiment of the present invention provides a terminal 50, where the terminal 50 is provided with N user identification data transmission machines, and the N is an integer greater than 1.
  • the terminal can be a mobile phone.
  • the terminal 50 includes a memory 501 and a processor 502. It will be understood by those skilled in the art that the structure of the handset shown in FIG. 5 does not constitute a limitation to the handset, and may include more or less components than those illustrated, or some components may be combined, or different components may be arranged.
  • the memory 501 can be used to store software programs and modules, and the processor 502 executes various functional applications and data processing of the terminal 50 by running software programs and modules stored in the memory 501.
  • the memory 501 may mainly include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application required for at least one function (such as a sound playing function, an image playing function, etc.), and the like; the storage data area may be stored according to The data created by the use of the terminal 50 (such as audio data, image data, phone book, etc.) and the like.
  • the memory 501 may include a high speed random access memory, and may also include a nonvolatile memory such as at least one magnetic disk storage device, flash memory device, or other volatile solid state storage device.
  • the processor 502 is the control center of the terminal 50, which connects various portions of the entire handset using various interfaces and lines, by running or executing software programs and/or modules stored in the memory 501, and recalling data stored in the memory 501, The various functions and processing data of the terminal 50 are performed to perform overall monitoring of the mobile phone.
  • the processor 502 may include one or more processing units; preferably, the processor 502 may integrate an application processor and a modem processor, where the application processor mainly processes an operating system, a user interface, an application, and the like.
  • the modem processor primarily handles wireless communications. It can be understood that the above modem processor may not be integrated into the processor 502.
  • the processor 502 is configured to configure the first antenna to the first data transmitter; determine whether the antenna is a good antenna or a difference antenna.
  • the processor 502 is further configured to: if it is determined that the first antenna is a good antenna, configure the first antenna to be divided into the first data when determining that the first data transmitter meets a preset state; Any of the N-1 data transmissions outside the transmission machine.
  • the processor 502 is specifically configured to: determine that the first data transmission device has received the Y paging signals continuously, and determine that the first data transmission device meets a preset state, where the Y is a preset value; or Determining that the first data transmitter meets a preset state when determining that a signal quality value of the Y paging signals continuously received by the first data transmission device is higher than a preset threshold.
  • the processor 502 is specifically configured to determine that the first data transmitter meets a preset state when the paging cycle of the first data transmitter has ended.
  • the processor 502 is further configured to: if it is determined that the first antenna is a difference antenna, configure a second antenna to the first data transmitter.
  • the processor 502 is further configured to receive, by using the first antenna, a paging signal corresponding to the first data transmission.
  • the processor 502 is specifically configured to: determine that the second antenna is a difference antenna when determining that a signal quality value of the paging signal received by the second antenna is lower than the preset threshold; or When the first antenna does not receive the signal corresponding to the first data transmission device, it is determined that the first antenna is a difference antenna.
  • the processor 502 is specifically configured to: determine that the first antenna is a good antenna when determining that a paging signal corresponding to the first data transmission is received by the first antenna; determining to receive by using the first antenna When the signal quality value of the obtained paging signal is higher than the preset threshold, it is determined that the first antenna is a good antenna.
  • the present invention provides a terminal for configuring a first antenna to a first data transmitter. Determining that the first data transmitter meets a preset state, configuring the first antenna to any one of N-1 data transmission machines other than the first data transmission machine. After the first antenna is configured to any data transmitter other than the first data transmitter, after the any data transmitter meets the preset state, the first antenna may be configured into the remaining data transmitters. Any of the data transmitters. In this way, it can be ensured that each data transmission machine uses the antenna to receive signals in turn. Compared with the prior art, since some data transmission machines cannot use the antenna to receive signals, some data transmission machines are dropped, and the terminal provided by the present invention It can be avoided that the data transmission machine is not used due to the use of a good antenna. The problem with the net.

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Abstract

本发明提供一种天线配置方法及终端,涉及通信领域,能够使各数据传输机轮流使用好天线去接收信号包括:将第一天线配置给第一数据传输机;确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。

Description

一种天线配置方法及终端 技术领域
本发明涉及通信领域,尤其涉及一种天线配置方法及终端。
背景技术
目前,使用全球移动通讯系统(Global System of Mobile,GSM)的用户需要通过用户识别卡(subscribe indentification module card,简称:SIM卡)插入手机后,用户才能获得网络服务。随着移动通信产业的发展,移动通信产品已经成为人们生活的必需品,一个用户拥有两张以上的数据传输机已逐渐成为普遍现象。双卡双待手机的产生正满足了用户的需求,用户可以根据需求自由切换数据传输机进行通信。
双卡双待手机的两个数据传输机会有各自的寻呼周期,每个数据传输机在自己的寻呼周期接收基站发送的信号来保持网络连接。通常,手机上会有两个天线来接收信号。其中,一个天线的性能好(能够成功接收信号),一个天线性能差(基本无法解调信号)。现有技术只能让每个数据传输机使用固定天线,无法保证每个数据传输机使用好天线去接收信号。如:给主数据传输机配置好天线,副数据传输机配置差天线。这样,在主数据传输机的寻呼周期主数据传输机使用好天线接收信号,可以正常进行通信。而在副数据传输机的寻呼周期副数据传输机使用差天线接收不到信号(或接收到的信号很弱),就会导致副数据传输机掉网。
发明内容
本发明的实施例提供一种天线配置方法及终端,能够使各数据传输机轮流使用好天线去接收信号。
为达到上述目的,本发明的实施例采用如下技术方案:
第一方面,公开了一种天线配置方法,应用于设置有N个用户识别数据传输机的终端,所述N为大于1的整数,包括:
将第一天线配置给第一数据传输机;
若确定所述第一天线是好天线;则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
结合第一方面,在第一方面的第一种可能的实现方式中,所述确定所述第一数据传输机满足预设状态具体包括:
确定所述第一数据传输机已连续接收到Y个寻呼信号,所述Y为预设数值;
或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值。
结合第一方面,在第一方面的第二种可能的实现方式中,所述确定所述第一数据传输机满足预设状态具体包括:
确定所述第一数据传输机的寻呼周期已结束。
结合第一方面或第一方面的第一或第二种可能的实现方式,在第一方面的第三种可能的实现方式中,若确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
结合第一方面的第三种可能的实现方式,在第一方面的第四种可能的实现方式中,所述确定第二天线是差天线具体包括:
通过所述第一天线接收所述第一数据传输机对应的寻呼信号;确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值;
或,通过所述第一天线未接收所述第一数据传输机对应的信号。
结合第一方面或第一方面的第一至第四种可能的实现方式中的任一种,在第一方面的第五种可能的实现方式中,所述确定所述第一天线是好天线具体包括:
通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值;或,确定通过所述第一天线接收到了所述第一数据传输机对应的信号。
第二方面,公开了一种终端,所述终端设置有N个用户识别数据传输机,所述N为大于1的整数,包括:
配置单元,用于将第一天线配置给第一数据传输机;
确定单元,用于确定天线是好天线还是差天线;
所述配置单元还用于,若所述确定单元确定所述第一天线是好天线;则在所述确定单元确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
结合第二方面,在第二方面的第一种可能的实现方式中,所述确定单元具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所述Y为预设数值;
或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
结合第二方面,在第二方面的第二种可能的实现方式中,所述确定单元具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
结合第二方面或第二方面的第一或第二种可能的实现方式,在第二方面的第三种可能的实现方式中,所述配置单元还用于,若所述确定单元确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
结合第二方面的第三种可能的实现方式,在第二方面的第四种可能的实现方式中,还包括接收单元,
所述接收单元用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
所述确定单元具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应 的信号时确定所述第一天线是差天线。
结合第二方面或第一方面的第一至第四种可能的实现方式中的任一个,在第二方面的第五种可能的实现方式中,所述确定单元具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;
确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
第三方面,公开了一种终端,所述终端设置有N个用户识别数据传输机,所述N为大于1的整数,包括:
处理器,用于将第一天线配置给第一数据传输机;
所述处理器还用于,确定天线是好天线还是差天线;
所述处理器还用于,若确定所述第一天线是好天线;则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
结合第三方面,在第三方面的第一种可能的实现方式中,所述处理器具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所述Y为预设数值;
或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
结合第三方面,在第三方面的第二种可能的实现方式中,所述处理器具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
结合第三方面或第三方面的第一或第二种可能的实现方式,在第三方面的第三种可能的实现方式中,所述处理器还用于,若确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
结合第三方面的第三种可能的实现方式,在第三方面的第四种可能的实现方式中,所述处理器还用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
所述处理器具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应的信号时确定所述第一天线是差天线。
结合第三方面或第三方面的第一至第四种可能的实现方式中的任一种,在第三方面的第五种可能的实现方式中,所述处理器具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;
确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
本发明提供一种天线配置方法及终端,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一天线配置给其余数据传输机中的任一数据传输机。这样,能够保证各数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的方法及终端可以避免数据传输机由于使用不到好天线而导致掉网的问题。
附图说明
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为本发明实施例1提供的天线配置方法的流程示意图;
图2为本发明实施例2提供的天线配置方法的流程示意图;
图3为本发明实施例3提供的天线配置方法的流程示意图;
图4为本发明实施例4提供的终端的结构框图;
图5为本发明实施例5提供的终端的结构框图。
具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
通常,终端待机状态时是靠在寻呼周期(paging cycle)接收基站发送的寻呼消息来保持网络连接,这寻呼消息是基站在固定时间固定频道传送给手机。具体地,终端通过数据传输机接收基站发送的寻呼消息保持网络连接。每个数据传输机都会在自己的寻呼周期去接收基站连续发送的寻呼消息。各数据传输机之间会存在竞争:即各数据传输机的寻呼周期可能是重叠的(即Paging Cycle碰撞),或各数据传输机均需通过某天线才能接收到基站发送的寻呼消息;如:两个数据传输机对天线好坏的定义相同,那么这两个数据传输机就有可能认为同一个天线是好天线,进而这两个数据传输机就会竞争使用该天线。
数据传输机之间不存在竞争:各数据传输机不需竞争使用某天线,或各数据传输机的寻呼周期是不重叠的(即Paging Cycle无碰撞)。
当各数据传输机的寻呼周期是不重叠的,由于通常会将好天线固定配置给某个数据传输机,也会导致其余数据传输机在自己的寻呼周期由于无法使用好天线而接收不到寻呼信号或接收到的寻呼信号信号质量值太弱,进而导致这些数据传输机掉网。示例的,若手机设置有主、副两个数据传输机,主数据传输机配置好天线,副数据传输机配置差天线。假设从第1s~第5s是主数据传输机的寻呼周期,从第6s~第10s是副数据传输机的寻呼周期。在第1s~第5s,主数据传输机使用好天线能够接收到基站发送的寻呼消息,进而保持 网络连接,能够保持正常通信,如:接听电话或接收短信。在第6s~第10s,副数据传输机使用差天线接收不到基站发送的寻呼消息,进而导致网络连接断开,无法保持正常通信,如:接听不到电话或接收不到短信。
当各数据传输机的寻呼周期是重叠的,由于通常会将好天线固定配置给某个数据传输机,同样也会导致其余数据传输机在自己的寻呼周期由于无法使用好天线而接收不到寻呼信号或接收到的寻呼信号信号质量值太弱,进而导致这些数据传输机掉网。
因此,有必要提供一种方法能够让所有数据传输机都能在自己的寻呼周期配置到好天线,使其不错过寻呼消息或避免由于寻呼消息太弱造成的掉网问题。当然,即使是各数据传输机的寻呼周期存在碰撞时,也可以让所有数据传输机配置至好天线方式。
实施例1:
本发明实施例提供一种天线配置方法,应用于设置有N个数据传输机的终端,如图1所示,所述方法包括以下步骤:
101、将第一天线配置给第一数据传输机。
其中,所述数据传输机(modem)会获取终端内设置的SIM卡里的资讯以便终端的控制模块进行配置。所述终端的控制模块可以是终端的公共控制模块,负责配置天线给数据传输机。
终端的控制模块根据天线配置算法将所述第一天线切换至所述第一数据传输机,所述控制模块指示所述第一数据传输机通过第一天线接收寻呼信号。所述控制模块是N个数据传输机的公共控制模块,由所述控制模块为各个数据传输机配置天线。
102、若确定所述第一天线是好天线,则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
所谓好天线即某个数据传输机在自己的寻呼周期使用该天线能够接收到寻呼信号或接收到的寻呼信号的信号质量值较高。所述第一数据传输机是所述终端的N个数据传输机中的任一数据传输机。
具体地,所述终端通过所述第一天线接收所述第一数据传输机对应的寻呼信号。
进一步,当所述终端确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线;或,当所述终端确定通过所述第一天线接收到了所述第一数据传输机对应的信号则确定所述第一天线是好天线。
具体实现中,所述终端在确定所述第一数据传输机是否满足预设状态时,需要区分各数据传输机的寻呼周期是否存在碰撞,具体包括:
一、在各数据传输机的寻呼周期存在碰撞时,所述确定所述第一数据传输机满足预设状态具体包括:
确定所述第一数据传输机已连续接收到Y个寻呼信号,所述Y为预设数值。
或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值。
具体实现中,在各数据传输机的寻呼周期存在碰撞时,将好天线轮流配置给各数据传输机。数据传输机各自接收寻呼信号(或检测接收到的寻呼信号的信号质量值),分别将结果上报给终端的控制模块根据各数据传输机上报的结果来完成天线配置。
示例的,若手机设置有主、副两个数据传输机,可以先将所述第一天线(即好天线)配置给主数据传输机,手机的控制模块确定主数据传输机已经连续接收到3个寻呼信号,或者连续接收的这3个寻呼信号的信号质量值均高于预设门限值时,就可以将所述第一天线切换至副数据传输机。由副数据传输机使用所述第一天线接收寻呼信号,当然,当确定副数据传输机已经连续接收到3个寻呼信号,或者连续接收的这3个寻呼信号的信号质量值均高于预设门限值时,就可以将所述第一天线切换至主数据传输机。这样,在在各数据传输机的寻呼周期存在碰撞时,各数据传输机可以轮流使用好天线,保证每个数据传输机保持网络连接正常通信。
二、在各数据传输机的寻呼周期不存在碰撞时,所述确定所述第一数据传输机满足预设状态具体包括:确定所述第一数据传输机的寻呼周期已结束。
具体实现中,在各数据传输机的寻呼周期不存在碰撞时,在一数据传输机的寻呼周期将好天线配置给该数据传输机。示例的,若手机设置有主、副两个数据传输机,可以先将所述第一天线(即好天线)配置给主数据传输机,手机的控制模块确定主数据传输机的寻呼周期结束时,就可以将所述第一天线切换至副数据传输机。由副数据传输机使用所述第一天线接收寻呼信号,当然,当确定副数据传输机的寻呼周期结束时,就可以将所述第一天线切换至主数据传输机。这样,在在各数据传输机的寻呼周期不存在碰撞时,各数据传输机可以在自己的寻呼周期使用好天线接收寻呼信号,保证每个数据传输机保持网络连接正常通信。
当然,当N大于等于3时,仍可保证每个数据传输机使用到好天线。
具体的,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。如:将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的第二数据传输机。这时,所述第二数据传输机就相当于本发明实施例101、102中的第一数据传输机,因此当确定所述第二数据传输机满足预设状态时,将所述第一天线配置给除所述第二数据传输机外的N-1个数据传输机中的任一数据传输机。所述“除所述第二数据传输机外的N-1个数据传输机”分为两部分:所述第一数据传输机,以及除所述第一数据传输机、第二数据传输机外的N-2个数据传输机。这里可以将所述第一天线配置给所述第一数据传输机,也可以将所述第一天线配置给除所述第一数据传输机、第二数据传输机外的N-2个数据传输机中的任一个,在此不作限制。当然,将所述第一天线配置给除所述第一数据传输机、第二数据传输机外的N-2个 数据传输机中的任一个能够使得更多的数据传输机使用好天线接收寻呼信号,保证更多的数据传输机的正常通信。即每次进行步骤101、102之后选择的那个数据传输机都是前面进行步骤101、102时未选择的数据传输机,直到每个数据传输机都使用了好天线接收寻呼信号。
另外,若所述终端确定所述第一天线是差天线,则将第二天线配置给第一数据传输机,通过所述第二天线接收所述第一数据传输机对应的寻呼信号。
这样,可以将步骤102中的第一天线天线替换成第二天线执行上述步骤102。即将第二天线配置给第一数据传输机,若确定所述第二天线是好天线,则在确定所述第一数据传输机满足预设状态时,将所述第二天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
进一步,当所述终端确定通过所述第二天线接收到的寻呼信号的信号质量值高于所述预设门限值时确认所述第二天线是好天线。
或,所述终端通过所述第二天线未接收到了所述第一数据传输机对应的信号就可以确认所述第二天线是好天线。
需要说明的是,本发明提供的方法适用于相同制式的数据传输机,同样适用于不同制式的数据传输机。若数据传输机的制式不相同,那么各个数据传输机对天线好坏的定义就不相同,那么数据传输机之间就不会产生上述竞争现象。本发明实施例提供的方法适用于:不同制式数据传输机对天线好坏的定义相同,数据传输机之间竞争使用好天线的场景。当然,同样适用于相同制式数据传输机之间竞争使用好天线的场景。
本发明提供一种天线配置方法,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一 天线配置给其余数据传输机中的任一数据传输机。这样,能够保证每个数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的方法可以避免数据传输机由于使用不到好天线而导致掉网的问题。
实施例2:
在本实施例中,所述终端设置有主、副两个数据传输机,上天线、下天线两个天线。且主、副两个数据传输机的寻呼周期不存在碰撞或主、副两个数据传输机不会竞争使用某一天线。本发明实施例提供一种天线配置方法,如图2所示,执行主体为终端,所述方法包括以下步骤:
201、将下天线配置给主数据传输机。
202、判断下天线是否是好天线。
具体地,判断主数据传输机通过下天线能否接收到寻呼信号,也可以判断主数据传输机通过下天线接收到的寻呼信号的信号质量值是否高于预设门限值。
在此,假定主数据传输机通过下天线不能接收到寻呼信号,或通过下天线接收到的寻呼信号的信号质量值低于预设门限值,判断下天线是差天线,进而将上天线轮流配置给主、副两个数据传输机。
203、将上天线配置给主数据传输机。
204、判断主数据传输机通过上天线能否接收到寻呼信号。
具体地,就是像步骤202那样判断主数据传输机通过上天线能否接收到寻呼信号,或主数据传输机通过上天线接收到的寻呼信号的信号质量值是否高于预设门限值。
在此假定主数据传输机通过上天线能接收到寻呼信号,或通过上天线接收到的寻呼信号的信号质量值高于预设门限值,判断上天线是好天线,进而将上天线轮流配置给主、副两个数据传输机。若在此判断下天线是差天线,则进行步骤201、202判断上天线是好天线还是差天线。
进而,主数据传输机在自己的寻呼周期时就可以使用上天线(好天线)接收寻呼信号,保证通信正常。
205、确定主数据传输机的寻呼周期结束,则将所述上天线配置给副数据传输机。
进而,副数据传输机在自己的寻呼周期时就可以使用上天线(好天线)接收寻呼信号,保证通信正常。
206、确定副数据传输机的寻呼周期结束,则再次执行步骤203-206。
这样,使得主、副两个数据传输机在自己的寻呼周期都可以使用好天线接收寻呼信号,保证主、副两个数据传输机正常通信。
需要说明的是,若步骤202中判断下天线是好天线,则删除步骤204,将步骤203、205、206的上天线替换成下天线。可选的,可以在步骤203之前将上天线配置给主数据传输机,确定上天山是差天线。
本发明提供一种天线配置方法,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一天线配置给其余数据传输机中的任一数据传输机。这样,能够保证每个数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的方法可以避免数据传输机由于使用不到好天线而导致掉网的问题。
实施例3:
在本实施例中,所述终端设置有主、副两个数据传输机,上天线、下天线两个天线。且主、副两个数据传输机的寻呼周期存在碰撞,或主、副两个数据传输机会竞争使用某一天线。本发明实施例提供一种天线配置方法,如图3所示,执行主体为终端,所述方法 包括以下步骤:
301、将下天线配置给主数据传输机。
302、判断下天线是否是好天线。
具体地,判断主数据传输机通过下天线能否接收到寻呼信号,也可以判断主数据传输机通过下天线接收到的寻呼信号的信号质量值是否高于预设门限值。
在此,假定主数据传输机通过下天线不能接收到寻呼信号,或通过下天线接收到的寻呼信号的信号质量值低于预设门限值,判断下天线是差天线,进而将下天线轮流配置给主、副两个数据传输机。
303、将上天线配置给主数据传输机。
304、判断主数据传输机通过上天线能否接收到寻呼信号。
具体地,就是像步骤302那样判断主数据传输机通过上天线能否接收到寻呼信号,或主数据传输机通过上天线接收到的寻呼信号的信号质量值是否高于预设门限值。
在此假定主数据传输机通过上天线能接收到寻呼信号,或通过上天线接收到的寻呼信号的信号质量值高于预设门限值,判断上天线是好天线,进而将上天线轮流配置给主、副两个数据传输机。若在此判断下天线是差天线,则进行步骤301、302判断上天线是好天线还是差天线。
进而,主数据传输机在自己的寻呼周期时就可以使用上天线(好天线)接收寻呼信号,保证通信正常。
305、确定主数据传输机已连续接收到Y个寻呼信号或连续接收到的Y个寻呼信号的信号质量值均高于预设门限值,则将所述上天线配置给副数据传输机。
进而,副数据传输机就可以使用上天线(好天线)接收寻呼信号,保证通信正常。
306、确定副数据传输机已连续接收到Y个寻呼信号或连续接收到的Y个寻呼信号的信号质量值均高于预设门限值,则重复执行步骤303-306。
这样,使得主、副两个数据传输机即使寻呼周期存在碰撞,但都可以使用好天线接收寻呼信号,保证主、副两个数据传输机正常通信。
需要说明的是,若步骤302中判断下天线是好天线,则删除步骤304,将步骤303、305、306的上天线替换成下天线。可选的,可以在步骤303之前将上天线配置给主数据传输机,确定上天山是差天线。
本发明提供一种天线配置方法,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一天线配置给其余数据传输机中的任一数据传输机。这样,能够保证每个数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的方法可以避免数据传输机由于使用不到好天线而导致掉网的问题。
实施例4:
本发明提供一种终端40,所述终端40设置有N个用户识别数据传输机,所述N为大于1的整数。如图4所示,所述终端40包括:配置单元401、确定单元402。
配置单元401,用于将第一天线配置给第一数据传输机。
确定单元402,用于确定天线是好天线还是差天线。
所述配置单元401还用于,若所述确定单元402确定所述第一天线是好天线;则在所述确定单元确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
所述确定单元402具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所 述Y为预设数值;
或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
所述确定单元402具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
所述配置单元401还用于,若所述确定单元402确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
还包括接收单元,所述接收单元用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号。
所述确定单元402具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应的信号时确定所述第一天线是差天线。
所述确定单元401具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
本发明提供一种终端,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一天线配置给其余数据传输机中的任一数据传输机。这样,能够保证各数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的终端可以避免数据传输机由于使用不到好天线而导致掉网的问题。
实施例5:
本发明实施例提供了一种终端50,所述终端50设置有N个用户识别数据传输机,所述N为大于1的整数。该终端可以为手机。如图5所示,终端50包括:存储器501、处理器502。本领域技术人员可以理解,图5中示出的手机结构并不构成对手机的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
下面结合图5对终端50的各个构成部件进行具体的介绍:
存储器501可用于存储软件程序以及模块,处理器502通过运行存储在存储器501的软件程序以及模块,从而执行终端50的各种功能应用以及数据处理。存储器501可主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序(比如声音播放功能、图像播放功能等)等;存储数据区可存储根据终端50的使用所创建的数据(比如音频数据、图像数据、电话本等)等。此外,存储器501可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他易失性固态存储器件。
处理器502是终端50的控制中心,利用各种接口和线路连接整个手机的各个部分,通过运行或执行存储在存储器501内的软件程序和/或模块,以及调用存储在存储器501内的数据,执行终端50的各种功能和处理数据,从而对手机进行整体监控。可选的,处理器502可包括一个或多个处理单元;优选的,处理器502可集成应用处理器和调制解调处理器,其中,应用处理器主要处理操作系统、用户界面和应用程序等,调制解调处理器主要处理无线通信。可以理解的是,上述调制解调处理器也可以不集成到处理器502中。
处理器502,用于将第一天线配置给第一数据传输机;确定天线是好天线还是差天线。
所述处理器502还用于,若确定所述第一天线是好天线;则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输 机。
所述处理器502具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所述Y为预设数值;或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
所述处理器502具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
所述处理器502还用于,若确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
所述处理器502还用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号。
所述处理器502具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应的信号时确定所述第一天线是差天线。
所述处理器502具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
本发明提供一种终端,将第一天线配置给第一数据传输机。确定所述第一数据传输机满足预设状态,则将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。当将第一天线配置给除所述第一数据传输机外的任一数据传输机之后,在所述任一数据传输机满足预设状态后,可以将第一天线配置给其余数据传输机中的任一数据传输机。这样,能够保证各数据传输机轮流使用好天线去接收信号,相比现有技术由于无法保证每个数据传输机使用好天线去接收信号而导致某些数据传输机掉网,本发明提供的终端可以避免数据传输机由于使用不到好天线而导致掉 网的问题。
以上所述,仅为本发明的具体实施方式,但本发明的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本发明揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本发明的保护范围之内。因此,本发明的保护范围应所述以权利要求的保护范围为准。

Claims (18)

  1. 一种天线配置方法,其特征在于,应用于设置有N个数据传输机的终端,所述N为大于1的整数,包括:
    将第一天线配置给第一数据传输机;
    若确定所述第一天线是好天线;则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
  2. 根据权利要求1所述的方法,其特征在于,所述确定所述第一数据传输机满足预设状态具体包括:
    确定所述第一数据传输机已连续接收到Y个寻呼信号,所述Y为预设数值;
    或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值。
  3. 根据权利要求1所述的方法,其特征在于,所述确定所述第一数据传输机满足预设状态具体包括:
    确定所述第一数据传输机的寻呼周期已结束。
  4. 根据权利要求1-3任一项所述的方法,其特征在于,若确定所述第一天线是差天线,则将第二天线配置给所述第一数据传输机。
  5. 根据权利要求4所述的方法,其特征在于,所述确定第二天线是差天线具体包括:
    通过所述第一天线接收所述第一数据传输机对应的寻呼信号;确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值;
    或,通过所述第一天线未接收所述第一数据传输机对应的信号。
  6. 根据权利要求1-5任一项所述的方法,其特征在于,所述确定所述第一天线是好天线具体包括:
    通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
    确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值;或,确定通过所述第一天线接收到了所述第一数据传 输机对应的信号。
  7. 一种终端,其特征在于,所述终端设置有N个数据传输机,所述N为大于1的整数,包括:
    配置单元,用于将第一天线配置给第一数据传输机;
    确定单元,用于确定天线是好天线还是差天线;
    所述配置单元还用于,若所述确定单元确定所述第一天线是好天线;则在所述确定单元确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
  8. 根据权利要求7所述的终端,其特征在于,所述确定单元具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所述Y为预设数值;
    或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
  9. 根据权利要求7所述的终端,其特征在于,所述确定单元具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
  10. 根据权利要求7-9任一项所述的终端,其特征在于,所述配置单元还用于,若所述确定单元确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
  11. 根据权利要求9所述的终端,其特征在于,还包括接收单元,
    所述接收单元用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
    所述确定单元具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应的信号时确定所述第一天线是差天线。
  12. 根据权利要求7-11任一项所述的终端,其特征在于,所述 确定单元具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;
    确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
  13. 一种终端,其特征在于,所述终端设置有N个数据传输机,所述N为大于1的整数,包括:
    处理器,用于将第一天线配置给第一数据传输机;
    所述处理器还用于,确定天线是好天线还是差天线;
    所述处理器还用于,若确定所述第一天线是好天线;则在确定所述第一数据传输机满足预设状态时,将所述第一天线配置给除所述第一数据传输机外的N-1个数据传输机中的任一数据传输机。
  14. 根据权利要求13所述的终端,其特征在于,所述处理器具体用于,确定所述第一数据传输机已连续接收到Y个寻呼信号时确定所述第一数据传输机满足预设状态,所述Y为预设数值;
    或,确定所述第一数据传输机连续接收到的Y个寻呼信号的信号质量值均高于预设门限值时确定所述第一数据传输机满足预设状态。
  15. 根据权利要求13所述的终端,其特征在于,所述处理器具体用于,确定所述第一数据传输机的寻呼周期已结束时确定所述第一数据传输机满足预设状态。
  16. 根据权利要求13-15任一项所述的终端,其特征在于,所述处理器还用于,若确定所述第一天线是差天线则将第二天线配置给所述第一数据传输机。
  17. 根据权利要求16所述的终端,其特征在于,
    所述处理器还用于,通过所述第一天线接收所述第一数据传输机对应的寻呼信号;
    所述处理器具体用于,在确定通过所述第二天线接收到的寻呼信号的信号质量值低于所述预设门限值时确定第二天线是差天线;或,在确定通过所述第一天线未接收所述第一数据传输机对应的信号时 确定所述第一天线是差天线。
  18. 根据权利要求13-17任一项所述的终端,其特征在于,所述处理器具体用于,在确定通过所述第一天线接收到了所述第一数据传输机对应的寻呼信号时确定所述第一天线是好天线;
    确定通过所述第一天线接收到的寻呼信号的信号质量值高于所述预设门限值时确定所述第一天线是好天线。
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