WO2019128813A1 - 胎压传感器信息获取方法、装置、存储介质及电子设备 - Google Patents
胎压传感器信息获取方法、装置、存储介质及电子设备 Download PDFInfo
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- WO2019128813A1 WO2019128813A1 PCT/CN2018/122162 CN2018122162W WO2019128813A1 WO 2019128813 A1 WO2019128813 A1 WO 2019128813A1 CN 2018122162 W CN2018122162 W CN 2018122162W WO 2019128813 A1 WO2019128813 A1 WO 2019128813A1
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L17/00—Devices or apparatus for measuring tyre pressure or the pressure in other inflated bodies
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F2218/00—Aspects of pattern recognition specially adapted for signal processing
- G06F2218/12—Classification; Matching
Definitions
- the present application relates to automotive technology, and in particular, to a tire pressure sensor information acquisition method, device, storage medium, and electronic device.
- the tire pressure sensor information acquiring device needs to determine the low frequency signal required to connect the tire pressure sensor according to a plurality of relevant parameters such as the model, the vehicle system, and the production year of the automobile to be tested, and The tire pressure sensor is connected according to the determined low frequency signal.
- the invention provides a method, a device, a storage medium and an electronic device for acquiring tire pressure sensor information, which improves the efficiency when acquiring tire pressure sensor information.
- the present invention provides a method for acquiring tire pressure sensor information, comprising: sequentially transmitting N matching signals to a tire air pressure sensor, wherein the N is a positive integer;
- the protocol library And acquiring, by the protocol library, a first protocol corresponding to the first matching signal, where the protocol library includes N protocols that are in one-to-one correspondence with the N matching signals;
- the method before the sending the N matching signals to the tire air pressure sensor, the method further includes:
- the sequentially transmitting N matching signals to the tire air pressure sensor includes:
- the N matching signals stored in the signal library are sequentially transmitted to the tire pressure sensor.
- determining the first matching signal of the N matching signals corresponding to the feedback signal includes:
- the nth matching signal is a first matching signal, where n is a positive integer and n ⁇ N.
- the method further includes:
- the N matching signals and the N protocols corresponding to the N matching signals are updated from the matching server via the Internet. And storing the N protocols that are in one-to-one correspondence with the N matching signals into the protocol library, and storing the N matching signals in the signal library;
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- the method further includes:
- the N matching signals input by the user and the N corresponding to the N matching signals are received by the interaction device.
- a protocol and storing the N protocols that are in one-to-one correspondence with the N matching signals into the protocol library, and storing the N matching signals in a signal library;
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- the sending the N matching signals to the tire pressure sensor sequentially includes:
- the N matching signals are sequentially transmitted in the sort order of the priority.
- the matching signal is used to trigger the tire pressure sensor to send a feedback signal
- the feedback signal includes: a high frequency signal, a leaky air signal, and/or an indicator light flicker signal.
- the invention provides a tire pressure sensor information acquiring device, comprising:
- the sending module is configured to sequentially send N matching signals to the tire pressure sensor, where N is a positive integer;
- the receiving module is configured to: if receiving the feedback signal sent by the tire pressure sensor, determine a first matching signal of the N matching signals corresponding to the feedback signal;
- An obtaining module configured to obtain, by using a protocol library, a first protocol corresponding to the first matching signal, where the protocol library includes N protocols that are in one-to-one correspondence with N matching signals;
- a parsing module configured to parse the feedback signal according to the first protocol to obtain information about the tire pressure sensor.
- the acquiring module is further configured to acquire the N matching signals and N protocols that are in one-to-one correspondence with the N matching signals, and the N corresponding to the N matching signals are respectively
- the protocol is stored in the protocol library, and the N matching signals are stored in the signal library;
- the sending module is specifically configured to sequentially send N matching signals stored in the signal library to the tire pressure sensor;
- the receiving module is specifically configured to: if the feedback signal is received within a preset time interval T before the sending of the nth matching signal, before sending the n+1th matching signal, determining, according to the feedback signal, the The n matching signals are the first matching signals, where n is a positive integer and n ⁇ N.
- the method further includes a matching signal updating module, the matching signal updating module is configured to: after the sending module sends the N matching signals, the receiving module does not receive the tire pressure sensor Sending the feedback signal, updating N matching signals and N protocols corresponding to the N matching signals one by one from the matching server via the Internet, and storing the N protocols corresponding to the N matching signals one by one into the a protocol library, storing the N matching signals in a signal library;
- the sending module is specifically configured to sequentially send the updated N matching signals in the signal library to the tire pressure sensor.
- the method further includes a matching signal updating module, the matching signal updating module is configured to: after the sending module sends the N matching signals, the receiving module does not receive the tire pressure sensor When the feedback signal is sent, the N matching signals input by the user and the N protocols corresponding to the N matching signals are received by the interaction device, and the N protocols corresponding to the N matching signals are stored in the N protocol.
- a protocol library storing the N matching signals in a signal library;
- the discharging module is specifically configured to sequentially send the updated N matching signals in the signal library to the tire pressure sensor.
- the sending module is specifically configured to:
- the N matching signals are sequentially transmitted in descending order of the first priority level.
- the matching signal is used to trigger the tire pressure sensor to send a feedback signal;
- the feedback signal includes: a high frequency signal, a gas leakage signal, and/or an indicator light blinking signal.
- the present invention also provides a storage medium having stored thereon a computer program that, when executed by a processor, implements the tire pressure sensor information acquisition method according to any of the above embodiments.
- the invention also provides an electronic device comprising:
- a memory for storing executable instructions of the processor
- the processor is configured to perform the tire pressure sensor information acquisition method according to any one of the above embodiments by executing the executable instruction.
- the invention provides a method, a device, a storage medium and an electronic device for acquiring tire pressure sensor information, wherein the method comprises: sequentially transmitting N matching signals to a tire pressure sensor, wherein N is a positive integer; and receiving a feedback signal sent by the tire pressure sensor Determining a first matching signal of the N matching signals corresponding to the feedback signal; acquiring a first protocol corresponding to the first matching signal from the protocol library, where the protocol library includes N protocols corresponding to the N matching signals; The feedback signal is parsed according to the first protocol to obtain information of the tire pressure sensor.
- the tire pressure sensor information acquiring method, device, storage medium and electronic device provided by the invention sequentially send a matching signal to the tire air pressure sensor, and determine a first protocol used for analyzing the feedback signal tire pressure sensor according to the received feedback signal,
- the feedback signal is parsed according to the first protocol to obtain the information of the tire pressure sensor, so that it is not necessary to determine a plurality of parameters related to the automobile in advance when acquiring the tire pressure sensor information, thereby improving the efficiency when acquiring the tire pressure sensor information.
- Embodiment 1 is a schematic flow chart of Embodiment 1 of a method for acquiring tire pressure sensor information according to the present invention
- Embodiment 2 is a schematic flow chart of Embodiment 2 of a method for acquiring tire pressure sensor information according to the present invention
- Embodiment 3 is a schematic flow chart of Embodiment 3 of a method for acquiring tire pressure sensor information according to the present invention
- Embodiment 4 is a schematic structural view of Embodiment 1 of a tire pressure sensor information acquiring device according to the present invention.
- FIG. 5 is a schematic structural diagram of Embodiment 2 of a tire pressure sensor information acquiring apparatus according to the present invention.
- Embodiment 1 is a schematic flow chart of Embodiment 1 of a method for acquiring tire pressure sensor information according to the present invention.
- the method shown in the figure is applied to a tire pressure sensor information acquiring device for connecting with a tire pressure sensor and acquiring information of a tire air pressure sensor to control the tire air pressure sensor according to the acquired information, and connecting the tire for the first time
- the tire pressure sensor information acquiring device needs to activate the tire pressure sensor, trigger and acquire the relevant information of the tire pressure sensor, and then the tire pressure sensor can be controlled by the related information.
- the tire pressure sensing information acquisition device needs to determine the model parameters of the tire pressure sensor before activating and acquiring the relevant information of the tire pressure sensor, and then the specific activation through the tire pressure sensor matching the model.
- the signal activates the tire pressure sensor, however the tire pressure sensor cannot be activated when the device is unable to acquire the tire pressure sensor model and the tire pressure sensor information cannot be obtained.
- the device in order to improve the efficiency of the tire pressure sensor information acquisition, the device does not need to determine the model of the tire pressure sensor to activate the tire pressure sensor and obtain relevant information before activating the tire pressure sensor, as shown in FIG. 1 .
- the tire pressure sensor information acquisition method includes:
- S101 sequentially send N matching signals to the tire air pressure sensor, where N is a positive integer.
- the execution body of the embodiment may be an electronic device capable of receiving and acquiring tire pressure sensor information, such as a mobile phone, a computer, a tire pressure monitoring device, or the like, as the tire pressure sensor information acquiring device.
- tire pressure sensor information such as a mobile phone, a computer, a tire pressure monitoring device, or the like.
- Different models of cars in different models and even different years will choose different types of tire pressure sensors.
- the vehicle's tire pressure sensor is determined by a number of relevant parameters such as the vehicle type, the vehicle system, and the production year, and then the parameters of the matching signal required to obtain the tire pressure sensor are determined.
- the electronic device performing the step does not need to acquire any information about the car where the tire pressure sensor is located, but sequentially sends N matching signals stored in all possible databases directly to the tire pressure sensor, wherein N Is a positive integer.
- the tire pressure sensor may include three models A, B, and C.
- the three tire pressure sensors that need to obtain information respectively need to use three matching signals a, b, and c corresponding to them.
- three signals a, b, and c are sequentially transmitted to the tire pressure sensor to be acquired.
- the preset time is 10 seconds to distinguish different signals.
- the matching signals a, b, and c may also be continuously transmitted from the signal a to prevent one transmission failure due to loss during transmission, and improve transmission. Match the success rate of the signal.
- S102 Determine a first matching signal among the N matching signals corresponding to the feedback signal, if the feedback signal sent by the tire pressure sensor is received.
- the first matching signal of the N matching signals corresponding to the feedback signal is determined according to the feedback signal.
- the tire pressure sensor will generate feedback for its specific matching signal, so when receiving other matching signals, the tire pressure sensor will not respond, and only when the first matching signal matching the tire pressure sensor is received, the feedback signal is sent. .
- S103 Obtain a first protocol corresponding to the first matching signal from the protocol library, where the protocol library includes N protocols that are in one-to-one correspondence with the N matching signals.
- the first protocol corresponding to the first matching signal is obtained from the protocol library.
- the first protocol may be a communication protocol, an encoding protocol, or a signal processing protocol or the like.
- the first matching signal has a one-to-one correspondence with the first protocol and is a unique corresponding relationship.
- S104 Analyze the feedback signal according to the first protocol to obtain information of the tire pressure sensor.
- the feedback signal sent by the tire pressure sensor is analyzed to obtain information of the tire pressure sensor included in the feedback signal.
- the tire pressure sensor after receiving the first matching signal, sends a feedback signal to the device that sends the first matching signal, and establishes a connection relationship with the device.
- Vehicle maintenance and repair personnel can control and detect the tire pressure sensor through the device connected to the tire pressure sensor, and can also communicate programming the tire pressure sensor.
- the tire pressure sensor information acquisition method provided in this embodiment includes: sequentially transmitting N matching signals to the tire pressure sensor, where N is a positive integer; if receiving the feedback signal sent by the tire pressure sensor, determining N matching signals corresponding to the feedback signal a first matching signal; obtaining a first protocol corresponding to the first matching signal from the protocol library, the protocol library includes N protocols corresponding to the N matching signals one by one; and parsing the feedback signal according to the first protocol to obtain a tire Pressure sensor information. Therefore, the tire pressure sensor information acquiring method provided in this embodiment sends a matching signal to the tire air pressure sensor in turn, and determines a first protocol used to analyze the feedback signal tire pressure sensor according to the received feedback signal, and then according to the first protocol pair. The feedback signal is analyzed to obtain the information of the tire pressure sensor, so that it is not necessary to determine a plurality of parameters related to the automobile in advance when acquiring the tire pressure sensor information, thereby improving the efficiency when acquiring the tire pressure sensor information.
- Embodiment 2 is a schematic flow chart of Embodiment 2 of a method for acquiring tire pressure sensor information according to the present invention. As shown in FIG. 2, the method for acquiring sensor information in this embodiment is based on the embodiment shown in FIG.
- S201 Obtain N matching signals and N protocols corresponding to the N matching signals one by one, and store N protocols corresponding to the N matching signals into the protocol library, and store the N matching signals into the signal library.
- the electronic device as the execution entity may further acquire N matching signals and N protocols corresponding to the N matching signals, and will combine the N matching signals.
- the corresponding N protocols are stored in the protocol library, and the N matching signals are stored in the signal library to be called from the protocol library and the database in subsequent matching.
- the acquiring method in this step may be that the matching server is connected through the Internet, and N matching signals and N protocols corresponding to the N matching signals are obtained from the matching server.
- the matching server can be updated and maintained from time to time by the service provider or related maintenance personnel.
- the acquisition method can also receive N matching signals input by the staff or related users and N protocols corresponding to the N matching signals through an interactive device such as a mouse or a keyboard, and store them in the database.
- S101 in the foregoing embodiment further includes: S202: sequentially send N matching signals stored in the signal library to the tire pressure sensor.
- N matching signals stored in the signal library in S201 are sequentially transmitted.
- Embodiment 3 is a schematic flow chart of Embodiment 3 of a method for acquiring tire pressure sensor information according to the present invention. As shown in FIG. 3, the method for acquiring sensor information in this embodiment is based on the foregoing embodiment, and S102 specifically includes:
- n is a positive integer and n ⁇ N.
- the first matching signal is determined according to the received feedback signal, and the first protocol is determined according to the first matching signal.
- the feedback signals are received within a preset time after each time the matching signal is sent. Receiving a matching signal within a preset time T before the transmission of the nth matching signal and before the transmission of the n+1th matching signal, determining that the feedback signal matches the first matching signal.
- the tire pressure sensor may include three models A, B, and C.
- the three tire pressure sensors need to be connected, and the three matching signals corresponding to a, b, and c are respectively required.
- the matching signal a is transmitted, the interval is 10 seconds, and then the matching signal b is transmitted again, with an interval of 10 seconds, and then the matching signal c is transmitted.
- the feedback signal of the tire pressure sensor is received within a range of 10 seconds after the matching signal b is transmitted, it is confirmed that the matching signal matching the feedback signal is the matching signal b.
- the method further includes:
- the N matching signals and the N protocols uniquely corresponding to the N matching signals are updated from the matching server via the Internet, and N and N
- the N protocols corresponding to the matching signals are stored in the protocol library, and the N matching signals are stored in the signal library;
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- N matching signals and N protocols corresponding to the N matching signals are obtained and updated from the matching server through the Internet, and N protocols corresponding to the N matching signals are stored in the protocol library, and N matching is performed.
- the signal is stored in the signal library.
- the S101 is repeatedly executed to sequentially send the N matching signals in the updated signal library to the tire pressure sensor.
- the N matching signals and the N feedback signals obtained through the Internet may all be different from the previous ones, and the partial matching signals and the corresponding feedback signals may also be performed on the basis of the previous matching signals. Update.
- the method further includes:
- the N matching signals input by the user and the N protocols corresponding to the N matching signals are received by the interaction device, and the N protocols corresponding to the N matching signals are stored in the protocol library, and the N matching signals are obtained. Deposited into the signal library;
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- the N matching signals are transmitted in S101, if no feedback signal is received, if the tire pressure sensor is normally operated, it is indicated that the N matching signals do not have the information to be acquired.
- the matching signal of the pressure sensor if the tire pressure sensor is normally operated, it is indicated that the N matching signals do not have the information to be acquired.
- the matching signal of the pressure sensor if the tire pressure sensor is normally operated, it is indicated that the N matching signals do not have the information to be acquired.
- the matching signal of the pressure sensor The matching signal of the pressure sensor.
- the N matching signals input by the tester of the user or the tire pressure sensor and the N protocols uniquely corresponding to the N matching signals are acquired by the interaction device, and the N protocols uniquely corresponding to the N matching signals are stored in the protocol library.
- N matching signals are stored in the signal library.
- the S101 is repeatedly executed to sequentially send the updated N matching signals to the tire pressure sensor.
- the interaction device may be an input device such as a keyboard, a mouse, or a touch screen.
- the method in each of the foregoing embodiments further includes:
- N matching signals are sequentially transmitted in order of priority.
- the S101 specifically includes: sorting the N matching signals according to the first priority level; according to the first priority level from high to low N matching signals are transmitted in sequence.
- the N matching signals may be sorted according to the first priority level before the N matching signals are transmitted. And when N matching signals are sequentially transmitted, N matching signals are sequentially transmitted according to the order of the first priority level.
- the first priority level is the number of historical connections of the tire pressure sensor, and the first priority level can be input by the user or adjusted according to the usage.
- the tire pressure sensor may include three types of A, B, and C, it is necessary to connect three types of tire pressure sensors, respectively, to use three matching signals a, b, and c corresponding to them.
- the number of historical connection times of the tire pressure sensor information acquisition device to the tire air pressure sensor A is 25 times
- the number of historical connection times to the tire pressure sensor B is 75 times
- the number of historical connection times to the tire pressure sensor C is 50 times.
- the tire pressure sensors are sorted into B, C, A according to the number of historical connections; the tire pressure sensor information acquiring device sequentially transmits the matching signals in the order of b, c, a.
- the matching signal is used to trigger the tire pressure sensor to send a feedback signal
- the feedback signals include: a high frequency signal, a leaky air signal, and/or an indicator light flicker signal.
- the feedback signal can be embodied in various forms by the tire pressure sensor, in addition to responding to the low frequency matching signal by the high frequency signal, and responding to the matching signal by means of the air leakage signal and/or the indicator light flashing signal.
- the matching signal is set in a manner that triggers the tire pressure sensor to send a feedback signal.
- the tire pressure sensor information acquiring apparatus includes: a sending module 401, a receiving module 402, an obtaining module 403, and a parsing module 404.
- the sending module 401 is configured to sequentially send N matching signals to the tire air pressure sensor, where N is a positive integer.
- the receiving module 402 is configured to determine a first matching signal among the N matching signals corresponding to the feedback signal if the feedback signal sent by the tire pressure sensor is received.
- the obtaining module 403 is configured to obtain, from the protocol library, a first protocol corresponding to the first matching signal, where the protocol library includes N protocols that are in one-to-one correspondence with the N matching signals.
- the parsing module 404 is configured to parse the feedback signal according to the first protocol to obtain information of the tire pressure sensor.
- the tire pressure sensor information acquisition device provided in this embodiment is used to implement the tire pressure sensor information acquisition method shown in FIG. 1 , and the implementation manner is the same as the principle, and details are not described herein again.
- the obtaining module 403 is further configured to acquire N matching signals and N protocols corresponding to the N matching signals, and N corresponding to the N matching signals.
- the protocol is stored in the protocol library, and the N matching signals are stored in the signal library;
- the sending module 401 is specifically configured to sequentially send the N matching signals stored in the signal library to the tire pressure sensor;
- the receiving module 402 is specifically configured to: if the feedback signal is received within a preset time interval T before the sending of the nth matching signal, before sending the n+1th matching signal, determining, according to the feedback signal, the nth matching signal is a first matching signal, where n is a positive integer and n ⁇ N.
- the tire pressure sensor information acquisition device provided in this embodiment is used to implement the tire pressure sensor information acquisition method shown in FIG. 2 and FIG. 3 , and the implementation manner is the same as the principle, and details are not described herein again.
- FIG. 5 is a schematic structural diagram of Embodiment 2 of a tire pressure sensor information acquiring apparatus according to the present invention.
- the tire pressure sensor information acquiring apparatus provided in this embodiment further includes a matching signal updating module 501, as shown in FIG.
- a possible use of the matching signal update module 501 is that the matching signal update module 501 is configured to match the data sent by the tire pressure sensor after the receiving module does not receive the feedback signal sent by the tire pressure sensor after the sending module sends the N matching signals.
- the server updates N matching signals and N protocols corresponding to the N matching signals one by one, and stores N protocols corresponding to the N matching signals one by one into the protocol library, and stores N matching signals into the signal library;
- the sending module is specifically configured to sequentially send the N matching signals in the updated signal library to the tire pressure sensor.
- the matching signal update module 501 is configured to: after the sending module sends the N matching signals, the receiving module does not receive the feedback signal sent by the tire pressure sensor, and passes through the interaction device. Receiving N matching signals input by the user and N protocols corresponding to the N matching signals one by one, and storing N protocols corresponding to the N matching signals one by one into the protocol library, and storing the N matching signals into the signal library ;
- the release module is specifically configured to sequentially send N matching signals in the updated signal library to the tire pressure sensor.
- the tire pressure sensor information acquiring device provided in this embodiment is used to implement the foregoing tire pressure sensor information acquiring method, and the implementation manner is the same as the principle, and details are not described herein.
- the sending module 401 is specifically configured to:
- N matching signals are sequentially transmitted in descending order of the first priority level.
- the receiving module is further configured to:
- N matching signals and N protocols uniquely corresponding to the N matching signals are updated from the matching server through the Internet, and N protocols uniquely corresponding to the N matching signals are stored in the protocol library, and N matching signals are stored in the signal.
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- the receiving module is further configured to:
- the N matching signals input by the user and the N protocols uniquely corresponding to the N matching signals are received by the interaction device, and the N protocols uniquely corresponding to the N matching signals are stored in the protocol library, and the N matching signals are stored.
- Signal library
- the N matching signals in the updated signal library are sequentially transmitted to the tire pressure sensor.
- the matching signal is used to trigger the tire pressure sensor to send a feedback signal
- the feedback signals include: a high frequency signal, a leaky air signal, and/or an indicator light flicker signal.
- the tire pressure sensor information acquisition device provided in this embodiment is used to implement the tire pressure sensor information acquisition method described in the above embodiments, and the implementation manner is the same as the principle, and details are not described herein.
- the present invention also provides a storage medium having stored thereon a computer program which, when executed by a processor, implements the tire pressure sensor information acquisition method according to any one of the above embodiments.
- the present invention also provides an electronic device, including: a processor;
- a memory for storing executable instructions of the processor
- the processor is configured to perform the tire pressure sensor information acquisition method of any of the above embodiments by executing executable instructions.
- An embodiment of the present invention further provides a tire pressure sensor information acquiring device, including: a memory, a processor, and a computer program, wherein the computer program is stored in the memory, and the processor runs the computer program to execute the foregoing implementation
- a tire pressure sensor information acquiring device including: a memory, a processor, and a computer program, wherein the computer program is stored in the memory, and the processor runs the computer program to execute the foregoing implementation
- the tire pressure sensor information acquisition method described in the example including: a memory, a processor, and a computer program, wherein the computer program is stored in the memory, and the processor runs the computer program to execute the foregoing implementation The tire pressure sensor information acquisition method described in the example.
- An embodiment of the present invention further provides a storage medium comprising: a readable storage medium and a computer program, the computer program being stored on a readable storage medium, the computer program being used to implement the tires described in the above embodiments Pressure sensor information acquisition method.
- An embodiment of the present invention also provides a program product, the program product comprising a computer program (ie, an execution instruction) stored in a readable storage medium.
- a computer program ie, an execution instruction
- At least one processor of the encoding device can read the computer program from a readable storage medium, and the at least one processor executes the computer program such that the encoding device implements the tire pressure sensor information acquisition method provided by the various embodiments described above.
- the aforementioned program can be stored in a computer readable storage medium.
- the program when executed, performs the steps including the foregoing method embodiments; and the foregoing storage medium includes various media that can store program codes, such as a ROM, a RAM, a magnetic disk, or an optical disk.
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Abstract
一种胎压传感器信息获取方法、装置、存储介质及电子设备,其中方法包括:向胎压传感器依次发送N个匹配信号,N为正整数;若接收到胎压传感器发送的反馈信号,确定反馈信号对应的N个匹配信号中的第一匹配信号;从协议库中获取与第一匹配信号对应的第一协议,协议库中包括与N个匹配信号一一对应的N个协议;根据第一协议对反馈信号进行解析得到胎压传感器的信息。
Description
本申请要求于2017年12月27日提交中国专利局、申请号为201711442275.0、申请名称为“一种胎压传感器信息获取方法、装置、存储介质及电子设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请涉及汽车技术,尤其涉及一种胎压传感器信息获取方法、装置、存储介质及电子设备。
随着汽车技术的发展,汽车胎压监测技术也愈加成熟。我国汽车从2010年开始批量使用胎压传感器对轮胎转速进行记录或对轮胎的压力、温度等工作参数进行实时监测。汽车测试及维修人员能够通过胎压传感器信息获取设备连接胎压传感器信息,并从胎压传感器中获取所需要的测试及维护信息,以对汽车进行维护或测试,进而能够为汽车行驶提供有效的安全保障。
现有技术中,胎压传感器信息获取设备在获取胎压传感器信息时,需要根据待测试汽车的车型、车系、生产年份等多项相关参数确定连接该胎压传感器所需要的低频信号,并根据确定的低频信号连接胎压传感器。
采用现有技术,确定连接胎压传感器所需要的低频信号时,需要多项与汽车相关的参数,而缺少任意一项参数时就不能对胎压传感器进行连接,导致获取胎压传感器信息时的效率不高。
发明内容
本发明提供一种胎压传感器信息获取方法、装置、存储介质及电子设备,提高了获取胎压传感器信息时的效率。
本发明提供一种胎压传感器信息获取方法,包括:向胎压传感器依次发送N个匹配信号,所述N为正整数;
若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号;
从协议库中获取与所述第一匹配信号对应的第一协议,所述协议库中包括与N个匹配信号一一对应的N个协议;
根据所述第一协议对所述反馈信号进行解析得到所述胎压传感器的信息。
在本发明一实施例中,所述向胎压传感器依次发送N个匹配信号之前,还包括:
获取所述N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
所述向胎压传感器依次发送N个匹配信号包括:
向胎压传感器依次发送所述信号库中存储的N个匹配信号。
在本发明一实施例中,所述若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号,包括:
若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到所述反馈信号,则根据所述反馈信号确定所述第n个匹配信号为所述第一匹配信号,其中,n为正整数,且n≤N。
在本发明一实施例中,所述向胎压传感器依次发送N个匹配信号之后,还包括:
若所述N个匹配信号都发送完后,没有接收到所述胎压传感器发送的反馈信号,则通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
向胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
在本发明一实施例中,所述向胎压传感器依次发送N个匹配信号之后,还包括:
若所述N个匹配信号都发送完后,没有接收到所述胎压传感器发送的反馈信号;,则通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
向胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
在本发明一实施例中,所述向胎压传感器依次发送N个匹配信号,还包括:
将所述N个匹配信号根据优先级进行排序;
按照所述优先级的排序顺序依次发送所述N个匹配信号。
在本发明一实施例中,所述匹配信号用于触发所述胎压传感器发送反馈信号;
所述反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
本发明提供一种胎压传感器信息获取装置,包括:
发送模块,所述发送模块用于向胎压传感器依次发送N个匹配信号,所述N为正整数;
接收模块,所述接收模块用于若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号;
获取模块,所述获取模块用于从协议库中获取与所述第一匹配信号对应的 第一协议,所述协议库中包括与N个匹配信号一一对应的N个协议;
解析模块,所述解析模块用于根据所述第一协议对所述反馈信号进行解析得到所述胎压传感器的信息。
在本发明一实施例中,所述获取模块还用于获取所述N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
所述发送模块具体用于向胎压传感器依次发送所述信号库中存储的N个匹配信号;
所述接收模块具体用于若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到所述反馈信号,则根据所述反馈信号确定所述第n个匹配信号为所述第一匹配信号,其中,n为正整数,且n≤N。
在本发明一实施例中,还包括匹配信号更新模块,所述匹配信号更新模块用于在所述发送模块发送完所述N个匹配信号后,所述接收模块没有接收到所述胎压传感器发送的反馈信号时,通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
所述发送模块具体用于向所述胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
在本发明一实施例中,还包括匹配信号更新模块,所述匹配信号更新模块用于在所述发送模块发送完所述N个匹配信号后,所述接收模块没有接收到所述胎压传感器发送的反馈信号时,通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;
所述放模块具体用于向所述胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
在本发明一实施例中,所述发送模块具体用于:
根据第一优先级别对所述N个匹配信号进行排序;
按照第一优先级别从高到低的顺序依次发送所述N个匹配信号。
在本发明一实施例中,所述匹配信号用于触发所述胎压传感器发送反馈信号;所述反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
本发明还提供一种存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述实施例中任一项所述的胎压传感器信息获取方法。
本发明还提供一种电子设备,包括:
处理器;以及,
存储器,用于存储所述处理器的可执行指令;
其中,所述处理器配置为经由执行所述可执行指令来执行上述实施例中任 一项所述的胎压传感器信息获取方法。
本发明提供一种胎压传感器信息获取方法、装置、存储介质及电子设备,其中方法包括:向胎压传感器依次发送N个匹配信号,N为正整数;若接收到胎压传感器发送的反馈信号,确定反馈信号对应的N个匹配信号中的第一匹配信号;从协议库中获取与第一匹配信号对应的第一协议,协议库中包括与N个匹配信号一一对应的N个协议;根据第一协议对反馈信号进行解析得到胎压传感器的信息。本发明提供的胎压传感器信息获取方法、装置、存储介质及电子设备,通过依次向胎压传感器发送匹配信号,根据收到的反馈信号确定解析所述反馈信号胎压传感器所用第一协议,后根据第一协议对反馈信号进行解析获取胎压传感器的信息,从而在获取胎压传感器信息时不需要提前确定多项与汽车相关的参数,提高了获取胎压传感器信息时的效率。
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性的前提下,还可以根据这些附图获得其他的附图。
图1为本发明胎压传感器信息获取方法实施例一的流程示意图;
图2为本发明胎压传感器信息获取方法实施例二的流程示意图;
图3为本发明胎压传感器信息获取方法实施例三的流程示意图;
图4为本发明胎压传感器信息获取装置实施例一的结构示意图;
图5为本发明胎压传感器信息获取装置实施例二的结构示意图。
通过上述附图,已示出本公开明确的实施例,后文中将有更详细的描述。这些附图和文字描述并不是为了通过任何方式限制本公开构思的范围,而是通过参考特定实施例为本领域技术人员说明本公开的概念。
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做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。
本发明的说明书和权利要求书及上述附图中的术语“第一”、“第二”、“第三”、“第四”等(如果存在)是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。应该理解这样使用的数据在适当情况下可以互换,以便这里描述的本发明的实施例例如能够以除了在这里图示或描述的那些以外的顺序实 施。此外,术语“包括”和“具有”以及他们的任何变形,意图在于覆盖不排他的包含,例如,包含了一系列步骤或单元的过程、方法、系统、产品或设备不必限于清楚地列出的那些步骤或单元,而是可包括没有清楚地列出的或对于这些过程、方法、产品或设备固有的其它步骤或单元。
下面以具体地实施例对本发明的技术方案进行详细说明。下面这几个具体的实施例可以相互结合,对于相同或相似的概念或过程可能在某些实施例不再赘述。
图1为本发明胎压传感器信息获取方法实施例一的流程示意图。其中,图中所示的方法用于胎压传感器信息获取装置,该装置用于与胎压传感器连接并获取胎压传感器的信息以根据获取的信息对胎压传感器进行控制,并且在首次连接胎压传感器时,胎压传感器信息获取装置需要对胎压传感器进行激活,触发并获取胎压传感器的相关信息,随后才能通过相关信息对胎压传感器进行控制。而由于胎压传感器生产厂家与型号众多,胎压传感信息获取装置在激活并获取胎压传感器的相关信息之前需确定胎压传感器的型号参数,然后才通过该型号胎压传感器匹配的特定激活信号对胎压传感器进行激活,然而当装置不能获取胎压传感器的型号时不能对胎压传感器进行激活从而不能获取胎压传感器的信息。而本实施例中,为了提高胎压传感器信息获取时的效率,使得装置在激活胎压传感器之前不需要确定胎压传感器的型号依然能够对胎压传感器进行激活并获取相关信息,则如图1所示,本实施例提供的胎压传感器信息获取方法包括:
S101:向胎压传感器依次发送N个匹配信号,N为正整数。
具体地,本实施例的执行主体可以是手机、电脑、胎压监测设备等能对接收并获取胎压传感器信息的电子设备作为胎压传感器信息获取装置。现有汽车中不同型号、甚至不同年份生产的同型号汽车,会选择不同型号的胎压传感器,在连接胎压传感器获取汽车的测试参数或工作参数以对汽车进行维护或测试时,需要根据汽车的车型、车系、生产年份等多项相关参数确定该型号汽车所使用的胎压传感器,然后再确定获取该胎压传感器所需要的匹配信号的参数。而在本申请的S101中,执行本步骤的电子设备不需要获取任何有关胎压传感器所在汽车的信息,而是直接向胎压传感器依次发送所有可能的数据库中存储的N个匹配信号,其中N为正整数。
例如:某种应用场景下,胎压传感器可能包括A,B,C三种型号,需要获取信息的三种胎压传感器分别需要使用与其唯一对应的a,b,c三个匹配信号。则在S101中,依次向待获取信息的胎压传感器发送a,b,c三个信号。
其中,可选地,每发送一个信号后,间隔预设的时间如10秒钟,以区别不同的信号。
可选地,在上述示例中,当发送完匹配信号c后,还可以从信号a开始继 续循环发送匹配信号a,b,c,以防止由于传输过程中的损耗造成的一次发送失败,提高发送匹配信号的成功率。
S102:若接收到胎压传感器发送的反馈信号,确定反馈信号对应的N个匹配信号中的第一匹配信号。
具体地,当接收到胎压传感器发送的反馈信号后,根据反馈信号确定该反馈信号对应的N个匹配信号中的第一匹配信号。其中,胎压传感器会对其特定的匹配信号产生反馈,因此当接收到其他匹配信号时,胎压传感器不作反应,只有当接收到与胎压传感器匹配的第一匹配信号时,才发出反馈信号。
S103:从协议库中获取与第一匹配信号对应的第一协议,协议库中包括与N个匹配信号一一对应的N个协议。
具体地,根据S102中确定的第一匹配信号,从协议库中获取与第一匹配信号一一对应的第一协议。其中,可选地,协议库中存有N个匹配信号,以及与每个匹配信号一一对应的协议,则从协议库中根据第一匹配信号查找与第一匹配信号对应的第一协议。可选地,第一协议可以是通信协议,编码协议,或者信号处理协议等。可选地,第一匹配信号与第一协议为一一对应并且是唯一对应的关系。
S104:根据第一协议对反馈信号进行解析得到胎压传感器的信息。
具体地,根据S103中获取的第一协议,对胎压传感器发送的反馈信号进行解析,以得到反馈信号中包括的胎压传感器的信息。
可选地,胎压传感器接收到第一匹配信号后,向发送第一匹配信号的设备发送反馈信号,并与之建立连接关系。汽车维护及维修相关人员可以通过与胎压传感器连接的设备控制并检测胎压传感器,还可以对胎压传感器进行通讯编程。
本实施例提供的胎压传感器信息获取方法包括:向胎压传感器依次发送N个匹配信号,N为正整数;若接收到胎压传感器发送的反馈信号,确定反馈信号对应的N个匹配信号中的第一匹配信号;从协议库中获取与第一匹配信号对应的第一协议,协议库中包括与N个匹配信号一一对应的N个协议;根据第一协议对反馈信号进行解析得到胎压传感器的信息。因此,本实施例提供的胎压传感器信息获取方法,通过依次向胎压传感器发送匹配信号,根据收到的反馈信号确定解析所述反馈信号胎压传感器所用第一协议,后根据第一协议对反馈信号进行解析获取胎压传感器的信息,从而在获取胎压传感器信息时不需要提前确定多项与汽车相关的参数,提高了获取胎压传感器信息时的效率。
图2为本发明胎压传感器信息获取方法实施例二的流程示意图。如图2所示,本实施例传感器信息获取方法在图1所示实施例基础上,S101之前还包括:
S201:获取N个匹配信号以及与N个匹配信号一一对应的N个协议,并将 与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库。
具体地,在上述实施例的S101之前,作为执行主体的电子设备还可以首先获取N个匹配信号以及与N个匹配信号一一对应的N个协议,并将并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库,以在后续匹配时从协议库以及数据库中调用。
可选地,本步骤获取方法可以是通过互联网连接匹配服务器,从匹配服务器中获取N个匹配信号以及与N个匹配信号一一对应的N个协议。匹配服务器可以服务商或者相关维护人员不定期进行更新与维护。本步骤获取方法也可以通过鼠标或键盘等交互设备接收工作人员或相关用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议并存入数据库。
可选地,如图2所示,上述实施例中的S101具体还包括:S202:向胎压传感器依次发送信号库中存储的N个匹配信号。其中,本步骤中依次发送S201中存入信号库的N个匹配信号。
图3为本发明胎压传感器信息获取方法实施例三的流程示意图。如图3所示,本实施例传感器信息获取方法在上述实施例基础上,S102具体包括:
S302:若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到反馈信号,则根据反馈信号确定所述第n个匹配信号为第一匹配信号,其中,n为正整数且n≤N。
具体地,在前述实施例中,根据收到的反馈信号确定第一匹配信号,再根据第一匹配信号确定第一协议。而在本实施例的S302中,可以在不同胎压传感器对该传感器对应的匹配信号所发出的反馈信号都是一样情况下,通过每次发送匹配信号后,在预设时间内去接收反馈信号,在第n个匹配信号发送之后、第n+1个匹配信号发送之前的的预设时间T内接收到匹配信号,则确定反馈信号匹配第一匹配信号。
例如:胎压传感器可能包括A,B,C三种型号,需要连接三种胎压传感器分别需要使用与其唯一对应的a,b,c三个匹配信号。发送匹配信号a之后,间隔10秒钟,随后再发送匹配信号b,间隔10秒钟,随后再发送匹配信号c。则当发送匹配信号b后的间隔10秒范围内,收到胎压传感器的反馈信号,则确认匹配该反馈信号的匹配信号是匹配信号b。
可选地,在上述实施例中,S101之后还包括:
若N个匹配信号都发送完后,没有接收到胎压传感器发送的反馈信号,则通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号唯一对应的N个协议,并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库;
向胎压传感器依次发送更新后的信号库中的N个匹配信号。
具体地,若在S101中将所有的N个匹配信号都发送完后,如果没有接收 到反馈信号,在确认胎压传感器正常工作的情况下,说明N个匹配信号中没有此待获取信息的胎压传感器的匹配信号。则通过互联网从匹配服务器获取并更新N个匹配信号以及与N个匹配信号一一对应的N个协议,同时将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库。并在随后的步骤中再次重复执行S101向胎压传感器依次发送更新后的信号库中的N个匹配信号。
可选地,在上述实施例中,通过互联网获取的N个匹配信号与N个反馈信号可以全部与之前的不同,也可以在之前的匹配信号的基础上对部分匹配信号与对应的反馈信号进行更新。
可选地,在上述实施例中,S101之后还包括:
若N个匹配信号都发送完后,没有接收到胎压传感器发送的反馈信号;
则通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库;
向胎压传感器依次发送更新后的信号库中的N个匹配信号。
具体地,若在S101中将所有的N个匹配信号都发送完后,如果没有接收到反馈信号,在确认胎压传感器正常工作的情况下,说明N个匹配信号中没有此待获取信息的胎压传感器的匹配信号。则通过交互装置获取用户或者胎压传感器的测试人员输入的N个匹配信号以及与N个匹配信号唯一对应的N个协议,同时将与N个匹配信号唯一对应的N个协议存入协议库,将N个匹配信号存入信号库。并在随后的步骤中再次重复执行S101向胎压传感器依次发送更新后的N个匹配信号。
其中可选地,交互装置可以是键盘、鼠标、触摸屏等输入设备。
可选地,在上述各实施例中的方法还包括:
将N个匹配信号根据优先级进行排序;
按照优先级的排序顺序依次发送N个匹配信号。
可选地,若胎压传感器信息获取装置中包括预置的第一优先级,则S101具体包括:根据第一优先级别对N个匹配信号进行排序;按照第一优先级别从高到低的顺序依次发送N个匹配信号。具体地,在本实施例中,为了进一步提高对获取胎压传感器的信息的效率,在发送N个匹配信号之前,还可以根据第一优先级别对N个匹配信号进行排序。并在依次发送N个匹配信号之时,按照第一优先级别的高低顺序依次发送N个匹配信号。
例如:第一优先级别是胎压传感器的历史连接次数,并且第一优先级别可以由用户输入或者根据使用情况自行调整。若胎压传感器可能包括的A,B,C三种型号中,需要连接三种胎压传感器分别需要使用与其唯一对应的a,b,c三个匹配信号。某胎压传感器信息获取装置对胎压传感器A的历史连接次数是 25次,对胎压传感器B的历史连接次数是75次,对胎压传感器C的历史连接次数是50次。根据历史连接次数对胎压传感器进行排序为B,C,A;则胎压传感器信息获取装置按照b,c,a的顺序依次发送匹配信号。
可选地,在上述各实施例中,
匹配信号用于触发胎压传感器发送反馈信号;
反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
具体地,反馈信号可以由胎压传感器进行多种形式的体现,除了通过高频信号回应低频的匹配信号,还可以通过漏气信号和/或指示灯闪烁信号的方式,对匹配信号做出回应。相应地,匹配信号根据触发胎压传感器发送反馈信号的方式进行设置。
图4为本发明胎压传感器信息获取装置实施例一的结构示意图。如图4所示,本实施例提供的胎压传感器信息获取装置包括:发送模块401,接收模块402,获取模块403和解析模块404。
其中,发送模块401,用于向胎压传感器依次发送N个匹配信号,N为正整数。
接收模块402,用于若接收到胎压传感器发送的反馈信号,确定反馈信号对应的N个匹配信号中的第一匹配信号。
获取模块403,获取模块用于从协议库中获取与第一匹配信号对应的第一协议,协议库中包括与N个匹配信号一一对应的N个协议。
解析模块404,用于根据第一协议对反馈信号进行解析得到胎压传感器的信息。
本实施例提供的胎压传感器信息获取装置,用于实现图1所示胎压传感器信息获取方法,其实现方式与原理相同,不再赘述。
可选地,在上述实施例中的基础上获取模块403还用于获取N个匹配信号以及与N个匹配信号一一对应的N个协议,并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库;
发送模块401具体用于向胎压传感器依次发送信号库中存储的N个匹配信号;
接收模块402具体用于若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到反馈信号,则根据反馈信号确定所述第n个匹配信号为第一匹配信号,其中,n为正整数,且n≤N。
本实施例提供的胎压传感器信息获取装置,用于实现图2和图3所示胎压传感器信息获取方法,其实现方式与原理相同,不再赘述。
图5为本发明胎压传感器信息获取装置实施例二的结构示意图。如图5所示,本实施例提供的胎压传感器信息获取装置在图4所示的基础上,还包括:匹配信号更新模块501。
其中,匹配信号更新模块501一种可能的用途为,匹配信号更新模块501用于在发送模块发送完N个匹配信号后,接收模块没有接收到胎压传感器发送的反馈信号时,通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号一一对应的N个协议,并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库;
发送模块具体用于向胎压传感器依次发送更新后的信号库中的N个匹配信号。
或者,匹配信号更新模块501另一种可能的用途为,匹配信号更新模块501用于在发送模块发送完N个匹配信号后,接收模块没有接收到胎压传感器发送的反馈信号时,通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将与N个匹配信号一一对应的N个协议存入协议库,将N个匹配信号存入信号库;
放模块具体用于向胎压传感器依次发送更新后的信号库中的N个匹配信号。
本实施例提供的胎压传感器信息获取装置,用于实现前述胎压传感器信息获取方法,其实现方式与原理相同,不再赘述。
可选地,在上述实施例中,发送模块401具体用于:
根据第一优先级别对N个匹配信号进行排序;
按照第一优先级别从高到低的顺序依次发送N个匹配信号。
可选地,在上述实施例中,所述接收模块还用于:
若N个匹配信号都发送完后,没有接收到胎压传感器发送的反馈信号;
则通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号唯一对应的N个协议,并将与N个匹配信号唯一对应的N个协议存入协议库,将N个匹配信号存入信号库;
向胎压传感器依次发送更新后的信号库中的N个匹配信号。
可选地,在上述实施例中,所述接收模块还用于:
若N个匹配信号都发送完后,没有接收到胎压传感器发送的反馈信号;
则通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号唯一对应的N个协议,并将与N个匹配信号唯一对应的N个协议存入协议库,将N个匹配信号存入信号库;
向胎压传感器依次发送更新后的信号库中的N个匹配信号。
可选地,在上述各实施例中,匹配信号用于触发胎压传感器发送反馈信号;
反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
本实施例提供的胎压传感器信息获取装置,用于实现上述实施例中记载的胎压传感器信息获取方法,其实现方式与原理相同,不再赘述。
本发明还提供一种存储介质,其上存储有计算机程序,计算机程序被处理 器执行时实现权利要求上述实施例中任一项的胎压传感器信息获取方法。
本发明还提供一种电子设备,包括:处理器;以及,
存储器,用于存储处理器的可执行指令;
其中,处理器配置为经由执行可执行指令来执行上述实施例中任一项的胎压传感器信息获取方法。
本发明一实施例还提供一种胎压传感器信息获取设备,包括:存储器、处理器及计算机程序,所述计算机程序存储在所述存储器中,所述处理器运行所述计算机程序执行上述各实施例中所述的胎压传感器信息获取方法。
本发明一实施例还提供一种存储介质,包括:可读存储介质和计算机程序,所述计算机程序存储在可读存储介质上,所述计算机程序用于实现上述各实施例中所述的胎压传感器信息获取方法。
本发明一实施例还提供一种程序产品,该该程序产品包括计算机程序(即执行指令),该计算机程序存储在可读存储介质中。编码设备的至少一个处理器可以从可读存储介质读取该计算机程序,至少一个处理器执行该计算机程序使得编码设备实施前述的各种实施方式提供的胎压传感器信息获取方法。
本领域普通技术人员可以理解:实现上述各方法实施例的全部或部分步骤可以通过程序指令相关的硬件来完成。前述的程序可以存储于一计算机可读取存储介质中。该程序在执行时,执行包括上述各方法实施例的步骤;而前述的存储介质包括:ROM、RAM、磁碟或者光盘等各种可以存储程序代码的介质。
最后应说明的是:以上各实施例仅用以说明本发明的技术方案,而非对其限制;尽管参照前述各实施例对本发明进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分或者全部技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本发明各实施例技术方案的范围。
Claims (16)
- 一种胎压传感器信息获取方法,其特征在于,包括:向胎压传感器依次发送N个匹配信号,所述N为正整数;若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号;从协议库中获取与所述第一匹配信号对应的第一协议,所述协议库中包括与N个匹配信号一一对应的N个协议;根据所述第一协议对所述反馈信号进行解析得到所述胎压传感器的信息。
- 根据权利要求1所述的方法,其特征在于,所述向胎压传感器依次发送N个匹配信号之前,还包括:获取所述N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;所述向胎压传感器依次发送N个匹配信号包括:向胎压传感器依次发送所述信号库中存储的N个匹配信号。
- 根据权利要求1或2所述的方法,其特征在于,所述若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号,包括:若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到所述反馈信号,则根据所述反馈信号确定所述第n个匹配信号为所述第一匹配信号,其中,n为正整数,且n≤N。
- 根据权利要求1或2所述的方法,其特征在于,所述向胎压传感器依次发送N个匹配信号之后,还包括:若所述N个匹配信号都发送完后,没有接收到所述胎压传感器发送的反馈信号,则通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;向胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
- 根据权利要求1或2所述的方法,其特征在于,所述向胎压传感器依次发送N个匹配信号之后,还包括:若所述N个匹配信号都发送完后,没有接收到所述胎压传感器发送的反馈 信号,则通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;向胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
- 根据权利要求1-5任一项所述的方法,其特征在于,所述向胎压传感器依次发送N个匹配信号,还包括:将所述N个匹配信号根据优先级进行排序;按照所述优先级的排序顺序依次发送所述N个匹配信号。
- 根据权利要求1-6任一项所述的方法,其特征在于,所述匹配信号用于触发所述胎压传感器发送反馈信号;所述反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
- 一种胎压传感器信息获取装置,其特征在于,包括:发送模块,所述发送模块用于向胎压传感器依次发送N个匹配信号,所述N为正整数;接收模块,所述接收模块用于若接收到所述胎压传感器发送的反馈信号,确定所述反馈信号对应的所述N个匹配信号中的第一匹配信号;获取模块,所述获取模块用于从协议库中获取与所述第一匹配信号一一对应的第一协议,所述协议库中包括与N个匹配信号一一对应的N个协议;解析模块,所述解析模块用于根据所述第一协议对所述反馈信号进行解析得到所述胎压传感器的信息。
- 根据权利要求8所述的装置,其特征在于,所述获取模块还用于获取所述N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;所述发送模块具体用于向胎压传感器依次发送所述信号库中存储的N个匹配信号。
- 根据权利要求8或9所述的装置,其特征在于,所述接收模块具体用于若在发送第n个匹配信号后、发送第n+1个匹配信号之前的预设时间间隔T内接收到所述反馈信号,则根据所述反馈信号确定所述第n个匹配信号为所述第一匹配信号,其中,n为正整数,且n≤N。
- 根据权利要求8或9所述的装置,其特征在于,还包括匹配信号更新模块,所述匹配信号更新模块用于在所述发送模块发送完所述N个匹配信号后,所述接收模块没有接收到所述胎压传感器发送的反馈信号时,通过互联网从匹配服务器更新N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;所述发送模块具体用于向所述胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
- 根据权利要求8或9所述的装置,其特征在于,还包括匹配信号更新模块,所述匹配信号更新模块用于在所述发送模块发送完所述N个匹配信号后,所述接收模块没有接收到所述胎压传感器发送的反馈信号时,通过交互装置接收用户输入的N个匹配信号以及与N个匹配信号一一对应的N个协议,并将所述与N个匹配信号一一对应的N个协议存入所述协议库,将所述N个匹配信号存入信号库;所述放模块具体用于向所述胎压传感器依次发送更新后的所述信号库中的N个匹配信号。
- 根据权利要求8-12任一项所述的装置,其特征在于,所述发送模块具体用于:根据第一优先级别对所述N个匹配信号进行排序;按照第一优先级别从高到低的顺序依次发送所述N个匹配信号。
- 根据权利要求8-13任一项所述的装置,其特征在于,所述匹配信号用于触发所述胎压传感器发送反馈信号;所述反馈信号包括:高频信号、漏气信号和/或指示灯闪烁信号。
- 一种存储介质,其上存储有计算机程序,其特征在于,所述计算机程序被处理器执行时实现权利要求1-7任一项所述的胎压传感器信息获取方法。
- 一种电子设备,其特征在于,包括:处理器;以及,存储器,用于存储所述处理器的可执行指令;其中,所述处理器配置为经由执行所述可执行指令来执行权利要求1-7任一项所述的胎压传感器信息获取方法。
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