WO2016078299A1 - 一种多功能红外信号处理方法、移动终端及存储介质 - Google Patents

一种多功能红外信号处理方法、移动终端及存储介质 Download PDF

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Publication number
WO2016078299A1
WO2016078299A1 PCT/CN2015/076333 CN2015076333W WO2016078299A1 WO 2016078299 A1 WO2016078299 A1 WO 2016078299A1 CN 2015076333 W CN2015076333 W CN 2015076333W WO 2016078299 A1 WO2016078299 A1 WO 2016078299A1
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WIPO (PCT)
Prior art keywords
infrared signal
working mode
data
signal
transmitting
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PCT/CN2015/076333
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English (en)
French (fr)
Inventor
高峰
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深圳市中兴微电子技术有限公司
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Priority to EP15860999.0A priority Critical patent/EP3223255B1/en
Publication of WO2016078299A1 publication Critical patent/WO2016078299A1/zh

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    • GPHYSICS
    • G08SIGNALLING
    • G08CTRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
    • G08C23/00Non-electrical signal transmission systems, e.g. optical systems
    • G08C23/04Non-electrical signal transmission systems, e.g. optical systems using light waves, e.g. infrared
    • GPHYSICS
    • G08SIGNALLING
    • G08CTRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
    • G08C2201/00Transmission systems of control signals via wireless link
    • G08C2201/90Additional features
    • G08C2201/93Remote control using other portable devices, e.g. mobile phone, PDA, laptop
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M1/00Substation equipment, e.g. for use by subscribers
    • H04M1/72Mobile telephones; Cordless telephones, i.e. devices for establishing wireless links to base stations without route selection
    • H04M1/724User interfaces specially adapted for cordless or mobile telephones
    • H04M1/72403User interfaces specially adapted for cordless or mobile telephones with means for local support of applications that increase the functionality
    • H04M1/72409User interfaces specially adapted for cordless or mobile telephones with means for local support of applications that increase the functionality by interfacing with external accessories
    • H04M1/72415User interfaces specially adapted for cordless or mobile telephones with means for local support of applications that increase the functionality by interfacing with external accessories for remote control of appliances
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M2250/00Details of telephonic subscriber devices
    • H04M2250/12Details of telephonic subscriber devices including a sensor for measuring a physical value, e.g. temperature or motion

Definitions

  • the present invention relates to signal processing related technologies in the field of communications, and in particular, to a multifunctional infrared signal processing method, a mobile terminal, and a storage medium.
  • the embodiment of the present invention is to provide a multi-function infrared signal processing method, a mobile terminal, and a storage medium, which can solve the problem that the current user is inconvenient when it needs to measure and control the device.
  • An embodiment of the present invention provides a multi-function infrared signal processing method, where the method includes:
  • the preset first data is processed to form a first infrared signal for transmitting, and the transmitting time is recorded; and the received second is determined.
  • the infrared signal is the reflected signal of the first infrared signal, recording the receiving time; acquiring the first measurement data according to the transmitting time and the receiving time;
  • the type of the device to be controlled is the first type, detecting the input control signal, and acquiring the first control data according to the first type and the control signal;
  • the first control data is processed to form a fourth infrared signal for transmission; and the fourth infrared signal is used for controlling the device to be controlled.
  • the first working mode is a ranging mode
  • the acquiring the first measurement data according to the transmitting time and the receiving time includes:
  • the first working mode is a ranging mode
  • the method further includes:
  • the second working mode is a temperature measurement mode
  • the acquiring the second measurement data according to the first attribute and the processed data includes:
  • the third working mode is a remote control mode
  • the acquiring the first control data according to the first type and the control signal includes:
  • the embodiment of the present invention further provides a mobile terminal, where the mobile terminal includes: a processing module, a transmitting module, and a receiving module;
  • the processing module is configured to: when the current working mode is determined to be the first working mode, send the preset first data to the transmitting module, and according to the transmitting time sent by the transmitting module and the receiving time sent by the receiving module Obtaining the first measurement data;
  • the data acquires the second measurement data
  • the device type to be controlled is the first type
  • detecting the input control signal and acquiring the first control data according to the first type and the control signal, Sending the first control data to the transmitting module
  • the transmitting module is configured to receive the preset first data sent by the processing module when the current working mode is the first working mode, and process the preset first data to form a first infrared signal. Transmitting, recording the transmission time, and transmitting the transmission time to the processing module;
  • the receiving module is configured to receive a second infrared signal when the current working mode is the first working mode, and determine that the received second infrared signal is a reflected signal of the first infrared signal, and record the receiving time, and Sending the receiving time to the processing module;
  • the target infrared radiation energy is focused to form a third infrared signal, and the third infrared signal is processed, and the processed The data is sent to the processing module.
  • the transmitting module is further configured to repeatedly transmit the first infrared signal n times, and record the reflection of the first infrared signal received twice. a time difference ⁇ t 1 , ⁇ t 2 ... ⁇ t n of the signal, and transmitting the time difference to the processing module;
  • the processing module when the second working mode is the temperature measuring mode, the processing module is configured to acquire an emissivity corresponding to the object to be tested according to the first attribute, and obtain the processing according to the emissivity. The data is corrected to obtain the second measurement data.
  • the processing module when the third working mode is the remote control mode, is configured to acquire a code table corresponding to the first type according to the first type, and obtain the code table according to the control signal. The first control data corresponding to the control signal.
  • the embodiment of the invention further provides a computer storage medium, wherein the computer storage medium stores a computer program for performing the above-mentioned multifunctional infrared signal processing method of the embodiment of the invention.
  • the multi-function infrared signal processing method, the mobile terminal and the storage medium provided by the embodiment of the present invention, when the mobile terminal determines that the current working mode is the first working mode, processes the preset first data to form a first infrared signal for transmitting. Recording the transmission time; determining that the received second infrared signal is the reflected signal of the first infrared signal, recording the receiving time; acquiring the first measurement data according to the transmitting time and the receiving time; or determining the current working mode For the second When the working mode and the object to be tested attribute are the first attribute, the target infrared radiation energy is focused to form a third infrared signal; the third infrared signal is processed, and the second attribute is obtained according to the first attribute and the processed data.
  • Measuring data or determining that the current working mode is the third working mode, and the type of the device to be controlled is the first type, detecting the input control signal, and acquiring the first control data according to the first type and the control signal; Processing the first control data to form a fourth infrared signal for transmitting; and the fourth infrared signal for controlling the device to be controlled.
  • the measurement under different working modes and the control of the device are all implemented on the mobile terminal, which solves the problem that the current user is inconvenient when it needs to measure and control the device.
  • FIG. 1 is a schematic flow chart of a multi-function infrared signal processing method according to an embodiment of the present invention
  • FIG. 2 is a schematic flow chart of a method for processing a multi-function infrared signal according to Embodiment 2 of the present invention
  • FIG. 3 is a schematic flow chart of a method for processing a multi-function infrared signal according to an embodiment of the present invention
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to Embodiments 1, 2, and 3 of the present invention.
  • the mobile terminal determines that the current working mode is the first working mode
  • the preset first data is processed to form a first infrared signal for transmission, and the transmission time is recorded; and the received second infrared signal is determined.
  • the receiving time is recorded; the first measurement data is obtained according to the transmitting time and the receiving time; or the current working mode is determined to be the second working mode, and the property of the object to be tested is the first Attribute, focusing the target infrared radiation energy to form a third infrared signal; processing the third infrared signal, and acquiring the second measurement data according to the first attribute and the processed data; or determining the current working mode
  • the third working mode is that the device type to be controlled is the first type
  • the input control signal is detected, and the first control data is acquired according to the first type and the control signal; and the first control data is processed to form a fourth infrared signal is transmitted; the fourth infrared signal is used for control The device to be controlled.
  • FIG. 1 is a schematic flowchart of a multi-function infrared signal processing method according to an embodiment of the present invention. As shown in FIG. 1 , a flow of a multi-function infrared signal processing method according to an embodiment of the present invention includes:
  • Step 101 When the mobile terminal determines that the current working mode is the first working mode, the preset first data is processed to form a first infrared signal for transmitting, and the transmitting time is recorded;
  • the first working mode may be a ranging mode, and the distance between the mobile terminal and the target may be measured according to the ranging mode;
  • the determining, by the mobile terminal, that the current working mode is the first working mode comprises: determining, by the user, that the current working mode is the first working mode;
  • the first data is any data that can be processed to form the first infrared signal; the center wavelength of the first infrared signal may range from (0.72 ⁇ m to 0.94 ⁇ m);
  • the processing the preset first data to form the first infrared signal for transmitting includes:
  • the first infrared signal is transmitted;
  • the performing pulse modulation on the encoded data includes: generating an oscillating signal having a frequency of about 40 kHz, and pulsing the oscillating signal of the 40 kHz by using the encoded data; where the frequency range of the oscillating signal is [30 KHz) , 60KHz], not limited to 40KHz.
  • the method before the encoding the preset first data, the method further includes: encrypting the first data; where the encryption method may be any available one of the existing ones.
  • the encryption method can ensure that the data obtained after the subsequent decryption is the same data as the first data, that is, the reflected signal of the first infrared signal is accurately identified.
  • Step 102 When it is determined that the received second infrared signal is a reflected signal of the first infrared signal, recording a receiving time;
  • the determining that the received second infrared signal is a reflected signal of the first infrared signal includes:
  • Processing the received second infrared signal to obtain second data determining that the first data is the same as the second data, determining that the received second infrared signal is a reflected signal of the first infrared signal;
  • the processing the received second infrared signal to obtain the second data includes:
  • the method when the first data is encrypted before the preset first data is encoded, and correspondingly, after the decoded data is decoded, the method further includes: The decoded data is decrypted; the manner in which the decryption is used and the manner in which the encryption is used are the corresponding encryption and decryption methods.
  • Step 103 Acquire first measurement data according to the transmitting time and the receiving time.
  • the method further includes: displaying the first measurement data.
  • the third measurement data v n is the speed at which the object to be tested moves;
  • FIG. 2 is a schematic flowchart of a method for processing a multi-function infrared signal according to a second embodiment of the present invention. As shown in FIG. 2, the flow of a method for processing a multi-function infrared signal according to an embodiment of the present invention includes:
  • Step 201 The mobile terminal determines that the current working mode is the second working mode, and the object to be tested attribute is the first attribute, and the target infrared radiation energy is focused to form a third infrared signal.
  • the second working mode may be a temperature measuring mode, and the temperature of the object to be tested may be measured according to the temperature measuring mode;
  • the mobile terminal determines, by the user's selection, that the current working mode is the second working mode
  • the first attribute may be any one of metals, such as: aluminum, gold; or any one of non-metals, such as: ice, glass; or human body; a type of emissivity;
  • the focusing the target infrared radiation energy to form the third infrared signal comprises: collecting the target infrared radiation energy in the field of view, and focusing the target infrared radiation energy to the photodetector to form a third infrared signal.
  • Step 202 Processing the third infrared signal, and acquiring second measurement data according to the first attribute and the processed data;
  • processing the third infrared signal includes:
  • the third infrared signal is converted into an electrical signal by photoelectric conversion of the photodetector, and the electrical signal is amplified and demodulated to obtain a serial signal, and the serial signal is decoded and decoded, and decoded.
  • the data is converted into a corresponding relationship between the radiant energy and the temperature, and the processed data is obtained; where the processed data is the measured temperature of the object to be tested;
  • Obtaining the second measurement data according to the first attribute and the processed data includes:
  • the mobile terminal When the mobile terminal is used to measure the temperature of the human body, the mobile terminal is as close as possible to the human body. In an embodiment, the distance is selectable within a range of (3 cm, 15 cm).
  • the method further includes: when determining that the second measurement data exceeds a preset threshold, issuing an alarm, and displaying the second measurement data; where the preset threshold may be based on The nature of the object to be tested is set. If the object to be tested is a human body, the preset threshold may be 38 degrees.
  • FIG. 3 is a schematic flowchart of a method for processing a multi-function infrared signal according to an embodiment of the present invention. As shown in FIG. 3, the process of the multi-function infrared signal processing method in the embodiment of the present invention includes:
  • Step 301 The mobile terminal determines that the current working mode is the third working mode, and the type of the device to be controlled is the first type, detecting the input control signal, and acquiring the first control data according to the first type and the control signal;
  • the third working mode may be a remote control mode, and the control of the device to be controlled by the mobile terminal may be implemented according to the remote control mode;
  • the device to be controlled includes: a television, an air conditioner, and the like;
  • the determining, by the mobile terminal, that the current working mode is the third working mode comprises: determining, by the user, that the current working mode is the third working mode;
  • the first type may be a specific brand of equipment, such as: Changhong TV, Konka TV, Gree air conditioner, Haier air conditioner, etc.;
  • the input control signal is a key value corresponding to a user button
  • the acquiring the first control data according to the first type and the control signal includes:
  • the first type of code table is: a code table of a remote controller corresponding to the Changhong TV; the first control data corresponding to the control signal in the code table is: a corresponding user in a code table of the remote controller corresponding to the Changhong TV Code data of a key value, the code data is The first control data.
  • Step 302 Process the first control data to form a fourth infrared signal for transmitting.
  • the step includes: encoding the first control data, and pulsing the encoded data to form a second transmit signal, amplifying the second transmit signal, and converting the infrared light emitting diode to form a fourth infrared signal. And transmitting the fourth infrared signal; the fourth infrared signal is used to control the device to be controlled;
  • the performing pulse modulation on the encoded data includes: generating an oscillating signal having a frequency of about 40 kHz, and pulsing the oscillating signal of the 40 kHz by using the encoded data; where the frequency range of the oscillating signal is [30 KHz) , 60KHz], not limited to 40KHz.
  • the working mode is a first working mode, as shown in FIG. 4, the mobile terminal component of the embodiment of the present invention includes: a processing module 41, a transmitting module 42 and a receiving module 43; wherein
  • the processing module 41 is configured to: when the current working mode is determined to be the first working mode, send the preset first data to the transmitting module, and according to the transmitting time sent by the transmitting module and the receiving sent by the receiving module Time to obtain first measurement data;
  • the transmitting module 42 is configured to receive the preset first data sent by the processing module, process the preset first data to form a first infrared signal, transmit, record a transmission time, and transmit the Time is sent to the processing module;
  • the receiving module 43 is configured to receive a second infrared signal, determine that the received second infrared signal is a reflected signal of the first infrared signal, record a receiving time, and send the receiving time to the processing module;
  • the processing module 41 determines, by the user's selection, that the current working mode is the first working mode; the first working mode is the ranging mode.
  • the transmitting module 42 processes the preset first data to form a first infrared signal for transmitting, including:
  • the transmitting module 42 encodes the preset first data, and performs pulse modulation on the encoded data to form a first transmitting signal, and amplifies the first transmitting signal and converts the infrared light emitting diode to form a first infrared signal. And transmitting the first infrared signal;
  • the transmitting module 42 pulsing the encoded data includes: the transmitting module 42 generates an oscillating signal having a frequency of about 40 kHz, and pulsing the 40 kHz oscillating signal by using the encoded data; where the oscillating signal is The frequency range is [30KHz, 60KHz], not limited to 40KHz.
  • the processing module 41 is further configured to encrypt and decrypt the first data; where the encryption method may be any available encryption and decryption method.
  • the receiving module 43 determines that the received second infrared signal is a reflected signal of the first infrared signal, including:
  • the receiving module 43 processes the received second infrared signal to obtain second data, and when determining that the first data is the same as the second data, determining that the received second infrared signal is the first infrared a reflected signal of the signal;
  • the receiving, by the receiving module 43, the received second infrared signal to obtain the second data includes:
  • the second infrared signal received by the receiving module 43 is electrically converted by the photoelectric detector to form an electrical signal, and the electrical signal is amplified and demodulated to obtain a serial signal, and the serial signal is decoded and decoded.
  • the post data is decoded to obtain the second data.
  • the acquiring, by the processing module 41, the first measurement data according to the sending time and the receiving time includes:
  • the transmitting module 42 is further configured to repeatedly transmit the first infrared signal n times, and record the time difference ⁇ t 1 , ⁇ t 2 of the reflected signals of the first two received infrared signals. ⁇ t n , and the time difference is sent to the processing module 41;
  • the mobile terminal further includes a display module 45 configured to display the first measurement data and the third measurement data.
  • FIG. 4 is a schematic diagram of a structure of a mobile terminal according to a second embodiment of the present invention.
  • the working mode is a second working mode.
  • the mobile terminal component of the second embodiment of the present invention includes: a processing module. 41 and receiving module 43; wherein
  • the processing module 41 is configured to determine that the current working mode is the second working mode, the receiving module 43 is triggered, and when the object to be tested attribute is the first attribute, according to the first attribute and the receiving module 43
  • the processed data obtained by the sending acquires the second measurement data
  • the receiving module 43 is configured to focus the target infrared radiation energy to form a third infrared signal, process the third infrared signal, and send the processed data to the processing module 41;
  • the processing module 41 determines that the current working mode is the second working mode by the user's selection; the second working mode is the temperature measuring mode;
  • the first attribute may be any one of metals, such as: aluminum, gold; or any one of non-metals, such as: ice, glass; or human body; A type of emissivity.
  • the receiving module 43 focuses the target infrared radiation energy to form the third infrared signal, including:
  • the receiving module 43 collects the target infrared radiation energy in the field of view, and focuses the target infrared radiation energy to the photodetector to form a third infrared signal; here, the receiving module 43 includes a photodetector or the like.
  • the processing, by the receiving module 43 to process the third infrared signal includes:
  • the third infrared signal is electrically converted by the photoelectric detector of the receiving module 43 to form an electrical signal, and the electrical signal is amplified and demodulated to obtain a serial signal, and the serial signal is decoded and decoded. And converting the radiant energy to the temperature corresponding to the decoded data to obtain the processed data; where the processed data is the measured temperature of the object to be tested.
  • the acquiring, by the processing module 41, the second measurement data according to the first attribute and the processed data includes:
  • the processing module 41 acquires an emissivity corresponding to the object to be tested according to the first attribute, and corrects the data obtained by the processing according to the emissivity to obtain second measurement data.
  • the mobile terminal When the mobile terminal is used to measure the temperature of the human body, the mobile terminal is as close as possible to the human body. In an embodiment, the distance is selectable within a range of (3 cm, 15 cm).
  • the mobile terminal further includes a display module 44 configured to display the second measurement data
  • the processing module 41 is further configured to trigger the alarm module 45 when the second measurement data exceeds a preset threshold
  • the mobile terminal further includes an alarm module 45 configured as an alarm.
  • FIG. 4 is a schematic diagram of a structure of a mobile terminal according to Embodiment 3 of the present invention; in the embodiment of the present invention, the working mode is a third working mode.
  • the mobile terminal component of the third embodiment of the present invention includes: a processing module. 41 and a transmitting module 42; wherein
  • the processing module 41 is configured to: when the current working mode is determined to be the third working mode, and the device to be controlled is of the first type, the input control signal is detected, and the first type and the control signal are used to obtain the first Controlling data, transmitting the first control data to the transmitting module 42;
  • the transmitting module 42 is configured to receive the first control data sent by the processing module 41, process the first control data to form a fourth infrared signal for transmitting, and configure the fourth infrared signal to be controlled.
  • the processing module 41 determines that the current working mode is the third work by the user's selection. a mode; the third mode of operation is a remote mode;
  • the device to be controlled includes: a television, an air conditioner, and the like;
  • the first type may be a specific brand of equipment, such as: Changhong TV, Konka TV, Gree air conditioner, Haier air conditioner, etc.;
  • the input control signal is a key value corresponding to the user's button.
  • the acquiring, by the processing module 41, the first control data according to the first type and the control signal includes:
  • the processing module 41 acquires a code table corresponding to the first type according to the first type, and acquires first control data corresponding to the control signal in the code table according to the control signal;
  • the acquiring, by the processing module 41, the first control data according to the first type and the control signal includes:
  • the processing module 41 acquires a code table corresponding to the first type according to the first type, and acquires first control data corresponding to the control signal in the code table according to the control signal; for example, when the first When the type is Changhong TV, the first type of code table is: a code table of a remote controller corresponding to the Changhong TV; the first control data corresponding to the control signal in the code table is: a remote controller corresponding to the Changhong TV Code data corresponding to a user key key value in the code table, wherein the code data is the first control data;
  • the transmitting module 42 processes the first control data to form a fourth infrared signal for transmitting, including:
  • the transmitting module 42 encodes the first control data, and performs pulse modulation on the encoded data to form a second transmitting signal, and amplifies the second transmitting signal and converts the infrared light emitting diode to form a fourth infrared signal. And transmitting the fourth infrared signal; the fourth infrared signal is used to control the device to be controlled;
  • the transmitting module 42 pulsing the encoded data includes: the transmitting module 42 generates an oscillating signal having a frequency of about 40 kHz, and using the encoded data to oscillate the 40 kHz.
  • the signal is pulse-modulated; here, the frequency range of the oscillating signal is [30 kHz, 60 kHz], and is not limited to 40 kHz.
  • the processing module, the transmitting module, the receiving module, the display module, and the alarm module in the mobile terminal may be implemented by a processor, and may also be implemented by a specific logic circuit; wherein the processor may be A processor on a mobile terminal or a server.
  • the processor may be a central processing unit (CPU), a microprocessor (MPU), a digital signal processor (DSP), or a field programmable gate array (FPGA).
  • the above-mentioned multifunctional infrared signal processing method is implemented in the form of a software function module and sold or used as a stand-alone product, it may also be stored in a computer readable storage medium.
  • the technical solution of the embodiments of the present invention may be embodied in the form of a software product in essence or in the form of a software product stored in a storage medium, including a plurality of instructions.
  • a computer device (which may be a personal computer, server, or network device, etc.) is caused to perform all or part of the methods described in various embodiments of the present invention.
  • the foregoing storage medium includes various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read only memory (ROM), a magnetic disk, or an optical disk.
  • program codes such as a USB flash drive, a mobile hard disk, a read only memory (ROM), a magnetic disk, or an optical disk.
  • the embodiment of the present invention further provides a computer storage medium, where the computer storage medium stores a computer program for performing the above-mentioned multifunctional infrared signal processing method of the embodiment of the present invention.

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Abstract

一种多功能红外信号处理方法,移动终端依据当前的工作模式,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间,确定接收到的第二红外信号为第一红外信号的反射信号时,记录接收时间,依据发射时间和接收时间获取第一测量数据;或者,确定待测物属性为第一属性时,生成第三红外信号并对第三红外信号进行处理,依据第一属性及处理得到的数据获取第二测量数据;或者,确定待控制设备类型为第一类型时,检测输入的控制信号,依据第一类型及控制信号获取第一控制数据;对第一控制数据进行处理形成第四红外信号进行发射;第四红外信号,用于控制待控制设备。还公开了一种移动终端及存储介质。

Description

一种多功能红外信号处理方法、移动终端及存储介质 技术领域
本发明涉及通信领域中的信号处理相关技术,尤其涉及一种多功能红外信号处理方法、移动终端及存储介质。
背景技术
生活中人们通常会遇到如下的尴尬场景:1、在没有携带测量设备或所处环境不便进行常规测量时,就只能目测与目标物的距离;2、当移动物体从身边经过时,想知道其准确的移动速度;3、身边有人发烧需要测量体温,却不能及时地找到温度计;4、空调,电视等使用遥控的家电设备在遥控器找不到的情况下,想马上调节家电设备等等。
面对上面所述的这些尴尬场景,人们往往只能估测或者采用其他费时费力的方式进行解决;而手机是人们随身携带的必需品,如果通过手机能够解决上述问题,便可使用户在需要测量及对设备进行控制时摆脱上述尴尬场景,给用户带来极大的方便。
发明内容
有鉴于此,本发明实施例期望提供一种多功能红外信号处理方法、移动终端及存储介质,能够解决目前用户在需要测量及对设备进行控制时不方便的问题。
为达到上述目的,本发明实施例的技术方案是这样实现的:
本发明实施例提供了一种多功能红外信号处理方法,所述方法包括:
移动终端确定当前的工作模式为第一工作模式时,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间;确定接收到的第二 红外信号为所述第一红外信号的反射信号时,记录接收时间;依据所述发射时间和接收时间获取第一测量数据;
或者,确定当前的工作模式为第二工作模式、待测物属性为第一属性时,聚焦目标红外辐射能量以形成第三红外信号;对所述第三红外信号进行处理,并依据所述第一属性及处理得到的数据获取第二测量数据;
或者,确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据;对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备。
上述方案中,所述第一工作模式为测距模式,所述依据所述发射时间和接收时间获取第一测量数据包括:
计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2。
上述方案中,所述第一工作模式为测距模式,所述依据所述发射时间和接收时间获取第一测量数据之后,所述方法还包括:
重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、Δt2…Δtn,依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数。
上述方案中,所述第二工作模式为测温模式,所述依据所述第一属性及处理得到的数据获取第二测量数据包括:
依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据。
上述方案中,所述第三工作模式为遥控模式,所述依据所述第一类型及所述控制信号获取第一控制数据包括:
依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据。
本发明实施例还提供了一种移动终端,所述移动终端包括:处理模块、发射模块、及接收模块;其中,
所述处理模块,配置为确定当前的工作模式为第一工作模式时,将预置的第一数据发送给发射模块,以及依据所述发射模块发送的发射时间和所述接收模块发送的接收时间获取第一测量数据;
或者,配置为确定当前的工作模式为第二工作模式时,触发所述接收模块,以及确定待测物属性为第一属性时,依据所述第一属性及所述接收模块发送的处理得到的数据获取第二测量数据;
或者,配置为确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据,将所述第一控制数据发送给发射模块;
所述发射模块,配置为在当前的工作模式为第一工作模式时,接收所述处理模块发送的所述预置的第一数据,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间,并将所述发射时间发送给处理模块;
或者,配置为在当前的工作模式为第三工作模式时,接收所述处理模块发送的所述第一控制数据,对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,配置为控制所述待控制设备;
所述接收模块,配置为在当前的工作模式为第一工作模式时,接收第二红外信号,确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间,并将所述接收时间发送给处理模块;
或者,配置为当前的工作模式为第二工作模式时,聚焦目标红外辐射能量以形成第三红外信号,对所述第三红外信号进行处理,将处理得到的 数据发送给处理模块。
上述方案中,所述第一工作模式为测距模式时,所述处理模块,配置为计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2。
上述方案中,所述第一工作模式为测距模式时,所述发射模块,还配置为重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、Δt2…Δtn,并将所述时间差发送给所述处理模块;
相应的,所述处理模块,还配置为依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数。
上述方案中,所述第二工作模式为测温模式时,所述处理模块,配置为依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据。
上述方案中,所述第三工作模式为遥控模式时,所述处理模块,配置为依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据。
本发明实施例还提供了一种计算机存储介质,所述计算机存储介质存储有计算机程序,该计算机程序用于执行本发明实施例的上述多功能红外信号处理方法。
本发明实施例所提供的多功能红外信号处理方法、移动终端及存储介质,移动终端确定当前的工作模式为第一工作模式时,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间;确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间;依据所述发射时间和接收时间获取第一测量数据;或者,确定当前的工作模式为第二 工作模式、待测物属性为第一属性时,聚焦目标红外辐射能量以形成第三红外信号;对所述第三红外信号进行处理,并依据所述第一属性及处理得到的数据获取第二测量数据;或者,确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据;对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备。如此,不同工作模式下的测量及对设备的控制均在移动终端上实现,解决了目前用户在需要测量及对设备进行控制时不方便的问题。
附图说明
图1为本发明实施例一多功能红外信号处理方法流程示意图;
图2为本发明实施例二多功能红外信号处理方法流程示意图;
图3为本发明实施例三多功能红外信号处理方法流程示意图;
图4为本发明实施例一、二、三移动终端组成结构示意图。
具体实施方式
在本发明实施例中,移动终端确定当前的工作模式为第一工作模式时,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间;确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间;依据所述发射时间和接收时间获取第一测量数据;或者,确定当前的工作模式为第二工作模式、待测物属性为第一属性时,聚焦目标红外辐射能量以形成第三红外信号;对所述第三红外信号进行处理,并依据所述第一属性及处理得到的数据获取第二测量数据;或者,确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据;对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,用于控制 所述待控制设备。
图1为本发明实施例一多功能红外信号处理方法流程示意图;如图1所示,本发明实施例多功能红外信号处理方法流程包括:
步骤101:移动终端确定当前的工作模式为第一工作模式时,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间;
这里,所述第一工作模式可以为测距模式,依据所述测距模式可实现移动终端至目标物之间距离的测量;
移动终端确定当前的工作模式为第一工作模式包括:移动终端通过用户的选择确定当前的工作模式为第一工作模式;
所述第一数据为任意经过处理后可以形成所述第一红外信号的数据;所述第一红外信号的中心波长范围可以为(0.72μm-0.94μm);
所述对预置的第一数据进行处理形成第一红外信号进行发射包括:
对预置的第一数据进行编码,并对编码后数据进行脉冲调制,形成第一发射信号,对所述第一发射信号进行放大及红外发光二极管转换,形成第一红外信号,并对所述第一红外信号进行发射;
其中,所述对编码后数据进行脉冲调制包括:产生频率约为40KHz的振荡信号,利用编码后的数据对所述40KHz的振荡信号进行脉冲调制;这里,所述振荡信号的频率范围为[30KHz,60KHz],并不限于40KHz。
在一实施例中,所述对预置的第一数据进行编码之前,所述方法还包括:对所述第一数据进行加密;这里,所述加密方式可采用现有的任何一种可用的加密方式;如此,可确保后续解密后得到的数据与所述第一数据为同一数据,即确保准确的识别所述第一红外信号的反射信号。
步骤102:确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间;
这里,所述确定接收到的第二红外信号为所述第一红外信号的反射信 号包括:
对接收到的第二红外信号进行处理得到第二数据,确定所述第一数据与所述第二数据相同时,确定接收到的第二红外信号为所述第一红外信号的反射信号;
其中,所述对接收到的第二红外信号进行处理得到第二数据包括:
接收到的第二红外信号经过光电探测器的光电转换形成电信号,对所述电信号进行放大及解调得到串行信号,对所述串行信号进行解码,并对解码后数据进行译码,得到所述第二数据。
在一实施例中,当对预置的第一数据进行编码之前,已对所述第一数据进行加密时,相应的,所述对解码后数据进行译码后,所述方法还包括:对译码后数据进行解密;这里所述解密采用的方式与所述加密采用的方式为相应的加密解密方式。
步骤103:依据所述发射时间和接收时间获取第一测量数据;
本步骤包括:计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2;所述v可取299792458m/s。
在一实施例中,所述获取第一测量数据之后,所述方法还包括:显示所述第一测量数据。
在一实施例中,本步骤之后,所述方法还包括:重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、Δt2….Δtn,依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数;这里,所述第三测量数据vn即为待测物体移动的速度;
需要说明的是,应用本发明实施例上述方法进行物体移动速度的测量时,需保证所述移动终端与待测物体在同一直线上。
图2为本发明实施例二多功能红外信号处理方法流程示意图;如图2所示,本发明实施例多功能红外信号处理方法流程包括:
步骤201:移动终端确定当前的工作模式为第二工作模式、待测物属性为第一属性时,聚焦目标红外辐射能量以形成第三红外信号;
这里,所述第二工作模式可以为测温模式,依据所述测温模式可实现对待测物温度的测量;
移动终端确定当前的工作模式为第二工作模式包括:移动终端通过用户的选择确定当前的工作模式为第二工作模式;
所述第一属性可以为金属中的任意一种,如:铝、金;或者,非金属中的任意一种,如:冰、玻璃;还可以为人体;每一种属性的待测物对应一种发射率大小;
所述聚焦目标红外辐射能量以形成第三红外信号包括:汇集视场内目标红外辐射能量,聚焦所述目标红外辐射能量至光电探测器,以形成第三红外信号。
步骤202:对所述第三红外信号进行处理,并依据所述第一属性及处理得到的数据获取第二测量数据;
这里,所述对所述第三红外信号进行处理包括:
所述第三红外信号经过光电探测器的光电转换形成电信号,对所述电信号进行放大及解调得到串行信号,对所述串行信号进行解码和译码,并对译码后的数据进行辐射能量与温度对应关系的转换,得到处理后数据;这里,所述处理后数据即为测量得到的待测物的温度;
所述依据所述第一属性及处理得到的数据获取第二测量数据包括:
依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据;这里,所述处理得到的数据即为所述处理后数据;所述第二测量数据即为经过发射率校正后 的所述待测物的实际温度;
当应用所述移动终端对人体进行测温时,所述移动终端距离人体越近越好,在一实施例中,所述距离可选范围为(3cm,15cm)。
在一实施例中,本步骤之后,所述方法还包括:确定所述第二测量数据超过预设阈值时,发出告警,并显示所述第二测量数据;这里,所述预设阈值可以依据待测物的性质进行设置,如待测物为人体时,所述预设阈值可以为38度。
图3为本发明实施例三多功能红外信号处理方法流程示意图;如图3所示,本发明实施例多功能红外信号处理方法流程包括:
步骤301:移动终端确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据;
这里,所述第三工作模式可以为遥控模式,依据所述遥控模式可以实现移动终端对待控制设备的控制;所述待控制设备包括:电视、空调等;
移动终端确定当前的工作模式为第三工作模式包括:移动终端通过用户的选择确定当前的工作模式为第三工作模式;
所述第一类型可以为特定品牌的设备,如:长虹电视、康佳电视、格力空调、海尔空调等;
所述输入的控制信号为用户按键对应的键值;
所述依据所述第一类型及所述控制信号获取第一控制数据包括:
依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据;例如,当第一类型为长虹电视时,所述第一类型的代码表为:长虹电视对应的遥控器的代码表;所述代码表中对应所述控制信号的第一控制数据为:长虹电视对应的遥控器的代码表中对应用户按键键值的代码数据,所述代码数据即为 所述第一控制数据。
步骤302:对所述第一控制数据进行处理形成第四红外信号进行发射;
本步骤包括:对所述第一控制数据进行编码,并对编码后数据进行脉冲调制,形成第二发射信号,对所述第二发射信号进行放大及红外发光二极管转换,形成第四红外信号,并对所述第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备;
其中,所述对编码后数据进行脉冲调制包括:产生频率约为40KHz的振荡信号,利用编码后的数据对所述40KHz的振荡信号进行脉冲调制;这里,所述振荡信号的频率范围为[30KHz,60KHz],并不限于40KHz。
图4为本发明实施例一移动终端组成结构示意图;在本发明实施例中所述工作模式为第一工作模式,如图4所示,本发明实施例一移动终端组成包括:处理模块41、发射模块42及接收模块43;其中,
所述处理模块41,配置为确定当前的工作模式为第一工作模式时,将预置的第一数据发送给发射模块,以及依据所述发射模块发送的发射时间和所述接收模块发送的接收时间获取第一测量数据;
所述发射模块42,配置为接收所述处理模块发送的所述预置的第一数据,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间,并将所述发射时间发送给处理模块;
所述接收模块43,配置为接收第二红外信号,确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间,并将所述接收时间发送给处理模块;
这里,所述处理模块41通过用户的选择确定当前的工作模式为第一工作模式;所述第一工作模式为测距模式。
在一实施例中,所述发射模块42对预置的第一数据进行处理形成第一红外信号进行发射包括:
所述发射模块42对预置的第一数据进行编码,并对编码后数据进行脉冲调制,形成第一发射信号,对所述第一发射信号进行放大及红外发光二极管转换,形成第一红外信号,并对所述第一红外信号进行发射;
其中,所述发射模块42对编码后数据进行脉冲调制包括:发射模块42产生频率约为40KHz的振荡信号,利用编码后的数据对所述40KHz的振荡信号进行脉冲调制;这里,所述振荡信号的频率范围为[30KHz,60KHz],并不限于40KHz。
在一实施例中,所述处理模块41,还配置为对所述第一数据进行加密和解密;这里,所述加密方式可采用现有的任何一种可用的加密解密方式。
在一实施例中,所述接收模块43确定接收到的第二红外信号为所述第一红外信号的反射信号包括:
所述接收模块43对接收到的第二红外信号进行处理得到第二数据,确定所述第一数据与所述第二数据相同时,确定对接收到的第二红外信号为所述第一红外信号的反射信号;
其中,所述接收模块43对接收到的第二红外信号进行处理得到第二数据包括:
所述接收模块43接收到的第二红外信号经过光电探测器的光电转换形成电信号,对所述电信号进行放大及解调得到串行信号,对所述串行信号进行解码,并对解码后数据进行译码,得到所述第二数据。
在一实施例中,所述处理模块41依据所述发射时间和接收时间获取第一测量数据包括:
所述处理模块41计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2。
在一实施例中,所述发射模块42,还配置为重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、 Δt2…Δtn,并将所述时间差发送给所述处理模块41;
相应的,所述处理模块41,还配置为依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数。
在一实施例中,所述移动终端还包括显示模块45,配置为显示所述第一测量数据及所述第三测量数据。
本发明实施例二移动终端组成结构示意图如图4所示;在本发明实施例中所述工作模式为第二工作模式,如图4所示,本发明实施例二移动终端组成包括:处理模块41及接收模块43;其中,
所述处理模块41,配置为确定当前的工作模式为第二工作模式时触发所述接收模块43,以及确定待测物属性为第一属性时,依据所述第一属性及所述接收模块43发送的处理得到的数据获取第二测量数据;
所述接收模块43,配置为聚焦目标红外辐射能量以形成第三红外信号,对所述第三红外信号进行处理,将处理得到的数据发送给处理模块41;
这里,所述处理模块41通过用户的选择确定当前的工作模式为第二工作模式;所述第二工作模式为测温模式;
所述第一属性可以为金属中的任意一种,如:铝、金;或者,非金属中的任意一种,如:冰、玻璃;还可以为人体;每一种属性的待测物对应一种发射率大小。
在一实施例中,所述接收模块43聚焦目标红外辐射能量以形成第三红外信号包括:
所述接收模块43汇集视场内目标红外辐射能量,聚焦所述目标红外辐射能量至光电探测器以形成第三红外信号;这里,所述接收模块43包括光电探测器等。
在一实施例中,所述接收模块43对所述第三红外信号进行处理包括:
所述第三红外信号经过所述接收模块43中的光电探测器的光电转换形成电信号,对所述电信号进行放大及解调得到串行信号,对所述串行信号进行解码和译码,并对译码后的数据进行辐射能量与温度对应关系的转换,得到处理后数据;这里,所述处理后数据即为测量得到的待测物的温度。
在一实施例中,所述处理模块41依据所述第一属性及处理得到的数据获取第二测量数据包括:
所述处理模块41依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据。
当应用所述移动终端对人体进行测温时,所述移动终端距离人体越近越好,在一实施例中,所述距离可选范围为(3cm,15cm)。
在一实施例中,所述移动终端还包括显示模块44,配置为显示所述第二测量数据;
所述处理模块41,还配置为确定所述第二测量数据超过预设阈值时,触发所述告警模块45;
相应的,所述移动终端还包括告警模块45,配置为告警。
本发明实施例三移动终端组成结构示意图如图4所示;在本发明实施例中所述工作模式为第三工作模式,如图4所示,本发明实施例三移动终端组成包括:处理模块41及发射模块42;其中,
所述处理模块41,配置为确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据,将所述第一控制数据发送给发射模块42;
所述发射模块42,配置为接收所述处理模块41发送的所述第一控制数据,对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,配置为控制所述待控制设备;
这里,所述处理模块41通过用户的选择确定当前的工作模式为第三工 作模式;所述第三工作模式为遥控模式;
所述待控制设备包括:电视、空调等;
所述第一类型可以为特定品牌的设备,如:长虹电视、康佳电视、格力空调、海尔空调等;
所述输入的控制信号为用户按键对应的键值。
在一实施例中,所述处理模块41依据所述第一类型及所述控制信号获取第一控制数据包括:
处理模块41依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据;
所述处理模块41依据所述第一类型及所述控制信号获取第一控制数据包括:
所述处理模块41依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据;例如,当第一类型为长虹电视时,所述第一类型的代码表为:长虹电视对应的遥控器的代码表;所述代码表中对应所述控制信号的第一控制数据为:长虹电视对应的遥控器的代码表中对应用户按键键值的代码数据,所述代码数据即为所述第一控制数据;
所述发射模块42对所述第一控制数据进行处理形成第四红外信号进行发射包括:
所述发射模块42对所述第一控制数据进行编码,并对编码后数据进行脉冲调制,形成第二发射信号,对所述第二发射信号进行放大及红外发光二极管转换,形成第四红外信号,并对所述第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备;
其中,所述发射模块42对编码后数据进行脉冲调制包括:发射模块42产生频率约为40KHz的振荡信号,利用编码后的数据对所述40KHz的振荡 信号进行脉冲调制;这里,所述振荡信号的频率范围为[30KHz,60KHz],并不限于40KHz。
本发明实施例中提出的移动终端中的处理模块、发射模块、接收模块、显示模块及告警模块都可以通过处理器来实现,当然也可通过具体的逻辑电路实现;其中所述处理器可以是移动终端或服务器上的处理器,在实际应用中,处理器可以为中央处理器(CPU)、微处理器(MPU)、数字信号处理器(DSP)或现场可编程门阵列(FPGA)等。
本发明实施例中,如果以软件功能模块的形式实现上述多功能红外信号处理方法,并作为独立的产品销售或使用时,也可以存储在一个计算机可读取存储介质中。基于这样的理解,本发明实施例的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机、服务器、或者网络设备等)执行本发明各个实施例所述方法的全部或部分。而前述的存储介质包括:U盘、移动硬盘、只读存储器(Read Only Memory,ROM)、磁碟或者光盘等各种可以存储程序代码的介质。这样,本发明实施例不限制于任何特定的硬件和软件结合。
相应地,本发明实施例还提供一种计算机存储介质,该计算机存储介质中存储有计算机程序,该计算机程序用于执行本发明实施例的上述多功能红外信号处理方法。
以上所述仅为本发明的较佳实施例而已,并非用于限定本发明的保护范围。

Claims (11)

  1. 一种多功能红外信号处理方法,所述方法包括:
    移动终端确定当前的工作模式为第一工作模式时,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间;确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间;依据所述发射时间和接收时间获取第一测量数据;
    或者,确定当前的工作模式为第二工作模式、待测物属性为第一属性时,聚焦目标红外辐射能量以形成第三红外信号;对所述第三红外信号进行处理,并依据所述第一属性及处理得到的数据获取第二测量数据;
    或者,确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据;对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备。
  2. 根据权利要求1所述方法,其中,所述第一工作模式为测距模式,所述依据所述发射时间和接收时间获取第一测量数据包括:
    计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2。
  3. 根据权利要求1或2所述方法,其中,所述第一工作模式为测距模式,所述依据所述发射时间和接收时间获取第一测量数据之后,所述方法还包括:
    重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、Δt2…Δtn,依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数。
  4. 根据权利要求1所述方法,其中,所述第二工作模式为测温模式, 所述依据所述第一属性及处理得到的数据获取第二测量数据包括:
    依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据。
  5. 根据权利要求1所述方法,其中,所述第三工作模式为遥控模式,所述依据所述第一类型及所述控制信号获取第一控制数据包括:
    依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据。
  6. 一种移动终端,所述移动终端包括:处理模块、发射模块、及接收模块;其中,
    所述处理模块,配置为确定当前的工作模式为第一工作模式时,将预置的第一数据发送给发射模块,以及依据所述发射模块发送的发射时间和所述接收模块发送的接收时间获取第一测量数据;
    或者,配置为确定当前的工作模式为第二工作模式时,触发所述接收模块,以及确定待测物属性为第一属性时,依据所述第一属性及所述接收模块发送的处理得到的数据获取第二测量数据;
    或者,配置为确定当前的工作模式为第三工作模式、待控制设备类型为第一类型时,检测输入的控制信号,并依据所述第一类型及所述控制信号获取第一控制数据,将所述第一控制数据发送给发射模块;
    所述发射模块,配置为在当前的工作模式为第一工作模式时,接收所述处理模块发送的所述预置的第一数据,对预置的第一数据进行处理形成第一红外信号进行发射,记录发射时间,并将所述发射时间发送给处理模块;
    或者,配置为在当前的工作模式为第三工作模式时,接收所述处理模块发送的所述第一控制数据,对所述第一控制数据进行处理形成第四红外信号进行发射;所述第四红外信号,用于控制所述待控制设备;
    所述接收模块,配置为在当前的工作模式为第一工作模式时,接收第二红外信号,确定接收到的第二红外信号为所述第一红外信号的反射信号时,记录接收时间,并将所述接收时间发送给处理模块;
    或者,配置为当前的工作模式为第二工作模式时,聚焦目标红外辐射能量以形成第三红外信号,对所述第三红外信号进行处理,将处理得到的数据发送给处理模块。
  7. 根据权利要求6所述装置,其中,所述第一工作模式为测距模式时,所述处理模块,配置为计算所述发射时间和接收时间的时间差Δt,依据所述时间差Δt及红外信号传输速度v获得第一测量数据s;其中,s=Δt*v/2。
  8. 根据权利要求6或7所述装置,其中,所述第一工作模式为测距模式时,所述发射模块,还配置为重复发射n次所述第一红外信号,记录相邻两次接收到所述第一红外信号的反射信号的时间差Δt1、Δt2…Δtn,并将所述时间差发送给所述处理模块;
    相应的,所述处理模块,还配置为依据所述时间差及红外信号的传输速度v获得第三测量数据vn;其中,vn=(Δt1+Δt2+…+Δtn)*v/2n,n为正整数。
  9. 根据权利要求6所述装置,其中,所述第二工作模式为测温模式时,所述处理模块,配置为依据所述第一属性获取对应所述待测物的发射率,依据所述发射率对所述处理得到的数据进行校正,以获取第二测量数据。
  10. 根据权利要求6所述装置,其中,所述第三工作模式为遥控模式时,所述处理模块,配置为依据所述第一类型获取对应所述第一类型的代码表,并依据所述控制信号获取所述代码表中对应所述控制信号的第一控制数据。
  11. 一种计算机存储介质,所述计算机存储介质中存储有计算机可执行指令,该计算机可执行指令用于执行权利要求1至5任一项所述的多功 能红外信号处理方法。
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