Communication device

By using a combination of laser transmitter and spectral chip in the communication device, the anti-interference capability of laser is utilized to solve the problem of radio signals being easily interfered with, thus achieving highly secure and stable information transmission.

CN223599867UActive Publication Date: 2025-11-25SHENZHEN PHOTOSENS SEMICONDUCTOR CO LTD
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Patent Information

Application Number
CN202423195139.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-11-25
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

Existing communication devices mainly use radio signal transmission, which is easily interfered with or taken over, resulting in low security.

Method used

By combining laser emitters and spectral chips, a communication connection is established through the differences in emission parameters of different laser emitters, and information transmission is achieved by taking advantage of the strong anti-interference capability of lasers.

Benefits of technology

It improves the anti-interference capability and security of communication devices, making them difficult to crack and ensuring the stability and security of information transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a communication device. The communication device comprises a first transceiving device and a second transceiving device, one of the first transceiving device and the second transceiving device is provided with a plurality of laser emitters, the other of the first transceiving device and the second transceiving device is provided with a spectrum chip, the emission parameters of different laser emitters are different, the laser emitters are used for emitting laser to the spectrum chip, and the spectrum chip receives the laser emitted by the laser emitters to establish a communication connection between the first transceiving device and the second transceiving device. The communication device of the application establishes a communication connection between the first transceiving device and the second transceiving device by using laser communication. Since laser has strong anti-interference ability, the communication device can be effectively prevented from being interfered or taken over, has great cracking difficulty, has higher safety, and improves the anti-interference ability and safety of the communication device.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of communication technology, in particular to a communication device. BACKGROUND

[0002] In the field of remote control, remote information transmission such as remote control unmanned aerial vehicle, command system, a communication device is needed to transmit instructions or information.

[0003] The communication device in the related art mainly uses the mode of radio signal to transmit instructions or information, but the radio signal is easy to be disturbed or even taken over. CONTENT OF THE UTILITY MODEL

[0004] Embodiments of the present application provide a communication device.

[0005] In a first aspect, embodiments of the present application provide a communication device, comprising:

[0006] a first transceiving device;

[0007] a second transceiving device;

[0008] One of the first transceiving device and the second transceiving device is provided with a plurality of laser emitters, and the other of the first transceiving device and the second transceiving device is provided with a spectrum chip, the emission parameters of different laser emitters are different, the laser emitters are used to emit laser to the spectrum chip, and the spectrum chip receives the laser emitted by the laser emitters to establish a communication connection between the first transceiving device and the second transceiving device.

[0009] In an embodiment, the emission parameters include at least one of the wavelength of the emitted laser, the light intensity of the emitted laser, and the emission duration.

[0010] In an embodiment, the first transceiving device and the second transceiving device are each provided with a plurality of laser emitters, and the first transceiving device and the second transceiving device are each provided with a spectrum chip, the laser emitters of the first transceiving device are used to emit laser to the spectrum chip of the second transceiving device, and the laser emitters of the second transceiving device are used to emit laser to the spectrum chip of the first transceiving device.

[0011] In an embodiment, the plurality of laser emitters are arranged in an array.

[0012] In an embodiment, the number of spectrum chips is a plurality, and the plurality of spectrum chips are arranged in an array.

[0013] In an embodiment, the plurality of laser emitters and the plurality of spectrum chips are one-to-one corresponding.

[0014] In an embodiment, the first transceiving device is a remote controller, and the second transceiving device is a drone.

[0015] In an embodiment, the remote controller comprises a housing and a plurality of the laser emitters, the housing is formed with a mounting cavity, and the laser emitters are mounted in the mounting cavity.

[0016] In an embodiment, the drone comprises a body, a chip mounting plate, and a plurality of the spectrum chips, the chip mounting plate is fixed to the bottom or the sidewall of the body, and the spectrum chips are connected to the side of the chip mounting plate away from the body.

[0017] In an embodiment, at least one of the first transceiving device and the second transceiving device is provided with a control component for controlling the operation of the laser emitters.

[0018] The beneficial effects of the embodiments of the present application are as follows:

[0019] In the embodiments of the present application, by controlling the working state of the laser emitters, each laser emitter can be switched between working and not working, i.e., each laser emitter can emit laser or not, and each laser emitter has two working modes.

[0020] Meanwhile, since the emission parameters of different laser emitters are different, i.e., the lasers emitted by different laser emitters are different, when the spectrum chips receive the lasers, they can distinguish which laser emitter emits the received laser. Further, after receiving the laser, the spectrum chips can determine the working state of each laser emitter.

[0021] That is, by changing the working state of different laser emitters, multiple laser emitters can emit multiple different laser combinations. Since the emission parameters of different laser emitters are different, the spectrum chips can identify the laser combinations emitted by multiple laser emitters. Further, the laser combinations emitted by multiple laser emitters can be used to transmit instructions or information, and a communication connection can be established between the first transceiving device and the second transceiving device by using laser communication. Since laser has strong anti-interference ability, it can effectively prevent the communication device from being interfered or taken over, and it is difficult to crack, has higher security, and improves the anti-interference ability and security of the communication device. BRIEF DESCRIPTION OF DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.

[0023] Figure 1 is a structural schematic diagram of a communication device provided by an embodiment of the present application;

[0024] Figure 2 is a structural schematic diagram of a remote controller provided by an embodiment of the present application;

[0025] Figure 3 is a partial structural schematic diagram of a UAV provided by an embodiment of the present application;

[0026] Figure 4 is another partial structural schematic diagram of a UAV provided by an embodiment of the present application;

[0027] Figure 5 is a flowchart of a control method provided by an embodiment of the present application;

[0028] Figure 6 is another flowchart of a control method provided by an embodiment of the present application;

[0029] Figure 7 is a structural schematic diagram of a control device provided by an embodiment of the present application;

[0030] Figure 8 is a structural schematic diagram of an electronic device provided by an embodiment of the present application. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application. In addition, it should be understood that the specific embodiments described herein are only used to illustrate and explain the present application, and are not used to limit the present application. In the present application, the orientation words such as “upper” and “lower” generally refer to the upper and lower in the actual use or working state of the device, and specifically refer to the direction of the drawing surface in the drawings; and “inner” and “outer” refer to the contour of the device.

[0032] The communication device of the present application will be described below. Figures 1 to 8 The communication device of the present application will be described below.

[0033] According to an embodiment of the first aspect of the present application, the communication device includes a first transceiver device 10 and a second transceiver device 20. Figure 1

[0034] ​One of the first transceiving device 10 and the second transceiving device 20 is provided with a plurality of laser emitters 30, and the other of the first transceiving device 10 and the second transceiving device 20 is provided with a spectrum chip 40, the emission parameters of different laser emitters 30 are different, the laser emitters 30 are used for emitting laser to the spectrum chip 40, and the spectrum chip 40 receives the laser emitted by the laser emitters 30 to establish a communication connection between the first transceiving device 10 and the second transceiving device 20.

[0035] According to the communication device provided in the embodiment of the present application, the working state of each laser emitter 30 can be switched between working and not working, that is, each laser emitter 30 can emit laser or not, and each laser emitter 30 has two working modes, by controlling the working state of the laser emitters 30.

[0036] Meanwhile, since the emission parameters of different laser emitters 30 are different, that is, the laser emitted by different laser emitters 30 is different, when the spectrum chip 40 receives the laser, it can distinguish which laser emitter 30 emits the received laser. Further, the spectrum chip 40 can determine the working state of each laser emitter 30 after receiving the laser.

[0037] That is, by changing the working state of different laser emitters 30, a plurality of laser emitters 30 can emit a plurality of different laser combinations, and since the emission parameters of different laser emitters 30 are different, the spectrum chip 40 can identify the laser combination emitted by the plurality of laser emitters 30. Further, the laser combination emitted by the plurality of laser emitters 30 can be used to transmit instructions or information, and the communication connection between the first transceiving device 10 and the second transceiving device 20 can be established by using laser communication. Since the laser has strong anti-interference ability, it can effectively prevent the communication device from being interfered or taken over, and the cracking difficulty is large, the security is higher, and the anti-interference ability and security of the communication device are improved.

[0038] It can be understood that by changing the working state of different laser emitters 30, a plurality of laser emitters 30 can produce a plurality of different laser combinations, that is, a plurality of laser emitters 30 can produce a plurality of different optical codes, so that a plurality of laser emitters 30 can use optical codes to deliver instructions or information. When the spectrum chip 40 receives the laser combination, since the emission parameters of different laser emitters 30 are different, it can be determined that the currently received laser combination is emitted by which laser emitters 30, that is, the optical codes generated by a plurality of laser emitters 30 can be decoded to obtain the instructions or information delivered by the plurality of laser emitters 30.

[0039] That is, the instructions or information to be transmitted can be converted into optical codes, and then the optical codes are transmitted to the optical spectrum chip 40 through the laser combination of the plurality of laser emitters 30. The optical spectrum chip 40 can receive the laser combination, and then decode the optical codes into corresponding instructions or information, thereby realizing communication.

[0040] In some examples, assuming the number of laser emitters 30 is n, the plurality of laser emitters 30 can generate at least 2 n laser combinations, that is, n laser emitters 30 can generate 2 n optical codes, and then n lasers can transmit 2 n instructions or information.

[0041] It can be understood that the information to be transmitted can be converted into one or more laser combinations to realize the transmission of information to the optical spectrum chip 40 by using the plurality of laser emitters 30.

[0042] For example, the emission parameters of the first laser emitter 30 are A, the emission parameters of the second laser emitter 30 are B, and the emission parameters of the third laser emitter 30 are C. The working state of the first laser emitter 30 is defined as A1, and the non-working state is defined as A2. The working state of the second laser emitter 30 is defined as B1, and the non-working state is defined as B2. The working state of the third laser emitter 30 is defined as C1, and the non-working state is defined as C2. Then, the laser combinations that the first laser emitter 30, the second laser emitter 30 and the third laser emitter 30 can generate include A1+B1+C1, A1+B1+C2, A1+B2+C1, A1+B2+C2, A2+B1+C1, A2+B1+C2, A2+B2+C1 and A2+B2+C2.

[0043] For example, the laser combination A1+B1+C1 can be used to represent the instruction or information of “forward”, and the laser combination A1+B1+C2 can be used to represent the instruction or information of “backward”. It should be noted that this is only an example and is not limited.

[0044] In some examples, the information represented by different laser combinations generated by the plurality of laser emitters 30 can be pre-stored on the optical spectrum chip 40 or the transceiver device where the optical spectrum chip 40 is located. When the optical spectrum chip 40 receives the laser combination generated by the plurality of laser emitters 30, the specific information represented by the received laser combination can be determined, thereby realizing decoding of the laser combination.

[0045] In some embodiments, the emission parameters include at least one of the wavelength of the emitted laser, the light intensity of the emitted laser, and the emission duration.

[0046] It can be understood that when the wavelengths of the lasers emitted by different laser emitters 30 are different, the spectral chip 40 can determine which laser emitters 30 emit the laser according to the wavelength of the received laser, that is, it can be determined which laser emitters 30 are in the working state.

[0047] It can be understood that when the light intensities of the lasers emitted by different laser emitters 30 are different, the spectral chip 40 can determine which laser emitters 30 emit the laser according to the light intensity of the received laser, that is, it can be determined which laser emitters 30 are in the working state.

[0048] It can be understood that when the time lengths of the lasers emitted by different laser emitters 30 are different, the spectral chip 40 can determine which laser emitters 30 emit the laser according to the time length of the received laser, that is, it can be determined which laser emitters 30 are in the working state.

[0049] It can be understood that when the wavelengths of the lasers emitted by different laser emitters 30 are different, the light intensity of at least part of the laser emitters 30 can also be changed, thereby increasing the laser combination that can be generated by multiple laser emitters 30. For example, when the number of laser emitters 30 is n, the number of laser combinations that can be generated by n laser emitters 30 is 2n. n When the light intensity of the laser emitters 30 can be changed, assuming that the light intensity of the laser emitters 30 can be switched between the first light intensity and the second light intensity, one laser emitter 30 can have three states of not working, working but emitting a laser with the first light intensity, and working but emitting a laser with the second light intensity, and at this time, the number of laser combinations that can be generated by n laser emitters 30 is 3n. n .

[0050] It can be understood that when the wavelengths of the lasers emitted by different laser emitters 30 are different, the time length of the laser emitted by at least part of the laser emitters 30 can also be changed, thereby increasing the laser combination that can be generated by multiple laser emitters 30. For example, when the number of laser emitters 30 is n, the number of laser combinations that can be generated by n laser emitters 30 is 2n. n When the time length of the laser emitted by the laser emitters 30 can be changed, assuming that the time length of the laser emitted by the laser emitters 30 can be switched between 0ms, 10ms, 20ms, and 30ms, one laser emitter 30 can have four states, and at this time, the number of laser combinations that can be generated by n laser emitters 30 is 4n. n .

[0051] In some embodiments, the first transceiving device 10 and the second transceiving device 20 are each provided with a plurality of laser emitters 30, and the first transceiving device 10 and the second transceiving device 20 are each provided with a spectrum chip 40, the laser emitters 30 of the first transceiving device 10 are used to emit laser to the spectrum chip 40 of the second transceiving device 20, and the laser emitters 30 of the second transceiving device 20 are used to emit laser to the spectrum chip 40 of the first transceiving device 10.

[0052] It can be understood that the first transceiving device 10 can transmit instructions or information to the second transceiving device 20 through the plurality of laser emitters 30 installed on the first transceiving device 10, and the first transceiving device 10 can also receive instructions or information sent by the second transceiving device 20 through the spectrum chip 40 installed on the first transceiving device 10.

[0053] The second transceiving device 20 can transmit instructions or information to the first transceiving device 10 through the plurality of laser emitters 30 installed on the second transceiving device 20, and the second transceiving device 20 can also receive instructions or information sent by the first transceiving device 10 through the spectrum chip 40 installed on the second transceiving device 20.

[0054] In some embodiments, the plurality of laser emitters 30 are arranged in an array to improve the arrangement uniformity of the plurality of laser emitters 30.

[0055] In some embodiments, the plurality of spectrum chips 40 are arranged in an array to improve the arrangement uniformity of the plurality of spectrum chips 40.

[0056] In some embodiments, the plurality of laser emitters 30 and the plurality of spectrum chips 40 are one-to-one corresponding, each laser emitter 30 emits laser to the corresponding spectrum chip 40, and each spectrum chip 40 receives laser emitted by the corresponding laser emitter 30, so that the working state of each laser emitter 30 can be more accurately identified, and the accuracy of instruction or information transmission is improved.

[0057] In some embodiments, the first transceiving device 10 is a remote controller, and the second transceiving device 20 is a drone.

[0058] It can be understood that the remote controller is provided with a plurality of laser emitters 30, and the drone is provided with a spectrum chip 40, the remote controller can send instructions to the drone through the plurality of laser emitters 30 to control the flight of the drone.

[0059] It can be understood that the remote controller is provided with a spectrum chip 40, and the drone is provided with a plurality of laser emitters 30, the drone can send the acquired information (such as the number of people, the number of vehicles, etc.) to the remote controller through the plurality of laser emitters 30.

[0060] Specifically, as shown in FIG. 1, a first transceiving device 10 and a second transceiving device 20 are provided, the first transceiving device 10 is a remote controller, and the second transceiving device 20 is a drone. Figure 2The remote controller comprises a shell 31 and a plurality of laser emitters 30. The shell 31 is formed with a mounting cavity, and the laser emitters 30 are mounted in the mounting cavity.

[0061] It can be understood that the mounting cavity of the shell 31 can limit and fix the laser emitters 30, thereby improving the mounting stability of the laser emitters 30.

[0062] Specifically, as Figure 3 and Figure 4 The unmanned aerial vehicle comprises a body, a chip mounting plate 41 and a plurality of spectral chips 40. The chip mounting plate 41 is fixed to the bottom or side wall of the body, and the spectral chips 40 are connected to the side of the chip mounting plate 41 away from the body.

[0063] It can be understood that the spectral chips 40 are arranged at the bottom or side of the unmanned aerial vehicle, so that the spectral chips 40 of the unmanned aerial vehicle can receive the laser emitted by the remote controller.

[0064] In some examples, the remote controller is provided with a power-on / off button, which is convenient for users to control.

[0065] In some embodiments, at least one of the first transceiver device 10 and the second transceiver device 20 is provided with a control component, which is used to control the working of the laser emitters 30.

[0066] It can be understood that the control component is arranged to facilitate users to set and send different instructions.

[0067] For example, the control component comprises at least one of a touch screen, a key and a joystick.

[0068] According to the embodiment of the second aspect of the present application, as Figure 5 The control method comprises:

[0069] Step 101, determining a target laser emitter 30 from the plurality of laser emitters 30 according to target information.

[0070] It can be understood that according to the target information (including but not limited to control instructions, number of people information, sentences, etc.) to be transmitted, the target information is converted into a combination of laser beams of the plurality of laser emitters 30, that is, it can be determined which laser emitters 30 need to emit laser beams and which laser emitters 30 do not need to emit laser beams, and then the target laser emitters 30 can be determined from the plurality of laser emitters 30 (the number of target laser emitters 30 can be 0 at least, and all laser emitters 30 can be target laser emitters 30 at most).

[0071] It can be understood that one target information can be converted into a plurality of laser combinations. That is, a plurality of laser combinations can represent one target information.

[0072] Step 102, control the target laser emitter 30 to be in a working state, so that the target laser emitter 30 emits laser to the spectrum chip 40.

[0073] It can be understood that the target laser emitter 30 is controlled to emit laser to the spectrum chip 40, and the non-target laser emitter 30 does not work, that is, does not emit laser, so that the plurality of laser emitters 30 (including the target laser emitter 30 and the non-target laser emitter 30) can generate a laser combination for representing target information, thereby realizing the use of laser to deliver instructions or information, and realizing the use of laser communication to establish a communication connection between the first transceiving device 10 and the second transceiving device 20. Since the laser has strong anti-interference ability, the communication device can be effectively prevented from being interfered or taken over, and the cracking difficulty is large, and the security is higher, thereby improving the anti-interference ability and security of the communication device.

[0074] In some embodiments, the wavelengths of the lasers emitted by different laser emitters 30 are different.

[0075] It can be understood that the spectrum chip 40 can determine which laser emitters 30 emit laser according to the wavelengths of the received laser, that is, it can be determined which laser emitters 30 are in a working state. That is, the spectrum chip 40 can distinguish different laser emitters 30 through the wavelength of the laser.

[0076] Specifically, the step of controlling the target laser emitter 30 to be in a working state includes:

[0077] The target laser emitter 30 is controlled to be in a working state, and the light intensity of the laser emitted by at least part of the target laser emitter 30 is changed.

[0078] It can be understood that by changing the light intensity of at least part of the laser emitters 30, the laser combination that can be generated by the plurality of laser emitters 30 can be increased. For example, when the number of laser emitters 30 is n, the number of laser combinations that can be generated by n laser emitters 30 is 2n. When the light intensity of the laser emitter 30 can be changed, assuming that the light intensity of the laser emitter 30 can be switched between the first light intensity and the second light intensity, one laser emitter 30 can have three states of not working, working but emitting laser with the first light intensity, and working but emitting laser with the second light intensity. At this time, the number of laser combinations that can be generated by n laser emitters 30 is 3n.

[0079] Specifically, the step of controlling the target laser emitter 30 to be in a working state includes:

[0080] The target laser emitter 30 is controlled to be in a working state, and the time length of the laser emitted by at least part of the target laser emitter 30 is changed.

[0081] It can be understood that by changing the time length of the laser emitted by at least part of the laser emitters 30, the laser combination that can be generated by the plurality of laser emitters 30 can be increased. For example, when the number of laser emitters 30 is n, the number of laser combinations that can be generated by the n laser emitters 30 is 2n. When the time length of the laser reflected by the laser emitters 30 can be changed, assuming that the time length of the laser emitted by the laser emitters 30 can be switched between 0ms, 10ms, 20ms and 30ms, then one laser emitter 30 can have four states, and then the number of laser combinations that can be generated by the n laser emitters 30 is 4n.

[0082] In some embodiments, before the step of controlling the target laser emitter 30 to be in the working state, the method comprises:

[0083] Obtaining the three-dimensional coordinates of the first transceiver device 10 and the three-dimensional coordinates of the second transceiver device 20;

[0084] Based on the three-dimensional coordinates of the first transceiver device 10 and the three-dimensional coordinates of the second transceiver device 20, adjusting the posture of the second transceiver device 20 so that the spectral chip 40 of the second transceiver device 20 receives the laser emitted by the target laser emitter 30 of the first transceiver device 10.

[0085] It can be understood that before controlling the target laser emitter 30 to emit laser, the three-dimensional coordinates of the first transceiver device 10 and the second transceiver device 20 are obtained, that is, the three-dimensional coordinates of the plurality of laser emitters 30 and the three-dimensional coordinates of the spectral chip 40 are obtained. According to the three-dimensional coordinates of the first transceiver device 10 and the three-dimensional coordinates of the second transceiver device 20, the relative positions of the first transceiver device 10 and the second transceiver device 20 can be determined, and the relative positions of the spectral chip 40 and the target laser can also be determined. Then, according to the three-dimensional coordinates of the first transceiver device 10 and the three-dimensional coordinates of the second transceiver device 20, the posture of the second transceiver device 20 can be adjusted so that the laser emitted by the target laser emitter 30 of the first transceiver device 10 can be transmitted to the spectral chip 40, and the spectral chip 40 can receive the laser emitted by the target laser emitter 30, thereby ensuring the communication stability and communication effect between the first transceiver device 10 and the second transceiver device 20.

[0086] In some embodiments, after the step of controlling the target laser emitter 30 to be in the working state, the method comprises:

[0087] Based on the receiving data of the spectral chip 40, determining the working state of each laser emitter 30;

[0088] Based on the working state of each laser emitter 30, determining the target information.

[0089] It can be understood that after the target laser emitter 30 emits laser, the spectral chip 40 can receive the laser emitted by the target laser emitter 30, and then according to the receiving data of the spectral chip 40, the working state of each laser emitter 30 can be determined, that is, it can be determined whether each laser emitter 30 is in a working state or a non-working state, and then according to the working state of each laser emitter 30, the laser combination generated by the plurality of laser emitters 30 can be known, and then according to the laser combination generated by the plurality of laser emitters 30, the target information can be determined.

[0090] According to the embodiment of the third aspect of the present application, the control method comprises: Figure 6 , the control method comprises:

[0091] Step 401, determining the working state of each laser emitter 30 based on the receiving data of the spectral chip 40;

[0092] Step 402, determining the target information based on the working state of each laser emitter 30.

[0093] It can be understood that after the target laser emitter 30 emits laser, the spectral chip 40 can receive the laser emitted by the target laser emitter 30, and then according to the receiving data of the spectral chip 40, the working state of each laser emitter 30 can be determined, that is, it can be determined whether each laser emitter 30 is in a working state or a non-working state, and then according to the working state of each laser emitter 30, the laser combination generated by the plurality of laser emitters 30 can be known, and then according to the laser combination generated by the plurality of laser emitters 30, the target information can be determined.

[0094] According to the embodiment of the fourth aspect of the present application, the control device and the control method are mutually corresponding. The control device comprises: Figure 7 , the control device comprises:

[0095] The determination module 201 is configured to determine the target laser emitter from the plurality of laser emitters according to the target information.

[0096] The control module 202 is configured to control the target laser emitter to be in a working state, so that the target laser emitter emits laser to the spectral chip.

[0097] According to the embodiment of the fifth aspect of the present application, the control device and the control method are mutually corresponding. The control device comprises: Figure 8As shown, the electronic device can include a processor 310, a communications interface 320, a memory 330, and a communications bus 340, wherein the processor 310, the communications interface 320, and the memory 330 complete communications with each other through the communications bus 340. The processor 310 can invoke a logical instruction in the memory 330 to execute a control method, the method comprising:

[0098] determining, according to the target information, a target laser emitter from the plurality of laser emitters;

[0099] controlling the target laser emitter to be in an active state, so that the target laser emitter emits laser light to the spectrum chip.

[0100] In addition, the logical instruction in the memory 330 described above can be implemented in the form of a software function unit and sold or used as an independent product, which can be stored in a computer readable storage medium. Based on such understanding, the technical solutions of the present application essentially or the part that contributes to the prior art or part of the technical solutions can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a plurality of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute all or part of the steps of the embodiments of the method of the present application. The aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk or an optical disk, and various media that can store program codes.

[0101] On the other hand, the present application also provides a computer program product, the computer program product comprising a computer program stored on a non-transitory computer readable storage medium, the computer program comprising program instructions which, when executed by a computer, cause the computer to perform the control method provided by the above-mentioned methods, the method comprising:

[0102] determining, according to the target information, a target laser emitter from the plurality of laser emitters;

[0103] controlling the target laser emitter to be in an active state, so that the target laser emitter emits laser light to the spectrum chip.

[0104] According to the embodiments of the sixth aspect of the present application, the present application further includes a non-transitory computer readable storage medium having a computer program stored thereon, the computer program being executed by a processor to implement the control method provided by the above-mentioned methods, the method comprising:

[0105] According to the target information, the target laser emitter is determined from the plurality of laser emitters;

[0106] The target laser emitter is controlled to be in an operating state, so that the target laser emitter emits laser to the spectrum chip.

[0107] The apparatus embodiments described above are merely illustrative, wherein the units shown as separate components can or can not be physically separate, and the components shown as units can or can not be physical units, i.e., can be located in one place, or can be distributed to multiple network units. Part or all of the modules can be selected according to actual needs to achieve the purpose of the embodiment scheme. Those skilled in the art can understand and implement without creative labor.

[0108] From the above description of the embodiments, those skilled in the art can clearly understand that the embodiments can be realized by means of software plus necessary general hardware platforms, and of course can also be realized by hardware. Based on such understanding, the above technical solutions, essentially or in other words, the part that contributes to the prior art, can be embodied in the form of a software product, which can be stored in a computer readable storage medium, such as a ROM / RAM, a magnetic disk, an optical disk, etc., and includes a number of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute the methods of the various embodiments or some parts of the embodiments.

[0109] The embodiments of the present application are described in detail above, and the specific examples are applied to the principles and implementation modes of the present application. The above description of the embodiments is only to help understand the method and its core idea of the present application; at the same time, for those skilled in the art, according to the idea of the present application, the specific implementation mode and application range will be changed; in conclusion, the content of the specification should not be understood as a limitation of the present application.

Claims

1. A communication device, characterized by The application relates to a communication device, comprising: a first transceiving device; a second transceiving device; one of the first transceiving device and the second transceiving device is provided with a plurality of laser emitters, and the other of the first transceiving device and the second transceiving device is provided with a spectrum chip, the emission parameters of different laser emitters are different, the laser emitters are used for emitting laser to the spectrum chip, and the spectrum chip receives the laser emitted by the laser emitters to establish a communication connection between the first transceiving device and the second transceiving device.

2. The communication device of claim 1, wherein, The emission parameters include at least one of the wavelength of the emitted laser, the light intensity of the emitted laser and the emission duration.

3. The communication apparatus according to claim 1 or 2, wherein The first transceiving device and the second transceiving device are both provided with a plurality of laser emitters, and the first transceiving device and the second transceiving device are both provided with a spectrum chip, the laser emitters of the first transceiving device are used for emitting laser to the spectrum chip of the second transceiving device, and the laser emitters of the second transceiving device are used for emitting laser to the spectrum chip of the first transceiving device.

4. The communication apparatus according to claim 1 or 2, wherein The plurality of laser emitters are arranged in an array.

5. The communication apparatus according to claim 1 or 2, wherein The number of the spectrum chips is plural, and the plurality of spectrum chips are arranged in an array.

6. The communication device of claim 5, wherein, The plurality of laser emitters and the plurality of spectrum chips are one-to-one corresponding.

7. The communication apparatus according to claim 1 or 2, wherein The first transceiving device is a remote controller, and the second transceiving device is a drone.

8. The communication device of claim 7, wherein, The remote controller comprises a shell and a plurality of laser emitters, the shell is formed with a mounting cavity, and the laser emitters are mounted in the mounting cavity.

9. The communication device of claim 7, wherein, The drone comprises a body, a chip mounting plate and a plurality of spectrum chips, the chip mounting plate is fixed to the bottom or the side wall of the body, and the spectrum chips are connected to the side of the chip mounting plate away from the body.

10. The communication apparatus according to claim 1 or 2, wherein At least one of the first transceiving device and the second transceiving device is provided with a control component, and the control component is used for controlling the work of the laser emitters.