Communication system and communication method
The communication system uses synchronized mid-infrared and near-infrared blinking signals to identify and communicate with the intended vehicle partner, overcoming the challenge of multiple near-infrared interference in vehicle-to-vehicle communication.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-30
- Publication Date
- 2026-03-11
AI Technical Summary
Existing vehicle-to-vehicle communication methods using near-infrared optical signals struggle to identify the intended communication partner when multiple vehicles are emitting near-infrared rays, making effective communication difficult.
A communication system that utilizes mid-infrared and near-infrared blinking signals synchronized in cycle, where a transmitting device transmits mid-infrared and near-infrared blinking signals, and a receiving device captures a moving image to identify the communication partner by detecting synchronized signals, allowing selective reception of near-infrared signals from the intended vehicle.
Enables accurate identification of the communication partner even in environments with multiple near-infrared optical signals, facilitating effective near-infrared communication by distinguishing synchronized signals from nonsynchronized ones.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a communication system and a communication method, and more particularly to a communication system and a communication method used for vehicle-to-vehicle communication. [Background technology]
[0002] BACKGROUND ART Conventionally, a communication system that performs two-way communication between vehicles using optical signals is known (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2020 / 145311 Summary of the Invention [Problem to be solved by the invention]
[0004] For vehicle-to-vehicle communication, a communication method using near-infrared optical signals has been proposed. For example, when a vehicle communicates with a vehicle traveling behind it via near-infrared, if there is only one vehicle traveling behind it, two-way near-infrared communication can be carried out without any problems.
[0005] However, for example, if there are multiple vehicles traveling behind and each vehicle is emitting near-infrared rays, it may be impossible to identify the near-infrared rays from the vehicle with which you want to communicate. If you cannot identify the near-infrared rays from the vehicle with which you want to communicate, it will be difficult to perform vehicle-to-vehicle communication effectively.
[0006] The present invention has been made in consideration of these circumstances, and its purpose is to provide a communication system and a communication method that can suitably perform near-infrared communication with a desired party even in a situation where multiple near-infrared optical signals are flying around in the surrounding area. [Means for solving the problem]
[0007] In order to solve the above problem, one aspect of the present invention provides a communication system for communication between a transmitting device and a receiving device. The transmitting device includes a mid-infrared transmitting unit that transmits a mid-infrared blinking signal toward an area where the receiving device is located, and a near-infrared transmitting unit that transmits a near-infrared blinking signal with approximately the same cycle as the mid-infrared blinking signal. The receiving device includes an imaging unit that captures a moving image within an area that includes the transmitting device, a mid-infrared receiving unit that detects the mid-infrared blinking signal transmitted from the transmitting device, and a near-infrared receiving unit that can selectively receive near-infrared optical signals transmitted from an area in the moving image that is emitting a near-infrared blinking signal with approximately the same cycle as the mid-infrared blinking signal.
[0008] Another aspect of the present invention is a communication method for communicating between a transmitting device and a receiving device, the method including the steps of: transmitting, in the transmitting device, a mid-infrared blinking signal toward an area where the receiving device is located; transmitting, in the transmitting device, a near-infrared blinking signal having substantially the same cycle as the mid-infrared blinking signal; capturing, in the receiving device, a moving image of an area including the transmitting device; detecting, in the receiving device, the mid-infrared blinking signal transmitted from the transmitting device; and enabling, in the receiving device, selective reception of a near-infrared optical signal transmitted from an area emitting a near-infrared blinking signal having substantially the same cycle as the mid-infrared blinking signal. [Effects of the Invention]
[0009] According to the present invention, it is possible to provide a communication system and a communication method that can suitably perform near-infrared communication with a desired party even in a situation where multiple near-infrared optical signals are flying around in the surrounding area. [Brief explanation of the drawings]
[0010] [Figure 1] 1 is a diagram illustrating a communication system according to an embodiment of the present invention. [Figure 2] 1 is a diagram for explaining vehicle-to-vehicle communication to which a communication system according to an embodiment of the present invention is applied; [Figure 3]10 is a flowchart for explaining an operation when starting communication in the communication system according to the present embodiment. [Figure 4] FIG. 1 is a diagram illustrating a first embodiment of an infrared transmitting and receiving device. [Figure 5] 10A and 10B are diagrams for explaining the operation of a near-infrared transmission unit. [Figure 6] 4A and 4B are diagrams for explaining the operation of a near-infrared receiving unit. [Figure 7] FIG. 2 is a diagram illustrating a configuration of a mid-infrared transmission unit. [Figure 8] FIG. 10 is a diagram showing changes in diffraction angle and diffraction efficiency with respect to the angle of incidence. [Figure 9] 10A and 10B are diagrams for explaining the operation of a mid-infrared transmission unit. [Figure 10] 10(a) to 10(f) are diagrams showing time charts for explaining the operation when starting communication in a communication system using the infrared transmitting / receiving device according to the first embodiment as a transmitting device and a receiving device. [Figure 11] FIG. 10 is a diagram illustrating a second embodiment of an infrared transmitting / receiving device. [Figure 12] 12(a) to 12(f) are diagrams showing time charts for explaining the operation when starting communication in a communication system using the infrared transmitting / receiving device 40 according to the second embodiment as a transmitting device and a receiving device. DETAILED DESCRIPTION OF THE INVENTION
[0011] The present invention will be described below based on preferred embodiments with reference to the drawings. The following configurations are for illustrative purposes only to facilitate understanding of the present disclosure, and the scope of the present disclosure is defined solely by the appended claims. Identical or equivalent components and parts shown in each drawing are designated by the same reference numerals, and redundant explanations will be omitted where appropriate. Furthermore, the dimensions of the components in each drawing are enlarged or reduced as appropriate to facilitate understanding. Furthermore, some components that are not important for explaining the embodiments in each drawing are omitted.
[0012] Fig. 1 shows a communication system 10 according to an embodiment of the present invention. As shown in Fig. 1, the communication system 10 includes an infrared transceiver 11A and an infrared transceiver 11B.
[0013] Each of the infrared transceivers 11A and 11B includes an imaging unit 12, a near-infrared transmitter 13, a near-infrared receiver 14, a mid-infrared transmitter 15, a mid-infrared receiver 16, and a control unit 17. The communication system 10 shown in FIG. 1 is a communication system capable of two-way communication using near-infrared rays. That is, the communication system 10 is capable of transmitting near-infrared optical signals from the near-infrared transmitter 13 of the infrared transceiver 11A to the near-infrared receiver 14 of the infrared transceiver 11B, and from the near-infrared transmitter 13 of the infrared transceiver 11B to the near-infrared receiver 14 of the infrared transceiver 11A. The control unit 17 is composed of a CPU, ROM, RAM, a communication interface, etc., and monitors and controls the devices and communicates with each device.
[0014] The imaging unit 12 is constructed and arranged to capture moving images within a range that includes the device of the other party of communication. The imaging unit 12 includes an imaging element and a lens for capturing light into the imaging element. The imaging element used is capable of simultaneously capturing images in the visible light range (wavelengths of approximately 380 nm to 780 nm) and the near-infrared range (wavelengths of approximately 780 nm to 2500 nm). Examples of such imaging elements include a CMOS (Complementary Metal Oxide Semiconductor) image sensor and a CCD (Charge Coupled Device) image sensor.
[0015] The near-infrared transmitting unit 13 is configured to be able to transmit a near-infrared optical signal (wavelength: approximately 780 nm to 2500 nm). The near-infrared transmitting unit 13 may be configured to be able to emit a near-infrared optical signal over a wide range (for example, a range that the imaging unit 12 can capture) that includes the device of the other party of communication. Alternatively, the near-infrared transmitting unit 13 may be configured to be able to selectively emit a near-infrared optical signal to a specific narrow range where the device of the other party of communication is located, within the wide range that the imaging unit 12 can capture.
[0016] The near-infrared receiving unit 14 is configured to be able to receive near-infrared optical signals (wavelength: approximately 780 nm to 2500 nm). The near-infrared transmitting unit 13 is configured to be able to selectively receive near-infrared optical signals transmitted from a specific narrow range within the wide range that the imaging unit 12 can capture.
[0017] The mid-infrared transmitting unit 15 is configured to be able to transmit a mid-infrared optical signal (wavelength: approximately 2500 nm to 8000 nm). The mid-infrared transmitting unit 15 is configured to be able to selectively transmit a mid-infrared optical signal to a specific narrow range where the device of the other party of communication is located, out of the wide range that the imaging unit 12 can capture.
[0018] The mid-infrared receiving unit 16 is configured to be able to receive mid-infrared optical signals (wavelength: approximately 2500 nm to 8000 nm). The mid-infrared receiving unit 16 is configured to be able to receive mid-infrared optical signals emitted from a wide range including the device of the communication partner (for example, a range that can be imaged by the imaging unit 12).
[0019] Hereinafter, an operation when starting communication in the communication system 10 will be described using an example in which the communication system 10 is applied to vehicle-to-vehicle communication. Here, consider the situation shown in FIG. 2. FIG. 2 shows two vehicles, vehicle B and vehicle C, traveling behind vehicle A, and vehicle D traveling to the side of vehicle A. In FIG. 2, vehicles C and D are currently performing two-way communication via near-infrared rays. Vehicles A and B have not yet performed two-way communication via near-infrared rays, and vehicle B wishes to communicate with vehicle A. Vehicle A is equipped with an infrared transceiver 11B, and vehicle B is equipped with an infrared transceiver 11A. In this case, infrared transceiver 11B is the transmitting device, and infrared transceiver 11A is the receiving device.
[0020] FIG. 3 is a flowchart for explaining the operation when starting communication in the communication system 10 according to this embodiment.
[0021] First, the mid-infrared transmission unit 15 of the infrared transceiver 11A transmits a mid-infrared blinking signal for a predetermined period toward the area where the infrared transceiver 11B is located (S10). In the example of FIG. 2, a mid-infrared blinking signal is transmitted from vehicle B toward vehicle A. The blinking signal is a signal that alternates between a high state where the optical signal intensity is high and a low state where the optical signal intensity is low at a predetermined cycle. The frequency of the blinking signal is desirably sufficiently slower than the frame rate (e.g., 30 fps) of the video captured by the imaging unit 12 so that blinking can be accurately detected from the video, and may be, for example, 15 Hz.
[0022] Simultaneously with S10, the near-infrared transmission unit 13 of the infrared transceiver 11A transmits a near-infrared blinking signal synchronized with the mid-infrared blinking signal (S12). In the example of Fig. 2, a near-infrared blinking signal approximately synchronized with the mid-infrared blinking signal is transmitted from vehicle B to vehicle A. Here, "the two signals are approximately synchronized" means that the two signals have approximately the same period and the rise or fall timings are approximately the same.
[0023] Before starting communication, the infrared transmitting / receiving device 11B mounted on vehicle A cannot identify which device (vehicle) it will receive an optical signal from. The imaging unit 12 of the infrared transmitting / receiving device 11B captures a wide-area moving image including the transmitting device (S14). To reliably detect the optical signal from the transmitting device, it is desirable for the imaging unit 12 to capture images at all times. The captured moving image contains visible light images and near-infrared light images. Figure 2 shows an example of an image captured by the imaging unit 12 of vehicle A. This captured image captures vehicles B and C located behind vehicle A (visible light images), and also captures near-infrared light emitted from vehicles B and C (near-infrared image).
[0024] From the moving image acquired by the imaging unit 12, the infrared transceiver 11B of vehicle A can identify the two vehicles (vehicle B and vehicle C) that are emitting near-infrared rays, but cannot identify which of vehicle B and vehicle C is the communication partner from the moving image alone. Therefore, in the communication system 10 according to this embodiment, the communication partner device is identified using mid-infrared rays.
[0025] The mid-infrared receiving unit 16 of the infrared transceiver 11B mounted on vehicle A detects the mid-infrared blinking signal transmitted from the mid-infrared transmitting unit 15 of the infrared transceiver 11A (S16). The period of the detection signal from the mid-infrared receiving unit 16 of vehicle A is the same as the period of the mid-infrared blinking signal from vehicle B.
[0026] Next, the control unit 17 of the infrared transmitting / receiving device 11B analyzes the moving image captured by the imaging unit 12 and identifies an area in the moving image that emits a near-infrared blinking signal that is approximately synchronized with the mid-infrared blinking signal (S18). The device located in this area becomes the communication partner. As described above, the mid-infrared and near-infrared blinking signals transmitted from vehicle B, the transmitting side, are approximately synchronized. Therefore, the mid-infrared and near-infrared detection signals in vehicle A, the receiving side, are also approximately synchronized. By identifying an area in the moving image that emits light approximately synchronized with the mid-infrared blinking signal, it is possible to identify the communication partner.
[0027] In the example of Fig. 2, the blinking signal of near-infrared rays emitted in the area of vehicle B is approximately synchronized with the blinking signal of mid-infrared rays, but the blinking signal of near-infrared rays emitted in the area of vehicle C is not synchronized with the blinking signal of mid-infrared rays. Therefore, the infrared transceiver 11B of vehicle A can identify the infrared transceiver 11A of vehicle B as the communication partner. After the communication partner has been identified, the mid-infrared transmitter 15 of the transmitting device (the infrared transceiver 11A of vehicle B) may stop transmitting mid-infrared rays.
[0028] After S18, the near-infrared receiving unit 14 of the infrared transceiver 11B is set to selectively receive near-infrared optical signals transmitted from the area identified in S18 (S20). In the example of FIG. 2, the near-infrared receiving unit 14 of vehicle A is set to selectively receive near-infrared light signals from vehicle B. In the embodiment described below, this setting is made for a digital mirror device (DMD).
[0029] After S20, the near-infrared transmitting unit 13 of the infrared transceiver 11A transmits a desired near-infrared optical signal to the near-infrared receiving unit 14 of the infrared transceiver 11B (S22). In the example of Fig. 2, the desired near-infrared optical signal is transmitted from vehicle B to vehicle A.
[0030] The above describes the transmission of a near-infrared optical signal from infrared transceiver 11A to infrared transceiver 11B, but after the communication partners have been identified, bidirectional near-infrared communication can be performed using each other's near-infrared transmitting unit 13 and near-infrared receiving unit 14.
[0031] Thus, according to the communication system 10 of this embodiment, even in a situation where multiple near-infrared optical signals are flying around in the surrounding area, it is possible to accurately identify the communication partner by using mid-infrared rays, and near-infrared communication can be carried out effectively.
[0032] In the above-described embodiment, the transmitting device transmits mid-infrared and near-infrared blinking signals that are approximately synchronized, and the receiving device identifies a device located in an area emitting the near-infrared blinking signal as a communication partner if the mid-infrared and near-infrared blinking signals are approximately synchronized. In another embodiment, the transmitting device transmits mid-infrared and near-infrared blinking signals with approximately the same period, and the receiving device may identify a device located in an area emitting the near-infrared blinking signal as a communication partner if the received mid-infrared and near-infrared blinking signals have approximately the same period. If there is no device emitting near-infrared blinking signals with approximately the same period in the vicinity, this other embodiment also makes it possible to accurately identify the communication partner. The event of "mid-infrared and near-infrared blinking signals being approximately synchronized" is included in the event of "the periods of the mid-infrared and near-infrared blinking signals being approximately the same."
[0033] [First Example] 4 shows a first embodiment of an infrared transmitter / receiver. The infrared transmitter / receiver 40 shown in FIG. 4 can be used as the infrared transmitter / receivers 11A and 11B in the communication system 10 shown in FIG.
[0034] As shown in Figure 4, the infrared transmitting and receiving device 40 includes a near-infrared laser 20, a mid-infrared laser 21, a digital mirror device (DMD) 22, a near-infrared detector 23, a near-infrared lens 24, a mid-infrared lens 25, a reflector 26, a light shielding plate 27, an imaging unit 12, a mid-infrared receiving unit 16, and a control unit 17.
[0035] The near-infrared laser 20, the DMD 22, the near-infrared lens 24, and the light shielding plate 27 constitute the near-infrared transmitting unit 13. FIG.
[0036] The near-infrared laser 20 emits near-infrared laser light toward the DMD 22. The DMD 22 has a large number of movable micromirrors (hundreds of thousands to millions) arranged in a grid pattern on a substrate 28. The size of each micromirror ranges from about several μm to about 10 μm. Figure 5 shows three micromirrors 29a, 29b, and 29c. Each micromirror can be tilted by +12° or −12° around a predetermined axis and can have two states: “on” (+12°) and “off” (−12°). In Figure 5, the two micromirrors 29a and 29b on the right are in the on state, and the single micromirror 29c on the left is in the off state. The micromirrors are controlled to be turned on and off by the control unit 17.
[0037] Near-infrared laser light from near-infrared laser 20 is incident on DMD 22 at an incident angle of 24°. When the micromirrors are on (micromirrors 29a and 29b), the laser light from near-infrared laser 20 is reflected in the normal direction of DMD 22 and emitted to the outside via near-infrared lens 24. On the other hand, when the micromirrors are off (micromirror 29c), the laser light from near-infrared laser 20 is reflected at an angle of 48° relative to the normal direction of DMD 22. This light is absorbed by light shielding plate 27 and is not emitted to the outside. By turning on only the micromirrors corresponding to the area where the communication partner is located (+12°), it is possible to selectively transmit near-infrared laser light only to the communication partner. In addition, by rapidly switching the micromirrors on and off, it is possible to modulate the near-infrared laser light from near-infrared laser 20 and transmit a near-infrared blinking signal or any digital signal.
[0038] The DMD 22, near-infrared lens 24, and near-infrared detector 23 constitute the near-infrared receiving unit 14. FIG. 6 is a diagram illustrating the operation of the near-infrared receiving unit 14. Near-infrared light from a communication partner is incident on the DMD 22 from its normal direction via the near-infrared lens 24. When the micromirrors are in the off state (micromirrors 29a and 29b), near-infrared light incident on the DMD 22 from its normal direction is reflected at an angle of 24° relative to the normal direction and detected by the near-infrared detector 23. On the other hand, when the micromirrors are in the on state (micromirror 29c), near-infrared light incident on the DMD 22 from the normal direction is reflected at an angle of 24° in the direction opposite to the near-infrared detector 23 and is not detected by the near-infrared detector 23. By turning off only the micromirrors corresponding to the area where the communication partner is located (-12°), it is possible to selectively receive only near-infrared light from the communication partner. A signal detected by the near-infrared detector 23 is sent to the control unit 17.
[0039] The mid-infrared laser 21, DMD 22, reflector 26, and mid-infrared lens 25 constitute the mid-infrared transmitter 15. Fig. 7 is a diagram for explaining the configuration of the mid-infrared transmitter 15. The DMD 22 functions as a reflecting device for near-infrared light, but functions as a diffractive device for mid-infrared light whose wavelength is close to the pitch of the micromirrors.
[0040] The mid-infrared laser 21 emits mid-infrared laser light (wavelength: approximately 2500 nm to 8000 nm). The mid-infrared laser 21 is disposed so that the mid-infrared laser light is incident on the DMD 22 at an incident angle θi. The DMD 22 diffracts the incident mid-infrared laser light and emits it in the direction of a diffraction angle θr with high diffraction efficiency. The mid-infrared laser light emitted from the DMD 22 is reflected by a reflector 26 and then emitted to the outside through a mid-infrared lens 25. The reflector 26 and the mid-infrared lens 25 constitute a light-guiding optical system that directs the mid-infrared laser light diffracted by the DMD 22 to a receiving device.
[0041] When the diagonal pitch of the micromirrors in the DMD 22 is 10.8 μm, the diffraction angle θr [μm] can be expressed by the following equation (1).
number
number
number
[0042] Figure 8 shows the change in diffraction angle and diffraction efficiency with respect to the angle of incidence. Here, the wavelength λ of the mid-infrared laser light is set to 5 μm, and the change in diffraction angle θr [°], diffraction efficiency η (ω = 12°), and diffraction efficiency η (ω = -12°) with respect to the angle of incidence θi are shown based on the above equations (1) to (3). Figure 8 shows that when the angle of incidence θi of the mid-infrared laser light is set to 15°, the diffraction efficiency η is 0.83 when the diffraction angle θr is 66° and the tilt angle of the micromirror is +12°, and the diffraction efficiency η is 0.52 when the tilt angle of the micromirror is -12°.
[0043] FIG. 9 is a diagram illustrating the operation of the mid-infrared transmitter 15. Here, the incident angle θi of the mid-infrared laser 21 on the DMD 22 is set to 15°. In this case, it can be seen from FIG. 8 that the diffraction efficiency η is 0.83 when the diffraction angle θr is 66° and the micromirror tilt angle ω is +12°, and the diffraction efficiency η is 0.52 when the micromirror tilt angle ω is -12°. In FIG. 9, the micromirrors 29a and 29b corresponding to the area where the communication partner is located are in the ON state (+12°), and the other micromirror 29c is in the OFF state (-12°). Diffracted light is emitted from the ON-state micromirrors 29a and 29b in the direction of a diffraction angle θr = 66° with a diffraction efficiency η = 0.83. On the other hand, diffracted light is emitted from the OFF-state micromirror 29c in the direction of a diffraction angle θr = 66° with a diffraction efficiency η = 0.52. In this way, by turning on only the micromirrors corresponding to the area where the communication partner is located, it is possible to selectively transmit high-intensity mid-infrared laser light only to the desired communication partner. By switching the micromirrors on and off at high speed, it is possible to modulate the mid-infrared laser light and transmit a mid-infrared blinking signal.
[0044] As can be seen from Figure 4, the infrared transceiver 40 according to the first embodiment uses a common DMD 22 for both the near-infrared transmitter and the mid-infrared transmitter. Therefore, by simultaneously irradiating the DMD 22 with mid-infrared laser light and near-infrared laser light and then rapidly switching on / off the micromirror corresponding to the communication partner, it is possible to transmit substantially synchronized mid-infrared and near-infrared blinking signals to the desired communication partner. Using a common DMD 22 reduces costs and makes it extremely easy to generate accurately synchronized blinking signals.
[0045] The mid-infrared receiving unit 16 includes a light receiving element and a lens, and is configured to be able to receive mid-infrared optical signals (wavelength: approximately 2500 nm to 8000 nm). As can be seen from FIG. 4, the mid-infrared receiving unit 16 is not associated with the DMD 22, and is arranged to be able to receive mid-infrared optical signals emitted from a wide range including the device of the other party of communication (for example, a range that the imaging unit 12 can capture). The signal detected by the mid-infrared receiving unit 16 is sent to the control unit 17.
[0046] 10(a) to 10(f) are time charts for explaining the operation when starting communication in a communication system using the infrared transceiver 40 according to the first embodiment as a transmitting device and a receiving device. Here again, assume a situation in which four vehicles, A, B, C, and D shown in FIG. 2, are traveling. Vehicles C and D are performing two-way communication using near-infrared rays, and vehicle C is emitting a near-infrared optical signal toward a wide area in front of itself. The following describes a case in which vehicles A and B are equipped with the infrared transceiver 40 shown in FIG. 4, and vehicle B is calling vehicle A to start communication.
[0047] FIG. 10(a) shows a mid-infrared blinking signal transmitted from vehicle B to vehicle A. FIG. 10(b) shows a near-infrared blinking signal transmitted from vehicle B to vehicle A. In the infrared transceiver 40 mounted on vehicle B, the mid-infrared laser light and near-infrared laser light are simultaneously irradiated onto the DMD 22, and the micromirror corresponding to the area where vehicle A is located is switched on and off at high speed for a predetermined period of time. This makes it possible to transmit mid-infrared and near-infrared blinking signals that are approximately synchronized, as shown in FIGS. 10(a) and 10(b).
[0048] 10(c) shows the signal detected by the mid-infrared receiving unit 16 of vehicle A. As shown in FIG. 10(c), the signal detected by the mid-infrared receiving unit 16 of vehicle A is a square wave signal that alternates between a high-intensity high state and a low-intensity low state at a predetermined cycle. The cycle of the signal detected by the mid-infrared receiving unit 16 of vehicle A is the same as the cycle of the mid-infrared blinking signal from vehicle B.
[0049] Fig. 10(d) shows signals in two regions in a moving image captured by the imaging unit 12 of vehicle A. In Fig. 10(d), the solid line indicates a blinking near-infrared signal emitted in the region of vehicle B in the moving image, and the dashed line indicates a near-infrared optical signal emitted by vehicle C in the moving image. Since vehicle C is closer to vehicle A than vehicle B, the intensity of the near-infrared light from vehicle C is higher than that of vehicle B in Fig. 10(d).
[0050] As described above, the mid-infrared and near-infrared blinking signals transmitted from vehicle B, the transmitting side, are approximately synchronized. Therefore, the mid-infrared and near-infrared detection signals should also be approximately synchronized in vehicle A, the receiving side. As shown in FIG. 10(d), the near-infrared blinking signal (solid line) in the area of vehicle B in the moving image is approximately synchronized with the mid-infrared detection signal shown in FIG. 10(c). On the other hand, the near-infrared optical signal (dashed line) in the area of vehicle C in the moving image is not synchronized with the mid-infrared detection signal shown in FIG. 10(c). Based on this synchronized detection, the control unit 17 of vehicle A identifies vehicle B as the communication partner. Thereafter, the control unit 17 controls the micromirrors of the DMD 22 so that the near-infrared optical signal transmitted from vehicle B can be selectively received. This allows the near-infrared optical signal from vehicle B to be received by the near-infrared detector 23.
[0051] Here, we will explain what kind of signal is detected at vehicle D. Figure 10(e) shows the mid-infrared signal detected at vehicle D. In the DMD 22 of vehicle B, the micromirror corresponding to the area where vehicle D is located is in the off state. Therefore, diffracted light with a constant intensity is emitted from vehicle B toward vehicle D with a diffraction efficiency η = 0.52. Therefore, the mid-infrared signal detected at vehicle D is a signal consisting of only a DC component, as shown in Figure 10(e).
[0052] FIG. 10(f) shows signals in two regions in a moving image captured by vehicle D. In FIG. 10(f), the solid line indicates a near-infrared blinking signal emitted in the region of vehicle B in the moving image, and the dashed line indicates a near-infrared optical signal emitted by vehicle C in the moving image. Because vehicle B transmits near-infrared rays only toward vehicle A, vehicle D does not detect the near-infrared rays emitted in the region of vehicle B (signal strength is zero). On the other hand, because vehicle D is performing near-infrared communication with vehicle C, vehicle D detects the near-infrared optical signal emitted in the region of vehicle C.
[0053] As can be seen from Figures 10(e) and 10(f), vehicle D does not receive synchronized mid-infrared and near-infrared blinking signals from vehicle B. Therefore, vehicle D will not mistakenly identify vehicle B as the communication partner.
[0054] [Second Example] 11 shows a second embodiment of the infrared transmitter / receiver. The infrared transmitter / receiver 50 shown in FIG. 11 can also be used as the infrared transmitter / receivers 11A and 11B in the communication system 10 shown in FIG.
[0055] The infrared transmitting / receiving device 50 shown in Fig. 11 differs from the infrared transmitting / receiving device 40 shown in Fig. 4 in the configuration of the near-infrared transmitting unit 13. The other configurations are the same as those of the infrared transmitting / receiving device 40, so a description thereof will be omitted.
[0056] In the infrared transceiver 50 according to the second embodiment, the near-infrared transmitter 13 is not involved in the DMD 22 and is configured to emit near-infrared optical signals over a wide range (for example, the range that the imaging unit 12 can capture) including the device of the other party of communication. The near-infrared transmitter 13 includes a near-infrared light source that emits near-infrared rays and a lens that expands the light from the light source. This near-infrared light source does not need to be a laser light source, but may be an incoherent light source. By providing a modulation signal from the control unit 17 to the light source of the near-infrared transmitter 13, it is possible to emit a near-infrared blinking signal or a desired near-infrared optical signal.
[0057] 12(a) to 12(f) are time charts for explaining the operation when starting communication in a communication system using the infrared transceiver 50 according to the second embodiment as a transmitting device and a receiving device. Here again, assume a situation in which four vehicles A, B, C, and D shown in FIG. 2 are traveling. Vehicles C and D are performing two-way communication using near-infrared rays, and vehicle C is emitting a near-infrared optical signal toward a wide area in front of itself. The following describes a case in which vehicles A and B are equipped with the infrared transceiver 50 shown in FIG. 11, and vehicle B is calling vehicle A to start communication.
[0058] FIG. 12(a) shows a mid-infrared blinking signal transmitted from vehicle B to vehicle A. FIG. 12(b) shows a near-infrared blinking signal transmitted from vehicle B to vehicle A. In the infrared transceiver 50 mounted on vehicle B, while irradiating the DMD 22 with mid-infrared laser light, the control unit 17 switches the micromirrors corresponding to the area where vehicle A is located on and off at high speed for a predetermined period of time. This causes the mid-infrared blinking signal to be transmitted (FIG. 12(a)). At the same time, the control unit 17 sends a modulated signal to the near-infrared transmitter 13 that is approximately synchronized with the on / off switching of the micromirrors. This causes the near-infrared blinking signal to be transmitted that is approximately synchronized with the mid-infrared blinking signal (FIG. 12(b)).
[0059] 12(c) shows the signal detected by the mid-infrared receiving unit 16 of vehicle A. As shown in FIG. 12(c), the signal detected by the mid-infrared receiving unit 16 of vehicle A is a square wave signal that alternates between a high-intensity high state and a low-intensity low state at a predetermined cycle. The cycle of the signal detected by the mid-infrared receiving unit 16 of vehicle A is the same as the cycle of the mid-infrared blinking signal from vehicle B.
[0060] Fig. 12(d) shows signals in two regions in a moving image captured by the imaging unit 12 of vehicle A. In Fig. 12(d), the solid line indicates a blinking near-infrared signal emitted in the region of vehicle B in the moving image, and the dashed line indicates a near-infrared optical signal emitted by vehicle C in the moving image. Since vehicle C is closer to vehicle A than vehicle B, the intensity of the near-infrared light from vehicle C is higher than that of vehicle B in Fig. 12(d).
[0061] As described above, the mid-infrared and near-infrared blinking signals transmitted from vehicle B, the transmitting side, are approximately synchronized. Therefore, the mid-infrared and near-infrared detection signals should also be approximately synchronized in vehicle A, the receiving side. As shown in FIG. 12(d), the near-infrared blinking signal (solid line) in the area of vehicle B in the moving image is approximately synchronized with the mid-infrared detection signal shown in FIG. 12(c). On the other hand, the near-infrared optical signal (dashed line) in the area of vehicle C in the moving image is not synchronized with the mid-infrared detection signal shown in FIG. 12(c). Based on this synchronized detection, the control unit 17 of vehicle A identifies vehicle B as the communication partner. Thereafter, the control unit 17 controls the micromirrors of the DMD 22 so that the near-infrared optical signal transmitted from vehicle B can be selectively received. This allows the near-infrared optical signal from vehicle B to be received by the near-infrared detector 23.
[0062] Here, we will explain what kind of signal is detected at vehicle D. Figure 12(e) shows the mid-infrared signal detected at vehicle D. In the DMD 22 of vehicle B, the micromirror corresponding to the area where vehicle D is located is in the off state. Therefore, diffracted light with a constant intensity is emitted from vehicle B toward vehicle D with a diffraction efficiency η = 0.52. Therefore, the mid-infrared signal detected at vehicle D is a signal consisting of only a DC component, as shown in Figure 12(e).
[0063] FIG. 12(f) shows signals in two regions in a moving image captured by vehicle D. In FIG. 12(f), the solid line indicates a near-infrared blinking signal emitted in the region of vehicle B in the moving image, and the dashed line indicates a near-infrared optical signal emitted by vehicle C in the moving image. In this second embodiment, vehicle B emits a near-infrared optical signal over a wide area in front of the vehicle, so vehicle D also detects the near-infrared blinking signal emitted in the region of vehicle B. Furthermore, vehicle D is performing near-infrared communication with vehicle C, so vehicle D detects the near-infrared optical signal emitted in the region of vehicle C.
[0064] 12(e) and 12(f), vehicle D receives a near-infrared blinking signal from vehicle B, but does not receive a mid-infrared blinking signal synchronized with the near-infrared blinking signal. Therefore, vehicle D will not mistakenly identify vehicle B as the communication partner.
[0065] The infrared transceiver 50 shown in FIG. 11 has the advantage of being able to easily measure distance without requiring any additional components. When measuring distance, first, the micromirrors of the DMD 22 are controlled so that the near-infrared detector 23 detects only near-infrared light from the area to be measured. Next, the near-infrared transmitter 13 is caused to emit light instantaneously. This light is reflected from the object to be measured and detected by the near-infrared detector 23. The distance to the object to be measured can be measured from the difference between the emission timing of the near-infrared transmitter 13 and the reception timing of the near-infrared detector 23.
[0066] The present invention has been described above based on the embodiments. These embodiments are merely examples, and it will be understood by those skilled in the art that various modifications are possible in the combination of each component and each treatment process, and that such modifications are also within the scope of the present invention. [Explanation of symbols]
[0067] 10 Communication system, 11A, 11B, 40, 50 Infrared transmitting / receiving device, 12 Imaging unit, 13 Near-infrared transmitting unit, 14 Near-infrared receiving unit, 15 Mid-infrared transmitting unit, 16 Mid-infrared receiving unit, 17 Control unit, 20 Near-infrared laser, 21 Mid-infrared laser, 22 DMD, 23 Near-infrared detector, 24 Near-infrared lens, 25 Mid-infrared lens, 26 Reflector, 27 Shading plate.
Claims
1. A communication system for communicating between a transmitting device and a receiving device, The transmitting device a mid-infrared transmitting unit that transmits a mid-infrared blinking signal only toward the area where the receiving device is located; a near-infrared transmitting unit that transmits a near-infrared blinking signal substantially synchronized with the mid-infrared blinking signal, The receiving device an imaging unit that captures a moving image of an area including the transmitting device; a mid-infrared receiving unit that detects the mid-infrared blinking signal transmitted from the transmitting device; a near-infrared receiving unit capable of selectively receiving near-infrared optical signals transmitted from an area in the moving image that is emitting a near-infrared blinking signal that is approximately synchronized with the mid-infrared blinking signal, when the near-infrared blinking signals are not emitted from a plurality of areas in the moving image; A communication system comprising:
2. The mid-infrared transmitting unit is a mid-infrared laser that emits mid-infrared laser light; a digital mirror device in which a plurality of micromirrors that can be switched on / off are arranged in an array, the digital mirror device diffracting the mid-infrared laser light from the mid-infrared laser; a light-guiding optical system that directs the mid-infrared laser light diffracted by the digital mirror device toward an area that includes the receiving-side device; The communication system described in claim 1, characterized in that the digital mirror device is capable of selectively transmitting a blinking signal of mid-infrared laser light only toward the area where the receiving device is located by alternately switching on and off the micromirror corresponding to the area where the receiving device is located.
3. the near-infrared transmission unit includes a near-infrared laser that emits near-infrared laser light, The communication system described in claim 2, characterized in that the digital mirror device is capable of selectively transmitting a blinking signal of near-infrared laser light only toward the area where the receiving device is located by alternately switching on and off the micromirror corresponding to the area where the receiving device is located.
4. The communication system according to claim 2, wherein the near-infrared transmitting unit includes a near-infrared light source that emits near-infrared rays and is capable of transmitting a near-infrared blinking signal to an area including an area in which the receiving device is located.
5. A communication method for communicating between a sending device and a receiving device, comprising: a step of transmitting a mid-infrared blinking signal in the transmitting device only toward an area in which the receiving device is located; transmitting, in the transmitting device, a blinking signal of near-infrared light substantially synchronized with the blinking signal of mid-infrared light; capturing a moving image in a range including the transmitting device in the receiving device; detecting, in the receiving device, the mid-infrared blinking signal transmitted from the transmitting device; a step in the receiving device, when substantially synchronized near-infrared blinking signals are not emitted from a plurality of regions in the moving image, of selectively receiving near-infrared optical signals transmitted from a region in the moving image that is emitting the near-infrared blinking signal substantially synchronized with the mid-infrared blinking signal; A communication method comprising:
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