WO2016162971A1 - 画像通信システム、画像受信装置、画像送信装置、画像受信方法、画像送信方法、およびプログラム - Google Patents
画像通信システム、画像受信装置、画像送信装置、画像受信方法、画像送信方法、およびプログラム Download PDFInfo
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- WO2016162971A1 WO2016162971A1 PCT/JP2015/060962 JP2015060962W WO2016162971A1 WO 2016162971 A1 WO2016162971 A1 WO 2016162971A1 JP 2015060962 W JP2015060962 W JP 2015060962W WO 2016162971 A1 WO2016162971 A1 WO 2016162971A1
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- 238000004891 communication Methods 0.000 title claims abstract description 1176
- 230000005540 biological transmission Effects 0.000 title claims abstract description 193
- 238000000034 method Methods 0.000 title claims abstract description 183
- 238000012790 confirmation Methods 0.000 claims abstract description 255
- 238000001514 detection method Methods 0.000 claims abstract description 141
- 230000008569 process Effects 0.000 claims abstract description 119
- 238000012545 processing Methods 0.000 claims description 85
- 238000003384 imaging method Methods 0.000 claims description 36
- 230000008859 change Effects 0.000 description 24
- 238000012986 modification Methods 0.000 description 22
- 230000004048 modification Effects 0.000 description 22
- 238000012544 monitoring process Methods 0.000 description 17
- 230000004044 response Effects 0.000 description 13
- 238000010586 diagram Methods 0.000 description 11
- 230000006870 function Effects 0.000 description 8
- 239000013589 supplement Substances 0.000 description 2
- 230000006835 compression Effects 0.000 description 1
- 238000007906 compression Methods 0.000 description 1
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- 238000000060 site-specific infrared dichroism spectroscopy Methods 0.000 description 1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/02—Selection of wireless resources by user or terminal
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S7/00—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
- G01S7/02—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S13/00
- G01S7/021—Auxiliary means for detecting or identifying radar signals or the like, e.g. radar jamming signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N21/00—Selective content distribution, e.g. interactive television or video on demand [VOD]
- H04N21/20—Servers specifically adapted for the distribution of content, e.g. VOD servers; Operations thereof
- H04N21/25—Management operations performed by the server for facilitating the content distribution or administrating data related to end-users or client devices, e.g. end-user or client device authentication, learning user preferences for recommending movies
- H04N21/266—Channel or content management, e.g. generation and management of keys and entitlement messages in a conditional access system, merging a VOD unicast channel into a multicast channel
- H04N21/2662—Controlling the complexity of the video stream, e.g. by scaling the resolution or bitrate of the video stream based on the client capabilities
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/14—Spectrum sharing arrangements between different networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/02—Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
- H04W84/10—Small scale networks; Flat hierarchical networks
- H04W84/12—WLAN [Wireless Local Area Networks]
Definitions
- the present invention relates to an image communication system, an image reception device, an image transmission device, an image reception method, an image transmission method, and a program.
- 5GHz band wireless LAN (Local Area Network) has more communication channels than 2.4GHz band wireless LAN.
- 19 communication channels can be used.
- the frequencies do not overlap between the communication channels. For this reason, interference between each communication channel and an adjacent communication channel hardly occurs. Therefore, the 5 GHz band wireless LAN is advantageous for image transmission.
- W53 and W56 which are part of the 5 GHz band, are frequency bands used by weather radar and the like. In these frequency bands, an interference avoidance technique called DFS (Dynamic Frequency Selection) is required in order to avoid interference with the radar.
- DFS Dynamic Frequency Selection
- the operation by DFS includes CAC (Channel Availability Check) and ISM (In Service Monitoring).
- CAC Channel Availability Check
- ISM In Service Monitoring
- CAC a communication channel is continuously monitored for a predetermined time before using the communication channel. If the CAC confirms that no radar radio waves are detected, the monitored communication channel can be used. Radar radio waves must be detected not only before the communication channel is used but also when the communication channel is being used.
- ISM the communication channel in use is continuously monitored.
- the communication channel in use is changed by DFS. Also, transmission is stopped on the communication channel used by DFS.
- image transmission stops when a radar radio wave is detected and DFS operates.
- Patent Document 1 A technique for avoiding stoppage of image transmission by DFS is disclosed in Patent Document 1.
- a radar radio wave is detected during communication, a communication channel for transmitting real-time data is changed. At this time, a communication channel that does not possibly interfere with the radar is selected.
- W52 which is part of the 5 GHz band, is a band that is not used by the radar.
- the number of communication channels belonging to W52 is small. For this reason, it is expected that the communication channels belonging to W52 are crowded.
- Patent Document 1 when the changed communication channel is busy, there is a possibility that the image transmission is stopped by continuing to use the communication channel.
- the present invention relates to an image communication system, an image reception device, an image transmission device, an image reception method, and an image transmission method capable of continuing image transmission when radar radio waves are detected in a communication channel used for image transmission. And to provide a program.
- the image communication system includes an image transmission device and an image reception device.
- the image transmission device includes a transmission-side wireless communication unit that transmits image data by radio waves and can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- the image receiving apparatus includes a reception-side wireless communication unit that receives the image data transmitted by the transmission-side wireless communication unit by radio waves. At least one of the image transmitting device and the image receiving device performs a radar radio wave detection process in a communication channel that can be used for communication of the image data by the transmitting side wireless communication unit and the receiving side wireless communication unit.
- a radar detection unit is provided.
- At least one of the image transmission device and the image reception device is a channel for confirming whether or not a communication channel is usable by continuously executing the detection processing by the radar detection unit for a predetermined time. It has a channel usage confirmation unit that performs usage confirmation.
- the transmission-side wireless communication unit and the reception-side wireless communication unit are configured to cause the radar detection unit to transmit the radar in the first communication channel when the image data communication is performed using the first communication channel.
- the communication of the image data using the first communication channel is stopped within a predetermined period from the time when the radio wave is detected.
- the channel use confirmation unit executes the channel use confirmation using a third communication channel.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- the transmission side wireless communication unit and the reception side wireless communication unit start communication of the image data using a second communication channel within the predetermined period from the time point when the radio wave of the radar is detected. .
- the second communication channel is a communication channel that is not used by the radar.
- the transmission side wireless communication unit and the reception side wireless communication unit stop communication of the image data using the second communication channel after the channel use confirmation using the third communication channel is completed. To do.
- the transmission-side wireless communication unit and the reception-side wireless communication unit start communication of the image data using the third communication channel after the channel use confirmation using the third communication channel is completed. To do.
- At least one of the image transmission device and the image reception device communicates the image data using the first communication channel.
- a channel quality confirmation unit for confirming the quality of a plurality of communication channels different from the first communication channel before the channel use confirmation in the third communication channel is started. Also good.
- At least one of the first process and the second process may be executed. In the first process, a communication channel having a relatively good quality among the plurality of communication channels whose quality is confirmed by the channel quality confirmation unit is set as the third communication channel. In the second process, a communication channel having a relatively good quality among the plurality of communication channels whose quality is confirmed by the channel quality confirmation unit is set as the second communication channel.
- the transmission-side wireless communication unit may include a first transmission-side wireless circuit and a second transmission-side wireless circuit.
- the reception-side radio communication unit may include a first reception-side radio circuit and a second reception-side radio circuit.
- the first transmitting radio circuit and the first receiving radio circuit may communicate the image data using the first communication channel.
- the channel use confirmation unit may execute the channel use confirmation using the third communication channel when communication of the image data using the first communication channel is performed.
- the channel use confirmation unit may stop the channel use confirmation using the third communication channel within a transmission blanking period within the predetermined period from the time point when the radio wave of the radar is detected. .
- the transmission blanking period is a period from the time when communication of the image data of one frame is completed to the time when communication of the image data of the next frame of the one frame may be started.
- the third communication channel set in the second transmission side radio circuit or the second reception side radio circuit is used.
- the third communication channel may be set in the first transmitting radio circuit or the first receiving radio circuit before the time when the channel use confirmation is stopped.
- the channel use confirmation unit is configured to perform the channel use confirmation using the third communication channel set in the second transmission-side radio circuit or the second reception-side radio circuit before the time when the channel use confirmation is stopped.
- the channel use confirmation using the third communication channel set in the first transmitter radio circuit or the first receiver radio circuit may be started.
- the image receiving apparatus includes a receiving-side wireless communication unit, a radar detection unit, and a channel use confirmation unit.
- the reception-side wireless communication unit receives image data by radio waves.
- the receiving-side wireless communication unit can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- the radar detection unit executes radar radio wave detection processing in a communication channel that can be used for communication of the image data by the reception-side wireless communication unit.
- the channel use confirmation unit performs channel use confirmation to confirm whether or not a communication channel is usable by continuously executing the detection process by the radar detection unit for a predetermined time.
- the reception-side wireless communication unit is a time point when the radar detection unit detects the radar radio wave in the first communication channel when the image data communication using the first communication channel is performed. The communication of the image data using the first communication channel is stopped within a predetermined period from.
- the channel use confirmation unit executes the channel use confirmation using a third communication channel.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- the reception-side wireless communication unit starts communication of the image data using the second communication channel within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the reception-side wireless communication unit stops communication of the image data using the second communication channel after the channel use confirmation using the third communication channel is completed.
- the reception-side wireless communication unit starts communication of the image data using the third communication channel after the channel use confirmation using the third communication channel is completed.
- the image transmission device includes a transmission-side wireless communication unit, a radar detection unit, and a channel use confirmation unit.
- the transmission-side wireless communication unit transmits image data by radio waves.
- the transmitting side wireless communication unit can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- the radar detection unit executes radar radio wave detection processing in a communication channel that can be used for communication of the image data by the transmission-side wireless communication unit.
- the channel use confirmation unit performs channel use confirmation to confirm whether or not a communication channel is usable by continuously executing the detection process by the radar detection unit for a predetermined time.
- the transmission-side wireless communication unit is a point in time when the radar detection unit detects the radio wave in the first communication channel by the radar detection unit when communication of the image data using the first communication channel is performed.
- the communication of the image data using the first communication channel is stopped within a predetermined period from.
- the channel use confirmation unit executes the channel use confirmation using a third communication channel.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- the transmission-side wireless communication unit starts communication of the image data using the second communication channel within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the transmission-side wireless communication unit stops communication of the image data using the second communication channel after the channel use confirmation using the third communication channel is completed.
- the transmission-side wireless communication unit starts communication of the image data using the third communication channel after the channel use confirmation using the third communication channel is completed.
- the image receiving method includes a first step, a second step, a third step, a fourth step, a fifth step, and a sixth step. And a seventh step.
- image data is received by radio waves by a wireless communication unit that can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- radar radio wave detection processing is executed in a communication channel that can be used for communication of the image data in the first step.
- the third step when the radio wave of the radar is detected in the first communication channel by the second step when communication of the image data using the first communication channel is performed.
- the communication of the image data using the first communication channel is stopped within a predetermined period from.
- channel use confirmation for confirming whether or not the communication channel is usable is executed by continuously executing the detection processing in the second step for a predetermined time. Further, in the fourth step, the channel use confirmation using the third communication channel is executed.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- communication of the image data using the second communication channel is started within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the communication of the image data using the second communication channel is stopped.
- the communication of the image data using the third communication channel is started.
- the image transmission method includes a first step, a second step, a third step, a fourth step, a fifth step, and a sixth step. And a seventh step.
- image data is transmitted by radio waves by a wireless communication unit that can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- radar radio wave detection processing is executed in a communication channel that can be used for communication of the image data in the first step.
- the third step when the radio wave of the radar is detected in the first communication channel by the second step when communication of the image data using the first communication channel is performed.
- the communication of the image data using the first communication channel is stopped within a predetermined period from.
- channel use confirmation for confirming whether or not the communication channel is usable is executed by continuously executing the detection process in the second step for a predetermined time.
- the channel use confirmation using the third communication channel is executed.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- communication of the image data using the second communication channel is started within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the communication of the image data using the second communication channel is stopped.
- the communication of the image data using the third communication channel is started.
- the program stores the first step, the second step, the third step, the fourth step, and the fifth step on the computer of the image receiving device.
- image data is received by radio waves by a wireless communication unit that can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- radar radio wave detection processing is executed in a communication channel that can be used for communication of the image data in the first step.
- the third step when the radio wave of the radar is detected in the first communication channel by the second step when communication of the image data using the first communication channel is performed.
- the communication of the image data using the first communication channel is stopped within a predetermined period from.
- channel use confirmation for confirming whether or not the communication channel is usable is executed by continuously executing the detection processing in the second step for a predetermined time. Further, in the fourth step, the channel use confirmation using the third communication channel is executed.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- communication of the image data using the second communication channel is started within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the communication of the image data using the second communication channel is stopped.
- the communication of the image data using the third communication channel is started.
- the program causes the computer of the image transmission device to execute the first step, the second step, the third step, the fourth step, and the fifth step.
- image data is transmitted by radio waves by a wireless communication unit that can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- radar radio wave detection processing is executed in a communication channel that can be used for communication of the image data in the first step.
- the third step when the radio wave of the radar is detected in the first communication channel by the second step when communication of the image data using the first communication channel is performed.
- the communication of the image data using the first communication channel is stopped within a predetermined period from.
- channel use confirmation for confirming whether or not the communication channel is usable is executed by continuously executing the detection process in the second step for a predetermined time.
- the channel use confirmation using the third communication channel is executed.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- communication of the image data using the second communication channel is started within the predetermined period from the time point when the radio wave of the radar is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the communication of the image data using the second communication channel is stopped.
- the communication of the image data using the third communication channel is started.
- the transmission-side wireless communication unit and the reception-side wireless communication unit start communication of image data using the second communication channel within a predetermined period from the time when the radar radio wave is detected. To do.
- the transmission side wireless communication unit and the reception side wireless communication unit start communication of image data using the third communication channel after the channel use confirmation using the third communication channel is completed. For this reason, image transmission can be continued when radar radio waves are detected in the communication channel used for image transmission.
- FIG. 1 shows a configuration of an image communication system 10 according to the first embodiment of the present invention.
- the image communication system 10 includes an image transmission device 100 and an image reception device 200.
- the image transmission device 100 and the image reception device 200 perform wireless communication.
- the image receiving device 200 is connected to the display device 300 by a cable or the like.
- FIG. 2 shows the configuration of the image transmission apparatus 100.
- the image transmission device 100 includes an imaging unit 101, an image processing unit 102, a wireless communication unit 110 (transmission-side wireless communication unit), a ROM 121, a RAM 122, and a control unit 130.
- the image transmission device 100 includes an imaging unit 101, an image processing unit 102, a wireless communication unit 110 (transmission-side wireless communication unit), a ROM 121, a RAM 122, and a control unit 130.
- the imaging unit 101 is an imaging module.
- the imaging unit 101 includes a lens, an imaging device (CCD or CMOS sensor, etc.), an AD converter (analog-digital converter), and the like.
- the lens forms an image of light incident on the imaging unit 101.
- the image sensor converts the imaged light into an electrical signal.
- the AD converter converts an analog electric signal output from the image sensor into a digital electric signal. With this configuration, the imaging unit 101 images a subject and outputs image data.
- the image processing unit 102 is an image processing circuit.
- the image processing unit 102 performs image processing on the image data output from the imaging unit 101.
- the image processing unit 102 generates moving image data by converting the image data output from the imaging unit 101 into data that conforms to a predetermined moving image format.
- the image processing unit 102 may perform compression processing on the image data output from the imaging unit 101.
- the wireless communication unit 110 has a plurality of wireless circuits. That is, the wireless communication unit 110 includes the first wireless circuit 111 (RF1) and the second wireless circuit 112 (RF2).
- the wireless communication unit 110 includes a plurality of antennas. That is, the wireless communication unit 110 includes the first antenna 114 and the second antenna 115.
- the first wireless circuit 111 and the second wireless circuit 112 are wireless communication circuits.
- the first radio circuit 111 and the second radio circuit 112 include a high-frequency circuit unit necessary for radio communication, a circuit unit for encoding and decoding, and a buffer memory.
- a first antenna 114 is connected to the first radio circuit 111.
- a second antenna 115 is connected to the second radio circuit 112.
- a wireless LAN protocol IEEE 802.11
- IEEE 802.11 is used as a wireless communication method.
- the first wireless circuit 111 performs wireless communication with the image receiving device 200 via the first antenna 114.
- the second wireless circuit 112 performs wireless communication with the image reception device 200 via the second antenna 115.
- the first wireless circuit 111 and the second wireless circuit 112 transmit image data or necessary information to the image receiving device 200 by wireless communication.
- the first wireless circuit 111 and the second wireless circuit 112 receive necessary information from the image receiving device 200 by wireless communication.
- the first wireless circuit 111 and the second wireless circuit 112 can simultaneously perform wireless communication by using different communication channels. Therefore, the wireless communication unit 110 can perform wireless communication using a plurality of different communication channels simultaneously. The wireless communication unit 110 can use only two communication channels at the same time.
- the ROM 121 is a nonvolatile memory such as a Flash ROM.
- Program data for controlling the image transmission apparatus 100 and various setting information including communication setting parameters are stored in the ROM 121.
- the RAM 122 is a volatile memory.
- the RAM 122 is used as a buffer, a work area, and a temporary area.
- the buffer is used for temporary storage of image data output from the imaging unit 101.
- the work area is used for calculations by the control unit 130.
- the temporary area is used for temporary storage of various setting information.
- the control unit 130 is a processor such as a CPU (Central Processing Unit).
- the control unit 130 operates according to a program stored in the ROM 121. As a result, the control unit 130 controls the operation of the image transmission apparatus 100.
- the function of the control unit 130 can be realized as a software function by causing the computer of the image transmission apparatus 100 to read and execute a program including an instruction that defines the operation of the control unit 130.
- This program may be provided by a “computer-readable recording medium” such as a flash memory.
- the above-described program may be transmitted from the computer having the storage device or the like in which the program is stored to the image transmission device 100 via a transmission medium or by a transmission wave in the transmission medium.
- a “transmission medium” for transmitting a program is a medium having a function of transmitting information, such as a network (communication network) such as the Internet or a communication line (communication line) such as a telephone line.
- the above-described program may realize a part of the functions described above.
- the above-described program may be a difference file (difference program) that can realize the above-described function in combination with a program already recorded in the computer.
- the image transmission apparatus 100 may not include at least one of the imaging unit 101 and the image processing unit 102.
- image data may be input to the image transmission apparatus 100 from another apparatus.
- FIG. 3 shows the configuration of the image receiving apparatus 200.
- the image reception device 200 includes an image processing unit 201, a wireless communication unit 210 (reception side wireless communication unit), a ROM 221, a RAM 222, and a control unit 230.
- the image processing unit 201 is an image processing circuit.
- the image processing unit 201 performs image processing on the received image data. For example, the image processing unit 201 converts the image data into display data in a format used for displaying an image. When the image data is compressed, the image processing unit 201 may expand the image data.
- the image processing unit 201 outputs display data to the display device 300.
- the display device 300 displays an image based on the display data.
- the wireless communication unit 210 has a plurality of wireless circuits. That is, the wireless communication unit 210 includes the first wireless circuit 211 (RF1) and the second wireless circuit 212 (RF2).
- the wireless communication unit 210 has a plurality of antennas. That is, the wireless communication unit 210 includes the first antenna 214 and the second antenna 215.
- the first wireless circuit 211 and the second wireless circuit 212 are wireless communication circuits.
- the first radio circuit 211 and the second radio circuit 212 include a high-frequency circuit unit necessary for radio communication, a circuit unit for encoding and decoding, and a buffer memory.
- a first antenna 214 is connected to the first radio circuit 211.
- a second antenna 215 is connected to the second radio circuit 212.
- a wireless LAN protocol IEEE 802.11
- IEEE 802.11 IEEE 802.11
- the first wireless circuit 211 performs wireless communication with the image transmission device 100 via the first antenna 214.
- the first wireless circuit 111 and the first wireless circuit 211 perform wireless communication using one communication channel.
- the second wireless circuit 212 performs wireless communication with the image transmission device 100 via the second antenna 215.
- the second wireless circuit 112 and the second wireless circuit 212 perform wireless communication using one communication channel.
- the first wireless circuit 211 and the second wireless circuit 212 transmit necessary information to the image transmission apparatus 100 by wireless communication.
- the first wireless circuit 211 and the second wireless circuit 212 receive image data or necessary information from the image transmitting apparatus 100 by wireless communication.
- the first wireless circuit 211 and the second wireless circuit 212 can perform wireless communication at the same time by using different communication channels. Therefore, the wireless communication unit 210 can perform wireless communication using a plurality of different communication channels simultaneously. The wireless communication unit 210 can use only two communication channels at the same time.
- the first radio circuit 211 has a first radar detection unit 2110.
- the second radio circuit 212 includes a second radar detection unit 2120.
- the first radar detector 2110 and the second radar detector 2120 execute radar radio wave (radar pulse) detection processing in a communication channel that can be used for image transmission.
- the first radar detection unit 2110 executes radar radio wave detection processing in the communication channel set in the first radio circuit 211.
- the second radar detection unit 2120 executes radar radio wave detection processing in the communication channel set in the second radio circuit 212.
- the first radar detection unit 2110 and the second radar detection unit 2120 can simultaneously execute radar radio wave detection processing.
- the ROM 221 is a nonvolatile memory such as a Flash ROM.
- Program data for controlling the image receiving apparatus 200 and various setting information including communication setting parameters are stored in the ROM 221.
- the RAM 222 is a volatile memory.
- the RAM 222 is used as a buffer, a work area, and a temporary area.
- the buffer is used for temporary storage of received image data.
- the work area is used for calculations by the control unit 230.
- the temporary area is used for temporary storage of various setting information.
- the control unit 230 is a processor such as a CPU.
- the control unit 230 operates according to a program stored in the ROM 221. Thereby, the control unit 230 controls the operation of the image receiving device 200.
- the control unit 230 includes a channel use confirmation unit 2300 and a channel quality confirmation unit 2301.
- the channel usage confirmation unit 2300 performs channel usage confirmation, that is, CAC.
- the channel quality confirmation unit 2301 executes channel quality confirmation (channel monitor) for confirming the quality of the communication channel.
- the channel quality confirmation unit 2301 confirms the quality of the communication channel by passive scanning.
- the image receiving apparatus 200 may be connected to the image transmitting apparatus 100, and the image receiving apparatus 200 may perform an active scan that monitors the connected communication channel. In the active scan, the image receiving apparatus 200 transmits a beacon signal for inquiry, and the image receiving apparatus 200 confirms the received signal strength of the response from the image transmitting apparatus 100 in response to the beacon signal. This allows a more detailed search for peripheral devices that use the communication channel.
- CAC is executed after the communication channel is changed. Thereafter, the channel quality confirmation unit 2301 uses the wireless communication unit 210 to transmit a beacon signal for inquiry.
- control unit 230 can be realized as a software function by causing the computer of the image receiving apparatus 200 to read and execute a program including an instruction that defines the operation of the control unit 230.
- the implementation form of this program is the same as the implementation form of the program that implements the functions of the control unit 130.
- the image receiving apparatus 200 may not include the image processing unit 201.
- the image receiving apparatus 200 may have a recording medium for recording image data.
- the status of each communication channel is managed by the channel status table.
- the channel state table is stored in the RAM 222.
- FIG. 4 shows a channel state table.
- the channel state table includes a channel number A1, a classification A2, a communication channel A3, a channel usage rate A4, and a radar detection history A5.
- the channel status table includes information on communication channels in the 5 GHz band.
- the channel number A1 is a number assigned for convenience.
- the classification A2 indicates a band to which each communication channel belongs.
- Each communication channel belongs to any one band of W52, W53, and W56.
- W52 is a band that does not require DFS.
- Bands other than W52, that is, W53 and W56, are bands that require DFS.
- the communication channel A3 is a communication channel belonging to each band. In FIG. 4, there are 19 communication channels. 36 channels, 40 channels, 44 channels, and 48 channels belong to W52. 52 channels, 56 channels, 60 channels, and 64 channels belong to W53.
- 100 channel, 104 channel, 108 channel, 112 channel, 116 channel, 120 channel, 124 channel, 128 channel, 132 channel, 136 channel, and 140 channel belong to W56.
- the content of FIG. 4 shows only an example at the time of filing of the present application. The contents of FIG. 4 can be changed by the revision of the Radio Law or the standard.
- CAC is executed before communication using a communication channel belonging to a band other than W52, that is, W53 or W56.
- a communication channel is continuously monitored for a predetermined time. In this monitoring, radar radio waves are detected. If it is confirmed by this monitoring that radar radio waves are not detected for a predetermined time, the CAC is completed. After the CAC is complete, the monitored communication channel can be used.
- channel use confirmation unit 2300 stops the output of radio waves on the communication channel from the wireless communication unit using the communication channel on which CAC is being executed.
- the CAC execution time is at least 60 seconds.
- the CAC execution time is a time set by the Radio Law at the time of filing of the present application. The CAC execution time can be changed by amending the Radio Law.
- ISM is executed while using a communication channel belonging to W53 or W56. That is, ISM is executed until the connection is stopped after the connection is completed in the communication channel belonging to W53 or W56.
- the communication channel in use is continuously monitored. In this monitoring, radar radio waves are detected. When radar radio waves are detected by ISM during image transmission, the communication channel is switched.
- the channel usage rate A4 indicates the quality of the communication channel.
- the channel quality confirmation unit 2301 updates the channel usage rate A4 based on the channel quality confirmation result.
- the quality of a communication channel with a relatively high channel usage rate A4 is relatively low.
- the quality of a communication channel with a relatively low channel usage rate A4 is relatively high.
- Radar detection history A5 indicates whether radar radio waves have been detected in the communication channel. When radar radio waves are detected, 1 is recorded in the radar detection history A5. If no radar radio wave is detected, 0 is recorded in the radar detection history A5.
- the radar detection unit corresponds to the first radar detection unit 2110 and the second radar detection unit 2120.
- the wireless communication unit 110 transmits image data by radio waves.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- the wireless communication unit 210 receives the image data transmitted by the wireless communication unit 110 by radio waves.
- the wireless communication unit 110 and the wireless communication unit 210 can use only two communication channels at the same time.
- the radar detection unit executes radar radio wave detection processing in a communication channel that can be used for image data communication by the wireless communication unit 110 and the wireless communication unit 210.
- the channel use confirmation unit 2300 performs channel use confirmation to confirm whether or not the communication channel is usable by continuously executing detection processing by the radar detection unit for a predetermined time.
- the wireless communication unit 110 and the wireless communication unit 210 start from a point in time when radar radio waves are detected in the first communication channel by the radar detection unit when image data communication using the first communication channel is performed. Within a predetermined period, communication of image data using the first communication channel is stopped.
- the channel usage confirmation unit 2300 performs channel usage confirmation using the third communication channel.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the second communication channel within a predetermined period from the time when the radar radio wave is detected.
- the second communication channel is a communication channel that is not used by the radar.
- the wireless communication unit 110 and the wireless communication unit 210 stop communication of image data using the second communication channel after the channel use confirmation using the third communication channel is completed.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the third communication channel after the channel use confirmation using the third communication channel is completed.
- the channel quality confirmation unit 2301 is connected to the first communication channel when image data communication using the first communication channel is performed and before the channel use confirmation in the third communication channel is started. Check the quality of different communication channels. At least one of the first process and the second process is executed. In the first process, a communication channel having a relatively good quality is set as a third communication channel among a plurality of communication channels whose communication channel quality has been confirmed by the channel quality confirmation unit 2301. In the second process, a communication channel having relatively good quality is set as the second communication channel among the plurality of communication channels whose communication channel quality has been confirmed by the channel quality confirmation unit 2301.
- the imaging unit 101 generates image data in synchronization with the imaging clock.
- the image data constitutes moving image data.
- Each piece of image data is one frame of data.
- the wireless communication unit 110 transmits the image data by radio waves in the order in which the image data is generated.
- the wireless communication unit 210 receives image data by radio waves in the order in which the image data is generated.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the second communication channel after communication of image data using the first communication channel is stopped.
- the wireless communication unit 110 and the wireless communication unit 210 stop communication of image data using the first communication channel after communication of image data using the second communication channel is started.
- the channel use confirmation unit 2300 selects the third communication channel. Check the channel usage to be used.
- the channel use confirmation unit 2300 performs channel use confirmation using a communication channel different from the communication channel used for image data communication. During the execution of the channel use confirmation, the channel use confirmation unit 2300 stops the output of radio waves in the communication channel from the wireless communication unit 210 that uses the communication channel for which the channel use confirmation is being performed.
- the channel usage confirmation unit 2300 performs channel usage confirmation using the first communication channel before image data communication using the first communication channel is performed. Further, the channel use confirmation unit 2300 executes channel use confirmation using the third communication channel before image data communication using the third communication channel is performed.
- the above-mentioned first communication channel and third communication channel are communication channels belonging to the use band of the radar. That is, the first communication channel and the third communication channel are communication channels belonging to bands other than W52.
- the second communication channel is a communication channel belonging to W52. That is, the second communication channel is a communication channel belonging to a band other than the radar use band. Bands other than the radar use band do not overlap with the radar use band.
- the predetermined period is a communicable period (DFS time) defined by the Radio Law. After the radar radio wave is detected, the total time during which communication using the communication channel in which the radio wave is detected may be performed is within the communicable period. For example, the communicable period is 260 milliseconds.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the second communication channel within a predetermined period from the time when the radar radio wave is detected in the first communication channel.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the third communication channel after the channel use confirmation using the third communication channel is completed. For this reason, image transmission can be continued. In addition, the usage time of the second communication channel with much interference can be shortened.
- the channel use confirmation unit 2300 sets the communication channel with the highest quality among the plurality of communication channels whose channel quality has been confirmed by the channel quality confirmation unit 2301 as the third communication channel.
- the radio communication unit 110 and the radio communication unit 210 set the communication channel having the best quality among the plurality of communication channels whose channel quality is confirmed by the channel quality confirmation unit 2301 as the second communication channel. Since the communication channel having relatively good quality is set as the second communication channel or the third communication channel, the communication quality is ensured.
- FIG. 5 to 14 show the procedure of the operation of the image receiving apparatus 200.
- FIG. FIG. 5 and FIG. 6 show the procedure of the operation of the image receiving apparatus 200 related to the control of the first wireless circuit 211.
- control unit 230 When the power of the image receiving apparatus 200 is turned on, the control unit 230 initializes each functional block related to the first wireless circuit 211 (step S101). In step S101, the control unit 230 initializes the communication channel setting, the RF1CAC timer, the RF1CAC completion flag, the RF1 connection start flag, and the channel state table.
- an arbitrary communication channel belonging to a band other than W52 may be set in the first wireless circuit 211.
- a communication channel corresponding to channel number 5 is set in the first wireless circuit 211.
- the communication channel corresponding to channel number 5 is 52 channels belonging to W53.
- the RF1CAC timer is a timer for measuring the execution time of CAC that uses the communication channel set in the first radio circuit 211.
- the initial value of the RF1CAC timer is zero.
- the value of the RF1CAC timer increases as time passes.
- an RF1 CAC timer and an RF2 CAC timer are used.
- the RF2CAC timer is a timer for measuring the execution time of CAC that uses the communication channel set in the second radio circuit 212.
- the RF1CAC completion flag indicates whether CAC using the communication channel set in the first wireless circuit 211 is completed.
- the initial value of the RF1CAC completion flag is 0.
- the RF1CAC completion flag and the RF2CAC completion flag are used.
- the RF2CAC completion flag indicates whether CAC using the communication channel set in the second radio circuit 212 is completed.
- the RF1 connection start flag indicates whether or not the connection between the first radio circuit 111 and the first radio circuit 211 has been started.
- the initial value of the RF1 connection start flag is 0.
- an RF1 connection start flag and an RF2 connection start flag are used.
- the RF2 connection start flag indicates whether or not the connection between the second radio circuit 112 and the second radio circuit 212 has been started.
- the information of the communication channel set in the first wireless circuit 211 is stored in the RAM 222.
- the value of the RF1CAC timer, the value of the RF1CAC completion flag, and the value of the RF2 connection start flag are stored in the RAM 222.
- the channel state table is stored in the RAM 222.
- the operation mode of the first radio circuit 111 and the first radio circuit 211 is referred to as an RF1 mode.
- the operation mode of the second radio circuit 112 and the second radio circuit 212 is referred to as an RF2 mode.
- step S101 the first radar detector 2110 starts radar radio wave detection processing.
- the channel use confirmation unit 2300 executes CAC (RF1CAC) using the communication channel set in the first radio circuit 211 (step S102).
- CAC CAC
- step S102 the process shown in FIG. 10 is executed.
- FIG. 10 shows an operation procedure of the image receiving apparatus 200 when CAC using the communication channel set in the first wireless circuit 211 is executed.
- the channel use confirmation unit 2300 receives information from the first radar detection unit 2110.
- the channel use confirmation unit 2300 confirms the received information to determine whether or not radar radio waves are detected in the communication channel set in the first wireless circuit 211 (step S301).
- the radio wave of the radar is detected when it is recognized that a specific radar pulse has been received exceeding a predetermined reference value.
- a predetermined reference value For example, the bandwidth of the channel 53 of W53 is 20 MHz. Multiple types of radar pulses are defined.
- the predetermined reference value is defined by law.
- the channel use confirmation unit 2300 updates the radar detection history in the channel state table (step S302).
- step S302 1 is recorded in the radar detection history of the communication channel set in the first wireless circuit 211 in the channel state table.
- the radar detection history in the channel state table is similarly updated. In the following description, the process of updating the radar detection history in the channel state table is omitted.
- the channel use confirmation unit 2300 determines a communication channel set in the first wireless circuit 211 (step S303).
- any communication channel belonging to a band other than W52 may be set in the first wireless circuit 211.
- a communication channel whose channel number is one different from the channel number of the set communication channel is set in the first wireless circuit 211.
- the channel use confirmation unit 2300 changes the communication channel set in the first radio circuit 211 (step S304).
- the channel use confirmation unit 2300 clears the RF1 CAC timer (step S305). That is, the RF1CAC timer is initialized. After the RF1CAC timer is cleared, the channel usage confirmation unit 2300 sets the RF1CAC completion flag to 0 (step S306).
- the channel use confirmation unit 2300 determines whether or not the time indicated by the RF1 CAC timer has passed the CAC time (step S311).
- the CAC time is a predetermined time during which CAC of one communication channel continues. For example, the CAC time is 60 seconds.
- step S311 when the time indicated by the RF1CAC timer has passed the CAC time, the channel use confirmation unit 2300 sets the RF1CAC completion flag to 1 (step S312). That is, if the radar radio wave is not continuously detected during the CAC time, the CAC is completed.
- step S103 After the process in any one of step S306 and step S312 is executed, the process in step S103 is executed.
- step S311 when the time indicated by the RF1 CAC timer has not passed the CAC time, the process in step S103 is executed.
- step S103 the control unit 230 determines whether or not the RF1CAC completion flag is 1 (step S103). In step S103, when the RF1CAC completion flag is not 1, CAC using the communication channel set in the first radio circuit 211 has not been completed. For this reason, the process in step S102 is executed again.
- step S103 when the RF1CAC completion flag is 1, the control unit 230 uses the wireless communication unit 210 (first wireless circuit 211) to connect to the wireless communication unit 110 (first wireless circuit 111). Is performed (step S104). Thus, the wireless communication unit 210 (first wireless circuit 211) is connected to the wireless communication unit 110 (first wireless circuit 111). In step S104, the communication channel set when CAC is completed is used. In step S104, the process shown in FIG. 11 is executed.
- FIG. 11 shows an operation procedure of the image receiving apparatus 200 when connection is made.
- the process is executed according to FIG.
- a process executed in a connection using a communication channel set in the first wireless circuit 211 will be described.
- the control unit 230 performs control to output a beacon signal by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S401). Thereby, the wireless communication unit 210 (first wireless circuit 211) wirelessly outputs a beacon signal.
- the wireless communication unit 210 (first wireless circuit 211) wirelessly outputs a beacon signal.
- Parameters necessary for wireless connection are stored in the beacon signal.
- the parameters include a communication channel, a MAC (Media Access Control) address, an SSID (Service Set Identifier), and the like.
- the beacon signal is transmitted by broadcast.
- the beacon signal may be transmitted by multicast for a specific group.
- a connection request is transmitted from the image transmission device 100 that has received the beacon signal.
- the connection request is a packet for requesting connection for data communication to a connection partner of wireless communication.
- the wireless communication unit 210 (first wireless circuit 211) receives a connection request by radio waves.
- the control unit 230 monitors the wireless communication unit 210 (first wireless circuit 211) and determines whether or not a connection request has been received (step S402). If a connection request is not received in step S402, the process in step S401 is executed.
- step S402 When a connection request is received in step S402, the control unit 230 performs control to transmit a connection request response by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S403). As a result, the wireless communication unit 210 (first wireless circuit 211) transmits a connection request response using radio waves.
- the connection request response is a response to the connection request.
- the connection is completed when the connection request response is received by the image transmitting apparatus 100. After the connection request response is transmitted, the process in step S105 is executed.
- control unit 230 sets the RF1 mode to “image reception” (step S105).
- “Image reception” is a mode for receiving image data.
- the control unit 230 determines whether or not the RF1 mode is “CAC” (step S111). “CAC” is a mode for executing CAC.
- step S111 the channel use confirmation unit 2300 executes CAC using the communication channel set in the first radio circuit 211 (step S112).
- step S112 the process shown in FIG. 10 is executed.
- step S ⁇ b> 112 a communication channel with relatively good quality is set in the first wireless circuit 211 based on the result of channel monitoring using the communication channel set in the second wireless circuit 212.
- step S111 is executed.
- the control unit 230 determines whether or not the RF1 mode is “waiting for RF1 connection” (step S151). “Waiting for RF1 connection” is a mode for waiting for the completion of connection between the first wireless circuit 111 and the first wireless circuit 211.
- step S152 the control unit 230 determines whether or not the RF1 connection start flag is 1 (step S152).
- step S111 If the RF1 connection start flag is not 1 in step S152, the process in step S111 is executed. If the RF1 connection start flag is 1 in step S152, the control unit 230 uses the wireless communication unit 210 (first wireless circuit 211) to connect to the wireless communication unit 110 (first wireless circuit 111). Is performed (step S153). Thus, the wireless communication unit 210 (first wireless circuit 211) is connected to the wireless communication unit 110 (first wireless circuit 111). In step S153, the communication channel set when CAC is completed is used. In step S153, the process shown in FIG. 11 is executed.
- control unit 230 sets the RF1 connection start flag to 0 (step S154). After the RF1 connection start flag is set to 0, the process in step S111 is executed.
- step S151 If it is determined in step S151 that the RF1 mode is not “RF1 connection waiting”, the control unit 230 determines whether or not the RF1 mode is “image reception” (step S121).
- step S121 When the RF1 mode is “image reception” in step S121, the control unit 230 performs control to receive image data by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S122). Thereby, the wireless communication unit 210 (first wireless circuit 211) receives the image data by radio waves.
- step S122 the process shown in FIG. 14 is executed.
- FIG. 14 shows an operation procedure of the image receiving apparatus 200 when image data is received.
- image data is received using a communication channel set in one of the two wireless circuits of the image receiving apparatus 200
- processing is executed according to FIG.
- processing executed in reception of image data using the communication channel set in the first wireless circuit 211 will be described.
- a frame start packet is transmitted from the image transmission device 100.
- the frame start packet is a packet that notifies the start of one frame time.
- the wireless communication unit 210 (first wireless circuit 211) receives the frame start packet by radio waves.
- the control unit 230 monitors the wireless communication unit 210 (first wireless circuit 211) and determines whether a frame start packet has been received (step S701).
- step S701 If the frame start packet is not received in step S701, the process in step S123 is executed.
- the control unit 230 clears the frame reception time timer (step S702). That is, the frame reception time timer is initialized.
- the frame reception time timer is a timer for measuring one frame time.
- the control unit 230 performs control to receive one packet of image data by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S703).
- the wireless communication unit 210 receives one packet of image data by radio waves.
- One frame of image data is divided into a plurality of image data. Each of the plurality of image data is stored in a packet.
- control unit 230 determines whether or not the time indicated by the frame reception time timer has passed a predetermined time (step S704).
- This predetermined time is one frame time.
- step S703 determines whether or not one frame of image data has been normally received (step S705).
- step S123 If one frame of image data is not normally received in step S705, the process in step S123 is executed.
- the control unit 230 performs control for displaying an image (step S706).
- the image processing unit 201 performs image processing on the received image data and generates display data.
- the display device 300 displays an image based on the display data. After the image is displayed, the process in step S123 is executed.
- the channel use confirmation unit 2300 receives information from the first radar detection unit 2110.
- the channel use confirmation unit 2300 confirms the received information to determine whether or not radar radio waves have been detected in the communication channel set in the first wireless circuit 211 (step S123).
- step S111 If the radar radio wave is not detected in step S123, the process in step S111 is executed.
- the channel use confirmation unit 2300 determines a communication channel set in the second radio circuit 212 (step S131). In step S131, the channel usage confirmation unit 2300 selects a communication channel with relatively good quality among the communication channels belonging to W52 based on the channel state table.
- the control unit 230 sets the RF1 connection start flag to 1 (step S132). After the RF1 connection start flag is set to 1, the control unit 230 performs control to transmit an RF2 change instruction by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S133). Accordingly, the wireless communication unit 210 (first wireless circuit 211) transmits an RF2 change instruction by radio waves.
- the RF2 change instruction is a packet indicating that the wireless circuit used for image transmission is changed to the second wireless circuit 212.
- the RF2 change instruction transmitted in step S133 includes information on the communication channel determined in step S131.
- step S134 the control unit 230 sets the RF1 mode and the RF2 mode to “waiting for RF2 connection” (step S134, step S135).
- “Waiting for RF2 connection” is a mode for waiting for the completion of connection between the second radio circuit 112 and the second radio circuit 212.
- the processing in step S111 is executed.
- step S121 If it is determined in step S121 that the RF1 mode is not “image reception”, the control unit 230 determines whether or not the RF1 mode is “waiting for RF2 connection” (step S171).
- step S111 If the RF1 mode is not “RF2 connection waiting” in step S171, the processing in step S111 is executed.
- the control unit 230 performs control to receive image data by radio waves using the wireless communication unit 210 (first wireless circuit 211) (step S172). .
- the wireless communication unit 210 receives the image data by radio waves.
- step S172 the process shown in FIG. 14 is executed.
- the first radio is transmitted in step S172 until the connection between the second radio circuit 112 and the second radio circuit 212 is completed. Reception of image data using the circuit 211 is continued. After the image data is received, the control unit 230 determines whether or not the connection of the second wireless circuit 212 is completed (step S173).
- step S111 If the connection of the second wireless circuit 212 is not completed in step S173, the process in step S111 is executed.
- the control unit 230 sets the RF2 mode to “image reception” (step S174).
- the channel use confirmation unit 2300 determines a communication channel set in the first wireless circuit 211 (step S175).
- channel use confirmation section 2300 selects a communication channel with relatively good quality from communication channels belonging to bands other than W52 based on the channel state table. In the channel state table, a communication channel in which 1 is recorded in the radar detection history may not be selected.
- the channel use confirmation unit 2300 changes the communication channel set in the first wireless circuit 211 (step S176).
- the channel use confirmation unit 2300 sets the communication channel determined in step S175 in the first wireless circuit 211.
- the channel use confirmation unit 2300 clears the RF1 CAC timer (step S177). That is, the RF1CAC timer is initialized. After the RF1CAC timer is cleared, the channel usage confirmation unit 2300 sets the RF1CAC completion flag to 0 (step S178).
- the channel use confirmation unit 2300 sets the RF1 mode to “CAC” (step S179). After the RF1 mode is set to “CAC”, the process in step S111 is executed.
- FIG. 7, FIG. 8, and FIG. 9 show the procedure of the operation of the image receiving apparatus 200 related to the control of the second wireless circuit 212.
- FIG. 7, FIG. 8, and FIG. 9 show the procedure of the operation of the image receiving apparatus 200 related to the control of the second wireless circuit 212.
- the control unit 230 sets the RF2 mode to “channel monitor” (step S201).
- “Channel monitor” is a mode for executing channel monitoring.
- the channel quality confirmation unit 2301 initializes the channel number CH_No (step S202).
- Channel number CH_No is a variable indicating a channel number. For example, the initial value of the channel number CH_No is 1.
- the channel number CH_No is stored in the RAM 222.
- control unit 230 determines whether or not the RF2 mode is “channel monitor” (step S211).
- step S211 When the RF2 mode is “channel monitor” in step S211, the channel quality confirmation unit 2301 executes channel monitoring using the communication channel set in the second radio circuit 212 (step S212). In step S212, the process shown in FIG. 12 is executed.
- FIG. 12 shows an operation procedure of the image receiving apparatus 200 when the channel monitor using the communication channel set in the second wireless circuit 212 is executed.
- Channel quality confirmation unit 2301 uses second wireless circuit 212 to perform channel quality confirmation of communication channels belonging to W52, W53, and W56, respectively.
- Channel monitoring is performed by measuring the BUSY time of the channel per predetermined time.
- the BUSY time is a time during which radio waves are output from another wireless device or the like, and is a time during which data cannot be transmitted from the wireless communication unit 210.
- the channel quality confirmation unit 2301 executes initialization related to the channel monitor (step S501).
- the channel quality confirmation unit 2301 initializes the BUSY_TOTAL time, the channel monitor timer, and the BUSY timer.
- BUSY_TOTAL time is the time when the communication channel is BUSY. For example, the initial value of BUSY_TOTAL time is 0.
- the channel monitor timer is a timer for measuring the channel monitor execution time. For example, the initial value of the channel monitor timer is 0. After the channel monitor timer is initialized, the value of the channel monitor timer increases as time elapses.
- the BUSY timer is a timer for measuring the time during which the communication channel is BUSY. For example, the initial value of the BUSY timer is zero. After the BUSY timer is initialized, the value of the BUSY timer increases with the time that the communication channel is BUSY.
- the BUSY_TOTAL time, the channel monitor timer value, and the BUSY timer value are stored in the RAM 222.
- the channel quality confirmation unit 2301 sets the communication channel in the second radio circuit 212 (step S502). For example, in step S502, a communication channel corresponding to channel number 1 is set in the second radio circuit 212. As shown in FIG. 4, the communication channel corresponding to channel number 1 is 36 channels belonging to W52.
- the channel quality confirmation unit 2301 determines whether the communication channel is BUSY (step S503). In step S503, the channel quality confirmation unit 2301 measures the received signal strength (RSSI) level and time. The channel quality confirmation unit 2301 determines whether or not the communication channel is BUSY based on the measured received signal strength level and time. When the communication channel is BUSY, data transmission is not permitted.
- RSSI received signal strength
- step S503 the determination in step S503 is executed again.
- the channel quality confirmation unit 2301 updates the BUSY_TOTAL time by adding the BUSY time to the BUSY_TOTAL time (step S504).
- the BUSY time is the time indicated by the BUSY timer.
- the channel quality confirmation unit 2301 clears the BUSY timer (step S505). That is, the BUSY timer is initialized. After the BUSY timer is cleared, the channel quality confirmation unit 2301 determines whether or not the time measured by the channel monitor timer has exceeded the channel monitor time (step S506).
- step S506 if the time measured by the channel monitor timer does not exceed the channel monitor time, the process in step S503 is executed.
- the channel quality confirmation unit 2301 updates the channel state table (step S507).
- the channel quality confirmation unit 2301 calculates a channel usage rate that is the quality of the communication channel by calculating the ratio of the time when the communication channel is busy, that is, BUSY_TOTAL to the channel monitor time.
- the channel quality confirmation unit 2301 updates the channel state table based on the calculated channel usage rate.
- the BUSY_TOTAL time may be recorded in the channel state table.
- the channel quality confirmation unit 2301 increments the channel number CH_No by 1 (step S508). After the channel number CH_No increases by 1, the channel quality confirmation unit 2301 determines whether or not the channel number CH_No is larger than the maximum channel number CH_MAX (step S509). As shown in FIG. 4, the maximum channel number CH_MAX is 19.
- step S509 when the channel number CH_No is equal to or less than the maximum channel number CH_MAX, the process in step S213 is executed. If the channel number CH_No is larger than the maximum channel number CH_MAX in step S509, the channel quality confirmation unit 2301 sets the channel number CH_No to 1 (step S510). After the channel number CH_No is set to 1, the process in step S213 is executed.
- control unit 230 determines whether or not the channel number CH_No is 1 (step S213).
- the channel number CH_No is 1, channel monitoring has been completed for all the communication channels shown in FIG.
- step S211 the process in step S211 is executed.
- the channel use confirmation unit 2300 determines a communication channel set in the second radio circuit 212 (step S214).
- step S214 channel use confirmation section 2300 selects a communication channel with relatively good quality among communication channels belonging to bands other than W52 based on the channel state table. In the channel state table, a communication channel in which 1 is recorded in the radar detection history may not be selected.
- the channel use confirmation unit 2300 changes the communication channel set in the second wireless circuit 212 (step S215).
- the channel usage confirmation unit 2300 sets the communication channel determined in step S214 in the second radio circuit 212.
- the channel use confirmation unit 2300 clears the RF2CAC timer (step S216). That is, the RF2CAC timer is initialized. After the RF2CAC timer is cleared, the channel usage confirmation unit 2300 sets the RF2CAC completion flag to 0 (step S217).
- the channel use confirmation unit 2300 sets the RF2 mode to “CAC” (step S218). After the RF2 mode is set to “CAC”, the process in step S211 is executed.
- step S211 If it is determined in step S211 that the RF2 mode is not “channel monitor”, the control unit 230 determines whether or not the RF2 mode is “CAC” (step S251).
- step S251 the channel use confirmation unit 2300 executes CAC (RF2CAC) using the communication channel set in the second radio circuit 212 (step S252).
- step S252 the process shown in FIG. 13 is executed.
- FIG. 13 shows an operation procedure of the image receiving apparatus 200 when CAC using the communication channel set in the second wireless circuit 212 is executed.
- the channel use confirmation unit 2300 receives information from the second radar detection unit 2120.
- the channel use confirmation unit 2300 confirms the received information to determine whether or not radar radio waves are detected in the communication channel set in the second wireless circuit 212 (step S601).
- the channel use confirmation unit 2300 updates the radar detection history in the channel state table (step S602).
- 1 is recorded in the radar detection history of the communication channel set in the second radio circuit 212 in the channel state table.
- the channel use confirmation unit 2300 determines a communication channel set in the second radio circuit 212 (step S603). In step S603, the channel use confirmation unit 2300 selects a communication channel with relatively good quality among communication channels belonging to bands other than W52 based on the channel state table. In the channel state table, a communication channel in which 1 is recorded in the radar detection history may not be selected. After the communication channel is determined, the channel use confirmation unit 2300 changes the communication channel set in the second radio circuit 212 (step S604).
- the channel use confirmation unit 2300 clears the RF2CAC timer (step S605). That is, the RF2CAC timer is initialized. After the RF2CAC timer is cleared, the channel usage confirmation unit 2300 sets the RF2CAC completion flag to 0 (step S606). After the RF2CAC completion flag is set to 0, the process in step S211 is executed.
- the channel use confirmation unit 2300 determines whether the time indicated by the RF2 CAC timer has passed the CAC time (step S611).
- step S611 when the time indicated by the RF2CAC timer has passed the CAC time, the channel use confirmation unit 2300 determines whether or not the time indicated by the RF2CAC timer has passed the channel waiting time (step S621).
- the channel waiting time is longer than the CAC time.
- step S611 when the time indicated by the RF2CAC timer has passed the channel waiting time, the channel use confirmation unit 2300 sets the RF2 mode to “channel monitor” (step S622). That is, when the CAC is completed and the channel waiting time has elapsed, channel monitoring is executed.
- step S621 when the time indicated by the RF2CAC timer has not exceeded the channel waiting time, the channel use confirmation unit 2300 sets the RF2CAC completion flag to 1 (step S612). That is, if the radar radio wave is not continuously detected during the CAC time, the CAC is completed.
- step S211 After the process in any one of step S605, step S612, and step S622 is executed, the process in step S211 is executed.
- step S611 when the time indicated by the RF2CAC timer has not passed the CAC time, the process in step S211 is executed.
- step S251 the control unit 230 determines whether or not the RF2 mode is “waiting for RF2 connection” (step S241).
- step S241 determines whether or not the RF2 connection start flag is 1 (step S242).
- step S211 If the RF2 connection start flag is not 1 in step S242, the process in step S211 is executed.
- the control unit 230 changes the communication channel set in the second radio circuit 212 (step S243).
- step S243 the control unit 230 sets the communication channel determined in step S131 in the second radio circuit 212.
- control unit 230 After the communication channel is changed, the control unit 230 performs control to connect to the wireless communication unit 110 (second wireless circuit 112) using the wireless communication unit 210 (second wireless circuit 212) (step S244). ). Thereby, the wireless communication unit 210 (second wireless circuit 212) is connected to the wireless communication unit 110 (second wireless circuit 112). In step S244, the communication channel set in step S243 is used. In step S244, the process shown in FIG. 11 is executed.
- control unit 230 sets the RF2 connection start flag to 0 (step S245). After the RF2 connection start flag is set to 0, the process in step S211 is executed.
- step S241 If it is determined in step S241 that the RF2 mode is not “RF2 connection waiting”, the control unit 230 determines whether or not the RF2 mode is “image reception” (step S221).
- step S221 When the RF2 mode is “image reception” in step S221, the control unit 230 performs control to receive image data by radio waves using the wireless communication unit 210 (second wireless circuit 212) (step S222). As a result, the wireless communication unit 210 (second wireless circuit 212) receives image data by radio waves. In step S222, the process shown in FIG. 14 is executed.
- control unit 230 determines whether or not the RF1CAC completion flag is 1 (step S223).
- step S211 If the RF1CAC completion flag is not 1 in step S223, the process in step S211 is executed.
- the control unit 230 sets the RF2 connection start flag to 1 (step S224).
- the control unit 230 After the RF2 connection start flag is set to 1, the control unit 230 performs control to transmit an RF1 change instruction by radio waves using the wireless communication unit 210 (second wireless circuit 212) (step S225). As a result, the wireless communication unit 210 (second wireless circuit 212) transmits an RF1 change instruction by radio waves.
- the RF1 change instruction is a packet indicating that the wireless circuit used for image transmission is changed to the first wireless circuit 211.
- the RF1 change instruction transmitted in step S225 includes information on the communication channel set in the first wireless circuit 211.
- step S226 After the RF1 change instruction is transmitted, the control unit 230 sets the RF1 mode and the RF2 mode to “waiting for RF1 connection” (step S226, step S227). After the RF1 mode and the RF2 mode are set to “waiting for RF1 connection”, the processing in step S211 is executed.
- step S221 If it is determined in step S221 that the RF2 mode is not “image reception”, the control unit 230 determines whether or not the RF2 mode is “waiting for RF1 connection” (step S231).
- step S211 If the RF2 mode is not “RF1 connection waiting” in step S231, the process in step S211 is executed.
- the control unit 230 performs control to receive image data by radio waves using the wireless communication unit 210 (second wireless circuit 212) (step S232). .
- the wireless communication unit 210 receives image data by radio waves.
- step S232 the process shown in FIG. 14 is executed.
- step S232 the control unit 230 determines whether or not the connection of the first wireless circuit 211 is completed (step S233).
- step S211 If the connection of the first wireless circuit 211 is not completed in step S233, the process in step S211 is executed.
- the control unit 230 sets the RF1 mode to “image reception” (step S234).
- step S235 After the RF2 mode is set to “channel monitor”, the process in step S211 is executed.
- the communication channel is switched.
- the wireless communication unit 210 (first wireless circuit 211) stops communication of image data using the first communication channel within a predetermined period from the time when the radar radio wave is detected (corresponding to step S123) ( (Corresponding to step S134, step S175, and step S176).
- the channel usage confirmation unit 2300 executes CAC that uses the third communication channel (corresponding to step S112).
- the wireless communication unit 210 starts communication of image data using the second communication channel within a predetermined period from the time when the radar radio wave is detected (step S132, step S133, (Corresponding to step S135, step S174, step S243, step S244, and step S222).
- the wireless communication unit 210 stops communication of image data using the second communication channel after the CAC using the third communication channel is completed (steps S227 and S235). Correspondence). The wireless communication unit 210 (first wireless circuit 211) starts communication of image data using the third communication channel after the CAC using the third communication channel is completed (steps S224 to S227, step S224). (Corresponding to S234, step S153, and step S122).
- the channel quality confirmation unit 2301 receives the first data before the CAC in the third communication channel is started when image data communication using the first communication channel is performed. The quality of a plurality of communication channels different from the communication channels is confirmed (corresponding to FIG. 12). In step S102, CAC using a predetermined communication channel is executed. The channel quality confirmation unit 2301 confirms the quality of the communication channel before the CAC in step S112 is executed.
- the communication channel with relatively good quality is set as the third communication channel among the plurality of communication channels whose communication channel quality has been confirmed by the channel quality confirmation unit 2301 (corresponding to step S175 and step S176).
- a communication channel having a relatively good quality is set as the second communication channel among the plurality of communication channels whose channel quality has been confirmed by the channel quality confirmation unit 2301 (corresponding to steps S131 and S243).
- 15 to 20 show the procedure of the operation of the image transmission apparatus 100.
- FIG. 15 and FIG. 16 show the procedure of the operation of the image transmission apparatus 100 related to the control of the first wireless circuit 111.
- control unit 130 When the power of the image transmission apparatus 100 is turned on, the control unit 130 initializes each functional block related to the first wireless circuit 111 (step S801). In step S801, the control unit 130 initializes communication channel settings and SSIDs.
- step S801 an arbitrary communication channel may be set in the first wireless circuit 111.
- Information on the communication channel set in the first radio circuit 111 is stored in the RAM 222.
- the SSID is stored in the RAM 222.
- step S801 the imaging unit 101 starts imaging. Further, the image processing unit 102 starts image processing.
- Step S802 the control unit 130 performs control to connect to the wireless communication unit 210 (first wireless circuit 211) using the wireless communication unit 110 (first wireless circuit 111) (Ste S802).
- the wireless communication unit 110 first wireless circuit 111 is connected to the wireless communication unit 210 (first wireless circuit 211).
- Step S802 the process shown in FIG. 19 is executed.
- Step S802 is related to step S104.
- FIG. 19 shows an operation procedure of the image transmitting apparatus 100 when connection is made.
- connection using the communication channel set in one of the two wireless circuits of the image transmission apparatus 100 is performed, processing is executed according to FIG.
- a process executed in a connection using a communication channel set in the first wireless circuit 111 will be described.
- the control unit 130 sets the variable N to 1 (step S1001).
- the variable N corresponds to the channel number A1 shown in FIG.
- step S1002 the control unit 130 sets a communication channel in the first wireless circuit 111 (step S1002).
- step S ⁇ b> 1002 the control unit 130 sets a communication channel corresponding to the variable N in the first radio circuit 111.
- the communication channel corresponding to the channel number 1 is set in the first radio circuit 111.
- the communication channel corresponding to channel number 1 is 36 channels belonging to W52.
- the control unit 130 monitors the wireless communication unit 110 (first wireless circuit 111) and determines whether or not a beacon signal is received (step S1003).
- the wireless communication unit 110 receives a beacon signal by radio waves. Until the beacon signal is received, the output of radio waves from the first wireless circuit 111 is stopped.
- the control unit 130 When a beacon signal is received in step S1003, the control unit 130 performs control to transmit a connection request by radio waves using the wireless communication unit 110 (first wireless circuit 111) (step S1004).
- the wireless communication unit 110 (first wireless circuit 111) transmits a connection request by radio waves.
- connection request response is transmitted from the image receiving apparatus 200 that has received the connection request.
- the wireless communication unit 110 (first wireless circuit 111) receives a connection request response by radio waves.
- the control unit 130 monitors the wireless communication unit 110 (first wireless circuit 111) and determines whether or not a connection request response has been received (step S1005).
- step S1004 If the connection request response is not received in step S1005, the process in step S1004 is executed. If a connection request response is received in step S1005, the connection is completed. After the connection is completed, the process in step S803 is executed.
- step S1003 the control unit 130 determines whether or not a predetermined time has elapsed since the communication channel was set in the first wireless circuit 111 (corresponding to step S1002). (Step S1006). If the predetermined time has not elapsed, the process in step S1003 is executed.
- control unit 130 increases the variable N by 1 (step S1007). After the variable N increases by 1, the control unit 130 determines whether the variable N is larger than the maximum channel number CH_MAX (step S1008). As shown in FIG. 4, the maximum channel number CH_MAX is 19.
- step S1008 when the variable N is equal to or smaller than the maximum channel number CH_MAX, the process in step S1002 is executed. If the variable N is larger than the maximum channel number CH_MAX in step S1008, the control unit 130 sets the variable N to 1 (step S1009). After the variable N is set to 1, the process in step S1002 is executed.
- control unit 130 sets the RF1 mode to “image transmission” (step S803).
- Image transmission is a mode for transmitting image data.
- the control unit 130 determines whether or not the RF1 mode is “standby” (step S811). “Standby” is a mode for waiting without connecting.
- step S811 when the RF1 mode is “standby”, the determination in step S811 is executed again. If the RF1 mode is not “standby” in step S811, the control unit 130 determines whether or not the RF1 mode is “waiting for RF1 connection” (step S831).
- step S831 the control unit 130 determines whether or not the RF1 connection start flag is 1 (step S832).
- step S832 If the RF1 connection start flag is not 1 in step S832, the process of step S811 is executed.
- the control unit 130 uses the wireless communication unit 110 (first wireless circuit 111) to connect to the wireless communication unit 210 (first wireless circuit 211). Is performed (step S834).
- the wireless communication unit 110 (first wireless circuit 111) is connected to the wireless communication unit 210 (first wireless circuit 211).
- step S834 the process shown in FIG. 19 is executed.
- Step S834 is related to step S153.
- control unit 130 sets the RF1 connection start flag to 0 (step S835). After the RF1 connection start flag is set to 0, the process in step S811 is executed.
- step S831 the control unit 130 determines whether or not the RF1 mode is “image transmission” (step S821).
- step S821 When the RF1 mode is “image transmission” in step S821, the control unit 130 performs control to transmit image data by radio waves using the wireless communication unit 110 (first wireless circuit 111) (step S822). As a result, the wireless communication unit 110 (first wireless circuit 111) transmits image data by radio waves. In step S822, the process shown in FIG. 20 is executed.
- FIG. 20 shows an operation procedure of the image transmitting apparatus 100 when image data is transmitted.
- the processing is executed according to FIG.
- processing executed in transmission of image data using the communication channel set in the first wireless circuit 111 will be described.
- the control unit 130 determines whether image data has been prepared (step S1101).
- step S823 If the image data is not prepared in step S1101, the process in step S823 is executed.
- the control unit 130 performs control to transmit a frame start packet by radio waves using the wireless communication unit 110 (first wireless circuit 111) (step S1102). Thereby, the wireless communication unit 110 (first wireless circuit 111) transmits the frame start packet by radio waves.
- control unit 130 After the frame start packet is transmitted, the control unit 130 performs control to transmit one packet of image data by radio waves using the wireless communication unit 110 (first wireless circuit 111) (step S1103). Thereby, the wireless communication unit 110 (first wireless circuit 111) transmits one packet of image data by radio waves.
- control unit 130 determines whether one frame of image data has been transmitted (step S1104). If transmission of one frame of image data has not been completed in step S1104, the processing in step S1103 is executed. When transmission of one frame of image data is completed in step S1104, processing in step S823 is executed.
- the control unit 130 monitors the wireless communication unit 110 (first wireless circuit 111) and determines whether or not an RF2 change instruction has been received (step S823).
- the wireless communication unit 110 receives the RF2 change instruction transmitted in step S133 by radio waves.
- step S823 If the RF2 change instruction is not received in step S823, the process in step S811 is executed.
- the control unit 130 sets the RF2 connection start flag to 1 (step S824).
- step S811 After the RF2 connection start flag is set to 1, the control unit 130 sets the RF1 mode and the RF2 mode to “waiting for RF2 connection” (steps S825 and S826). After the RF1 mode and the RF2 mode are set to “waiting for RF2 connection”, the processing in step S811 is executed.
- step S821 If it is determined in step S821 that the RF1 mode is not “image transmission”, the control unit 130 determines whether the RF1 mode is “waiting for RF2 connection” (step S841).
- step S841 If it is determined in step S841 that the RF1 mode is not “waiting for RF2 connection”, the processing in step S811 is executed.
- the control unit 130 performs control to transmit image data by radio waves using the wireless communication unit 110 (first wireless circuit 111) (step S842). .
- the wireless communication unit 110 first wireless circuit 111) transmits image data by radio waves.
- step S842 the process shown in FIG. 20 is executed.
- the first radio is transmitted in step S842 until the connection between the second radio circuit 112 and the second radio circuit 212 is completed. Transmission of image data using the circuit 111 is continued. After the image data is transmitted, the control unit 130 determines whether or not the connection of the second wireless circuit 112 is completed (step S843).
- step S843 If the connection of the second wireless circuit 112 is not completed in step S843, the process in step S811 is executed.
- the control unit 130 sets the RF1 mode to “standby” (step S844).
- step S845 After the RF1 mode is set to “standby”, the control unit 130 sets the RF2 mode to “image transmission” (step S845). After the RF2 mode is set to “image transmission”, the process in step S811 is executed.
- FIG. 17 and FIG. 18 show the procedure of the operation of the image transmission apparatus 100 related to the control of the second wireless circuit 112.
- control unit 130 sets the RF2 mode to “standby” (step S901). After the RF2 mode is set to “standby”, the control unit 130 determines whether or not the RF2 mode is “standby” (step S911).
- step S911 If the RF2 mode is “standby” in step S911, the determination in step S911 is executed again. If the RF2 mode is not “standby” in step S911, the control unit 130 determines whether or not the RF2 mode is “waiting for RF2 connection” (step S941).
- step S941 the control unit 130 determines whether or not the RF2 connection start flag is 1 (step S942).
- step S911 If the RF2 connection start flag is not 1 in step S942, the process of step S911 is executed.
- the control unit 130 uses the wireless communication unit 110 (second wireless circuit 112) to connect to the wireless communication unit 210 (second wireless circuit 212). Is performed (step S944). Thereby, the wireless communication unit 110 (second wireless circuit 112) is connected to the wireless communication unit 210 (second wireless circuit 212).
- step S944 the process shown in FIG. 19 is executed. Step S944 is related to step S244.
- control unit 130 sets the RF2 connection start flag to 0 (step S945). After the RF2 connection start flag is set to 0, the process in step S911 is executed.
- step S941 If it is determined in step S941 that the RF2 mode is not “RF2 connection waiting”, the control unit 130 determines whether or not the RF2 mode is “image transmission” (step S921).
- step S921 When the RF2 mode is “image transmission” in step S921, the control unit 130 performs control to transmit image data by radio waves using the wireless communication unit 110 (second wireless circuit 112) (step S922). Accordingly, the wireless communication unit 110 (second wireless circuit 112) transmits image data by radio waves. In step S922, the process shown in FIG. 20 is executed.
- the control unit 130 monitors the wireless communication unit 110 (second wireless circuit 112) and determines whether or not an RF1 change instruction has been received (step S923).
- the wireless communication unit 110 receives the RF1 change instruction transmitted in step S225 by radio waves.
- step S923 If the RF1 change instruction is not received in step S923, the process in step S911 is executed.
- the control unit 130 sets the RF1 connection start flag to 1 (step S924).
- step S911 After the RF1 connection start flag is set to 1, the control unit 130 sets the RF2 mode and the RF1 mode to “waiting for RF1 connection” (steps S925 and S926). After the RF2 mode and the RF1 mode are set to “waiting for RF1 connection”, the processing in step S911 is executed.
- step S921 the control unit 130 determines whether the RF2 mode is “waiting for RF1 connection” (step S931).
- step S911 If the RF2 mode is not “RF1 connection waiting” in step S931, the process in step S911 is executed.
- the control unit 130 performs control to transmit image data by radio waves using the wireless communication unit 110 (second wireless circuit 112) (step S932). . Accordingly, the wireless communication unit 110 (second wireless circuit 112) transmits image data by radio waves.
- step S932 the process shown in FIG. 20 is executed.
- step S933 transmission of image data using the second wireless circuit 112 is continued in step S932.
- the control unit 130 determines whether or not the connection of the first wireless circuit 111 is completed (step S933).
- step S911 If the connection of the first wireless circuit 111 is not completed in step S933, the process in step S911 is executed.
- the control unit 130 sets the RF2 mode to “standby” (step S934).
- step S935 After the RF2 mode is set to “standby”, the control unit 130 sets the RF1 mode to “image transmission” (step S935). After the RF1 mode is set to “image transmission”, the processing in step S911 is executed.
- FIG. 21 shows the operation of each wireless circuit included in the image receiving apparatus 200.
- CAC using the communication channel CH1 belonging to a band other than W52 is executed in the first wireless circuit 211 (corresponding to step S102).
- the first radio circuit 211 connects to the first radio circuit 111 using the communication channel CH1 (corresponding to step S104).
- the first wireless circuit 211 receives image data using the communication channel CH1 (first communication channel) (corresponding to step S122).
- ISM is executed in the first wireless circuit 211 (corresponding to step S123).
- a channel monitor that uses the communication channel set in the second wireless circuit 212 is executed (corresponding to step S212).
- CAC using the communication channel CH2 belonging to a band other than W52 is executed in the second radio circuit 212 (corresponding to step S252).
- the ISM is executed in the second radio circuit 212 (corresponding to step S601).
- channel monitoring using the communication channel set in the second radio circuit 212 is executed (corresponding to step S212).
- the first wireless circuit 211 When the first wireless circuit 211 receives image data, radar radio waves are detected (corresponding to step S123). For this reason, the communication channel used for image transmission is switched from the first communication channel to the second communication channel (corresponding to steps S131 to S135, steps S174 to S179, and steps S243 to S245). As a result, the first wireless circuit 211 stops receiving image data.
- the second wireless circuit 212 receives image data using the communication channel CH-A (second communication channel) belonging to W52 (corresponding to step S222). The communication channel is switched within the DFS time from when the radar radio wave is detected.
- CAC using the communication channel CH3 different from the communication channel CH1 used for receiving the image data is executed in the first wireless circuit 211 (corresponding to step S112).
- the first radio circuit 211 connects to the first radio circuit 111 using the communication channel CH3 (corresponding to steps S224 to S227, step S234, and step S153).
- the first wireless circuit 211 receives image data using the communication channel CH3 (third communication channel) (corresponding to step S122).
- ISM is executed in the first wireless circuit 211 (corresponding to step S123).
- the second wireless circuit 212 stops receiving image data (corresponding to steps S224 to S227 and step S235). After the reception of the image data is stopped, channel monitoring using the communication channel set in the second wireless circuit 212 is executed (corresponding to step S212).
- FIG. 22 shows the operation of each wireless circuit included in the image transmission device 100.
- the first wireless circuit 111 connects to the first wireless circuit 211 using the communication channel CH1 belonging to a band other than W52 (corresponding to step S802).
- the first wireless circuit 111 transmits image data using the communication channel CH1 (corresponding to step S822).
- the second wireless circuit 112 waits (corresponding to step S901).
- the image receiving device 200 detects radar radio waves.
- the communication channel used for image transmission is switched from the first communication channel to the second communication channel (corresponding to steps S824 to S826, step S844, and step S845).
- the first wireless circuit 111 stops transmitting image data.
- the second radio circuit 112 is connected to the second radio circuit 212 using the communication channel CH-A belonging to W52 (corresponding to step S944). After the connection is completed, the second wireless circuit 112 transmits image data using the communication channel CH-A (corresponding to step S922).
- the communication channel is switched within the DFS time from when the radar radio wave is detected.
- the first wireless circuit 111 waits until the CAC using the communication channel set in the first wireless circuit 211 is completed. After the CAC is completed, the first radio circuit 111 connects to the first radio circuit 211 using the communication channel CH3 (corresponding to step S834). After the connection is completed, the first wireless circuit 111 transmits image data using the communication channel CH3 (corresponding to step S822).
- the second wireless circuit 112 stops transmitting image data. Thereafter, the second radio circuit 112 stands by (corresponding to step S934).
- CAC is not executed in the second radio circuit 212, and channel monitoring is executed.
- the operation of the image receiving apparatus 200 related to the control of the first wireless circuit 211 is the same as the operation shown in FIGS.
- FIG. 23 shows an operation procedure of the image receiving apparatus 200 regarding the control of the second radio circuit 212.
- the operation shown in FIG. 7 is changed to the operation shown in FIG.
- step S241 is executed.
- step S212 is executed
- step S211 is executed. Except for the above, the operation shown in FIG. 23 is the same as the operation shown in FIG.
- the operation of the image transmission apparatus 100 related to the control of the first wireless circuit 111 is the same as the operation illustrated in FIGS. 15 and 16.
- the operation of the image transmission apparatus 100 related to the control of the second wireless circuit 112 is the same as the operation illustrated in FIGS. 17 and 18.
- FIG. 24 shows the operation of each radio circuit included in the image receiving apparatus 200.
- the operation related to the control of the first radio circuit 211 is the same as the operation shown in FIG.
- a channel monitor that uses the communication channel set in the second wireless circuit 212 is executed (corresponding to step S212). Channel monitoring is continued until radar radio waves are detected in the communication channel set in the first wireless circuit 211.
- the operation after the radar radio wave is detected in the communication channel set in the first radio circuit 211 is the same as the operation shown in FIG.
- each wireless circuit included in the image transmission device 100 is the same as the operation shown in FIG.
- the image reception device 200 may not include the second radar detection unit 2120.
- FIG. 25 shows an operation procedure of the image receiving apparatus 200 regarding the control of the first wireless circuit 211.
- the operation shown in FIG. 6 is changed to the operation shown in FIG.
- step S111 is executed.
- processing in step S174, step S175, step S176, step S177, step S178, and step S179 is executed.
- step S179 is executed, the process in step S111 is executed.
- the operation shown in FIG. 25 is the same as the operation shown in FIG.
- FIG. 26 shows an operation procedure of the image receiving apparatus 200 regarding the control of the second radio circuit 212.
- the operation shown in FIG. 7, FIG. 8, and FIG. 9 is changed to the operation shown in FIG.
- control unit 230 sets the RF2 mode to “standby” (step S261).
- step S262 After the RF2 mode is set to “standby”, the control unit 230 performs control for connecting to the wireless communication unit 110 (second wireless circuit 112) using the wireless communication unit 210 (second wireless circuit 212). This is performed (step S262). Thereby, the wireless communication unit 210 (second wireless circuit 212) is connected to the wireless communication unit 110 (second wireless circuit 112).
- step S262 an arbitrary communication channel belonging to W52 is used. For example, in step S262, the communication channel corresponding to channel number 1 is set in the second radio circuit 212. As shown in FIG. 4, the communication channel corresponding to channel number 1 is 36 channels belonging to W52.
- step S262 the process shown in FIG. 11 is executed.
- control unit 230 determines whether or not the RF2 mode is “standby” (step S271).
- step S271 If the RF2 mode is “standby” in step S271, the determination in step S271 is executed again. If the RF2 mode is not “standby” in step S271, the process in step S221 is executed.
- step S234 After the processing in step S234 is executed, the control unit 230 sets the RF2 mode to “standby” (step S236). After the RF2 mode is set to “standby”, the process in step S271 is executed.
- FIG. 26 the operations shown in FIG. 26 are the same as the operations shown in FIG. 7, FIG. 8, and FIG.
- the communication channel is set in the first radio circuit 211 and the second radio circuit 212 regardless of the quality of the communication channel.
- FIG. 27 shows an operation procedure of the image transmission apparatus 100 related to the control of the first wireless circuit 111. The operation shown in FIG. 16 is changed to the operation shown in FIG.
- step S811 If the RF1 mode is not “image transmission” in step S821, the process in step S811 is executed. When the RF2 change instruction is received in step S823, the process in step S844 is executed. Regarding the points other than the above, the operation shown in FIG. 27 is the same as the operation shown in FIG.
- FIG. 28 shows an operation procedure of the image transmission apparatus 100 related to the control of the second wireless circuit 112. The operation shown in FIG. 17 is changed to the operation shown in FIG.
- step S921 If the RF2 mode is not “standby” in step S911, the process in step S921 is executed. Regarding other points, the operation shown in FIG. 28 is the same as the operation shown in FIG.
- FIG. 29 shows the operation of each wireless circuit included in the image receiving apparatus 200.
- the operation related to the control of the first radio circuit 211 is the same as the operation shown in FIG.
- the second radio circuit 212 After the image receiving apparatus 200 is turned on, the second radio circuit 212 connects to the second radio circuit 112 using the communication channel CH-A belonging to W52 (corresponding to step S262). After the connection is completed, the second wireless circuit 212 waits. The second radio circuit 212 waits until radar radio waves are detected in the communication channel set in the first radio circuit 211. The operation after the radar radio wave is detected in the communication channel set in the first radio circuit 211 is the same as the operation shown in FIG.
- FIG. 30 shows the operation of each wireless circuit included in the image transmission device 100.
- the second wireless circuit 112 connects to the second wireless circuit 212 using the communication channel CH-A belonging to W52 (corresponding to step S902).
- the second radio circuit 112 waits.
- the operation after the radar radio wave is detected in the communication channel set in the first radio circuit 211 is the same as the operation shown in FIG.
- the image reception device 200 may not have the channel quality confirmation unit 2301. In the second modification example of the first embodiment, the image reception device 200 may not include the second radar detection unit 2120.
- FIG. 31 shows a configuration of an image transmission device 100a according to a modification of the first embodiment.
- the configuration shown in FIG. 31 will be described while referring to differences from the configuration shown in FIG.
- the wireless communication unit 110 in the image transmission device 100 illustrated in FIG. 2 is changed to the wireless communication unit 110a.
- the first wireless circuit 111 in the wireless communication unit 110 illustrated in FIG. 2 is changed to the first wireless circuit 111a.
- the second wireless circuit 112 in the wireless communication unit 110 illustrated in FIG. 2 is changed to the second wireless circuit 112a.
- the first radio circuit 111a has a first radar detector 1110.
- the second radio circuit 112a includes a second radar detection unit 1120.
- the first radar detection unit 1110 and the second radar detection unit 1120 execute radar radio wave detection processing in a communication channel that can be used for image transmission.
- the first radar detection unit 1110 executes radar radio wave detection processing in the communication channel set in the first radio circuit 111a.
- the second radar detection unit 1120 executes radar radio wave detection processing in the communication channel set in the second radio circuit 112a.
- the first radar detection unit 1110 and the second radar detection unit 1120 can simultaneously execute radar radio wave detection processing.
- control unit 130 in the image transmission device 100 shown in FIG. 2 is changed to the control unit 130a.
- the control unit 130a includes a channel use confirmation unit 1300 and a channel quality confirmation unit 1301.
- the channel usage confirmation unit 1300 performs channel usage confirmation, that is, CAC.
- the channel quality confirmation unit 1301 performs channel quality confirmation, that is, channel monitoring.
- the image reception device 200 may not include the first radar detection unit 2110 and the second radar detection unit 2120.
- the image transmission device 100a executes CAC.
- the image transmission device 100a performs control related to switching of communication channels. Except for this point, the operation in the third modification of the first embodiment is the same as the operation in the first embodiment.
- At least one of the image transmission device 100 and the image reception device 200 has a radar detection unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a radar detection unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a radar detection unit.
- At least one of the image transmission device 100 and the image reception device 200 has a channel use confirmation unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a channel use confirmation unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a channel use confirmation unit.
- At least one of the image transmission device 100 and the image reception device 200 has a channel quality confirmation unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a channel quality confirmation unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a channel quality confirmation unit.
- the image communication system 10 including the image transmission devices 100 and 100a and the image reception device 200 is configured.
- the image transmission device 100 includes a transmission-side wireless communication unit (wireless communication units 110 and 110a).
- the image receiving apparatus includes a reception-side wireless communication unit (wireless communication unit 210).
- At least one of the image transmission devices 100 and 100a and the image reception device 200 includes a radar detection unit (first radar detection units 1110 and 2110, second radar detection units 1120 and 2120).
- At least one of the image transmission devices 100 and 100a and the image reception device 200 includes channel use confirmation units 1300 and 2300.
- the image communication system includes at least the imaging unit 101, the image processing unit 102, the ROM 121, the RAM 122, the image processing unit 201, the ROM 221, the RAM 222, and the channel quality confirmation units 1301 and 3011. It is not necessary to have a configuration corresponding to one.
- the receiving-side wireless communication unit wireless communication unit 210
- the radar detection unit first radar detection unit 2110, second radar detection unit 2120
- channel use confirmation unit 2300 An image receiving apparatus 200 having the above is configured.
- the image receiving apparatus may not have a configuration corresponding to at least one of the image processing unit 201, the ROM 221, the RAM 222, and the channel quality confirmation unit 2301.
- a transmission-side wireless communication unit wireless communication unit 110a
- a radar detection unit first radar detection unit 1110, second radar detection unit 1120
- channel use confirmation unit 1300 An image transmitting apparatus 100a having the above is configured.
- the image transmission apparatus may not have a configuration corresponding to at least one of the imaging unit 101, the image processing unit 102, the ROM 121, the RAM 122, and the channel quality confirmation unit 1301. .
- the first step, the second step, the third step, the fourth step, the fifth step, the sixth step, and the seventh step An image receiving method is configured.
- the first step corresponds to step S122, step S172, step S222, and step S232.
- the second step corresponds to step S123.
- the third step corresponds to step S134, step S175, and step S176.
- the fourth step corresponds to step S112.
- the fifth step corresponds to step S132, step S133, step S135, step S174, step S243, step S244, and step S222.
- the sixth step corresponds to step S227 and step S235.
- the seventh step corresponds to steps S224 to S227, step S234, step S153, and step S122.
- image data is received by radio waves by the wireless communication unit 210 that can use only two communication channels at the same time.
- the image data is generated in synchronization with the imaging clock.
- the image data is transmitted in the order in which the image data is generated.
- radar radio wave detection processing is executed in a communication channel that can be used for image data communication in the first step.
- image data communication using the first communication channel is performed, within a predetermined period from the time when the radio wave of the radar is detected in the first communication channel by the second step.
- the communication of the image data using the first communication channel is stopped.
- channel use confirmation for confirming whether or not the communication channel is usable is executed by continuously executing the detection process in the second step for a predetermined time.
- the fourth step channel usage confirmation using the third communication channel is executed.
- the first communication channel and the third communication channel are communication channels that may be used by the radar.
- the third communication channel is different from the first communication channel.
- communication of image data using the second communication channel is started within a predetermined period from when the radar radio wave is detected.
- the second communication channel is a communication channel that is not used by the radar.
- communication of image data using the second communication channel is stopped.
- the seventh step after completion of channel use confirmation using the third communication channel, communication of image data using the third communication channel is started.
- an image transmission method having steps corresponding to the first to seventh steps is configured.
- a program for causing the computer of the image receiving apparatus 200 to execute the first to seventh steps is configured.
- a program for causing the computer of the image transmission device 100a to execute steps corresponding to the first to seventh steps is configured.
- the second wireless circuit 212 may not perform channel use confirmation and channel quality confirmation.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the second communication channel within a predetermined period from the time when the radar radio wave is detected.
- the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the third communication channel after the channel use confirmation using the third communication channel is completed. For this reason, image transmission can be continued when radar radio waves are detected in the communication channel used for image transmission.
- the communication channel with relatively good quality is set as the second communication channel or the third communication channel, so that the communication quality is ensured.
- the image transmission device 100 and the image reception device 200 of the first embodiment are used.
- the radar detection unit corresponds to the first radar detection unit 2110 and the second radar detection unit 2120.
- the radio communication unit 110 (transmission side radio communication unit) includes a first radio circuit 111 (first transmission side radio circuit) and a second radio circuit 112 (second transmission side radio circuit).
- the wireless communication unit 210 (reception side wireless communication unit) includes a first wireless circuit 211 (first reception side wireless circuit) and a second wireless circuit 212 (second reception side wireless circuit).
- a predetermined time from when the radar radio wave is detected in the first communication channel by the radar detection unit. Within the period, communication of image data using the first communication channel is stopped.
- the first wireless circuit 111 and the first wireless circuit 211 perform image data communication using the first communication channel.
- the third communication channel is set in the second wireless circuit 112 or the second wireless circuit 212.
- the channel use confirmation unit 2300 performs channel use confirmation using the third communication channel when image data communication using the first communication channel is performed.
- the channel usage confirmation unit 2300 stops the channel usage confirmation using the third communication channel within the transmission blanking period within a predetermined period from the time when the radar radio wave is detected.
- the transmission blanking period is a period from the time when the communication of the image data of one frame is completed to the time when the communication of the image data of the next one frame can be started.
- the channel use confirmation using the third communication channel set in the second wireless circuit 112 or the second wireless circuit 212 is stopped.
- the third communication channel is set in the first radio circuit 111 or the first radio circuit 211.
- the channel use confirmation unit 2300 is configured so that the first wireless circuit 111 or the second wireless circuit 112 or the second wireless circuit 212 before the channel use confirmation using the third communication channel set in the second wireless circuit 112 or the second wireless circuit 212 is stopped.
- the channel use confirmation using the third communication channel set in the first wireless circuit 211 is started.
- the transmission blanking period is shorter than the communicable period (DFS time) defined by the Radio Law.
- the transmission blanking period is a transmission blanking period in a frame when communication of image data using the first communication channel is completed.
- the first wireless circuit 111 and the first wireless circuit 211 stop communication of image data using the first communication channel within a transmission blanking period within a predetermined period from when the radar radio wave is detected.
- the second wireless circuit 112 and the second wireless circuit 212 start communication of image data using the second communication channel after the transmission blanking period has elapsed. That is, the wireless communication unit 110 and the wireless communication unit 210 start communication of image data using the second communication channel after communication of image data using the first communication channel is stopped.
- the connection between the second radio circuit 112 and the second radio circuit 212 requires a plurality of frames of time.
- a communication protocol in which the time required for connection between the second radio circuit 112 and the second radio circuit 212 is shorter than the transmission blanking period is applied.
- the third communication channel set in the second radio circuit 212 is set in the first radio circuit 211.
- the CAC in the second radio circuit 212 is continued in the first radio circuit 211.
- the CAC executed in the first radio circuit 211 is shortened. Therefore, the time from the start of CAC in the first radio circuit 211 to the start of image data communication using the third communication channel in the first radio circuit 211 is shortened. Thereby, the usage time of the second communication channel with much interference can be further shortened.
- FIG. 32 and FIG. 33 show the procedure of the operation of the image receiving apparatus 200 related to the control of the first wireless circuit 211.
- the operation shown in FIG. 5 is common to the first embodiment and the second embodiment.
- the operation shown in FIG. 6 is changed to the operation shown in FIG. 32 and FIG.
- the control unit 230 When radar radio waves are detected in step S123, the control unit 230 performs control to transmit an RF2 change instruction by radio waves using the radio communication unit 210 (first radio circuit 211) (step S1011). Accordingly, the wireless communication unit 210 (first wireless circuit 211) transmits an RF2 change instruction by radio waves.
- control unit 230 determines whether or not the CAC that uses the communication channel set in the second wireless circuit 212 is being executed (step S1012).
- step S1012 When the CAC using the communication channel set in the second radio circuit 212 is being executed in step S1012, the control unit 230 sets the same communication channel as the communication channel set in the second radio circuit 212 to the first channel. 1 radio circuit 211 is set (step S1013). That is, the control unit 230 sets the same communication channel as the communication channel in which the CAC is being executed in the second wireless circuit 212 in the first wireless circuit 211.
- control unit 230 sets the value of the RF2CAC timer in the RF1CAC timer (step S1014). As a result, the CAC using the communication channel set in the second radio circuit 212 is continued in the first radio circuit 211.
- the channel use confirmation unit 2300 determines the communication channel set in the first wireless circuit 211 (step S1031). ). In step S1031, the channel use confirmation unit 2300 selects a communication channel with relatively good quality among communication channels belonging to bands other than W52 based on the channel state table. In the channel state table, a communication channel in which 1 is recorded in the radar detection history may not be selected.
- the channel use confirmation unit 2300 changes the communication channel set in the first wireless circuit 211 (step S1032).
- the channel use confirmation unit 2300 sets the communication channel determined in step S1031 in the first wireless circuit 211.
- the channel use confirmation unit 2300 clears the RF1CAC timer (step S1033). That is, the RF1CAC timer is initialized.
- the channel use confirmation unit 2300 sets the RF1CAC completion flag to 0 (step S1015). After the RF1CAC completion flag is set to 0, the control unit 230 sets the RF1 connection start flag to 1 (step S1016). After the RF1 connection start flag is set to 1, the control unit 230 sets the RF2 mode to “waiting for RF2 connection” (step S1017).
- control unit 230 determines whether or not the connection of the second wireless circuit 212 is completed (step S1018).
- step S1018 If the connection of the second wireless circuit 212 is not completed in step S1018, the determination in step S1018 is executed again.
- the control unit 230 sets the RF1 mode to “CAC” (step S1019).
- step S1020 After the RF1 mode is set to “CAC”, the control unit 230 sets the RF2 mode to “image reception” (step S1020). After the RF2 mode is set to “image reception”, the processing in step S111 is executed.
- step S111 If the RF1 mode is not “image reception” in step S121, the process in step S111 is executed. In step S102 and step S112, the process shown in FIG. 34 is executed. Regarding the points other than the above, the operations shown in FIGS. 32 and 33 are the same as the operations shown in FIGS. 5 and 6.
- FIG. 34 shows an operation procedure of the image receiving apparatus 200 when CAC using the communication channel set in the first wireless circuit 211 is executed. The process shown in FIG. 10 is changed to the process shown in FIG.
- the control unit 230 determines whether 1 is set in the radar detection history of any one communication channel in the channel state table (step S1101).
- step S1101 the communication channel in which the radar radio waves are detected is detected.
- step S303 If 1 is set in the radar detection history in step S1101, the process in step S303 is executed. Therefore, a new communication channel is set in the first radio circuit 211 and CAC is executed. If 1 is not set in the radar detection history in step S1101, the process in step S301 is executed.
- the first radar detection unit 2110 starts radar radio wave detection processing when a communication channel is set in the first wireless circuit 211 in step S1013.
- the second radar detection unit 2120 continues the radar radio wave detection process until the RF2 mode is changed to “waiting for RF2 connection” in step S1017. For this reason, the first radar detection unit 2110 starts the radar radio wave detection process before the second radar detection unit 2120 finishes the radar radio wave detection process.
- the communication channel is set in the first wireless circuit 211 before the CAC that uses the communication channel set in the second wireless circuit 212 is stopped.
- the channel use confirmation unit 2300 starts CAC using the communication channel set in the first radio circuit 211 before the CAC using the communication channel set in the second radio circuit 212 is stopped.
- a process similar to the process in step S112 may be performed between the process in step S1013 and the process in step S1017.
- the operation of the image receiving apparatus 200 related to the control of the second wireless circuit 212 is the same as the operation shown in FIGS.
- the first wireless circuit 111 and the first wireless circuit 211 perform image data communication using the first communication channel (corresponding to step S122).
- the third communication channel is set in the second wireless circuit 212 (corresponding to step S215).
- the channel use confirmation unit 2300 performs channel use confirmation using the third communication channel when image data communication using the first communication channel is being performed (corresponding to step S252).
- the channel usage confirmation unit 2300 stops the channel usage confirmation using the third communication channel within the transmission blanking period within a predetermined period from the time when the radar radio wave is detected (corresponding to step S1017). After the communication of the image data using the first communication channel is stopped, the channel use confirmation using the third communication channel set in the second wireless circuit 112 or the second wireless circuit 212 is stopped.
- the third communication channel is set in the first wireless circuit 211 (corresponding to step S1013).
- the channel use confirmation unit 2300 is configured so that the first wireless circuit 111 or the second wireless circuit 112 or the second wireless circuit 212 before the channel use confirmation using the third communication channel set in the second wireless circuit 112 or the second wireless circuit 212 is stopped.
- the channel use confirmation using the third communication channel set in the first radio circuit 211 is started (corresponding to step S1013).
- the first wireless circuit 111 and the first wireless circuit 211 stop communication of image data using the first communication channel within a transmission blanking period within a predetermined period from when the radar radio wave is detected. (Corresponding to step S1013).
- the second wireless circuit 112 and the second wireless circuit 212 start communication of image data using the second communication channel after the transmission blanking period has elapsed (corresponding to steps S1020 and S222).
- FIG. 35 shows an operation procedure of the image transmission apparatus 100 related to the control of the first wireless circuit 111.
- the operation shown in FIG. 15 is common to the first embodiment and the second embodiment.
- the operation shown in FIG. 16 is changed to the operation shown in FIG.
- step S811 If the RF1 mode is not “image transmission” in step S821, the process in step S811 is executed. When the RF2 change instruction is not received in step S823, the process in step S811 is executed. When the RF2 change instruction is received in step S823, the control unit 130 sets the RF2 connection start flag to 1 (step S1211).
- the control unit 130 sets the RF2 mode to “waiting for RF2 connection” (step S1212). After the RF2 mode is set to “RF2 connection waiting”, the control unit 130 determines whether or not the connection of the second wireless circuit 112 is completed (step S1213).
- step S1213 If the connection of the second wireless circuit 112 is not completed in step S1213, the determination in step S1213 is executed again.
- the control unit 130 sets the RF1 mode to “standby” (step S1214).
- step S1215 After the RF1 mode is set to “standby”, the control unit 130 sets the RF2 mode to “image transmission” (step S1215). After the RF2 mode is set to “image transmission”, the process in step S811 is executed.
- the operation of the image transmission apparatus 100 related to the control of the second wireless circuit 112 is the same as the operation shown in FIGS.
- FIG. 36 shows the operation of each wireless circuit included in the image receiving device 200.
- the first wireless circuit 211 receives image data using the communication channel CH1 (first communication channel) (corresponding to step S122).
- ISM is executed in the first wireless circuit 211 (corresponding to step S123).
- CAC using the communication channel CH2 belonging to a band other than W52 is executed (corresponding to step S252).
- the first wireless circuit 211 receives image data, radar radio waves are detected (corresponding to step S123).
- the CAC executed in the second radio circuit 212 is not completed.
- the CAC using the communication channel CH2 is continued in the first radio circuit 211 (corresponding to step S1013 and step S1014).
- the communication channel used for image transmission is switched from the first communication channel to the second communication channel (corresponding to steps S1011 to S1020 and steps S243 to S245).
- the first wireless circuit 211 stops receiving image data.
- the second wireless circuit 212 receives image data using the communication channel CH-A (second communication channel) belonging to W52 (corresponding to step S222). Switching of the communication channel is performed within a transmission blanking period within a predetermined period from the time when the radar radio wave is detected.
- CAC using the communication channel CH2 different from the communication channel CH1 used for receiving the image data is executed in the first wireless circuit 211 (corresponding to step S112).
- the sum of the time when the CAC using the communication channel CH2 is executed in the second radio circuit 212 and the time when the CAC using the communication channel CH2 is executed in the first radio circuit 211 is CAC time.
- the first radio circuit 211 connects to the first radio circuit 111 using the communication channel CH2 (corresponding to steps S224 to S227, step S234, and step S153). After the connection is completed, the first wireless circuit 211 receives image data using the communication channel CH3 (third communication channel) (corresponding to step S122). When image data is being received, ISM is executed in the first wireless circuit 211 (corresponding to step S123).
- the second wireless circuit 212 stops receiving image data (corresponding to steps S224 to S227 and step S235). After the reception of the image data is stopped, channel monitoring using the communication channel set in the second wireless circuit 212 is executed (corresponding to step S212).
- FIG. 37 shows the operation of each wireless circuit included in the image transmission device 100.
- the first wireless circuit 111 transmits image data using the communication channel CH1 (corresponding to step S822).
- the second radio circuit 112 waits (corresponding to step S901).
- the image receiving device 200 detects radar radio waves. Therefore, the communication channel used for image transmission is switched from the first communication channel to the second communication channel (corresponding to steps S1211 to S1215 and step S835). As a result, the first wireless circuit 111 stops transmitting image data. Also, the second radio circuit 112 is connected to the second radio circuit 212 using the communication channel CH-A belonging to W52 (corresponding to step S944). After the connection is completed, the second wireless circuit 112 transmits image data using the communication channel CH-A (corresponding to step S922). Switching of the communication channel is performed within a transmission blanking period within a predetermined period from the time when the radar radio wave is detected.
- the operation related to the control of the first wireless circuit 111 is the same as the operation shown in FIG.
- the operation related to the control of the second wireless circuit 112 is the same as the operation shown in FIG.
- At least one of the CAC and the channel monitor may not be executed in the second radio circuit 212.
- the image transmission apparatus 100 may include a radar detection unit, a channel use confirmation unit 1300, and a channel quality confirmation unit 1301.
- the image transmission device 100 may perform the above-described control related to switching of communication channels.
- At least one of the image transmission device 100 and the image reception device 200 has a radar detection unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a radar detection unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a radar detection unit.
- At least one of the image transmission device 100 and the image reception device 200 has a channel use confirmation unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a channel use confirmation unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a channel use confirmation unit.
- At least one of the image transmission device 100 and the image reception device 200 has a channel quality confirmation unit. Therefore, only one of the image transmission device 100 and the image reception device 200 may have a channel quality confirmation unit. Alternatively, the image transmission device 100 and the image reception device 200 may have a channel quality confirmation unit.
- the CAC is continued.
- the communication channel set in the first wireless circuit 211 is changed from the first communication channel to the third communication channel. Switch to the communication channel.
- CAC is executed in the first radio circuit 211.
- the second wireless circuit 212 starts communication of image data using the second communication channel. For this reason, the CAC time can be efficiently allocated to the first radio circuit 211. As a result, the time required for CAC using the third communication channel in the first wireless circuit 211 is reduced.
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Abstract
Description
図1は、本発明の第1の実施形態の画像通信システム10の構成を示している。図1に示すように、画像通信システム10は、画像送信装置100と画像受信装置200とを有する。画像送信装置100と画像受信装置200とは無線通信を行う。画像受信装置200は、ケーブル等により表示装置300に接続されている。
第1の実施形態の第1の変形例では、第2の無線回路212においてCACが実行されず、チャネルモニタが実行される。
第1の実施形態の第2の変形例では、第2の無線回路212においてCACとチャネルモニタとが実行されない。
図31は、第1の実施形態の変形例の画像送信装置100aの構成を示している。図31に示す構成について、図2に示す構成と異なる点を説明する。
本発明の第2の実施形態では、第1の実施形態の画像送信装置100と画像受信装置200とが使用される。
100,100a 画像送信装置
101 撮像部
102,201 画像処理部
110,110a,210 無線通信部
111,211 第1の無線回路
112,212 第2の無線回路
113,213 第3の無線回路
114,214 第1のアンテナ
115,215 第2のアンテナ
116,216 第3のアンテナ
121,221 ROM
122,222 RAM
130,130a,230 制御部
200 画像受信装置
300 表示装置
1110,2110 第1のレーダ検知部
1120,2120 第2のレーダ検知部
1300,2300 チャネル使用確認部
1301,2301 チャネル品質確認部
Claims (9)
- 画像送信装置と画像受信装置とを有し、
前記画像送信装置は、画像データを電波で送信し、同時に2つのみの通信チャネルを使用可能な送信側無線通信部を有し、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信され、
前記画像受信装置は、前記送信側無線通信部によって送信された前記画像データを電波で受信する受信側無線通信部を有し、
前記画像送信装置と前記画像受信装置との少なくとも1つは、前記送信側無線通信部と前記受信側無線通信部とによって前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行するレーダ検知部を有し、
前記画像送信装置と前記画像受信装置との少なくとも1つは、前記レーダ検知部による前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行するチャネル使用確認部を有し、
前記送信側無線通信部と前記受信側無線通信部とは、第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記レーダ検知部によって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止し、
前記チャネル使用確認部は、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なり、
前記送信側無線通信部と前記受信側無線通信部とは、前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルであり、
前記送信側無線通信部と前記受信側無線通信部とは、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止し、
前記送信側無線通信部と前記受信側無線通信部とは、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する
画像通信システム。 - 前記画像送信装置と前記画像受信装置との少なくとも1つは、前記第1の通信チャネルを使用する前記画像データの通信が行われているときであって前記第3の通信チャネルにおける前記チャネル使用確認が開始される前に、前記第1の通信チャネルと異なる複数の通信チャネルの品質を確認するチャネル品質確認部をさらに有し、
第1の処理と第2の処理との少なくとも一方が実行され、
前記第1の処理では、前記チャネル品質確認部によって前記通信チャネルの品質が確認された前記複数の通信チャネルのうち相対的に品質が良い通信チャネルが前記第3の通信チャネルとして設定され、
前記第2の処理では、前記チャネル品質確認部によって前記通信チャネルの品質が確認された前記複数の通信チャネルのうち相対的に品質が良い通信チャネルが前記第2の通信チャネルとして設定される
請求項1に記載の画像通信システム。 - 前記送信側無線通信部は、第1の送信側無線回路と第2の送信側無線回路とを有し、
前記受信側無線通信部は、第1の受信側無線回路と第2の受信側無線回路とを有し、
前記第1の送信側無線回路と前記第1の受信側無線回路とは、前記第1の通信チャネルを使用する前記画像データの通信を行い、
前記第1の通信チャネルを使用する前記画像データの通信が行われているとき、前記第2の送信側無線回路または前記第2の受信側無線回路に前記第3の通信チャネルが設定され、
前記チャネル使用確認部は、前記第1の通信チャネルを使用する前記画像データの通信が行われているとき、前記第3の通信チャネルを使用する前記チャネル使用確認を実行し、
前記チャネル使用確認部は、前記レーダの前記電波が検知された前記時点から前記所定期間内の送信ブランキング期間内に、前記第3の通信チャネルを使用する前記チャネル使用確認を停止し、前記送信ブランキング期間は、1フレームの前記画像データの通信が完了した時点から前記1フレームの次の1フレームの前記画像データの通信が開始されてよい時点までの期間であり、
前記第1の通信チャネルを使用する前記画像データの通信が停止された後、前記第2の送信側無線回路または前記第2の受信側無線回路に設定された前記第3の通信チャネルを使用する前記チャネル使用確認が停止される時点以前に、前記第1の送信側無線回路または前記第1の受信側無線回路に前記第3の通信チャネルが設定され、
前記チャネル使用確認部は、前記第2の送信側無線回路または前記第2の受信側無線回路に設定された前記第3の通信チャネルを使用する前記チャネル使用確認が停止される時点以前に、前記第1の送信側無線回路または前記第1の受信側無線回路に設定された前記第3の通信チャネルを使用する前記チャネル使用確認を開始する
請求項1に記載の画像通信システム。 - 画像データを電波で受信し、同時に2つのみの通信チャネルを使用可能であり、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される受信側無線通信部と、
前記受信側無線通信部によって前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行するレーダ検知部と、
前記レーダ検知部による前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行するチャネル使用確認部と、
を有し、
前記受信側無線通信部は、第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記レーダ検知部によって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止し、
前記チャネル使用確認部は、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なり、
前記受信側無線通信部は、前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルであり、
前記受信側無線通信部は、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止し、
前記受信側無線通信部は、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する
画像受信装置。 - 画像データを電波で送信し、同時に2つのみの通信チャネルを使用可能であり、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される送信側無線通信部と、
前記送信側無線通信部によって前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行するレーダ検知部と、
前記レーダ検知部による前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行するチャネル使用確認部と、
を有し、
前記送信側無線通信部は、第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記レーダ検知部によって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止し、
前記チャネル使用確認部は、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なり、
前記送信側無線通信部は、前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルであり、
前記送信側無線通信部は、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止し、
前記送信側無線通信部は、前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する
画像送信装置。 - 同時に2つのみの通信チャネルを使用可能な無線通信部により画像データを電波で受信し、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される第1のステップと、
前記第1のステップで前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行する第2のステップと、
第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記第2のステップによって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止する第3のステップと、
前記第2のステップによる前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行する第4のステップであって、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なる前記第4のステップと、
前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルである第5のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止する第6のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する第7のステップと、
を有する画像受信方法。 - 同時に2つのみの通信チャネルを使用可能な無線通信部により画像データを電波で送信し、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される第1のステップと、
前記第1のステップで前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行する第2のステップと、
第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記第2のステップによって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止する第3のステップと、
前記第2のステップによる前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行する第4のステップであって、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なる前記第4のステップと、
前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルである第5のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止する第6のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する第7のステップと、
を有する画像送信方法。 - 画像受信装置のコンピュータに、
同時に2つのみの通信チャネルを使用可能な無線通信部により画像データを電波で受信し、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される第1のステップと、
前記第1のステップで前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行する第2のステップと、
第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記第2のステップによって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止する第3のステップと、
前記第2のステップによる前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行する第4のステップであって、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なる前記第4のステップと、
前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルである第5のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止する第6のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する第7のステップと、
を実行させるためのプログラム。 - 画像送信装置のコンピュータに、
同時に2つのみの通信チャネルを使用可能な無線通信部により画像データを電波で送信し、前記画像データは、撮像クロックに同期して生成され、前記画像データは、前記画像データが生成された順に送信される第1のステップと、
前記第1のステップで前記画像データの通信に使用されうる通信チャネルにおいてレーダの電波の検知処理を実行する第2のステップと、
第1の通信チャネルを使用する前記画像データの通信が行われている場合に前記第2のステップによって前記第1の通信チャネルにおいて前記レーダの前記電波が検知された時点から所定期間内に、前記第1の通信チャネルを使用する前記画像データの通信を停止する第3のステップと、
前記第2のステップによる前記検知処理を所定時間、継続的に実行することにより、通信チャネルが使用可能であるか否かを確認するチャネル使用確認を実行する第4のステップであって、第3の通信チャネルを使用する前記チャネル使用確認を実行し、前記第1の通信チャネルと前記第3の通信チャネルとは、前記レーダによって使用される可能性がある通信チャネルであり、前記第3の通信チャネルは、前記第1の通信チャネルと異なる前記第4のステップと、
前記レーダの前記電波が検知された前記時点から前記所定期間内に、第2の通信チャネルを使用する前記画像データの通信を開始し、前記第2の通信チャネルは、前記レーダによって使用されない通信チャネルである第5のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第2の通信チャネルを使用する前記画像データの通信を停止する第6のステップと、
前記第3の通信チャネルを使用する前記チャネル使用確認が完了した後、前記第3の通信チャネルを使用する前記画像データの通信を開始する第7のステップと、
を実行させるためのプログラム。
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CN107612577A (zh) * | 2017-09-27 | 2018-01-19 | 深圳市普威技术有限公司 | 一种信道选择系统、方法及电子设备 |
CN107612577B (zh) * | 2017-09-27 | 2019-10-18 | 深圳市普威技术有限公司 | 一种信道选择系统、方法及电子设备 |
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CN107432002A (zh) | 2017-12-01 |
US20180020427A1 (en) | 2018-01-18 |
JPWO2016162971A1 (ja) | 2018-02-01 |
CN107432002B (zh) | 2021-05-11 |
JP6440826B2 (ja) | 2018-12-19 |
US10542522B2 (en) | 2020-01-21 |
DE112015006294T5 (de) | 2017-11-30 |
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