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Transmission Device, Transmission Method, Receiving Device, Receiving Method, And Communication System

Abstract: The present disclosure relates to a transmission device, a transmission method, a receiving device, a receiving method, and a communication system that can achieve stable communication in response to fluctuations in a communication environment in a WLAN (Wireless LAN, WaveLAN). When the transmission device transmits a data signal to the receiving device, the receiving device returns, to the transmission device, a response signal which includes a feedback parameter (FP). If, on the basis of the FP, the reception status of the receiving device is poor and needs to be improved, the transmission device adjusts the transmission power or the like to improve the reception status of the receiving device. The present invention is applicable to a communication system in a WLAN.

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Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
24 July 2020
Publication Number
38/2020
Publication Type
INA
Invention Field
ELECTRONICS
Status
Email
mahua.ray@remfry.com
Parent Application
Patent Number
Legal Status
Grant Date
2025-02-06
Renewal Date

Applicants

SONY CORPORATION
1-7-1, Konan, Minato-ku, Tokyo 1080075

Inventors

1. AIO Kosuke
c/o SONY CORPORATION, 1-7-1, Konan, Minato-ku, Tokyo 1080075
2. TANAKA Yusuke
c/o SONY CORPORATION, 1-7-1, Konan, Minato-ku, Tokyo 1080075
3. HIRATA Ryuichi
c/o SONY CORPORATION, 1-7-1, Konan, Minato-ku, Tokyo 1080075

Specification

Title of Invention: Transmission device, transmission method, reception device, reception method, and communication system
Technical field
[0001]
 The present disclosure relates to a transmission device, a transmission method, a reception device, a reception method, and a communication system, and particularly, to realize stable communication in response to a change in a communication environment in a WLAN (Wireless LAN, WaveLAN). The present invention relates to a transmission device, a transmission method, a reception device, a reception method, and a communication system.
Background technology
[0002]
 Currently, the IEEE 802.11 standard uses a packet transmission mechanism using A-MPDU (Aggregation-MAC Protocol Data Unit).
[0003]
 In the A-MPDU system, a plurality of pieces of data (A-MPDU subframe: hereinafter, referred to as a subframe) after synchronization and parameter acquisition necessary for reception are completed at the head portion (hereinafter, referred to as a preamble) Are connected and transmitted as one large data (frame), thereby realizing high efficiency of packet communication.
[0004]
 Also, by receiving the response signal (Block Ack) from the receiving side after the packet transmission is completed, it is possible to know whether or not the plurality of subframes have been correctly received.
[0005]
 However, as the time required for one packet transmission in the A-MPDU method becomes longer, it becomes more susceptible to fluctuations in the communication environment, and it is considered that the mobility performance deteriorates.
[0006]
 For example, if at least one of the transmitter / receiver moves during packet transmission, the received power is reduced, and there is a high possibility that the packet cannot be received correctly in the middle. Further, when a packet collision occurs due to the influence of a hidden terminal or the like, there is a possibility that the packet cannot be received correctly from the middle.
[0007]
 In this case, the transmitter adjusts the transmission parameters such as the transmission power, or the interfering terminals that collide with each other adjust the transmission parameters such as the transmission power. Therefore, it is necessary to maintain good reception performance.
[0008]
 However, with the current standard, since the reception environment information on the receiving side can be known only after the response signal is acquired after the completion of one packet transmission, it is not possible to adjust the transmission parameters according to the fluctuation of the reception environment. It is possible.
[0009]
 Therefore, a method has been proposed in which information on whether or not a data signal is correctly received is received from the receiving side, and it is determined whether to continue or interrupt the transmission (see Patent Document 1).
Prior art documents
Patent documents
[0010]
Patent Document 1: Japanese Unexamined Patent Publication No. 2015-050674
Summary of the invention
Problems to be Solved by the Invention
[0011]
 However, with the determination method of the technique of Patent Literature 1, there is a risk that communication itself may not be possible in an environment with a lot of congestion, such as frequent packet collisions, because of the simple determination of continuous transmission.
[0012]
 This disclosure has been made in view of such circumstances, and in particular, it has improved mobility in WLAN (Wireless LAN, WaveLAN) standardized by IEEE 802.11, and responded to changes in the communication environment. , To enable stable communication.
Means for solving the problems
[0013]
 A transmitter according to the first aspect of the present disclosure includes a transmitter that transmits a data signal to a receiver, and a receiver that receives a response signal from the receiver that has received the data signal at the same time that the data signal is transmitted. And a control unit that adjusts transmission parameters that control transmission of the transmission unit based on the response signal, and the transmission unit is controlled by transmission parameters adjusted by the control unit to control the data signal. Is a transmitting device that transmits data to the receiving device.
[0014]
 The transmission method according to the first aspect of the present disclosure includes a transmission process of transmitting a data signal to a reception device and a reception process of simultaneously receiving the response signal from the reception device that has received the data signal and transmitting the data signal. And a control process for adjusting a transmission parameter for controlling transmission of the transmission process based on the response signal, the transmission process is controlled by the transmission parameter adjusted by the control process, and the data signal Is transmitted to the receiving device.
[0015]
 In the first aspect of the present disclosure, a data signal is transmitted to a receiving device, and a response signal from the receiving device that receives the data signal is received at the same time as the data signal is transmitted, and the response signal is Based on this, the transmission parameters that control transmission are adjusted, and the data signal is transmitted to the receiving device under the control of the adjusted transmission parameters.
[0016]
 The receiving device of the second aspect of the present disclosure transmits a receiving unit that receives the data signal transmitted from the transmitting device and a response signal to the reception of the data signal by the receiving unit at the same time as receiving the data signal. The transmitting unit and the receiving unit are receiving devices that receive the data signal whose transmission is controlled by adjusted transmission parameters based on the response signal in the transmitting device.
[0017]
 The reception method of the second aspect of the present disclosure is to transmit a reception process for receiving a data signal transmitted from a transmitting device and a response signal for receiving the data signal by the reception process at the same time as receiving the data signal. The transmission processing and the reception processing are reception methods in which the transmission device receives the data signal whose transmission is controlled by the adjusted transmission parameter based on the response signal.
[0018]
 In the second aspect of the present disclosure, the data signal transmitted from the transmitting device is received, and the response signal to the reception of the data signal is transmitted at the same time as receiving the data signal, and the response signal is transmitted in the transmitting device. The data signal whose transmission is controlled by the adjusted transmission parameter is received based on
[0019]
 The communication system of the third aspect of the present disclosure is a communication system including a transmitting device and a receiving device, in which the transmitting device receives a first transmitting unit that transmits a data signal to the receiving device and the data signal. And a control for adjusting a transmission parameter for controlling the transmission of the first transmission unit based on the response signal, the first reception unit receiving the response signal from the reception device at the same time as transmitting the data signal. The first transmission unit is controlled by the transmission parameter adjusted by the control unit to transmit the data signal to the reception device, and the reception device is transmitted from the transmission device. A second receiving unit that receives a data signal, a second transmitting unit that transmits a response signal to the reception of the data signal by the second receiving unit at the same time as receiving the data signal, and the second receiving unit. The unit is a communication system in which the transmission device receives the data signal whose transmission is controlled by an adjusted transmission parameter based on the response signal.
[0020]
 A third aspect of the present disclosure is a communication system including a transmission device and a reception device, wherein the transmission device transmits a data signal to the reception device, and the reception device receives the data signal from the reception device. The response signal is received at the same time as the data signal is transmitted, and the transmission parameters that control transmission are adjusted based on the response signal, and the data signal is controlled by the adjusted transmission parameters, and the data signal is the receiving device. The data signal transmitted to and transmitted to is received, and the response signal to the reception of the data signal is transmitted at the same time as the data signal is received, and is adjusted in the transmitting device based on the response signal. The data signal whose transmission is controlled by the transmission parameter is received.
Effect of the invention
[0021]
 According to one aspect of the present disclosure, it is possible to realize stable communication, particularly in response to a change in the communication environment in a WLAN (Wireless LAN, WaveLAN).
A brief description of the drawing
[0022]
[Fig. 1] Fig. 1 is a diagram illustrating an outline of the present disclosure.
FIG. 2 is a diagram illustrating a configuration example of the communication system of the present disclosure.
FIG. 3 is a diagram illustrating an outline of a first embodiment of a transmission device of the communication system of the present disclosure.
FIG. 4 is a diagram illustrating an outline of a first embodiment of a receiving device of the communication system of the present disclosure.
FIG. 5 is a diagram illustrating an example of a sequence of the communication system according to the first embodiment.
FIG. 6 is a diagram illustrating a configuration example of a first embodiment of a response signal frame.
FIG. 7 is a diagram illustrating a configuration example of an interrupt frame.
FIG. 8 is a flowchart illustrating a transmission process by the transmission device of FIG.
9 is a flowchart illustrating a reception process by the receiving device of FIG. 4. FIG.
FIG. 10 is a diagram illustrating an example of a sequence of a communication system according to a second embodiment.
FIG. 11 is a diagram illustrating an outline of a first embodiment of a transmission device of a communication system of the present disclosure.
FIG. 12 is a diagram illustrating an outline of a first embodiment of a receiving device of the communication system of the present disclosure.
FIG. 13 is a diagram illustrating a configuration example of a response signal frame according to the first embodiment.
FIG. 14 is a flowchart illustrating a transmission process performed by the transmission device in FIG. 11.
15 is a flowchart illustrating a reception process by the receiving device of FIG. 12. FIG.
[Fig. 16] Fig. 16 is a diagram illustrating a configuration example of a general-purpose personal computer.
MODE FOR CARRYING OUT THE INVENTION
[0023]
 Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. In the present specification and the drawings, constituent elements having substantially the same functional configuration are designated by the same reference numerals, and duplicate description will be omitted.
[0024]
 Hereinafter, modes for implementing the present technology will be described. The description will be given in the following order.
 1. 1. Outline of the present disclosure
 2. First Embodiment
 3. Second embodiment
 4. Example to be executed by software
[0025]
 << 1. Outline of the
 present disclosure >> This disclosure relates to a communication system that improves mobility in a WLAN (Wireless Local Area Network, Wave Local Area Network) standardized by IEEE802.11 and responds to fluctuations in the reception environment. is there.
[0026]
 Before describing the communication system of the present disclosure, a mechanism of packet transmission by an A-MSDU (Aggregation-MAC Protocol Data Unit) standardized by IEEE 802.11 will be described.
[0027]
 The A-MSDU method is a communication method standardized by IEEE802.11, and multiple data after the synchronization and parameter acquisition required for reception are completed at the beginning of the packet (hereinafter referred to as the preamble). (A-MPDU subframes) (hereinafter referred to as subframes) are concatenated and transmitted as one large data (frame), thereby realizing high efficiency of packet communication.
[0028]
 Also, by receiving the response signal (Block Ack) from the receiving side after the packet transmission is completed, it is possible to know whether or not the plurality of subframes have been correctly received.
[0029]
 A specific communication example of the A-MPDU system will be described with reference to the timing chart of FIG. For example, in the case of a communication example in which data is transmitted from a child device STA (STAtion) to an access point (base station) APa, that is, when the child device STA functions as a transmitting device and the access point APa functions as a receiving device. , Communication is performed as shown in the timing chart of FIG.
[0030]
 At time t0, when the slave STA transmits the preamble PA, the access point APa receives the preamble PA. At this time, the access point APa acquires synchronization and parameters necessary for reception included in the received preamble PA, adjusts reception settings based on the acquired synchronization and parameters, and prepares for reception of subsequent subframes. ..
[0031]
 At time t1, the slave unit STA transmits a packet to the access point APa as a subframe Sub-A1 among the plurality of subframes. At this time, the access point APa receives the subframe Sub-A1 and transmits a response signal (Block Ack) R1 from the receiving side after the reception of the packet is completed.
[0032]
 After that, the slave unit STA sequentially transmits the subframes Sub-A2 to Sub-A5 at each timing of time t2 to t5.
[0033]
 Also, at each of the timings from t2 to t5, the access point APa receives the subframes Sub-A2 to Sub-A5 transmitted from the slave STA and transmits the response signals R2 to R5 at each timing. To do.
[0034]
 Then, the slave unit STA receives the response signals R2 to R5 and recognizes that the transmission is completed.
[0035]
 In the A-MPDU communication, packet communication is efficiently realized by thus connecting and transmitting a plurality of subframes to one preamble PA.
[0036]
 However, when this series of operations is performed, for example, there is an access point APb that can communicate with the access point APa but cannot communicate with the child device STA, and as shown in the lower part of FIG. When transmission is started from t11, for example, by the A-MPDU method, interference occurs at time t11, as shown in the middle part of FIG. In addition, in FIG. 1, it is shown that the access point APb transmits the subframes Sub-B1 to Sub-B4 at each of the times t12 to t15.
[0037]
 As a result, the transmission packet of the access point APb causes interference, so that the reception environment of the access point APa deteriorates and the transmission packet of the child device STA cannot be correctly received.
[0038]
 In such a situation, for example, when the slave unit STA is transmitting a packet by the A-MPDU method, if it can be adjusted so that the reception environment of the access point APa can be improved during the transmission, the access point APa Can increase the number of subframes that can be correctly received and increase the packet reception success rate. As a result, stable communication in WLAN can be realized.
[0039]
 However, in the current 802.11 standard, such a mechanism does not exist, and in the case of FIG. 1, the access point APa must continue to receive packets from the child device STA even in a poor reception environment, Depending on the conditions, there is a possibility that one subframe cannot be received.
[0040]
 Therefore, in the present disclosure, for example, the access point APa of FIG. 1 notifies the child device STA to urge the adjustment of the transmission parameter so as to improve the reception environment during packet reception, or to the access point APb. On the other hand, notification is sent to prompt adjustment of transmission parameters so that the amount of interference is reduced in the short term.
[0041]
 In order to realize this operation, each wireless terminal such as the access points APa, APb, and the handset STA needs to perform transmission and reception at the same time. Furthermore, unlike a 3GPP (Third Generation Partnership Project), a wireless LAN requires a similar channel access procedure on the same frequency for both the base station and the wireless terminals other than the base station. It is desirable that the response signal can be transmitted at the same frequency as the data signal, not in different simultaneous transmission / reception systems.
[0042]
 Therefore, in the present disclosure, all wireless terminals capable of transmitting and receiving within the same frequency (full-duplex communication terminals) are used to receive packets such as the access point APa (hereinafter, also referred to as receiver). Sends a response signal at regular intervals.
[0043]
 Here, the response signal includes information on the response signal and information on the reception environment as a footback parameter (hereinafter referred to as FP).
[0044]
 A wireless terminal (hereinafter, also referred to as a transmitter) that is transmitting a packet, like the slave STA, sees the FP in the received response signal and adjusts the transmission parameter so that the reception environment is improved.
[0045]
 Similarly, in a transmitter such as the access point APb that interferes with the receiver, the FP in the received response signal is checked and the transmission parameter is adjusted so that the amount of interference is reduced. As a result, the access point APa can improve the reception environment during packet reception and increase the success rate of packet reception even in the situation where interference occurs as shown in FIG. As a result, stable communication can be realized.
[0046]
 << 2. First Embodiment >>
 Next, a configuration example of the first embodiment of the communication system to which the technique of the present disclosure is applied will be described with reference to FIG.
[0047]
 The communication system of FIG. 2 includes access points AP1 and AP2, and slave units SAT1 and SAT2. In the communication system of FIG. 2, the access point AP1 and the slave unit STA1 belong to a network whose BSSID is BSS1 for identifying a network that can communicate with each other via the access point AP1, and the access point AP2 and the slave unit STA2 belong to the network. It is assumed that you belong to the network where BSSID = BSS2.
[0048]
 Further, the access point AP1 and the access point AP2 can mutually detect signals, but the access point AP1 and the slave unit STA2, and the access point AP2 and the slave unit STA1 exist at positions where they cannot mutually detect signals. It shall be.
[0049]
 Therefore, in the communication system of FIG. 2, the access point AP1 and the child device STA1 belong to the network of BSS1 that can send and receive packets to each other, and the access point AP2 and the child device STA2 can send and receive packets to each other. It is assumed that it belongs to the BSS2 network, and that the access points AP1 and AP2 can detect each other's signals.
[0050]
 The target system configuration is not limited to this, and there may be a plurality of communication devices for which a connection has been established, and there may be communication devices for which a connection has not been established around each communication device. However, other positional relationships may be used as long as such conditions are satisfied.
[0051]
 In the following, the slave unit STA1 belonging to BSSID = BSS1 functions as a transmitting device for transmitting a packet to the slave unit STA1, and the access point AP1 functions as a receiving device for receiving a packet from the slave unit STA1. And. In addition, it is assumed that the access point AP2 belonging to BSSID=BSS2 functions as a transmission device that transmits a packet to the child device STA2.
[0052]
 However, the transmitting device and the receiving device are actually the same communication device, the transmitting device referred to here is a device when the communication device operates in the transmission mode, and the receiving device is a communication device. It is a device when operating in the reception mode.
[0053]
 
 Next, with reference to FIG. 3, a configuration example of the first embodiment of the transmitting device corresponding to the slave unit STA1 and the access point AP2 of FIG. explain.
[0054]
 The transmitting device 31 of FIG. 3 includes a control unit 51, a data processing unit 52, a transmitting unit 53, an antenna sharing unit 54, a receiving unit 55, a self-interference canceller unit 56, and an antenna 57.
[0055]
 The control unit 51 includes a processor, a memory, and the like, controls the entire operation of the transmission device 31, and sets transmission parameters for adjusting the transmission power of the transmission unit 53 and the like.
[0056]
 The data processing unit 52 executes generation of a data signal to be transmitted in a packet and extraction of the data signal from the demodulated reception signal as processing of the data signal to be communicated.
[0057]
 More specifically, the data processing unit 52 includes a destination determination unit 71, a reception environment determination unit 72, a preamble generation unit 73, a subframe generation unit 74, and an interference determination unit 75.
[0058]
 The destination determination unit 71 determines whether the response signal transmitted from the receiving device 131 (FIG. 4) every time a packet is received in subframe units is addressed to itself (the transmitting device 31 itself). Judge whether or not.
[0059]
 The reception environment determination unit 72 is based on the FP (feedback parameter: reception information) included in the response signal transmitted to itself from the reception device 131 (FIG. 4) via the reception unit 55. It is determined whether or not the reception environment in 131 (FIG. 4) needs to be improved, and the determination result is output to the control unit 51.
[0060]
 When transmitting a packet, the preamble generation unit 73 generates a preamble of transmission data composed of frames in MPDU units, outputs the preamble to the transmission unit 53, and causes the reception device 131 to transmit the preamble.
[0061]
 When transmitting a packet, the subframe generation unit 74 generates a subframe from the transmission data of each MPDU, outputs the subframe to the transmission unit 53, and causes the reception device 131 to transmit the subframe.
[0062]
 The subframe generation unit 74 generates an interrupt frame based on the configuration of the subframe. For the interrupted frame, based on the FP from the receiving device 131 (FIG. 4), in order to improve the receiving environment of the receiving device 131, the transmission parameters are adjusted again, and a new frame in MPDU units is retransmitted from the preamble. It is a signal that declares the suspension of the current subframe transmission when a need arises.
[0063]
 More specifically, the middle frame is a type of subframe based on the structure of the subframe. It is when the state (Break Flag==1) is set. In this way, the subframe that functions as a break frame has a null area for storing transmission data.
[0064]
 In addition, when the middle flag (Break Flag) included in the subframe is in the off state (Break Flag == 0) that does not declare the interruption of the transmission of the subframe, the transmission data is also transmitted and the normal subframe is transmitted. Functions as a frame. The details of the interrupted frame will be described later with reference to FIG. 7.
[0065]
 The interference determining unit 75 gives the response signal to the receiving device 131 (FIG. 4) which has sent the response signal based on the FP included in the response signal which is not addressed to itself via the receiving unit 55. It is determined whether or not the interference is suppressed, and the determination result is output to the control unit 51.
[0066]
 The control unit 51 sets transmission parameters based on the determination result of the reception environment determination unit 72 and the determination result of the interference determination unit 75.
[0067]
 The transmission unit 53 generates a packet to be transmitted from the data signal generated by the data processing unit 52, and causes the antenna 57 to transmit the packet via the antenna sharing unit 54.
[0068]
 More specifically, the transmission unit 53 includes an analog signal conversion unit 91 and an RF (Radio Frequency) transmission unit 92.
[0069]
 The analog signal conversion unit 91 converts the data signal generated by the data processing unit 52 into an analog signal and outputs it to the RF transmission unit 92.
[0070]
 The RF transmission unit 92 performs frequency conversion and power amplification of the analog signal generated by the analog signal conversion unit 91, and transmits the analog signal as a transmission signal from the antenna 57 via the antenna sharing unit 54.
[0071]
 The antenna sharing unit 54 emits the transmission signal generated by the transmission unit 53 as an electromagnetic wave via the antenna 57. Further, the antenna sharing unit 54 outputs the electromagnetic wave received through the antenna 57 to the receiving unit 55 as a receiving signal.
[0072]
 The reception unit 55 extracts a data signal from the reception signal received by the antenna 57 via the antenna sharing unit 54, and outputs the data signal to the data processing unit 52.
[0073]
 More specifically, the receiving unit 55 includes addition units 101 and 104, an RF receiving unit 102, and a digital signal conversion unit 103.
[0074]
 The addition unit 101 adds the reception signal supplied from the antenna sharing unit 54 and the cancel signal supplied from the self-interference canceller unit 56, and interferes with the analog signal when communicating using radio waves in the same frequency band. Is canceled and output to the RF receiving unit 102.
[0075]
 The RF receiving unit 102 performs frequency conversion and power amplification of the received signal received via the antenna 57, and converts it into an analog signal that can be easily converted into a digital signal. The RF receiving unit 102 includes an LNA (Low Noise Amplifier), and the gain of the LNA is controlled by AGC (Auto Gain Control) according to the receiving intensity.
[0076]
 The digital signal converter 103 converts the analog signal supplied from the RF receiver 102 into a digital signal and outputs the digital signal to the adder 104.
[0077]
 The addition unit 104 adds the reception signal converted into the digital signal supplied from the digital signal conversion unit 103 and the cancellation signal supplied from the self-interference canceller unit 56, and communicates using radio waves in the same frequency band. This cancels the interference of the digital signal and outputs the data to the data processing unit 52.
[0078]
 The self-interference canceller unit 56 is a general function required for a transmission device that performs a transmission operation and a reception operation at the same frequency. When the transmitting device 31 performs transmission and reception at the same time, a signal for canceling the interference is generated from the transmission signal as a source and added to the reception signal so that the transmission signal itself does not interfere with the reception signal.
[0079]
 More specifically, the self-interference canceller unit 56 includes an analog interference canceller unit 121 and a digital interference canceller unit 122.
[0080]
 The analog interference canceller unit 121 generates a signal for canceling the interference of the analog signal from the transmission signal output from the RF transmission unit 92, and outputs the signal to the addition unit 101.
[0081]
 The digital interference canceller unit 122 generates a signal that cancels the interference of the digital signal from the transmission signal output from the data processing unit 52, and outputs the signal to the addition unit 104.
[0082]
 Here, the self-interference canceller unit 56 has two types of interference canceller units, an analog interference canceller unit 121 and a digital interference canceller unit 122, that is, an analog signal and a digital signal, but the interference suppression characteristic is sufficient. Only one of them may be used if there is one.
[0083]
 
 Next, a configuration example of the first embodiment of the receiving device corresponding to the access point AP1 of FIG. 2 will be described with reference to FIG. The configurations of the receiving device 131 of FIG. 4 and the transmitting device 31 of FIG. 3 are basically the same. That is, the receiving device 131 of FIG. 4 includes a control unit 151, a data processing unit 152, a transmitting unit 153, an antenna sharing unit 154, a receiving unit 155, a self-interference cassera 156, and an antenna 157, each of which is a control unit. It corresponds to 151, data processing unit 152, transmission unit 153, antenna sharing unit 154, receiving unit 155, self-interference canceller unit 156, and antenna 157.
[0084]
 Further, the analog signal conversion unit 191 and the RF transmission unit 192 of the transmission unit 153, and the addition units 201 and 204 of the reception unit 155, the RF reception unit 202, and the digital signal conversion unit 203 are used to convert the analog signal of the transmission unit 153. It corresponds to the unit 191, the RF transmission unit 192, the addition units 201 and 204 of the reception unit 155, the RF reception unit 202, and the digital signal conversion unit 203.
[0085]
 Therefore, individual description of each configuration of the receiving device 131 will be omitted.
[0086]
 However, in the case of functioning as the receiving device 131, the control unit 151 does not set the transmission parameter, and the processing in the data processing unit 152 is different. Therefore, here, the function of the data processing unit 152 will be described.
[0087]
 The data processing unit 152 includes an interruption determination unit 171, an FP setting unit 172, and a response signal generation unit 173.
[0088]
 The interruption determination unit 171 determines whether or not the middle stage of transmission of the subframe is declared based on whether or not the interruption flag in the subframe supplied via the reception unit 155 is turned on and functions as the interruption frame. Is determined, and the determination result is output to the control unit 151.
[0089]
 The FP setting unit 172 sets an FP (feedback parameter) according to the reception status and supplies it to the response signal generation unit 173.
[0090]
 The response signal generation unit 173 generates a response signal including the FP parameter and outputs it to the transmission unit 153.
[0091]
 
 Next, a sequence example in the communication system of the first embodiment will be described with reference to the timing chart of FIG.
[0092]
 The access point AP1 functioning as the receiving device 131 receives a transmission packet from the slave unit STA1 functioning as the transmitting device 31, and periodically transmits a response signal (including ACK/NACK) including FP to the slave unit STA1. ..
[0093]
 The slave unit STA1 and the access point AP2 determine whether or not the reception environment of the access point AP1 needs to be improved based on the FP in the received response signal, and adjust the transmission parameters.
[0094]
 However, for example, even if the slave unit STA1 suddenly applies a new transmission parameter during packet transmission, the access point AP1 may not notice the change and may not be able to acquire the packet normally.
[0095]
 More specifically, since the access point AP1 which is the receiving device 131 adjusts the AGC of the LNA by using the preamble, when the slave device STA1 which is the transmitting device 31 suddenly changes the transmission power, the set AGC receives the packet correctly. It may not be possible.
[0096]
 When the slave device STA1 that is the transmission device 31 changes the modulation method, the data length information contained in the preamble does not match, and it is not possible to recognize where the subframe is divided.
[0097]
 Therefore, in order for the slave unit STA1 which is the transmission device 31 to apply the new transmission parameter from the middle, it is necessary to retransmit the frame in A-MPDU units reflecting the new transmission parameter during packet transmission. ..
[0098]
 That is, at present, the transmission of a frame in A-MPDU units being transmitted is interrupted, new transmission parameters are applied, and a new frame in A-MPDU units is retransmitted.
[0099]
 More specifically, it is necessary to transmit a new preamble (hereinafter referred to as a new preamble). Therefore, the access point AP1 which is the receiving device 131 must know at what timing the new preamble (data signal of a new A-MPDU unit) is transmitted.
[0100]
 Therefore, the transmission device 31 of the present disclosure transmits to the reception device 131 a subframe (hereinafter, an interruption frame) indicating that the transmission device 31 temporarily suspends packet transmission and transmits the new preamble before transmitting the new preamble. Send.
[0101]
 That is, the slave device STA1 that is the transmission device 31 sets the interruption flag in the subframe, does not interrupt the transmission of the subframe, and when continuing, turns off the interruption flag and transmits as a normal subframe. .. On the other hand, when applying the new transmission parameter, the slave unit STA1 which is the transmission device 31 turns on the interruption flag and transmits the interruption frame to the access point AP1.
[0102]
 The access point AP1, which is the receiving device 131, receives the subframe including the interruption flag, and when the interruption flag is off, continues reception as a normal subframe. Further, the access point AP1, which is the receiving device 131, if the interruption flag of the received subframe is ON, the transmission of the subframe is interrupted thereafter, and therefore the reception operation is terminated and the carrier sense operation is performed. Start.
[0103]
 As a result, the access point AP1 which is the receiving device 131 can detect the new preamble sent from the slave unit STA1 which is the transmitting device 31.
[0104]
 That is, in FIG. 5, at time t0, the slave STA1 that is the transmitter 31 transmits the preamble P1 and the access point AP1 that is the receiver 131 receives the preamble P1.
[0105]
 After that, at time t21, the slave unit STA1 which is the transmitting device 31 transmits the subframe Sub1 whose interruption flag is off, and the access point AP1 which is the receiving device 131 receives the subframe Sub1. At this timing, the access point AP1 which is the receiving device 131 recognizes that the interruption flag in the subframe Sub1 is off, so that the access point AP1 receives the subframe as a normal subframe and transmits the next subframe as usual. To do.
[0106]
 At time t22, the slave device STA1 that is the transmission device 31 transmits the subframe Sub2 in which the interruption flag is off, and the access point AP1 that is the reception device 131 receives the subframe Sub2. Even at this timing, the access point AP1 which is the receiving device 131 recognizes that since the interruption flag is off, it receives it as a normal subframe and also transmits the next subframe as usual.
[0107]
 At this time, the access point AP1 that is the receiving device 131 transmits the response signal R11 that reflects the reception status in the immediately preceding subframe Sub1 to the slave device STA1 that is the transmitting device 31, and the slave device STA1 receives the response signal R11.
[0108]
 At time t23, the slave device STA1 that is the transmission device 31 transmits the subframe Sub3 in which the interruption flag is off, and the access point AP1 that is the reception device 131 receives the subframe Sub3. Even at this timing, the access point AP1 which is the receiving device 131 recognizes that the interruption flag is off, so that it is received as a normal subframe and is transmitted as usual for the next subframe.
[0109]
 At this time, the access point AP1 which is the receiving device 131 transmits the response signal R12 reflecting the reception status in the immediately preceding subframe Sub2 to the slave unit STA1 which is the transmitting device 31, and the slave unit STA1 receives the response signal R12.
[0110]
 At time t24, the slave unit STA1 which is the transmission device 31 confirms the FP of the response signal R12, and if, for example, there is no problem even if the transmission output is increased, the interruption flag is used to change the transmission parameter. Is transmitted as an interrupt frame BF1 and is received by the access point AP1 which is the receiving device 131.
[0111]
 At this timing, the access point AP1 which is the receiving device 131 recognizes it as the interrupted frame BF1 because the interruption flag in the subframe is on, and thereafter, the transmission of the subframe is terminated and the new transmission parameter is used. Recognize that a new preamble is being sent.
[0112]
 The access point AP1 which is the receiving device 131 transmits the response signal R13 reflecting the reception status in the immediately preceding subframe Sub3 to the slave unit STA1 which is the transmitting device 31.
[0113]
 Then, at time t25, the slave device STA1 that is the transmission device 31 transmits the new preamble P2 in a state in which the transmission power that has been transmitted immediately before has been increased, and the access point AP1 that is the reception device 131 receives. Further, the access point AP1 which is the receiving device 131 starts a carrier sense for detecting a new preamble.
[0114]
 It should be noted that the mass indicating the preamble P2 in the figure is larger in the arrow direction than the immediately preceding subframe or preamble, which indicates that the transmission output is enhanced.
[0115]
 At this time, since the access point AP1 is a receiving device 131 that receives the new preamble P2 by carrier sense, the data length described in the new preamble P2 is acquired by TXOP (Transmission Opportunity: continuous transmission possible time). ) Recalculate so that it fits within. In addition, the access point AP1 sets the AGC of the LNA of the RF receiver 202 based on the preamble information. This makes it possible to properly receive a new output subframe.
[0116]
 By such processing, the slave device STA1 that is the transmission device 31 can adjust the transmission parameter according to the reception status based on the FP included in the response signal that is supplied from the access point AP1 that is the reception device 131. Therefore, it is possible to realize stable packet communication by suppressing the inability to receive packets in the middle due to, for example, a decrease in received power during communication. In addition, since the transmission output can be dynamically adjusted according to the reception status, it is possible to stabilize communication by a mobile device or the like.
[0117]
 On the other hand, access point AP2 belonging to BSS2, which is different from BSS1 which is the network of access point AP1, transmits a preamble from time t41, transmits subframe Sub11 with the interruption flag turned off at time t42, and has a different BSSID. The response signal R11 from the access point AP1 of the receiving device 131 is received.
[0118]
 Further, the access point AP2 transmits the subframe Sub12 with the interruption flag off at time t43, and receives the response signal R12 from the access point AP1 of the receiving device 131 having a different BSSID.
[0119]
 At time t44, the access point AP2, which is the transmission device 31, confirms the FP of the response signal R12 and, for example, when the interference is large and it is necessary to suppress the transmission output, in order to change the transmission parameter, the interruption flag is set. Is transmitted as an interruption frame BF2, and the unillustrated slave unit STA2, which is the receiving device 131, receives it.
[0120]
 At this timing, the slave unit STA2, which is the receiving device 131, has the interruption flag in the subframe turned on, so that the transmission of the subframe is stopped and a new preamble with a new transmission parameter is transmitted. recognize.
[0121]
 Then, at time t45, the access point AP2, which is the transmitter 31, transmits the new preamble P12 in a state in which the new preamble P12 is suppressed from the transmission output transmitted immediately before, and the interference of the access point AP1, which is the receiver 131, occurs. Reduce.
[0122]
 It should be noted that the cell indicating the preamble P12 in the figure is smaller than the immediately preceding subframe or preamble in the arrow direction, which indicates that the transmission output is suppressed.
[0123]
 Through such processing, the access point AP2, which is the transmission device 31, adjusts the transmission parameters according to the reception status based on the FP included in the response signal supplied from the access point AP1 that is the reception device 131 having a different BSSID. Therefore, it is possible to suppress the transmission output based on the presence or absence of the interference.
[0124]
 As a result, it is possible to realize stable packet communication by suppressing reception power from being lowered due to interference during communication and being unable to receive a packet from the middle. In addition, since the transmission output can be dynamically adjusted according to the reception situation in which interference is taken into consideration, it is possible to stabilize communication by mobile devices and the like.
[0125]
 However, although FIG. 5 shows an example in which both the slave unit STA1 and the access point AP2 adjust the transmission parameters, by adjusting the transmission parameters by either the slave unit STA1 or the access point AP2, When the reception environment of the access point AP1 is improved, it is desirable that only one of them adjusts the transmission parameter.
[0126]
 For example, when the access point AP2 functioning as the transmitting device 31 on the interfering side lowers the transmission power by the response signal transmitted by the access point AP1 functioning as the receiving device 131, the slave unit STA1 which is the transmitting device 31 transmits Packet transmission may be continued without adjusting the parameters. Conversely, when the access point AP2, which is the transmitting device 31 on the interfering side, does not adjust the transmission power, the handset STA1 must improve the reception environment by increasing the transmission power.
[0127]
 
 Next, a configuration example of the response signal (response signal frame) in the first embodiment will be described with reference to FIG.
[0128]
 The response signal is supposed to define a new frame format (new Frame Control number) in the control frame defined by the IEEE 802.11a standard.
[0129]
 The upper part of FIG. 6 shows the entire format of the response signal, and the lower part shows the format in FP (footback parameter).
[0130]
 As shown in the upper part of FIG. 6, the response signal frame is composed of Frame Control, Duration, RA (Receiver Address), FP (Feedback Parameter), and FCS (Frame Check Sequence).
[0131]
 The Frame Control is data of a frame number of 2 bytes, stores information for identifying the type of frame by the frame number, and at least NACK including ACK and FP can be identified.
[0132]
 Duration is 2 bytes of data and is the planned period for using the wireless line.
[0133]
 RA (Receiver Address) is 6 bytes of data and is the address of the receiving device.
[0134]
 FP (Feedback Parameter) is data of 3 bytes and is a feedback parameter.
[0135]
 FCS (Frame Check Sequence) is 4-byte data and is an error correction detection unit.
[0136]
 Further, the information in the FP shown in the lower part of FIG. 6 may include information on the response signal (response signal information) and information on the reception environment (reception environment information), and is limited to this embodiment. It's not something.
[0137]
 More specifically, in the FP, BSSID, transmission power level, SINR, target SINR, interference power level, and received packet priority information are included.
[0138]
 BSSID is an identifier for each BSS.
[0139]
 The transmission power level is transmission power information of the response signal.
[0140]
 SINR is the latest SINR (Signal to Interference and Noise Ratio) information in the packet being received. For example, in the case of ACK / NACK, it is the SINR information of the received subframe.
[0141]
 The target SINR is the SINR information required to properly demodulate the packet being received.
[0142]
 The interference power level is the total received power of the interference wave received other than the packet being received.
[0143]
 The received packet priority is AC (Access Category) information of the packet being received.
[0144]
 It is assumed that the response signal is used in combination with ACK / NACK and transmitted for each subframe, but the present invention is not limited to this. For example, the response signal is used in combination with Block Ack for each of multiple subframes. It may be transmitted, or a response signal may be transmitted periodically regardless of the subframe reception timing.
[0145]
 
 Next, a configuration example of the interruption frame to be transmitted to the receiving device 131 before the transmitting device 31 starts transmitting the new preamble will be described with reference to FIG. 7.
[0146]
 The interrupt frame according to the present disclosure is based on the configuration of the A-MPDU subframe defined in the IEEE 802.11n standard, and is characterized in that a Break Flag is provided in the MPDU Delimiter.
[0147]
 As shown in the upper part of FIG. 7, the interruption frame is composed of a 4-byte MPDU delimiter, a variable length NULL, and 0 to 3 bytes of padding. The MPDU delimiter corresponds to the header in the interrupt frame. Further, NULL having a variable length is an area in which transmission data is stored in the original subframe.
[0148]
 The MPDU delimiter consists of a 1-bit EOF, a 1-bit Break Flag, a 14-bit MPDU length, an 8-bit CRC, and an 8-bit Delimiter Signature, as shown in the lower part of FIG.
[0149]
 Of these, the Break Flag is a break frame, and when 1 is set, the suspension of subframe transmission is set, and when 0 is set, subframe transmission is continued.
[0150]
 When the receiving device 131 starts receiving the A-MPDU subframe as before, if the Break Flag in the MPDU Delimiter is "1", the receiving device 131 recognizes that this signal is the interrupted frame of the subframes. After the reception for the data length described in the MPDU length is completed, the reception operation is terminated and the carrier sense operation is started.
[0151]
 In the interrupted frame, the part where the data information is included in the normal A-MPDU subframe is set to NULL, and the NULL information is used to provide a preparation period until the receiving device 131 shifts to the carrier sense operation. be able to.
[0152]
 In a normal A-MPDU subframe, data information is stored in a place corresponding to NULL, and the Break Flag is set to "0". That is, the interrupted frame is a kind of subframe, and among the subframes, the middle flag is set to 1 and the data information is set to NULL.
[0153]
 Note that the configuration other than the Break Flag in the MPDU Delimiter is the same as that of a normal subframe, and therefore its description is omitted.
[0154]
 
 Next, the transmitting process of the transmitting device according to the first embodiment will be described with reference to the flowchart of FIG.
[0155]
 In step S11, the control unit 51 controls the data processing unit 52 to generate a preamble, which is transmitted from the transmitting unit 53 to the receiving device 131 via the antenna 57. More specifically, the preamble generation unit 73 of the data processing unit 52 generates a preamble and causes the transmission unit 53 to transmit the preamble to the receiving device 131 via the antenna 57.
[0156]
 In step S12, the control unit 51 controls the data processing unit 52 to generate a subframe, and causes the transmission unit 53 to transmit the subframe to the reception device 131 via the antenna 57. More specifically, the subframe generation unit 74 of the data processing unit 52 generates a normal subframe indicating that the subframe of the interruption flag Break Flag == 0 is not interrupted, and the antenna 57 is transmitted from the transmission unit 53. To be transmitted to the receiving device 131 via.
[0157]
 In step S13, the data processing unit 52 controls the receiving unit 55 to include an FP that is transmitted from the receiving device 131 along with the transmission of the subframe and that corresponds to the reception status when the subframe is received. Receive a response signal.
[0158]
 In step S14, the data processing unit 52 controls the destination determination unit 71 to determine whether or not it is the same as the BSS to which it belongs, based on the BSSID in the FP of the received response signal. If it is determined in step S14 that it is the same as the BSS to which it belongs, the process proceeds to step S15.
[0159]
 In step S15, the data processing unit 52 controls the destination determination unit 71 to determine whether the response signal is addressed to itself based on the information (RA) of the address of the receiving device 131 of the received response signal. To do.
[0160]
 If it is determined in step S15 that the response signal is addressed to itself, the process proceeds to step S16.
[0161]
 In step S16, the control unit 51 controls the reception environment determination unit 72 in the data processing unit 52 to determine whether or not the reception environment needs to be improved based on the information in the FP in the response signal. More specifically, the reception environment determination unit 72 determines, for example, whether the SINR information in the FP is much lower than the target SINR information, or whether the number of reception failures of the transmitted subframe exceeds a certain threshold, and the like. Based on, it is determined whether or not the reception environment needs to be improved.
[0162]
 If it is determined in step S16 that the improvement of the reception environment is unnecessary, the process proceeds to step S17.
[0163]
 In step S17, the control unit 51 controls the data processing unit 52 to generate a subframe, and causes the transmission unit 53 to transmit the subframe to the receiving device 131 via the antenna 57. More specifically, the subframe generation unit 74 of the data processing unit 52 generates a normal subframe indicating that the transmission of the subframe with the interruption flag Break Flag == 0 (interruption flag is off) is not interrupted. , The transmitting unit 53 transmits the data to the receiving device 131 via the antenna 57.
[0164]
 In step S18, the control unit 51 determines whether the end of the process is instructed, and when the end is instructed, the process ends.
[0165]
 If the end is not instructed in step S18, the process returns to step S13.
[0166]
 On the other hand, if it is determined in step S16 that the reception environment needs to be improved, the process proceeds to step S19.
[0167]
 In step S19, the control unit 51 controls the data processing unit 52 to generate a subframe with the interruption flag Break Flag==1, and causes the transmission unit 53 to transmit the subframe to the reception device 131 via the antenna 57. .. More specifically, the subframe generation unit 74 of the data processing unit 52 generates a subframe indicating that the transmission of the subframe with the interruption flag Break Flag==1 (the interruption flag is on) is interrupted as the interruption frame. The transmitting unit 53 causes the receiving device 131 to transmit via the antenna 57.
[0168]
 In step S20, the control unit 51 adjusts the transmission parameters based on the FP included in the response signal, and adjusts, for example, the transmission power and the modulation method of the transmission unit 53 so that the receiving device 131 can correctly receive the packet. To do.
[0169]
 In step S21, the control unit 51 controls the data processing unit 52 to generate a new preamble, which is transmitted from the transmitting unit 53 to the receiving device 131 via the antenna 57. More specifically, the preamble generation unit 73 of the data processing unit 52 generates a new preamble and causes the transmission unit 53 to transmit it to the reception device 131 via the antenna 57. The new preamble includes information that controls the AGC of the LNA in the reception unit 155 of the reception device 131.
[0170]
 If it is determined in step S15 that the response signal is the BSS to which it belongs, but it is not addressed to itself, the process proceeds to step S22.
[0171]
 In step S22, if the response signal is the BSS to which it belongs, but it is not addressed to itself, the control unit 51 considers that a collision has occurred due to the transmission packet transmitted by itself, and stops the transmission operation.
[0172]
 Furthermore, in step S14, when it is determined that the response signal is not addressed to the BSS to which it belongs, the process proceeds to step S23.
[0173]
 In step S23, the control unit 51 controls the data processing unit 52 to recognize the reception status of the receiving device 131 belonging to the BSS other than its own BSS that has been transmitted from the FP included in the response signal, and the amount of interference given. Is larger than a predetermined value, and it is determined whether or not it is necessary to suppress the output in order to suppress the amount of interference. More specifically, the interference determination section 75 of the data processing section 52 belongs to a BSS other than the BSS from the FP included in the response signal indicating the reception status of the receiving device 131 belonging to the BSS other than its own BSS. It is determined whether or not it is necessary to suppress the amount of interference given to the receiving device 131.
[0174]
 More specifically, the interference determination unit 75 determines the interference level (= [transmission power of transmission unit]-[transmission power level information] + [reception level of response signal]) that it gives to the receiving device 131. , The determination is made based on whether or not the difference between the allowable interference levels of the receiving device 131 (= [interference power level information] + [SINR information]-[target SINR information]) is larger than a predetermined threshold value. Further, the interference determination unit 75 may compare the received packet priority information with the received packet priority information and make a determination based on whether or not the priority is higher than that of the packet transmitted by itself.
[0175]
 If it is determined in step S23 that it is necessary to suppress the amount of interference, the process proceeds to step S19, and the transmission power is adjusted in the same manner as in the case of improving the reception environment.
[0176]
 If it is determined in step S23 that it is not necessary to suppress the amount of interference given, the process proceeds to step S18.
[0177]
 Through the above processing, the transmission device 31 needs to improve the reception environment according to the reception status based on the response signal transmitted each time the subframe from the reception device 131 is received, or , It was decided whether or not it was necessary to suppress the amount of interference. Then, when the transmitting device 31 determines that it is necessary to improve the receiving environment or suppress the amount of interference, the receiving device 131 transmits an interrupted frame indicating the interruption of the transmission of the subframe to the receiving device 131. In addition, after recognizing that the transmission of the subframe will be interrupted, the transmission of the subframe is interrupted, and after changing the transmission parameters for improving the reception environment and suppressing the amount of interference, a new preamble is used. I tried to send it again.
[0178]
 As a result, when the reception environment of the receiving device 131 deteriorates or when the amount of interference given is large, stable communication can be realized by appropriately improving the transmission output of the transmitting device 31. Further, since it can be dynamically changed, stable communication can be realized even in communication by a mobile device.
[0179]
 
 Next, the receiving processing of the receiving device according to the first embodiment will be described with reference to the flowchart of FIG.
[0180]
 In step S51, the control unit 151 starts the carrier sense of searching for the preamble from the receiving unit 155 via the antenna 157.
[0181]
 In step S52, the control unit 151 receives the preamble from the receiving unit 155 via the antenna 157. Through this process, the control unit 151 adjusts the AGC (Auto Gain Control) of the LNA (Low Noise Amplifier) ​​included in the RF reception unit 202 in the reception unit 155 based on the information included in the preamble.
[0182]
 In step S53, the control unit 151 receives a new subframe from the receiving unit 155 via the antenna 157, and further reads the MPDU delimiter in the subframe.
[0183]
 In step S54, the control unit 151 controls the data processing unit 152 to determine whether or not the interruption flag in the MPDU delimiter is turned off (Break Flag == 0). More specifically, the interruption determination unit 171 of the data processing unit 152 determines whether or not the interruption flag in the MPDU delimiter is turned off (Break Flag == 0).
[0184]
 If it is determined in step S54 that the interruption flag is turned off (Break Flag==0), that is, if it is a normal subframe, the process proceeds to step S55.
[0185]
 In step S55, the control unit 151 controls the receiving unit 155 to receive the data signal in the subframe.
[0186]
 In step S56, the control unit 151 controls the data processing unit 152 to set the FP. More specifically, the FP setting unit 172 of the data processing unit 152 sets the FP (feedback parameter) according to the reception status and supplies it to the response signal generation unit 173.
[0187]
 In step S57, the control unit 151 controls the data processing unit 52 to generate a response signal including the FP, and causes the transmission device 31 to transmit the response signal via the transmission unit 153. More specifically, the response signal generation unit 173 of the data processing unit 52 generates a response signal including the FP and causes the transmission device 31 to transmit the response signal via the transmission unit 153.
[0188]
 In step S58, it is determined whether or not the end of the process is instructed. If the end of the process is instructed, the process ends. If the end of the process is not instructed, the process returns to step S53.
[0189]
 On the other hand, if it is determined in step S54 that the break flag is turned on (Break Flag == 1), that is, if the subframe is a break frame, the process proceeds to step S59.
[0190]
 In step S59, the control unit 151 puts the processing on standby for the subframe in which the interruption flag is turned on (Break Flag==1), that is, the NULL portion of the data signal portion in the interruption frame.
[0191]
 In step S60, the control unit 151 controls the reception unit 155 to stop the reception of the subframe.
[0192]
 In step S61, the control unit 151 controls the reception unit 155 to start carrier sense for searching for a new preamble.
[0193]
 In step S62, the control unit 151 controls the reception unit 155 to receive the new preamble.
[0194]
 Through the above processing, the receiving device 131 can transmit the reception status of its own subframe to the transmitting device 31 as a response signal including the FP. As a result, the transmission device 31 can determine the reception status, and when the reception device 31 improves the reception status, it recognizes the reception termination of the subframe based on the interruption flag included in the subframe. At the same time, it becomes possible to search for a new preamble.
[0195]
 As a result, when the reception environment of the reception device 131 deteriorates, the transmission output of the transmission device 31 can be appropriately improved, so that stable communication can be realized. Further, since it can be dynamically changed, stable communication can be realized even in communication by a mobile device.
[0196]
 <<3. 2nd Embodiment >> In the
 above, in order to determine whether or not the transmission device 31 adjusts the transmission parameter based on the reception environment of the reception device 131 and improve the reception environment, transmission is currently being performed. It was necessary to interrupt the transmission of subframes, improve the reception environment, and retransmit from the new preamble. Therefore, it is necessary to transmit the interruption frame to notify the receiving device 131 that the new preamble is to be transmitted.
[0197]
 However, when the reception environment of the receiving device 131 is very poor, the receiving device 131 may not always be able to correctly receive the interrupted frame from the transmitting device 31, and the receiving device 131 knows at what timing the new preamble is transmitted. It is supposed to disappear.
[0198]
 Therefore, for example, the receiving device 131 may determine by itself whether the receiving environment needs to be improved and request the transmitting device 31 to adjust the transmission parameters.
[0199]
 
 Next, with reference to the timing chart of FIG. 10, the receiving device 131 determines by itself whether the receiving environment needs to be improved, and the transmitting device 31 A sequence example in the communication system of the second embodiment will be described in which the user is requested to adjust the transmission parameters.
[0200]
 That is, when the receiving device 131 determines by itself whether the receiving environment needs to be improved and requests the transmitting device 31 to adjust the transmission parameters, the sequence is, for example, the sequence shown in FIG. 10. ..
[0201]
 At time t0, the slave unit STA1 which is the transmitting device 31 transmits the preamble P31, and the access point AP1 which is the receiving device 131 receives the preamble P31.
[0202]
 After that, at time t101, the slave unit STA1 which is the transmitting device 31 transmits the subframe Sub31 whose interruption flag is off, and the access point AP1 which is the receiving device 131 receives the subframe Sub31. At this timing, the access point AP1 which is the receiving device 131 recognizes that the interruption flag in the subframe Sub1 is off, so that the access point AP1 receives the subframe as a normal subframe and transmits the next subframe as usual. To do.
[0203]
 At time t102, the slave device STA1 that is the transmission device 31 transmits the subframe Sub32 in which the interruption flag is off, and the access point AP1 that is the reception device 131 receives the subframe Sub32. Even at this timing, the access point AP1 which is the receiving device 131 recognizes that since the interruption flag is off, it receives it as a normal subframe and also transmits the next subframe as usual.
[0204]
 At this time, the access point AP1, which is the receiving device 131, determines whether or not the reception environment needs to be improved based on the reception status in the immediately preceding subframe Sub31, and if it is unnecessary, the reception point AP1 The response signal R31 reflecting the environment is transmitted to the slave unit STA1 which is the transmitter 31 and is received by the slave unit STA1. However, it is assumed that the response signal R31 does not include information indicating that the reception environment needs to be improved.
[0205]
 At time t103, the slave unit STA1 which is the transmitting device 31 transmits the subframe Sub33 whose interruption flag is off, and the access point AP1 which is the receiving device 131 receives the subframe Sub33. Even at this timing, the access point AP1 which is the receiving device 131 recognizes that the interruption flag is off, so that it is received as a normal subframe and is transmitted as usual for the next subframe.
[0206]
 At this time, the access point AP1 which is the receiving device 131 determines whether or not it is necessary to improve the receiving environment based on the reception status in the immediately preceding subframe Sub32, and if it is not necessary, determines the receiving environment. The reflected response signal R32 is transmitted to the slave unit STA1 which is the transmission device 31, and the slave unit STA1 receives the reflected signal R32. However, it is assumed that the response signal R32 does not include information indicating that the reception environment needs to be improved.
[0207]
 At time t104, when the slave unit STA1 which is the transmitting device 31 transmits the subframe Sub34 whose interruption flag is off, the access point AP1 which is the receiving device 131 has the interruption flag off, so that it is used as a normal subframe. Receiving and recognizing that the next subframe will also be transmitted normally.
[0208]
 However, for example, at this time, the access point AP1 which is the receiving device 131 requests the improvement of the reception environment when it is necessary to improve the reception environment based on the reception situation in the immediately previous subframe Sub33, and The response signal R33 including the signal indicating that the reception of the subframe is stopped is transmitted to the slave unit STA1 and the access point AP2 which are the transmission devices 31, and is received by the slave unit STA1 and the access point AP2. Further, the access point AP1 which is the receiving device 131 cuts off the reception of the subframe Sub34 after a predetermined time has elapsed after transmitting the response signal R33.
[0209]
 On the other hand, the slave unit STA1 and the access point AP2 adjust the transmission parameters so as to improve the reception environment or suppress the amount of interference given based on the FP included in the response signal R33, and time t105 (= t125). In, the preambles P32 and P42 are output, respectively.
[0210]
 Through the above sequence, the receiving device 131 determines whether or not the receiving environment needs to be improved, and if the receiving environment needs to be improved, the receiving device 131 notifies the transmitting device 31 of the request for improvement and the termination of the reception of the subframe, and Environmental improvements can be realized.
[0211]
 As a result, even in a situation in which the interrupted frame cannot be correctly received in the first embodiment, the timing at which the new preamble is transmitted can be recognized at its own timing, so that the reception environment of the receiving device 131 can be improved. At worst, it is possible to realize stable communication while improving the reception environment and adjusting the transmission parameters by the transmission device 31.
[0212]
 
 Next, an example of configuration of the transmitting device 31 according to the second embodiment will be described with reference to FIG. In the transmission device 31 of FIG. 11, the configurations having the same functions as the transmission device 31 of FIG. 3 are designated by the same reference numerals, and the description thereof will be omitted as appropriate.
[0213]
 That is, the transmitting device 31 of FIG. 11 differs from the transmitting device 31 of FIG. 3 in that the data processing unit 52 is provided with a termination determination unit 301 instead of the reception environment determination unit 72.
[0214]
 The termination determination unit 301 determines whether the reception device 131 has a subframe based on whether a reception termination flag newly provided in the FP included in the response signal supplied from the reception device 131 is set to ON or OFF. It is determined whether or not the reception of is terminated.
[0215]
 The details of the reception cutoff flag newly provided in the FP included in the response signal will be described later with reference to FIG.
[0216]
 
 Next, a configuration example of the second embodiment of the receiving device 131 will be described with reference to FIG. In the receiving device 131 of FIG. 12, the configurations having the same functions as the receiving device 131 of FIG. 4 are designated by the same reference numerals, and the description thereof will be omitted as appropriate.
[0217]
 That is, the receiving device 131 of FIG. 12 is different from the receiving device 131 of FIG. 4 in that the FP setting unit 311 and the response signal generation unit 312 are provided instead of the FP setting unit 172 and the response signal generation unit 173. This is a new point that the reception environment determination unit 313 is provided.
[0218]
 The basic functions of the FP setting unit 311 and the response signal generation unit 312 are the same as those of the FP setting unit 172 and the response signal generation unit 173, but the reception is discontinued because the FP is newly provided with the reception discontinuation flag. The difference is that a flag is set and reflected in the response signal.
[0219]
 The reception environment determination unit 313 has the same basic functions as the reception environment determination unit 72 provided in the transmission device 31 of FIG. 3, but the subframe is based on the FP obtained by the reception device 131. Determine if reception is discontinued.
[0220]
 
 Next, a configuration example of the response signal frame in the second embodiment will be described with reference to FIG.
[0221]
 Note that the response signal frame of FIG. 13 is basically similar to the response signal frame described with reference to FIG. 6, but is further different in that a reception abort flag is provided.
[0222]
 The reception cutoff flag is provided as 1-bit information as shown in the lower right part of FIG. 13, and is set to 1 when the reception cutoff of the subframe is set, and 0 when it is not the reception cutoff. Set.
[0223]
 When the reception abort flag is set to 1 in the remaining Length of 7 bits and the reception of the subframe is aborted in the receiving device 131, after the reception of the subframe is aborted, the carrier sense of the preamble is newly started. Time is recorded.
[0224]
 
 Next, the transmission processing of the transmitting device according to the second embodiment will be described with reference to the flowchart of FIG. In the flowchart of FIG. 14, the processing of steps S111 to S115, S117, S120 to S123 is the same as the processing of steps S11 to S15, S17, S20 to S23 described with reference to the flowchart of FIG. The description is omitted.
[0225]
 That is, in step S115, if the response signal is addressed to itself, the process proceeds to step S116.
[0226]
 In step S116, the control unit 51 controls the data processing unit 52 to determine whether or not the abort flag is set to 1 and the subframe reception is aborted. More specifically, the cutoff determination unit 301 of the data processing unit 52 determines whether or not the cutoff flag in the FP of the received response signal is set to 1 and the cutoff of the reception of the subframe is set.
[0227]
 In step S116, when the termination of reception of the subframe is set, the process proceeds to step S119.
[0228]
 In step S119, the control unit 51 causes the transmission unit 53 to operate after the time corresponding to the remaining length, that is, after the time corresponding to the remaining length from when the reception device 131 aborts the reception of the subframe. It controls to stop the transmission of the subframe being transmitted.
[0229]
 In step S120, the control unit 51 adjusts the transmission parameters based on the FP, and adjusts, for example, the transmission power and the modulation method so that the receiving device 131 can correctly receive the packet.
[0230]
 In step S121, the control unit 51 controls the data processing unit 52 to generate a new preamble, and causes the transmission unit 53 to transmit the new preamble to the reception device 131 via the antenna 57. More specifically, the preamble generation unit 73 of the data processing unit 52 generates a new preamble and causes the transmission unit 53 to transmit it to the reception device 131 via the antenna 57.
[0231]
 If it is determined in step S123 that it is necessary to suppress the amount of interference given, the process proceeds to step S124.
[0232]
 In step S124, the control unit 51 controls the data processing unit 52 to generate a subframe of the break flag == 1, and causes the transmission unit 53 to transmit the subframe to the receiving device 131 via the antenna 57. .. More specifically, the subframe generation unit 74 of the data processing unit 52 generates a subframe indicating that the transmission of the subframe having the interruption flag Break Flag==1 (the interruption flag is on) is interrupted, and the interruption frame The transmission unit 53 transmits the data to the reception device 131 via the antenna 57.
[0233]
 When a response signal addressed to the transmission device 31 of another BSS is received, the reception cutoff flag or the remaining Length information may be used as a criterion for suppressing the amount of interference. For example, the difference between the interference level given to the receiver 131 by the receiver itself and the allowable interference level of the receiver 131 is a predetermined value or more, and the received packet priority information indicates that the packet transmitted by itself has a high priority. Even if the reception termination flag is “1” and the reception termination timing indicated by the remaining Length information is during the transmission of the next subframe, the reception device 131 determines not to adjust the transmission parameters. You may.
[0234]
 
 Next, the reception processing of the receiving device in the second embodiment will be described with reference to the flowchart of FIG.
[0235]
 In the flowchart of FIG. 15, the processes of steps S151 to S155 and steps S165 to S168 are the same as the processes of steps S51 to S55 and steps S59 to S62 described with reference to the flowchart of FIG. The description is omitted.
[0236]
 That is, when the data signal in the subframe is received in step S155, the control unit 151 controls the data processing unit 152 in step S156 to improve the reception environment based on the current own FP. Have them judge whether or not. More specifically, the reception environment determination unit 313 of the data processing unit 152 determines, based on its own FP, whether the reception environment needs to be improved.
[0237]
 If it is determined in step S156 that improvement of the reception environment is unnecessary, the process proceeds to step S157.
[0238]
 In step S157, the control unit 151 controls the data processing unit 152 to set the censored flag in the FP to off (the censored flag = 0). More specifically, the FP setting unit 311 of the data processing unit 152 sets the termination flag in the FP to OFF.
[0239]
 In step S158, the control unit 151 controls the data processing unit 152 to transmit the response signal including the FP to the transmission device 31. More specifically, the response signal generation unit 312 of the data processing unit 152 generates a response signal including the FP set by the FP setting unit 311 and controls the transmission unit 153 to transmit it to the transmission device 31.
[0240]
 On the other hand, if it is determined in step S156 that the reception environment needs to be improved, the process proceeds to step S160.
[0241]
 In step S160, the control unit 151 controls the data processing unit 152 to set the censored flag in the FP to on (the censored flag = 1). More specifically, the FP setting unit 311 of the data processing unit 152 sets the termination flag in the FP to ON.
[0242]
 In step S161, the control unit 151 controls the data processing unit 152 to cause the transmission device 31 to transmit the response signal including the FP. More specifically, the response signal generation unit 312 of the data processing unit 152 generates a response signal including the FP set by the FP setting unit 311 and controls the transmission unit 153 to transmit it to the transmission device 31.
[0243]
 In step S162, the control unit 151 controls the reception unit 155 to stop the reception of the subframe after the elapse of the time based on the information of the remaining Length.
[0244]
 In step S163, the control unit 151 controls the reception unit 155 to start a carrier sense of searching for a new preamble.
[0245]
 In step S164, the control unit 151 controls the receiving unit 155 to receive the new preamble.
[0246]
 Through the above processing, the reception device 131 determines whether or not the reception environment needs to be improved, and when the reception environment needs to be improved, the reception device 131 notifies the transmission device 31 that the reception of the improvement request and the reception of the subframe are terminated, and the reception is performed. It is possible to improve the environment.
[0247]
 As a result, even in the situation where the interrupted frame cannot be received correctly in the first embodiment, the timing at which the new preamble is transmitted at its own timing by determining and requesting the improvement of the receiving environment by itself. Therefore, even if the receiving environment of the receiving device is bad, it is possible to realize stable communication while improving the receiving environment and adjusting the transmission parameters.
[0248]
 <<4. Example of execution by software >>
 By the way, the above-mentioned series of processes can be executed by hardware, but can also be executed by software. When a series of processes are executed by software, the programs that make up the software can execute various functions by installing a computer embedded in dedicated hardware or various programs. It is installed from a recording medium on a possible, eg, general purpose computer.
[0249]
 FIG. 16 shows a configuration example of a general-purpose computer. This personal computer has a built-in CPU (Central Processing Unit) 1001. The input / output interface 1005 is connected to the CPU 1001 via the bus 1004. A ROM (Read Only Memory) 1002 and a RAM (Random Access Memory) 1003 are connected to the bus 1004.
[0250]
 The input/output interface 1005 includes an input unit 1006 configured by an input device such as a keyboard and a mouse for a user to input an operation command, an output unit 1007 for outputting a processing operation screen and an image of a processing result to a display device, programs and various data. A storage unit 1008 including a hard disk drive for storing the data, a LAN (Local Area Network) adapter, and the like are connected to a communication unit 1009 that executes communication processing via a network typified by the Internet. In addition, magnetic disks (including flexible disks), optical disks (including CD-ROM (Compact Disc-Read Only Memory), DVD (Digital Versatile Disc)), magneto-optical disks (including MD (Mini Disc)), or semiconductors. A drive 1010 for reading and writing data is connected to a removable storage medium 1011 such as a memory.
[0251]
 The CPU 1001 is read from a program stored in the ROM 1002 or a removable storage medium 1011 such as a magnetic disk, an optical disk, a magneto-optical disk, or a semiconductor memory, installed in the storage unit 1008, and loaded into the RAM 1003 from the storage unit 1008. Various processes are executed according to the program. The RAM 1003 also stores data necessary for the CPU 1001 to execute various processes.
[0252]
 In the computer configured as described above, the CPU 1001 loads the program stored in the storage unit 1008 into the RAM 1003 via the input / output interface 1005 and the bus 1004 and executes the above-described series. Is processed.
[0253]
 The program executed by the computer (CPU1001) can be recorded and provided on the removable storage medium 1011 as a package medium or the like, for example. Further, the program can be provided via a wired or wireless transmission medium such as a local area network, the Internet, or digital satellite broadcasting.
[0254]
 In the computer, the program can be installed in the storage unit 1008 via the input / output interface 1005 by mounting the removable storage medium 1011 in the drive 1010. Further, the program can be received by the communication unit 1009 via a wired or wireless transmission medium and installed in the storage unit 1008. In addition, the program can be pre-installed in the ROM 1002 or the storage unit 1008.
[0255]
 The program executed by the computer may be a program that is processed in time series in the order described in this specification, or in parallel or at a necessary timing such as when a call is made. It may be a program for processing.
[0256]
 The CPU 1001 in FIG. 16 realizes the functions of the control units 51, 151 in FIGS. 3, 4, 11, and 12.
[0257]
 Further, in the present specification, the system means a set of a plurality of constituent elements (devices, modules (parts), etc.), and it does not matter whether or not all the constituent elements are in the same housing. Therefore, a plurality of devices housed in separate housings and connected via a network, and a device in which a plurality of modules are housed in one housing are both systems. ..
[0258]
 The embodiment of the present disclosure is not limited to the above-described embodiment, and various changes can be made without departing from the gist of the present disclosure.
[0259]
 For example, the present disclosure may have a cloud computing configuration in which one function is shared by a plurality of devices via a network and jointly processed.
[0260]
 Further, each step described in the above-mentioned flowchart can be executed by one device or can be shared and executed by a plurality of devices.
[0261]
 Further, when a plurality of processes are included in one step, the plurality of processes included in the one step can be executed by one device or shared by a plurality of devices.
[0262]
 Note that the present disclosure can also take the following configurations.
[0263]
<1> A transmitting unit that transmits a data signal to a receiving device, a receiving unit that receives
 the response signal from the receiving device that has received the data signal at the same time as transmitting the data signal,
 and based on the response signal, And a control unit that adjusts a transmission parameter that controls transmission of the transmission unit, wherein the transmission unit is controlled by the transmission parameter adjusted by the control unit and
 transmits the data signal to the reception
 device. ..
<2>
 The transmission device according to <1> , wherein the control unit determines whether or not the transmission parameter needs to be adjusted based on the response signal, and adjusts the transmission parameter that controls the transmission of the transmission unit.
<3>
 The transmission device according to <2>, wherein the control unit determines whether or not it is necessary to adjust the transmission parameters based on the reception information included in the response signal .
<4> When the response signal is a response signal addressed to itself, the control unit has the transmission parameter so as to improve the reception status of the receiving device based on the reception information included in the response signal.
 The transmitter according to <3>.
<5> When the response signal is a response signal addressed to a transmitting device of another network, the control unit suppresses the influence of interference with the receiving device based on the received information included in the response signal.
 The transmission device according to <3> , wherein the transmission parameter is adjusted so that the transmission parameter is adjusted .
<6> The control unit determines whether or not adjustment of the transmission parameter is necessary based on the notification indicating whether or not the reception operation in the reception device included in the response signal is interrupted, and controls the transmission of the transmission unit.
 The transmission device according to <2>, wherein the transmission parameter to be adjusted is adjusted .
<7> The transmitting unit is controlled by transmission parameters adjusted by the control unit, and when transmitting the data signal to the receiving device, the data signal is retransmitted from the beginning of the data signal
 <1> to <6>. The transmitter according to any one of 1.
<8> When the transmitting unit is controlled by a transmission parameter adjusted by the control unit to transmit the data signal to the receiving device, the transmitting unit transmits the data signal being transmitted to the receiving device.
 The transmission device according to <7> , wherein the data signal is retransmitted from the beginning after the interruption .
<9> When the transmission unit suspends transmission of the data signal being transmitted to the receiving device, the transmission unit suspends transmission of the data signal being transmitted to the receiving device.
 The transmitting device according to <8>, which notifies in advance .
<10> A transmission process of transmitting a data signal to a receiving device, a reception process
 of receiving a response signal from the receiving device that has received the data signal at the same time as transmitting the data signal,
 and based on the response signal, Including a control process for adjusting transmission parameters that control transmission of the transmission process.
 A transmission method in which the transmission process is controlled by transmission parameters adjusted by the control process to transmit the data signal to the receiving device
 .
<11> A receiver that receives a data signal transmitted from a transmitter, a transmitter that transmits
 a response signal to the reception of the data signal by the receiver at the same time that the data signal is received, and the
 receiver, In the transmitting device, a
 receiving device that receives the data signal whose transmission is controlled by adjusted transmission parameters based on the response signal .
<12> The transmitting unit simultaneously receives and transmits the data signal, including the reception information when the data signal is received by the receiving unit in the response signal to the reception of the data signal by the receiving unit. ,
 the receiving unit, the data signal transmission is controlled by the transmission parameter adjusted based on the received information included in the response signal received from the transmitting device
 the receiving device according to <11>.
<13>
 The receiving device according to <12>, wherein the transmitting unit transmits a response signal including information relating to either reception quality or interference power as the receiving information .
<14>
 The receiving device according to any one of <11> to <13>, wherein the receiving unit interrupts the receiving operation of the data signal and searches for the head portion of the newly transmitted data signal .
<15> The receiving unit interrupts the receiving operation of the data signal based on the notification of the interruption of the transmitting operation of the data signal from the transmitting device, and the head portion of the newly transmitted data signal.
 <14> The receiving device according to <14>.
<16> The receiving unit according to
 <14>, in which the receiving unit suspends the receiving operation of the data signal and searches for the head portion of the newly transmitted data signal based on the reception status of the data signal. apparatus.
<17>
 The receiving device according to <16> , wherein the transmitting unit transmits a response signal including information indicating whether or not the receiving operation of the data signal is interrupted as reception information to the transmitting device.
<18> The transmission unit
 describes any of <11> to <17> in which the response signal to the reception of the data signal by the reception unit is transmitted at the same time as the data signal is received and is periodically transmitted. Receiver.
<19> The reception process of receiving the data signal transmitted from the transmission device, the transmission
 process of transmitting the response signal to the reception of the data signal by the reception process at the same time as receiving the data signal, and the
 reception process are A
 receiving method in which the transmitting device receives the data signal whose transmission is controlled by adjusted transmission parameters based on the response signal .
<20> In a communication system including a transmitter and a receiver, the
 transmitter is
  A first transmitting unit that transmits a data signal to the receiving device, a first receiving unit
  that receives a response signal from the receiving device that has received the data signal at the same time as transmitting the data signal, and the
  response signal. based on, and a control unit for adjusting the transmission parameters for controlling the transmission of the first transmission section,
  said first transmission section is controlled by the transmission parameter adjusted by the control unit, the data A second transmission unit for transmitting a signal to the reception device, the reception device
 receiving
  a data signal transmitted from the transmission device; and
  a response signal for reception of the data signal by the second reception unit, The second transmitting unit that receives and transmits the data signal at the same time, and
  the second receiving unit are the data signal whose transmission is controlled by the transmission parameter adjusted based on the response signal in the transmitting device.
 Communication system for receiving .
Explanation of symbols
[0264]
 31 Transmitter, 51 Control unit, 52 Data processing unit, 53 Transmitter unit, 54 Antenna sharing unit, 55 Receiver unit, 56 Self-interference canceller unit, 57 Antenna, 71 Destination determination unit, 72 Reception environment determination unit, 73 Preamble generator , 74 Subframe generator, 75 Interference judgment unit, 131 Transmitter, 151 Control unit, 152 Data processing unit, 153 Transmitter unit, 154 Antenna sharing unit, 155 Receiver unit, 156 Self-interference canceller unit, 157 antenna, 171 Interruption Judgment unit, 172 FP setting unit, 173 response signal generation unit, 301 cutoff judgment unit, 311 FP judgment unit, 312 response signal generation unit, 313 reception environment judgment unit
The scope of the claims
[Claim 1]
 A transmission unit that transmits a data signal to a receiving device, a receiving unit that receives
 a response signal from the receiving device that has received the data signal at the same time as transmitting the data signal, and the transmitting unit
 based on the response signal. And a control unit that adjusts a transmission parameter that controls the transmission of the transmission signal,
 wherein the transmission unit is controlled by the transmission parameter adjusted by the control unit and transmits the data signal to the reception
 device.
[Claim 2]

 The transmission device according  to claim 1 , wherein the control unit determines whether or not the transmission parameter needs to be adjusted based on the response signal, and adjusts the transmission parameter that controls the transmission of the transmission unit.
[Claim 3]

 The transmission device according to claim 2,  wherein the control unit determines whether or not it is necessary to adjust the transmission parameters based on the received information included in the response signal .
[Claim 4]
 When the response signal is a response signal addressed to itself, the control unit adjusts the transmission parameter so as to improve the reception status of the receiving device based on the reception information included in the response signal.
 The transmission device according to claim 3.
[Claim 5]
 When the response signal is a response signal addressed to a transmission device of another network, the control unit suppresses the influence of interference on the reception device based on the reception information included in the response signal.
 The transmission device according to claim 3 , wherein the transmission parameter is adjusted .
[Claim 6]
 The control unit determines the necessity of adjusting the transmission parameter based on the notification indicating whether or not the reception operation in the reception device included in the response signal is interrupted, and the transmission parameter that controls the transmission of the transmission unit.
 The transmitter according to claim 2, wherein the transmitter adjusts .
[Claim 7]
 The transmission device according to
 claim 1, wherein the transmission unit is controlled by the transmission parameter adjusted by the control unit, and retransmits the data signal from the beginning when transmitting the data signal to the reception device.
[Claim 8]
 When the transmission unit is controlled by the transmission parameters adjusted by the control unit to transmit the data signal to the reception device, after interrupting the transmission of the data signal being transmitted to the reception device. The transmitter according to
 claim 7 , wherein the data signal is transmitted again from the beginning .
[Claim 9]
 When the transmitting unit interrupts the transmission of the data signal being transmitted to the receiving device, the transmitting unit notifies the receiving device in advance that the transmission of the data signal being transmitted is interrupted.
 The transmitting device according to claim 8.
[Claim 10]
 A transmission process for transmitting a data signal to a receiving device, a reception process
 for receiving a response signal from the receiving device that has received the data signal at the same time as transmitting the data signal, and a
 transmission process based on the response signal. And a
 control process of adjusting a transmission parameter for controlling the transmission of the data signal, the transmission process being controlled by the transmission parameter adjusted by the control process, and transmitting the data signal to the receiving device
 .
[Claim 11]
 The receiving unit that receives the data signal transmitted from the transmitting device, the transmitting unit that transmits the
 response signal to the reception of the data signal by the receiving unit at the same time as receiving the data signal, and the
 receiving unit are the transmitting device. The
 receiving device for receiving the data signal, the transmission of which is controlled by the adjusted transmission parameter based on the response signal .
[Claim 12]
 And the transmission unit, the response signal to the reception of the data signal by the receiver, including reception information when the data signal is received at the receiving unit, transmit at the same time when receiving the data signal,
 the receiving
 The receiving device according to claim 11, wherein the unit receives the data signal whose transmission is controlled by the transmission parameter adjusted based on the receiving information included in the response signal from the transmitting device.
[Claim 13]

 The reception device according  to claim 12, wherein the transmission unit transmits, as the reception information, a response signal including information related to reception quality and interference power .
[Claim 14]

 The receiving device  according to claim 11, wherein the receiving unit interrupts the receiving operation of the data signal and searches for the head portion of the newly transmitted data signal .
[Claim 15]
 The receiving unit interrupts the receiving operation of the data signal and searches for the head portion of the newly transmitted data signal based on the notification from the transmitting device of the interruption of the transmitting operation of the data signal.
 The receiving device according to claim 14.
[Claim 16]

 The receiving device  according to claim 14, wherein the receiving unit interrupts the receiving operation of the data signal and searches for the head portion of the newly transmitted data signal based on the reception status of the data signal .
[Claim 17]

 The receiving device according  to claim 16 , wherein the transmitting unit transmits, to the transmitting device, a response signal including, as reception information, information indicating whether or not the receiving operation of the data signal is interrupted .
[Claim 18]

 The receiving device according  to claim 11, wherein the transmitting unit transmits a response signal to the reception of the data signal by the receiving unit at the same time as receiving the data signal, and periodically transmits the data signal .
[Claim 19]
 The reception process of receiving the data signal transmitted from the transmission device, the transmission
 process of transmitting the response signal to the reception of the data signal by the reception process at the same time as receiving the data signal, and the
 reception process are the transmission device. In the
 receiving method, the data signal, the transmission of which is controlled by the adjusted transmission parameter, is received based on the response signal .
[Claim 20]
 In a communication system including a transmitting device and a receiving device, the
 transmitting device transmits
  data to a first transmitting unit that transmits a
  data signal to the receiving device and a response signal from the receiving device that has received the data signal. A first receiving unit that receives a signal at the same time as it transmits a signal; and
  a control unit that adjusts a transmission parameter that controls transmission of the first transmitting unit based on the response signal,
  wherein the first transmitting unit includes A second receiving unit that is controlled by the transmission parameter adjusted by the control unit, transmits the data signal to the receiving device, and the
 receiving device
  receives the data signal transmitted from the transmitting device;
  A second transmitting unit that transmits a response signal to the reception of the data signal by the second receiving unit at the same time as receiving the data signal, and
  the second receiving unit, in the transmitting device, sets the response signal to the response signal. A
 communication system for receiving the data signal, the transmission of which is controlled based on the adjusted transmission parameter .

Documents

Application Documents

# Name Date
1 202017031755-ABSTRACT [30-09-2022(online)].pdf 2022-09-30
1 202017031755-TRANSLATIOIN OF PRIOIRTY DOCUMENTS ETC. [24-07-2020(online)].pdf 2020-07-24
2 202017031755-CLAIMS [30-09-2022(online)].pdf 2022-09-30
2 202017031755-STATEMENT OF UNDERTAKING (FORM 3) [24-07-2020(online)].pdf 2020-07-24
3 202017031755-PRIORITY DOCUMENTS [24-07-2020(online)].pdf 2020-07-24
3 202017031755-CORRESPONDENCE [30-09-2022(online)].pdf 2022-09-30
4 202017031755-POWER OF AUTHORITY [24-07-2020(online)].pdf 2020-07-24
4 202017031755-DRAWING [30-09-2022(online)].pdf 2022-09-30
5 202017031755-FORM 1 [24-07-2020(online)].pdf 2020-07-24
5 202017031755-FER_SER_REPLY [30-09-2022(online)].pdf 2022-09-30
6 202017031755-OTHERS [30-09-2022(online)].pdf 2022-09-30
6 202017031755-DRAWINGS [24-07-2020(online)].pdf 2020-07-24
7 202017031755-FER.pdf 2022-03-31
7 202017031755-DECLARATION OF INVENTORSHIP (FORM 5) [24-07-2020(online)].pdf 2020-07-24
8 202017031755-FORM 18 [09-12-2021(online)].pdf 2021-12-09
8 202017031755-COMPLETE SPECIFICATION [24-07-2020(online)].pdf 2020-07-24
9 202017031755-Proof of Right [10-11-2020(online)].pdf 2020-11-10
9 202017031755.pdf 2021-10-19
10 202017031755-Proof of Right [10-11-2020(online)].pdf 2020-11-10
10 202017031755.pdf 2021-10-19
11 202017031755-COMPLETE SPECIFICATION [24-07-2020(online)].pdf 2020-07-24
11 202017031755-FORM 18 [09-12-2021(online)].pdf 2021-12-09
12 202017031755-DECLARATION OF INVENTORSHIP (FORM 5) [24-07-2020(online)].pdf 2020-07-24
12 202017031755-FER.pdf 2022-03-31
13 202017031755-DRAWINGS [24-07-2020(online)].pdf 2020-07-24
13 202017031755-OTHERS [30-09-2022(online)].pdf 2022-09-30
14 202017031755-FER_SER_REPLY [30-09-2022(online)].pdf 2022-09-30
14 202017031755-FORM 1 [24-07-2020(online)].pdf 2020-07-24
15 202017031755-DRAWING [30-09-2022(online)].pdf 2022-09-30
15 202017031755-POWER OF AUTHORITY [24-07-2020(online)].pdf 2020-07-24
16 202017031755-CORRESPONDENCE [30-09-2022(online)].pdf 2022-09-30
16 202017031755-PRIORITY DOCUMENTS [24-07-2020(online)].pdf 2020-07-24
17 202017031755-CLAIMS [30-09-2022(online)].pdf 2022-09-30
17 202017031755-STATEMENT OF UNDERTAKING (FORM 3) [24-07-2020(online)].pdf 2020-07-24
18 202017031755-TRANSLATIOIN OF PRIOIRTY DOCUMENTS ETC. [24-07-2020(online)].pdf 2020-07-24
18 202017031755-ABSTRACT [30-09-2022(online)].pdf 2022-09-30
19 202017031755-PatentCertificate06-02-2025.pdf 2025-02-06
20 202017031755-IntimationOfGrant06-02-2025.pdf 2025-02-06

Search Strategy

1 Search_202017031755E_30-03-2022.pdf

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