WO2015121902A1 - 無線通信端末 - Google Patents
無線通信端末 Download PDFInfo
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- WO2015121902A1 WO2015121902A1 PCT/JP2014/004188 JP2014004188W WO2015121902A1 WO 2015121902 A1 WO2015121902 A1 WO 2015121902A1 JP 2014004188 W JP2014004188 W JP 2014004188W WO 2015121902 A1 WO2015121902 A1 WO 2015121902A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
- H04W74/0808—Non-scheduled access, e.g. ALOHA using carrier sensing, e.g. carrier sense multiple access [CSMA]
- H04W74/0825—Non-scheduled access, e.g. ALOHA using carrier sensing, e.g. carrier sense multiple access [CSMA] with collision detection
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/28—Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
- H04L12/40—Bus networks
- H04L12/407—Bus networks with decentralised control
- H04L12/413—Bus networks with decentralised control with random access, e.g. carrier-sense multiple-access with collision detection [CSMA-CD]
Definitions
- the present invention relates to a radio communication terminal, a radio communication method, and a program, and more particularly, to a radio communication terminal, a radio communication method, and a program that detect a state of collision of transmitted radio frames and perform predetermined control.
- Non-Patent Document 1 a communication device that performs wireless communication supports a plurality of transmission rates.
- the higher the transmission rate the more data can be transmitted, but the communication is likely to be interrupted.
- the lower the transmission rate the longer the data transmission time, but the easier the communication is. Therefore, higher communication quality can be ensured by selecting a transmission rate used for communication according to the status of the communication device.
- ARF Automatic Rate Fallback
- ARF Automatic Rate Fallback
- ARF if transmission is successful a certain number of times, the transmission rate is increased and communication is performed at a higher speed.
- ARF if transmission fails for a certain number of times, the transmission rate is lowered to increase the possibility of successful transmission.
- Such control makes it easier to connect communications when a certain number of transmissions have failed, while it allows control to be performed more efficiently when a certain number of transmissions are successful.
- Patent Document 1 a collision detection unit that calculates a packet collision rate from the number of packet collisions and the number of packet transmissions, and adjustment of parameters when performing data transmission based on the calculation result of the collision detection unit A wireless communication device having a control unit for performing the above is described. According to Patent Literature 1, by adjusting the parameters based on the packet collision rate with such a configuration, it is possible to suppress interference with other communications and improve data transmission efficiency.
- Patent Documents 2 and 3 describe technologies for suppressing collision between managed terminals by placing peripheral wireless communication terminals in advance under the control of one master terminal.
- JP 2013-005097 A Japanese Patent No. 3970563 Japanese Patent No. 3634806
- each of the above-described technologies does not necessarily perform control according to the cause that causes a reduction in communication quality. Therefore, depending on the cause of the communication quality deterioration, there has been a problem that sufficient communication quality may not be ensured even if the above-described various technologies are used. In addition, each of the above-described technologies has a problem in that redundant processing that is not processing according to the cause of communication quality degradation may be performed.
- an object of the present invention is to solve the problem that it is difficult to ensure communication quality when performing wireless communication, and it is difficult to perform appropriate control to ensure communication quality. It is to provide a wireless communication terminal that can be used.
- a wireless communication terminal which is an embodiment of the present invention, A wireless module for transmitting a wireless frame signal; A transmission loss information detection unit for detecting transmission loss information indicating whether or not the radio frame signal transmitted by the radio module unit has reached a transmission destination; A collision information detection unit for detecting collision information indicating a state of collision between the radio frame signal transmitted by the radio module unit and another radio frame signal; Based on the transmission loss information and the collision information, a transmission control unit that controls transmission processing by the wireless module unit, Comprising The structure is taken.
- a wireless communication method includes: Detecting transmission loss information indicating whether or not the transmitted radio frame signal has reached the transmission destination, and collision information indicating a state of collision between the radio frame signal and another radio frame signal; Control transmission processing based on the detected transmission loss information and the collision information. The structure is taken.
- the program which is the other form of this invention is: Wireless communication terminal A wireless module for transmitting a wireless frame signal; A transmission loss information detection unit for detecting transmission loss information indicating whether or not the radio frame signal transmitted by the radio module unit has reached a transmission destination; A collision information detection unit for detecting collision information indicating a state of collision between the radio frame signal transmitted by the radio module unit and another radio frame signal; Based on the transmission loss information and the collision information, a transmission control unit that controls transmission processing by the wireless module unit, It is a program for realizing.
- the present invention provides a wireless communication terminal capable of performing appropriate control to ensure communication quality while ensuring communication quality when performing wireless communication. I can do it.
- 6 is a table showing an example of comparison by a transmission loss rate / collision rate threshold comparison unit shown in FIG. 5.
- FIG. 6 is an example of a parameter adjustment table stored in a parameter storage unit shown in FIG. 6 is an example of a parameter adjustment table stored in a parameter storage unit shown in FIG. 6 is an example of a parameter adjustment table stored in a parameter storage unit shown in FIG. 6 is an example of a parameter adjustment table stored in a parameter storage unit shown in FIG. 6 is an example of a parameter adjustment table stored in a parameter storage unit shown in FIG. 5 is a flowchart for explaining an operation of the wireless communication terminal according to the first embodiment of the present invention. It is a block diagram which shows the structure of the radio
- 45 is a table showing an example of a transmission rate algorithm used by the wireless module unit shown in FIG. 44. It is a flowchart for demonstrating operation
- a wireless communication terminal 1 according to the first embodiment of the present invention is a terminal that performs wireless communication with other wireless communication terminals, wireless access points, and the like.
- the wireless communication terminal 1 in the present embodiment is configured to detect a collision between a wireless frame signal transmitted from the wireless communication terminal 1 and a wireless frame signal transmitted from another device.
- the wireless communication terminal 1 according to the present embodiment is configured to detect the state of collision (collision state) of radio frame signals.
- wireless communication terminal 1 in this embodiment is comprised so that the parameter according to the detected collision condition may be changed.
- the wireless communication terminal 1 in the present embodiment includes a wireless module unit 11, a loss detection unit 12 (transmission loss information detection unit), a frame detection unit 13 (part of a collision information detection unit), A collision suppression control unit 14 (part of the collision information detection unit, transmission control unit).
- the wireless module unit 11 has a function of performing wireless communication. Specifically, the wireless module unit 11 according to the present embodiment performs transmission / reception of wireless signals compliant with the IEEE 802.11 standard. For example, the wireless module unit 11 transmits and receives wireless signals to and from other wireless communication terminals and wireless access points via an antenna unit (not shown).
- the IEEE 802.11 standard is cited as an example of the wireless communication standard performed by the wireless module unit 11.
- the present invention is not limited to the case where wireless communication is performed according to the IEEE 802.11 standard, but can be implemented.
- the wireless module unit 11 only needs to perform CSMA / CA, and the standard used for wireless communication is not particularly limited.
- the loss detection unit 12 has a function of detecting that the signal transmitted by the wireless module unit 11 did not reach the transmission destination for some reason (transmission loss). That is, the loss detection unit 12 detects transmission loss information indicating a transmission loss. For example, in the IEEE 802.11 standard, the transmission destination terminal transmits an Ack (Acknowledgement: response signal (confirmation response)) frame in response to the signal transmitted by the wireless module unit 11. Therefore, the loss detection unit 12 can detect a transmission loss by monitoring the wireless module unit 11. That is, the loss detection unit 12 determines that the signal transmitted by the wireless module unit 11 has not reached the destination terminal when the wireless module unit 11 has not received an Ack frame until a predetermined time has elapsed after the transmission of the wireless frame signal. Detect transmission loss.
- Ack Acknowledgement: response signal (confirmation response)
- the loss detection unit 12 detects a transmission loss by such a method.
- the detection of transmission loss by the loss detection unit 12 is not limited to the case where the above method is used.
- the loss detection unit 12 can be configured to detect transmission loss using various methods capable of detecting transmission loss.
- the loss detection unit 12 can have a function of calculating a transmission loss rate.
- the calculation of the transmission loss rate by the loss detection unit 12 may be obtained, for example, by dividing the number of transmission losses detected by the loss detection unit 12 by the number of transmissions of the radio frame signal by the radio module unit 11. .
- the loss detection unit 12 calculates the transmission loss rate by the above method every time the wireless module unit 11 transmits a wireless frame signal.
- the loss detection part 12 can memorize
- the loss detection unit 12 detects a transmission loss. Further, the loss detection unit 12 can calculate the transmission loss rate. Thereafter, the loss detection unit 12 transmits to the collision suppression control unit 14 that a transmission loss has been detected. The loss detection unit 12 transmits the calculated transmission loss rate to the collision suppression control unit 14 when transmitting to the collision suppression control unit 14 that a transmission loss has been detected.
- the loss detection unit 12 calculates the transmission loss rate.
- the present invention can be implemented without being limited to the case where the loss detection unit 12 performs the calculation of the transmission loss rate.
- the calculation of the transmission loss rate may be performed by, for example, the collision suppression control unit 14 described later.
- the loss detection unit 12 has a CPU (Central Processing Unit) and a storage device (not shown), and the CPU executes a program stored in the storage device, thereby realizing the above function. Become.
- the frame detection unit 13 has a function of detecting the power of the spatial radio signal on the same channel as the radio frame signal transmitted by the radio module unit 11. For example, the frame detection unit 13 detects a radio frame signal transmitted by the radio module unit 11.
- the radio frame signal detected by the frame detector 13 is, for example, as shown in FIG. Referring to FIG. 3, the frame detection unit 13 extracts a radio frame as a signal composed of transmission power and transmission time. Note that the transmission power and transmission time of the radio frame detected by the frame detection unit 13 vary depending on the amount of data to be transmitted and the communication method.
- the frame detection unit 13 detects the power of the spatial radio signal. That is, the frame detection unit 13 detects a temporal change in power of the radio frame signal transmitted by the radio module unit 11 as a pattern. Then, the frame detection unit 13 transmits the detected detection result to the collision suppression control unit 14.
- the collision suppression control unit 14 has a function of analyzing the detection result (pattern) detected by the frame detection unit 13 and detecting the presence / absence of a collision (collision presence / absence information) and a predetermined collision situation (collision situation information). That is, the collision suppression control unit 14 analyzes the detection result detected by the frame detection unit 13, thereby detecting the collision between the radio frame signal transmitted by the radio module unit 11 and the radio frame signal transmitted by another radio communication terminal. Collision information (collision presence / absence information and collision status information) indicating the state is detected.
- the collision suppression control unit 14 has a function of identifying the cause of the collision from the detected predetermined collision situation and changing parameters according to the identified cause of the collision (the collision suppression control unit 14 is a wireless module unit) 11 is controlled). That is, the collision suppression control unit 14 detects a predetermined collision situation between the wireless frame signal transmitted from the wireless module unit 11 and the wireless frame signal transmitted from another wireless communication terminal, and responds to the detected predetermined collision situation. It has a function to change the parameters.
- the collision suppression control unit 14 includes, for example, a collision detection unit 21, a transmission loss rate / collision rate threshold comparison unit 22, a collision cause analysis unit 23, a parameter adjustment unit 24, and a parameter storage unit 25.
- the adjustment content storage unit 26 has a function.
- Each of the above functions is realized by the CPU (central processing unit) of the collision suppression control unit 14 executing a program incorporated in the collision suppression control unit 14.
- the collision detection unit 21 has a function of analyzing the detection result detected by the frame detection unit 13 and detecting the presence / absence of a collision and a predetermined collision situation. That is, the collision detection unit 21 analyzes the detection result detected by the frame detection unit 13 to detect the collision presence / absence information indicating the presence / absence of the collision and the collision state information indicating the collision state which is a collision pattern. The collision detection unit 21 first receives a detection result (power pattern) from the frame detection unit 13. And the collision detection part 21 will detect the presence or absence of a collision, and a collision condition by analyzing a detection result.
- a detection result power pattern
- the pattern of power detected by the frame detection unit 13 is, for example, as shown in FIG.
- the collision detection unit 21 determines that no collision has occurred. to decide.
- the frame detection unit 13 detects, for example, the collision pattern (collision situation) shown in FIG. Referring to FIG. 5, collision patterns (collision situations) when radio frame signals collide can be classified into 11 types shown in FIGS. 5 (A) to 5 (K).
- the frame detection unit 13 determines that a collision has occurred.
- the collision detection unit 21 determines which collision pattern the detection result corresponds to. By making this determination, the collision detection unit 21 can detect the collision situation.
- a difference in the collision pattern is caused by, for example, differences in the arrangement of wireless communication terminals, power used for transmission, transmission data amount, transmission rate, and the like.
- the collision detection unit 21 analyzes the power pattern detected by the frame detection unit 13 to determine which of the 11 types of collision patterns the pattern detected by the frame detection unit 13 corresponds to. Detect the situation. Subsequently, the collision detection unit 21 counts the number of occurrences of the collision pattern (collision situation). For example, each time the collision detection unit 21 detects a collision situation, the collision detection unit 21 counts the number of collision pattern occurrences by counting the number of collision pattern occurrences corresponding to the collision situation by one. And the collision detection part 21 calculates the collision rate in all the collision patterns, and the generation rate for every collision pattern by comparing the counted result and the transmission frequency
- collision situations can be classified into the following three main collision situations.
- FIGS. 5A to 5I show collision patterns (coincidence of simultaneous transmission collisions) that occur when the wireless module unit 11 transmits a wireless frame signal and another wireless frame signal at the same time. ing.
- the collision pattern in FIG. 5 (J) is a pattern in which transmission frames of other devices collide in the middle of transmission frames of the own device. That is, FIG. 5 (J) shows a collision pattern (one of transmission collision occurrence status during transmission) that occurs when another radio frame signal is transmitted while the radio module unit 11 is transmitting a radio frame signal. Show.
- the collision pattern in FIG. 5 (K) is a pattern in which the transmission frame of the own apparatus collides in the middle of the transmission frame of another apparatus. That is, FIG. 5K illustrates a collision pattern (one of transmission collision occurrence status during transmission) that occurs when a wireless frame signal is transmitted by the wireless module unit 11 during transmission of another wireless frame signal. Show.
- the main collision patterns detected by the collision detection unit 21 can be roughly classified into three types of collision situations. In other words, a collision occurred when the device itself and another device transmitted radio frame signals at the same time. A collision occurred when another device transmitted a radio frame signal while the own device was transmitting a radio frame signal. While the other apparatus is transmitting the radio frame signal, the own apparatus transmits the radio frame signal, so that a collision has occurred. These are the main collision patterns detected by the collision detector 21. Therefore, the collision detection unit 21 is configured to detect the above three types of collision situations as the collision situation, count the number of occurrences for each detected collision situation, and calculate the collision rate and the occurrence rate for each collision situation. It doesn't matter.
- the transmission loss rate / collision rate threshold comparison unit 22 has a function of comparing the transmission loss rate and the collision rate with a predetermined threshold Th (transmission loss rate threshold, collision rate threshold).
- the transmission loss rate / collision rate threshold comparing unit 22 compares the transmission loss rate with the threshold Th and compares the collision rate with the threshold Th. Then, the transmission loss rate / collision rate threshold value comparison unit 22 determines the necessity of parameter adjustment based on the comparison result.
- the transmission loss rate / collision rate threshold comparison unit 22 first receives the transmission loss rate transmitted by the loss detection unit 12. Further, the transmission loss rate / collision rate threshold value comparison unit 22 acquires the collision rate calculated by the collision detection unit 21. Then, the transmission loss rate / collision rate threshold value comparison unit 22 compares the received transmission loss rate with the acquired collision rate and the threshold value Th. The comparison by the transmission loss rate / collision rate threshold comparison unit 22 is performed based on, for example, a table shown in FIG.
- the transmission loss rate / collision rate threshold value comparison unit 22 indicates that the radio frame signal by the radio module unit 11 is normal when the transmission loss rate is equal to or less than the threshold value Th and the collision rate is equal to or less than the threshold value Th. It is determined that there is no need for parameter adjustment. In this case, the transmission loss rate / collision rate threshold value comparison unit 22 can stop the subsequent processing.
- the transmission loss rate / collision rate threshold value comparison unit 22 determines that there is a collision although the transmission loss rate is less than or equal to the threshold value Th and the collision rate is greater than the threshold value Th. Further, the transmission loss rate / collision rate threshold value comparison unit 22 determines that parameter adjustment is not necessary. In this case, the transmission loss rate / collision rate threshold value comparison unit 22 can stop the subsequent processing. Alternatively, the transmission loss rate / collision rate threshold comparison unit 22 can instruct the collision cause analysis unit 23 to analyze the cause of the collision.
- the transmission loss rate / collision rate threshold value comparison unit 22 determines that attenuation is occurring and parameter adjustment is necessary when the transmission loss rate is greater than the threshold value Th and the collision rate is equal to or less than the threshold value Th. To do. In this case, the transmission loss rate / collision rate threshold value comparison unit 22 transmits the attenuation determination result to the parameter adjustment unit 24. The transmission may be performed via the collision cause analysis unit 23.
- the transmission loss rate / collision rate threshold value comparison unit 22 determines that a collision has occurred and parameter adjustment is necessary when the transmission loss rate is greater than the threshold value Th and the collision rate is greater than the threshold value Th. To do. In this case, the transmission loss rate / collision rate threshold comparison unit 22 instructs the collision cause analysis unit 23 to analyze the cause of the collision.
- the transmission loss rate / collision rate threshold value comparison unit 22 compares the transmission loss rate and the threshold value Th, and the collision rate and the threshold value Th. Then, the transmission loss rate / collision rate threshold value comparison unit 22 needs to adjust the occurrence content (whether it is transmitted normally, whether attenuation occurs, or a collision occurs) and parameters based on the comparison result. Judge about gender.
- the threshold Th transmission loss rate threshold, collision rate threshold
- the threshold Th used by the transmission loss rate / collision rate threshold comparison unit 22 can be arbitrarily determined by the user.
- the same threshold may be used for the comparison with the transmission loss rate and the comparison with the collision rate, or the comparison may be performed with different thresholds.
- the collision cause analysis unit 23 has a function of identifying the cause of the collision based on the detection result by the collision detection unit 21.
- the cause of the collision by the collision cause analysis unit 23 in the present embodiment is determined, for example, that the transmission loss rate / collision rate threshold comparison unit 22 needs to adjust parameters, and the cause of the transmission loss is a collision. It will be done when it is judged.
- the identification of the cause of the collision by the collision cause analysis unit 23 is performed using, for example, a table shown in FIG. Referring to FIG. 7, the collision cause analysis unit 23 calculates the total number of collision patterns (A) to (I), the number of collision patterns (J), the number of (K), or the total thereof shown in FIG. The cause of the collision is identified by comparing with the number.
- the collision cause analysis unit 23 determines that the cause of the collision is largely due to the coincidence of the back-off times. That is, when the collision cause analysis unit 23 determines that a collision often occurs due to simultaneous transmission of a radio frame signal by the own device (wireless communication terminal 1) and another device (other wireless communication terminal), The back-off time match is identified as a major cause of the problem. The details of the back-off time matching will be described later.
- the collision cause analysis unit 23 determines that the number of collision patterns (J) is the largest and the number of collision patterns (K) is 0 (or extremely small, for example, a predetermined threshold value or less). In this case, it is determined that the cause of the collision is largely due to the hidden terminal problem 1. That is, when the collision cause analysis unit 23 determines that a collision often occurs due to transmission of another radio frame signal during transmission of the radio frame signal by the radio module unit 11, it is hidden as a major cause of the collision. Terminal problem 1 is identified. Details of the hidden terminal problem 1 will be described later.
- the collision cause analysis unit 23 determines that the number of collision patterns (K) is the largest and the number of collision patterns (J) is 0 (or extremely small, for example, a predetermined threshold value or less). In this case, it is determined that the cause of the collision is largely due to the hidden terminal problem 2. That is, when the collision cause analysis unit 23 determines that a collision often occurs due to the transmission of the wireless frame signal by the wireless module unit 11 during the transmission of another wireless frame signal, the collision cause analysis unit 23 is hidden as a major cause of the collision. Terminal problem 2 is identified. Details of the hidden terminal problem 2 will be described later.
- the collision cause analysis unit 23 determines that the cause of the collision is largely due to the hidden terminal problem 3 when the total number of the collision patterns (J) and (K) is the largest. That is, the collision cause analyzing unit 23 generates a collision when another wireless frame signal is transmitted while the wireless module unit 11 is transmitting the wireless frame signal, and the wireless module is transmitting the other wireless frame signal.
- the hidden terminal problem 3 is specified as a major cause of the collision. Details of the hidden terminal problem 3 will be described later.
- the collision cause analysis unit 23 identifies the cause of the collision by comparing the occurrence of the collision pattern (collision situation). That is, the collision cause analysis unit 23 identifies the main cause of the collision from the pattern and number of collisions (occurrence frequency, etc.). Then, the collision cause analysis unit 23 transmits the identified cause to the parameter adjustment unit 24.
- each wireless communication terminal performs carrier sense (monitoring) on the surrounding situation, and communicates so that communication between each other does not collide when there is another terminal that performs wireless communication in the surroundings. Is going.
- the wireless communication terminal 1 is configured not to perform transmission while another wireless communication terminal is transmitting.
- the other wireless communication terminals are also configured not to transmit while the wireless communication terminal 1 and other wireless communication terminals are transmitting. Therefore, in principle, no collision occurs as in the spatial waveform shown in FIG. However, as shown in FIG.
- each wireless communication terminal performs carrier sense (monitoring) on the surrounding situation, so that when there are other terminals that perform wireless communication in the surrounding area, mutual communication is possible. We are communicating so that there is no collision. Therefore, for example, as shown in FIG. 10, there is no problem when the wireless communication terminal 1 and other wireless communication terminals can sense each other (there is a problem of matching backoff time). However, for example, as shown in FIG. 11, when the wireless communication terminal 1 (own device) can carry out carrier sense but the other wireless communication terminals cannot carry out carrier sense, the other wireless communication terminals receive wireless communication terminals. 1 is not understood.
- another radio frame signal may be transmitted during transmission of the radio frame signal by the radio module unit 11 of the radio communication terminal 1.
- a collision occurs.
- the wireless communication terminal 1 (own device) is capable of carrier sense
- other wireless communication terminals are not capable of carrier sense
- a collision may occur.
- hidden terminal problem 1 when another wireless communication terminal can carry out carrier sense while the wireless communication terminal 1 (own device) does not carry out carrier sense, the wireless communication terminal wirelessly transmits during transmission of another wireless frame signal.
- a collision may occur when a radio frame signal is transmitted by the module unit 11.
- hidden terminal problem 2 As shown in FIG. 13, when both the wireless communication terminal 1 (own device) and other wireless communication terminals are not capable of carrier sense, collisions of both the hidden terminal problems 1 and 2 occur.
- hidden terminal problem 3 when both the wireless communication terminal 1 (own device) and other wireless communication terminals are not capable of carrier sense
- the collision cause analysis unit 23 identifies a back-off time match or a hidden terminal problem as the cause of the collision.
- the collision state is that the collision occurs when the own apparatus and another apparatus transmit radio frame signals at the same time. That is, when a collision occurs due to the coincidence of the back-off time, the collision pattern is any one of (A) to (I) shown in FIG.
- the collision state is that a collision occurs when another wireless frame signal is transmitted while the wireless module unit 11 transmits the wireless frame signal. Become.
- a collision occurs when a radio frame signal is transmitted by the radio module unit 11 while another radio frame signal is being transmitted. That is, when a collision occurs due to the hidden terminal problem, either or both of (J) and (K) shown in FIG.
- the collision cause analysis unit 23 can identify the cause of the collision by examining how the collision occurs and the number (occurrence frequency, etc.) of the collision (according to the collision pattern and the collision situation).
- the collision cause analysis unit 23 determines that the transmission loss rate / collision rate threshold comparison unit 22 needs to adjust parameters, and determines that the cause of the transmission loss is a collision. In this case, the cause of the collision is analyzed.
- the analysis of the cause of the collision by the collision cause analysis unit 23 is not limited to the above case. For example, when the transmission loss rate / collision rate threshold comparison unit 22 determines that the transmission is attenuated, but a small number of collisions occur, or when it is determined that transmission is performed normally, a collision occurs.
- the collision cause analysis unit 23 can be configured to analyze the cause of the collision.
- the parameter adjustment unit 24 has a function of adjusting parameters according to the cause of the collision identified by the collision cause analysis unit 23 and the generation content (attenuation) determined by the transmission loss rate / collision rate threshold comparison unit 22.
- the parameter adjustment unit 24 acquires information about the cause of the collision identified by the collision cause analysis unit 23 from the collision cause analysis unit 23.
- the parameter adjustment unit 24 receives the attenuation determination result from the transmission loss rate / collision rate threshold comparison unit 22. Then, the parameter adjustment unit 24 acquires a parameter adjustment table corresponding to each collision cause and attenuation stored in the parameter storage unit 25.
- the parameter adjustment unit 24 acquires a parameter adjustment table (transmission power parameter or the like) corresponding to the attenuation from the parameter storage unit 25.
- the parameter adjustment table according to attenuation describes, for example, an adjustment for increasing transmission power as priority 1.
- the parameter adjustment table corresponding to attenuation describes, as priority 2, adjustment that lowers the transmission rate. Therefore, the parameter adjustment unit 24 adjusts the parameter according to the priority based on the parameter adjustment table corresponding to the acquired attenuation. Details of the priority will be described later.
- the parameter adjustment unit 24 acquires a parameter adjustment table from the parameter storage unit 25 in accordance with the cause of collision specified by the collision cause analysis unit 23. Then, the parameter adjustment unit 24 adjusts parameters according to the priority based on the acquired parameter adjustment table.
- the parameter adjustment unit 24 when the cause of the collision is the coincidence of the back-off time, the parameter adjustment unit 24 describes adjustments such as not performing the adjustment, increasing the back-off time, and increasing the transmission rate. Get the parameter adjustment table (backoff time parameter etc.).
- the parameter adjustment unit 24 increases the transmission power, decreases the transmission rate, and performs RTS / CTS (Request To Send / Clear To Send).
- a parameter adjustment table (such as a carrier sense parameter) in which adjustments such as execution are described is acquired. Further, referring to FIG.
- the parameter adjustment unit 24 describes adjustments such as lowering the carrier sense threshold, lowering the transmission rate, and executing RTS / CTS.
- the obtained parameter adjustment table (carrier sense parameter, etc.) is acquired.
- the parameter adjustment unit 24 increases the transmission power to decrease the carrier sense threshold, decreases the transmission rate, and executes RTS / CTS.
- a parameter adjustment table (such as carrier sense parameters) in which adjustments such as are described is acquired.
- the carrier sense threshold is a threshold for detecting power. Lowering the carrier sense threshold makes it easier to detect power, that is, it makes it easier to carrier sense other wireless communication terminals.
- the parameter adjustment unit 24 acquires the parameter adjustment table stored in the parameter storage unit 25 according to the attenuation or the cause of the collision, and adjusts the parameter according to the priority.
- priority will be described.
- the parameter adjustment unit 24 checks the content stored in the adjustment content storage unit 26.
- the adjustment content storage unit 26 stores the cause of the collision at the previous parameter adjustment, the parameter adjustment table used, and the content of the adjusted parameter. Therefore, the parameter adjustment unit 24 determines whether or not the content of the current parameter adjustment matches the content of the parameter adjustment performed last time. If they do not match, the parameter adjustment unit 24 selects a parameter with priority 1 and performs parameter adjustment.
- the parameter adjustment unit 24 adjusts the parameter of the priority 1 when performing the parameter adjustment different from the parameter adjustment performed last time.
- the parameter adjustment unit 24 adjusts the parameter having a priority that is one lower than the previous priority.
- the parameter adjustment unit 24 adjusts parameters. Thereafter, the parameter adjustment unit 24 transmits the cause of the collision, the parameter adjustment table used, and the content of the adjusted parameter to the adjustment content storage unit 26. Then, the adjustment content storage unit 26 stores the content of the current adjustment. Note that the amount of adjustment performed by the parameter adjustment by the parameter adjustment unit 24 can be arbitrarily determined by the user, for example.
- the parameter storage unit 25 includes a storage device such as a hard disk, a ROM (Read Only Memory), and a RAM (Random Access Memory). As described above, the parameter storage unit 25 stores a parameter adjustment table corresponding to the attenuation and the cause of the collision.
- the parameter adjustment table stored in the parameter storage unit 25 is acquired by the parameter adjustment unit 24. Note that the content of the parameter adjustment table stored in the parameter storage unit 25 described in the present embodiment is an example of the content that can be stored in the parameter storage unit 25. The content stored in the parameter storage unit 25 is not limited to the content described in the present embodiment.
- the adjustment content storage unit 26 includes a storage device such as a hard disk or a RAM (Random Access Memory).
- the adjustment content storage unit 26 stores the cause of the collision at the previous parameter adjustment, the parameter adjustment table used, and the content of the adjusted parameter.
- the storage content stored in the adjustment content storage unit 26 is acquired by the parameter adjustment unit 24.
- the above is the configuration of the wireless communication terminal 1 in the present embodiment. Next, the operation of the wireless communication terminal 1 will be described.
- the wireless module unit 11 of the wireless communication terminal 1 transmits a wireless frame signal (S101). Subsequently, the frame detection unit 13 detects the radio frame signal transmitted by the radio module unit 11 (S102). Then, the frame detection unit 13 transmits the detection result to the collision suppression control unit 14.
- the wireless communication terminal 1 always uses the frame detection unit 13 to monitor its own wireless frame signal transmitted from the wireless module unit 11.
- the collision suppression control unit 14 receives the detection result by the frame detection unit 13. Then, the collision detection unit 21 of the collision suppression control unit 14 detects the occurrence of the collision and the collision situation by analyzing the detection result. Further, when a collision pattern exists as a result of the analysis (when a collision has occurred), the collision suppression control unit 14 counts the analyzed collision pattern and the number of occurrences thereof. And the collision suppression control part 14 memorize
- the loss detection unit 12 monitors whether the transmitted radio frame signal reaches the transmission partner and the transmission is successful (S103). At this time, the loss detector 12 may calculate the transmission loss rate. And the loss detection part 12 will transmit that the transmission loss was detected to the collision suppression control part 14, if a transmission loss is detected. Further, the loss detection unit 12 can transmit the transmission loss rate to the collision suppression control unit 14. The transmission loss is detected by the loss detection unit 12 when, for example, the wireless module unit 11 cannot receive the Ack frame.
- the collision suppression control unit 14 determines whether or not the radio frame signal is transmitted n times by the radio module unit 11 (S104). Then, after the radio module signal 11 is transmitted n times by the radio module unit 11, the collision suppression control unit 14 compares the transmission loss rate with the threshold and compares the collision rate with the threshold (S105). Note that the number n of transmissions that triggers the collision suppression control unit 14 to compare the thresholds is not a particularly limited number. The user may arbitrarily determine the number of transmissions n.
- the transmission loss rate / collision rate threshold value comparison unit 22 of the collision suppression control unit 14 compares the transmission loss rate and the collision rate with the threshold value Th, and whether the communication has been normally transmitted or whether a collision has occurred but normal transmission has occurred. It is determined whether attenuation has occurred or a collision has occurred. This determination by the transmission loss rate / collision rate threshold comparison unit 22 is performed based on, for example, a table shown in FIG.
- the transmission loss rate / collision rate threshold comparison unit 22 transmits the attenuation determination result to the parameter adjustment unit 24 of the collision suppression control unit 14.
- the transmission loss rate / collision rate threshold value comparison unit 22 determines that the cause of the transmission loss is a collision
- the transmission loss rate / collision rate threshold value comparison unit 22 instructs the collision cause analysis unit 23 of the collision suppression control unit 14 to analyze the cause of the collision. Do. If the transmission loss rate / collision rate threshold value comparison unit 22 determines that the communication has been normally transmitted, the transmission loss rate / collision rate threshold value comparison unit 22 stops the migration process.
- the transmission loss rate / collision rate threshold comparison unit 22 instructs the collision cause analysis unit 23 to analyze the cause of the collision when the transmission is normal but a collision occurs. .
- the threshold Th used in the transmission loss rate / collision rate threshold comparison unit 22 can be arbitrarily determined by the user.
- the same threshold may be used for the comparison with the transmission loss rate and the comparison with the collision rate, or the comparison may be performed with different thresholds.
- the collision cause analysis unit 23 of the collision suppression control unit 14 analyzes the cause of the collision (S106).
- the cause of the collision is analyzed based on, for example, a table shown in FIG.
- the collision cause analysis unit 23 identifies the main cause of the collision from the way of occurrence and the number (occurrence frequency, etc.) of the collision. Then, the collision cause analysis unit 23 transmits the identified cause to the parameter adjustment unit 24 of the collision suppression control unit 14.
- the parameter adjustment unit 24 receives the result and acquires a parameter adjustment table corresponding to the result (determination result or analysis result) stored in the parameter storage unit 25. That is, when the parameter adjustment unit 24 receives the result that the attenuation has occurred from the transmission loss rate / collision rate threshold comparison unit 22, the parameter adjustment unit 24 acquires the parameter adjustment table for attenuation from the parameter storage unit 25 (S108).
- the parameter adjustment unit 24 obtains the analysis result of the coincidence of the back-off time from the collision cause analysis unit 24, acquires a parameter adjustment table for the back-off time from the parameter storage unit 25 (S109). Similarly, when the analysis result of the hidden terminal problem 1 is obtained, a parameter adjustment table for the hidden terminal problem 1 is acquired (S110). Moreover, the parameter adjustment part 24 acquires the parameter adjustment table with respect to the hidden terminal problem 2, when the analysis result of the hidden terminal problem 2 is obtained (S111). Moreover, the parameter adjustment part 24 acquires the parameter adjustment table with respect to the hidden terminal problem 3, when the analysis result of the hidden terminal problem 3 is obtained (S112).
- the parameter adjustment unit 24 acquires the parameter adjustment table from the parameter storage unit 25 (or before and after)
- the parameter adjustment unit 24 checks the content stored in the adjustment content storage unit 26 (S113). Then, the parameter adjustment unit 24 determines whether or not the content of the current parameter adjustment matches the content of the parameter adjustment performed last time (S114).
- the parameter adjustment unit 24 selects a parameter of priority 1 (S115). On the other hand, if the contents of the parameter adjustment match, the parameter adjustment unit 24 selects a parameter having the next priority after the previous parameter adjustment (S116). Then, the parameter adjustment unit 24 adjusts the selected parameter (S117). The parameter adjustment unit 24 transmits the cause of the collision, the used parameter adjustment table, and the contents of the adjusted parameter to the adjustment content storage unit 26 (S118). Thereafter, the process returns to the beginning, and the process is repeated again.
- the wireless communication terminal 1 repeats the process. By repeating such processing, the wireless communication terminal 1 copes with various causes while feeding back the cause of the collision and the content of adjustment during the operation. In addition, when a plurality of causes of collision coexist, countermeasures are performed in the order of occurrence frequency.
- the wireless communication terminal 1 includes the collision suppression control unit 14. Further, the collision suppression control unit 14 in this embodiment includes a collision detection unit 21 and a collision cause analysis unit 23.
- the collision cause analysis unit 23 can analyze the cause of the collision according to the collision situation (collision pattern) detected by the collision detection unit 21. Further, the wireless communication terminal 1 can adjust parameters according to the collision situation based on the analysis result of the cause of the collision. As a result, it is possible to adjust appropriate parameters according to the cause of collision (collision situation), and it is possible to accurately suppress collision of packets.
- the wireless communication terminal 3 includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, and a collision suppression control unit 34.
- the collision suppression control unit 34 includes a collision detection unit 21, a transmission loss rate / collision rate threshold comparison unit 22, a collision cause analysis unit 23, a parameter adjustment unit 24, and a parameter storage unit 25. And the adjustment content storage unit 26 and the back-off time coincidence probability storage unit 37.
- Each function of the collision suppression control unit 34 is realized by executing a program incorporated in the collision suppression control unit 34.
- the wireless communication terminal 3 in the present embodiment is characterized in that the collision suppression control unit 34 includes the back-off time coincidence probability storage unit 37. Therefore, the backoff time matching probability storage unit 37 will be described below.
- the back-off time coincidence probability storage unit 37 includes, for example, a storage device such as a hard disk, a ROM (Read Only Memory), or a RAM (Random Access Memory).
- the back-off time coincidence probability storage unit 37 stores the probability that random values coincide for each CW (Counterion Window) in a table. By storing such information in the backoff time coincidence probability storage unit 37, the wireless communication terminal 3 can estimate the number of terminals present in the vicinity.
- the random value is a random integer generated from the range of 0 to CW.
- CW is a variable value and is any one of 15 to 1023.
- the slot time is a fixed value for each communication method used.
- the wireless communication terminal 3 in the present embodiment includes the back-off time match probability storage unit 37.
- the wireless communication terminal 3 according to the present embodiment can compare the calculated collision rate with the probability that the back-off times match. As a result, the wireless communication terminal 3 can estimate the number of terminals existing around.
- the number of collision partners can be specified, for example, by counting the collision patterns (A) to (I) shown in FIG. 5 when the transmission power is set to the maximum or minimum, and classifying them by the transmission power of the collision partner. Can be done.
- the wireless communication terminal 3 can also be configured to perform such classification.
- a radio communication terminal 4 configured to be able to perform channel transition as one of parameter changes according to a collision situation will be described.
- the wireless communication terminal 4 in the present embodiment is configured to estimate the number of terminals existing around.
- the wireless communication terminal 4 in the present embodiment is configured to perform channel transition when the estimated number of terminals exceeds a predetermined transition threshold.
- the wireless communication terminal 4 in this embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision suppression control unit 34, and a channel transition determination unit 45. is doing.
- the collision suppression control unit 34 is configured to be able to estimate the number of other terminals present in the vicinity from the collision rate. The description of this configuration has already been made and will be omitted.
- the channel transition determination unit 45 has a function of determining whether or not to change the channel based on the number of other terminals estimated by the collision suppression control unit 34. As described above, when the number of wireless communication terminals increases, the probability that a collision due to the coincidence of the backoff time will increase. Further, since there is an upper limit for the back-off time, even if the parameter adjusting unit 24 adjusts for the coincidence of the back-off time, there is a limit to the collision suppression effect. Therefore, the channel transition determination unit 45 compares the number of other terminals present around that estimated by the collision suppression control unit 34 with a predetermined transition threshold.
- the channel transition determination unit 45 determines the execution of the channel transition when the number of other terminals present in the vicinity estimated by the collision suppression control unit 34 exceeds a predetermined transition threshold. That is, the channel transition determination unit 45 performs channel transition rather than back-off time adjustment when the number of other terminals present in the vicinity estimated by the collision suppression control unit 34 exceeds a predetermined transition threshold. Therefore, the execution of the channel transition is determined. As described above, when the number of surrounding terminals increases, collision can be more effectively suppressed by performing channel transition. Note that when a channel transition is performed, the present invention is implemented again on the channel after the transition.
- the wireless communication terminal 4 in the present embodiment includes the collision suppression control unit 34 and the channel transition determination unit 45.
- the wireless communication terminal 4 can cause the collision suppression control unit 34 to estimate the number of terminals present in the vicinity, and transition the channel according to the estimated number of terminals. As a result, it is possible to more effectively suppress the collision.
- a radio communication terminal 5 that stops transmission of a radio frame signal that is currently being transmitted and transmits a radio frame signal that has detected a collision again when a collision is detected will be described.
- the wireless communication terminal 5 in the present embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision suppression control unit 14, and a transmission control unit 55. ing.
- the transmission control unit 55 has a function of controlling the transmission of the wireless frame signal by the wireless module unit 11. Specifically, when the collision detection unit 21 detects a collision, the collision detection unit 21 transmits to the transmission control unit 55 that a collision has been detected. Then, in response to the communication from the collision detection unit 21, the transmission control unit 55 sends an instruction to the wireless module unit 11 to stop the transmission of the currently performed wireless frame signal. In addition, the transmission control unit 55 sends an instruction to the wireless module unit 11 to perform retransmission processing of the wireless frame signal in which the collision has occurred.
- the wireless communication terminal 5 in the present embodiment includes the transmission control unit 55.
- the wireless communication terminal 5 can control the wireless module unit 11 when the collision detection unit 21 detects a collision. Specifically, the transmission of the currently performed radio frame signal is stopped, and the retransmission process of the radio frame signal in which the collision has occurred can be performed. As a result, even if a collision occurs, the radio frame signal can be transmitted more reliably.
- the wireless communication terminal 5 in the present embodiment includes the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, the collision suppression control unit 14, and the transmission control unit 55.
- the wireless communication terminal 5 may include a collision suppression control unit 34 instead of the collision suppression control unit 14.
- the wireless communication terminal 5 may include a channel transition determination unit 45.
- a fifth embodiment of the present invention will be described with reference to the drawings.
- a wireless communication terminal 6 capable of adjusting the parameters of the own device and suppressing the transmission loss of other devices will be described.
- the wireless communication terminal 6 in the present embodiment can have the same configuration as the wireless communication terminal described above. Therefore, the description of the configuration is omitted.
- the transmission loss rate / collision rate threshold value comparison unit 22 it may be determined that the own device (wireless communication terminal 6) is transmitting normally, but a collision has occurred.
- the collision cause analysis performed by the collision cause analysis unit 23 it may be analyzed that the hidden terminal problem 1 and the hidden terminal problem 3 are the cause.
- the transmission power of the radio frame signal of the other device (other radio communication terminal) that has collided with the radio frame signal of the own device is so small as not to affect the transmission / reception of the transmission frame of the own device, It can be considered that the transmission of its own device is performed normally. On the other hand, in such a case, it is considered that for other devices, the transmission power of the transmission frame of the own device is large and a transmission loss occurs due to the influence of the own device.
- the parameter adjustment unit 24 adjusts the parameter to transmit loss of the other device. It is conceivable to configure so as to suppress this.
- the parameter storage unit 25 stores a parameter adjustment table shown in FIG.
- the parameter adjustment unit 24 detects the collision situation (when transmitted normally and there is a hidden terminal problem 1 or 3), the parameter adjustment table shown in FIG. Is obtained from the parameter storage unit 25. Then, the parameter adjustment unit 24 refers to the parameter adjustment table and performs adjustment to reduce the transmission power. By adjusting in this way, it is possible to prevent the transmission frame of the own device from colliding with another device.
- the parameter storage unit 25 in the present embodiment stores the parameter adjustment table for the case where the transmission is normally performed and the hidden terminal problem 1 or 3 is present.
- the parameter adjustment unit 24 is configured to perform parameter adjustment with reference to the parameter storage unit 25 when the transmission is normally performed and the hidden terminal problem 1 or 3 is present. With this configuration, when transmission is successful and there is a hidden terminal problem 1 or 3, the parameter adjustment unit 24 reduces the transmission power of the own device to a level that does not reach other devices. I can do it. As a result, it is possible to suppress the transmission frame of the own device from colliding with another device.
- the wireless communication terminal 7 in the present embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, and a collision suppression control unit 71.
- the wireless communication terminal 7 in the present embodiment is characterized by having the collision suppression control unit 71. Therefore, in the following, the collision suppression control unit 71 will be described in detail.
- symbol shall be attached
- the collision suppression control unit 71 includes a collision detection unit 81, a transmission loss rate / collision rate threshold comparison unit 22, a parameter adjustment unit 83, a parameter storage unit 84, an adjustment content storage unit 26, It has the function of.
- the collision detection unit 81 has a function of analyzing the detection result detected by the frame detection unit 13 and detecting whether or not a collision has occurred.
- the collision detection unit 81 first receives a detection result (power pattern) from the frame detection unit 13. And the collision detection part 81 detects the presence or absence of collision occurrence by analyzing a detection result. In the embodiments described so far, the collision detection unit 81 performs the detection of the occurrence of a collision and the determination of the collision pattern. However, when the collision detection unit 81 in the present embodiment detects a collision, information (or collision rate) indicating that the collision has been detected without determining the collision pattern is sent to the transmission loss rate / collision rate threshold comparison unit 22. Send.
- the transmission loss rate / collision rate threshold comparison unit 22 has the same function as the configuration already described. That is, the transmission loss rate / collision rate threshold comparison unit 22 compares the transmission loss rate and the collision rate with a predetermined threshold Th (transmission loss rate threshold, collision rate threshold). Then, the transmission loss rate / collision rate threshold value comparison unit 22 determines the necessity of parameter adjustment, the content of collision, attenuation, and the like based on the comparison result. Thereafter, the transmission loss rate / collision rate threshold value comparison unit 22 transmits the determination result to the parameter adjustment unit 83.
- Th transmission loss rate threshold, collision rate threshold
- the parameter adjustment unit 83 has a function of adjusting parameters.
- the parameter adjustment unit 83 first receives the comparison result with the threshold Th from the transmission loss rate / collision rate threshold comparison unit 22. Then, the parameter adjustment unit 83 refers to the parameter adjustment table stored in the parameter storage unit 84. Specifically, the parameter adjustment unit 83 refers to the attenuation parameter adjustment table when the comparison result by the transmission loss rate / collision rate threshold comparison unit 22 is attenuation. Alternatively, when the comparison result by the transmission loss rate / collision rate threshold comparison unit 22 is a collision, the parameter adjustment unit 83 refers to the collision parameter adjustment table. Further, the parameter adjustment unit 83 refers to the adjustment content storage unit 26 to refer to the previous adjustment content, and selects the priority for parameter adjustment.
- the parameter adjustment unit 83 adjusts the parameter of the selected priority. Thereafter, the parameter adjustment unit 83 stores the adjusted content in the adjustment content storage unit 26. Note that the priority selection method performed by the parameter adjustment unit 83 is the same as that already described. Therefore, the description about the priority selection method is omitted.
- the parameter storage unit 84 includes a storage device such as a hard disk, a ROM (Read Only Memory), and a RAM (Random Access Memory).
- the parameter storage unit 84 stores a parameter adjustment table.
- the parameter adjustment table stored in the parameter storage unit 84 is acquired by the parameter adjustment unit 83.
- the parameter storage unit 84 stores, for example, the following table.
- Priority 1 Do nothing
- Priority 2 Increase back-off time
- Priority 3 Increase transmission power
- Priority 4 Lower carrier sense threshold
- Priority 5 Increase transmission power and lower carrier sense threshold
- Priority 6 Lowering the transmission rate
- Priority 7 Executing RTS / CTS
- the parameter storage unit 84 comprehensively stores the contents of the parameter adjustment table stored by the parameter storage unit 24 described above. That is, the parameter storage unit 84 comprehensively stores the contents of parameter adjustment necessary for each cause of collision.
- the adjustment content storage unit 26 includes a storage device such as a hard disk or a RAM (Random Access Memory).
- the adjustment content storage unit 26 stores the cause of the collision at the previous parameter adjustment, the parameter adjustment table used, and the content of the adjusted parameter.
- the storage content stored in the adjustment content storage unit 26 is acquired by the parameter adjustment unit 83.
- the above is the configuration of the wireless communication terminal 7. Next, an example of the operation of the wireless communication terminal 7 will be described. In the following, operations characteristic of this embodiment will be described.
- the parameter adjustment unit 83 transmits the result of determination by the transmission loss rate / collision rate threshold comparison unit 22 (attenuation has occurred or a collision has occurred) (see FIG. 29). S201). Therefore, the parameter adjustment unit 83 receives the result and acquires a parameter adjustment table corresponding to the determination result stored in the parameter storage unit 84. That is, when the parameter adjustment unit 83 receives the result of the occurrence of attenuation from the transmission loss rate / collision rate threshold comparison unit 22, the parameter adjustment unit 83 acquires a parameter adjustment table for attenuation from the parameter storage unit 84 (S108).
- the parameter adjustment unit 83 receives a result of the occurrence of the collision from the transmission loss rate / collision rate threshold comparison unit 22, the parameter adjustment unit 83 acquires a parameter adjustment table for the collision from the parameter storage unit 84 (S202). Thereafter, the parameter adjustment unit 83 refers to the adjustment content storage unit 26 and performs parameter adjustment according to the priority.
- the wireless communication terminal 7 in the present embodiment includes the collision suppression control unit 71 having the functions of the collision detection unit 81, the parameter adjustment unit 83, and the parameter storage unit 84.
- the collision detection unit 81 detects a collision.
- the parameter adjustment unit 83 refers to the parameter adjustment table stored in the parameter storage unit 84 and adjusts parameters according to the priority.
- the parameter storage unit 84 comprehensively stores parameter adjustments necessary for each cause of collision. Therefore, the radio communication terminal 7 can perform packet collision suppression by adjusting the parameters in order according to the priority. By providing the wireless communication terminal 7 with such a configuration, packet collision can be suppressed without analyzing the cause of collision.
- the content of the parameter adjustment table stored in the parameter storage unit 84 described in the present embodiment is an example of the content that the parameter storage unit 84 can store.
- the content stored in the parameter storage unit 84 is not limited to the content described in the present embodiment.
- a seventh embodiment of the present invention will be described with reference to the drawings.
- a wireless communication terminal 9 that detects a collision situation of radio frame signals and changes parameters according to the detected collision situation will be described.
- an outline of the configuration of the wireless communication terminal 9 will be described.
- the wireless communication terminal 9 includes a wireless module unit 91, a frame detection unit 92, and a collision suppression control unit 93.
- the wireless module unit 91 has a function of transmitting a wireless frame signal.
- the frame detection unit 92 has a function of detecting the power of the spatial radio signal using the same channel as the radio frame signal transmitted by the radio module unit 91.
- the collision suppression control unit 93 detects a predetermined collision situation between the radio frame signal transmitted by the radio module unit 91 and another radio frame signal based on the detection result detected by the frame detection unit 92, and detects the detection. A function of changing parameters according to the predetermined collision situation.
- the wireless communication terminal 9 includes the wireless module unit 91, the frame detection unit 92, and the collision suppression control unit 93.
- the wireless communication terminal 9 can detect the wireless frame signal transmitted by the wireless module unit 91 by the frame detection unit 92 and confirm the presence or absence of a collision. Further, the wireless communication terminal 9 detects a collision between the wireless frame signal transmitted by the wireless module unit 91 and another wireless frame signal based on the detection result detected by the frame detection unit 92 and detects a predetermined collision situation.
- the parameter can be changed according to the detected predetermined collision situation. That is, the wireless communication terminal 9 can change an appropriate parameter according to the collision situation. As a result, the wireless communication terminal 9 can perform effective collision suppression.
- a program according to another aspect of the present invention includes a wireless module unit that transmits a wireless frame signal to a wireless communication terminal, and the power of the spatial radio signal on the same channel as the wireless frame signal transmitted by the wireless module unit. Detecting a collision between a radio frame signal transmitted by the radio module unit and another radio frame signal based on a detection result detected by the frame detection unit detected by the frame detection unit, and detecting a predetermined collision situation, This is a program for realizing a collision suppression control unit that changes a parameter according to a detected predetermined collision situation.
- the wireless communication method executed by the operation of the wireless communication terminal 9 described above detects the power of the spatial radio signal on the same channel as the transmitted wireless frame signal, and based on the detection result, In this method, a collision with the radio frame signal is detected, a predetermined collision situation is detected, and a parameter is changed according to the detected predetermined collision situation.
- a wireless communication terminal that detects collision presence / absence information indicating the presence / absence of a collision and controls a transmission rate when the wireless module unit 11 transmits a wireless frame signal based on the detected collision presence / absence information. 100 will be described. That is, the wireless communication terminal 100 according to the present embodiment controls the transmission rate, which is one of the parameters described in the above embodiments, according to the presence or absence of a collision.
- the wireless communication terminal 100 includes a wireless module unit 11, a loss detection unit 12 (transmission loss information detection unit), a frame detection unit 13 (part of a collision information detection unit), It has a collision presence / absence detection unit 101 (a part of the collision information detection unit) and a multi-rate control unit 102 (transmission control unit).
- the wireless module unit 11, the loss detection unit 12, and the frame detection unit 13 have the same configuration as that described in each of the above-described embodiments.
- the collision presence / absence detection unit 101 and the multi-rate control unit 102 include a CPU and a storage device (not shown), and the CPU executes a program stored in the storage device, thereby realizing each function described later.
- the wireless module unit 11 has an antenna unit (not shown), and performs wireless communication via the antenna unit. Further, the wireless module unit 11 in the present embodiment is configured to transmit a wireless frame signal using any one of a plurality of transmission rates.
- the wireless module unit 11 can have functions used when performing wireless communication, such as performing carrier sense and increasing / decreasing transmission power.
- FIG. 32 is an example of a transmission rate used when the wireless module unit 11 transmits a wireless frame signal.
- the wireless module unit 11 in the present embodiment is configured to transmit a wireless frame signal using any one of the transmission rates shown in FIG. 32 based on control by the multirate control unit 102. Yes.
- the wireless module unit 11 according to the present embodiment sets, for example, one transmission rate to be used when transmitting the next wireless frame signal when the number of successful transmissions is a predetermined number (for example, 4 times). It is controlled by the multi-rate control unit 102 so as to increase it. For example, suppose that the wireless module unit 11 succeeded four times with the transmission rate of 24 Mbps shown in FIG.
- the wireless module unit 11 is controlled by the multi-rate control unit 102 to perform transmission using a transmission rate of 36 Mbps, which is one higher than 24 Mbps, when the next wireless frame signal is transmitted.
- the wireless module unit 11 according to the present embodiment is used when transmitting a wireless frame signal next time because transmission fails and the number of times satisfying a predetermined condition becomes a predetermined number (for example, 4 times).
- the multi-rate controller 102 controls the transmission rate to be lowered by one, for example. For example, it is assumed that the wireless module unit 11 fails to perform transmission using the transmission rate of 12 Mbps shown in FIG. 32 and the number of times that satisfies a predetermined condition is four. Then, the wireless module unit 11 is controlled by the multi-rate control unit 102 so that the transmission rate of 11 Mbps, which is one lower than 12 Mbps, is used when the next wireless frame signal is transmitted.
- the wireless module unit 11 in the present embodiment is configured to transmit a wireless frame signal using any one of a plurality of transmission rates.
- the algorithm for determining the transmission rate used when the wireless module unit 11 transmits a wireless frame signal is not limited to the above case.
- the algorithm used when the wireless module unit 11 determines the transmission rate used for wireless communication various algorithms for changing the rate with the success or failure of the wireless communication as a trigger can be adopted.
- the loss detection unit 12 detects transmission loss information indicating that the wireless frame signal transmitted by the wireless module unit 11 did not reach the transmission destination (transmission loss). Specifically, the loss detection unit 12 considers that a transmission loss has occurred when the wireless module unit 11 does not receive an Ack frame until a predetermined time elapses after transmission of a wireless frame signal, and transmits information indicating that (transmission). Loss information) is detected. Then, the loss detection unit 12 transmits the detected transmission loss information to the multi-rate control unit 102. On the other hand, when the wireless module unit 11 receives an Ack frame before a predetermined time elapses after the wireless frame signal is transmitted by the wireless module unit 11, the loss detection unit 12 sends information indicating that to the multi-rate control unit 102. Send to. Note that the wireless module unit 11 may be configured to transmit information to the multi-rate control unit 102 when no transmission loss occurs (when an Ack frame is received).
- the frame detection unit 13 detects the power of the spatial radio signal on the same channel as the radio frame signal transmitted by the radio module unit 11. That is, the frame detection unit 13 detects a temporal change in the power of the radio frame signal transmitted by the radio module unit 11. Then, the frame detection unit 13 transmits the detection result to the collision presence / absence detection unit 101.
- the collision presence / absence detection unit 101 has a function of detecting collision presence / absence information indicating the presence / absence of a collision, which is one of collision information indicating the state of the collision, by analyzing the detection result detected by the frame detection unit 13. .
- the collision presence / absence detection unit 101 first receives a detection result from the frame detection unit 13. Then, the collision presence / absence detection unit 101 detects collision presence / absence information indicating the presence / absence of a collision by analyzing the received detection result. For example, the collision detection unit 101 determines that a collision has occurred when it is determined from the detection result from the frame detection unit 13 that a plurality of transmission packets (radio frame signals) are overlapped. Collision presence / absence information indicating the occurrence of the error is detected. Then, the collision presence / absence detection unit 101 transmits collision presence / absence information indicating that a collision has occurred to the multi-rate control unit 102.
- the collision presence / absence detection unit 101 interrupts the process of counting a transmission failure counter based on transmission loss information, which will be described later, performed by the multirate control unit 102.
- the collision presence / absence detection unit 101 determines that no collision has occurred, Collision presence / absence information indicating that no collision has occurred is detected. Then, the collision presence / absence detection unit 101 transmits collision presence / absence information indicating that no collision has occurred to the multi-rate control unit 102.
- the collision presence / absence detection unit 101 interrupts the multi-rate control unit 102 to stop the counting process as described above. Absent. Therefore, as will be described later, when the multi-rate control unit 102 receives collision presence / absence information indicating that no collision has occurred, the multi-rate control unit 102 counts a transmission failure counter based on the transmission loss information without stopping the processing. It will be.
- the collision presence / absence detection unit 101 is configured to detect the presence / absence of a collision and transmit the collision presence / absence information indicating the presence / absence of the collision to the multi-rate control unit 102.
- the collision presence / absence detection unit 101 in the present embodiment is configured to detect collision information including collision presence / absence information and transmit the collision information including the detected collision presence / absence information to the multi-rate control unit 102.
- the collision presence / absence detection unit 101 may be configured to detect collision information including collision situation information indicating a collision situation.
- the multi-rate control unit 102 has a function of controlling a transmission rate used when the wireless module unit 11 transmits a wireless frame signal according to transmission loss information received from the loss detection unit 12.
- the multirate control unit 102 may be interrupted by the collision presence / absence detection unit 101 to stop the processing. Therefore, the multi-rate control unit 102 is used when the radio module unit 11 transmits a radio frame signal based on the transmission loss information received from the loss detection unit 12 and the collision presence / absence information received from the collision presence / absence detection unit 101. The transmission rate will be controlled.
- the multirate control unit 102 includes a transmission success counter unit and a transmission failure counter unit (not shown), and a storage device such as a memory for storing a transmission success counter threshold value (m) and a transmission failure counter threshold value (n). Have.
- the transmission success counter unit has a function of counting the number of successful transmission of radio frame signals under the control of the multirate control unit 102 when the multirate control unit 102 receives information indicating that no transmission loss has occurred. Have. That is, when the multi-rate control unit 102 receives information indicating that no transmission loss has occurred (transmission is successful), the multi-rate control unit 102 performs a process of adding 1 to the transmission success counter of the transmission success counter unit, for example. Further, the transmission failure counter unit has a function of counting the number of failed transmission of radio frame signals under the control of the multirate control unit 102 when the multirate control unit 102 receives the transmission loss information.
- the multi-rate control unit 102 when the multi-rate control unit 102 receives the transmission loss information, the multi-rate control unit 102 tries to perform a process of adding 1 to the transmission failure counter of the transmission failure counter unit, for example.
- the collision presence / absence detection unit 101 detects the collision presence / absence information indicating that a collision has occurred
- the collision presence / absence detection unit 101 cancels the process of counting the transmission failure counter.
- the multi-rate control unit 102 is interrupted. Therefore, when the multirate control unit 102 receives the transmission loss information and receives the collision presence / absence information indicating that a collision has occurred, the multirate control unit 102 adds a transmission failure counter of the transmission failure counter unit. Stop and do not count.
- the multirate control unit 102 when the multirate control unit 102 receives the transmission loss information and receives the collision presence / absence information indicating that no collision has occurred, the multirate control unit 102 adds, for example, 1 to the transmission failure counter of the transmission failure counter unit. Will be processed.
- the multi-rate control unit 102 is configured to count the number of times that the wireless module unit 11 has successfully transmitted the wireless frame signal.
- the multi-rate control unit 102 in the present embodiment is configured to count the number of times that the wireless module unit 11 has failed to transmit a wireless frame signal and no collision has occurred.
- the transmission success counter threshold and the transmission failure counter threshold are arbitrary numerical values such as 4 times.
- the transmission success counter threshold and the transmission failure counter threshold are the counts of the transmission success counter unit and the transmission failure counter unit (the number of successful transmissions of the radio frame signal and the transmission failure, and no collision has occurred. Number of times).
- the multi-rate control unit 102 determines whether or not the transmission failure counter counted by the transmission failure counter unit is greater than or equal to the transmission failure counter threshold after the counting process. Then, when the transmission failure counter to be counted is equal to or greater than the transmission failure counter threshold, the multi-rate control unit 102 sets the transmission rate used by the wireless module unit 11 to one lower rate (for example, one right side shown in FIG. 32). Rate). That is, the multi-rate control unit 102 lowers the transmission rate used by the wireless module unit 11 by one when the number of times that transmission has failed and the number of times that no collision has occurred exceeds the transmission failure counter threshold. Control to change to rate.
- the multi-rate control unit 102 determines that the transmission success counter counted by the transmission success counter unit is equal to or greater than the transmission success counter threshold. It is determined whether or not. Then, when the transmission success counter to be counted is greater than or equal to the transmission success counter threshold, the multi-rate control unit 102 increases the transmission rate used by the wireless module unit 11 by one higher rate (for example, the left-hand side shown in FIG. 32). Rate). That is, the multi-rate control unit 102 performs control so that the transmission rate used by the wireless module unit 11 is changed to a higher rate when the number of successful transmissions exceeds the transmission success counter threshold. In addition, when the transmission success counter counted by the transmission success counter unit is smaller than the transmission success counter threshold, the multi-rate control unit 102 determines that the rate is not changed.
- the multi-rate control unit 102 clears the transmission success counter counted by the transmission success counter unit and the transmission failure counter counted by the transmission failure counter unit. That is, the multi-rate control unit 102 changes the transmission rate used by the wireless module unit 11 to one lower rate because the transmission failure counter is greater than or equal to the transmission failure counter threshold, and thereafter, the transmission success counter and the transmission failure counter Return the value to 0. In addition, the multi-rate control unit 102 changes the transmission rate used by the wireless module unit 11 to one higher rate because the transmission success counter is equal to or greater than the transmission success counter threshold, and thereafter, the transmission success counter and the transmission failure counter Return the value to 0. As described above, the multi-rate control unit 102 is configured to reset the transmission failure counter and the transmission success counter to 0 each time the transmission rate used by the wireless module unit 11 is controlled.
- the multi-rate control unit 102 allows the radio module unit 11 to transmit the radio frame based on the transmission loss information received from the loss detection unit 12 and the collision presence / absence information received from the collision presence / absence detection unit 101. Controls the transmission rate when transmitting signals.
- the multi-rate control unit 102 that performs control to lower the transmission rate has been described. However, the implementation of the present invention is not limited to the above case.
- the multi-rate control unit 102 can apply various algorithms for controlling the transmission rate based on the transmission loss information and the collision presence / absence information.
- the transmission success counter threshold and the transmission failure counter threshold are not limited to the above case.
- the transmission success counter threshold and the transmission failure counter threshold may be 3 or less, or 5 or more.
- the transmission success counter threshold and the transmission failure counter threshold may be the same value or different values.
- the frame detection unit 13 and the collision presence / absence detection unit 101 are exemplified as the configuration for detecting the collision presence / absence information indicating the presence / absence of a collision.
- the configuration of the present invention is not limited to the above case as long as collision presence / absence information indicating the presence / absence of a collision can be detected.
- the present invention can have various configurations for detecting collision presence / absence information indicating the presence / absence of a collision instead of the frame detection unit 13 and the collision presence / absence detection unit 101.
- the above is the configuration of the wireless communication terminal 100 in the present embodiment. Next, the operation of the wireless communication terminal 100 will be described.
- the wireless module unit 11 of the wireless communication terminal 100 transmits a wireless frame signal (S301). Subsequently, the frame detection unit 13 acquires the radio frame signal transmitted by the radio module unit 11 (S302).
- the frame detection unit 13 acquires the radio frame signal transmitted by the radio module unit 11, the radio frame signal collision is monitored. Specifically, referring to FIG. 34, the frame detection unit 13 that has acquired the radio frame signal by the above operation transmits the acquired result to the collision presence / absence detection unit 101. Subsequently, the collision presence / absence detection unit 101 receives the result transmitted by the frame detection unit 13 (S321). Then, the collision presence / absence detection unit 101 analyzes the received result and detects collision presence / absence information (S322). For example, the collision presence / absence detection unit 101 determines that a collision has occurred when it is determined that a plurality of transmission packets are overlapped from the received result, and indicates whether or not a collision has occurred. Is detected.
- the collision presence / absence detection unit 101 determines that no collision has occurred when it is determined from the detection result from the frame detection unit 13 that the transmission packets (radio frame signals) do not overlap, Collision presence / absence information indicating that no collision has occurred is detected. Thereafter, when the collision presence / absence detection unit 101 detects collision presence / absence information indicating that a collision has occurred (S323, Yes), multi-rate control is performed on the collision presence / absence information indicating that the collision has occurred. By transmitting to the unit 102, an interrupt is issued to stop the process of counting the transmission failure counter (S325).
- the collision presence / absence detection unit 101 detects collision presence / absence information indicating that no collision has occurred (No in S323)
- the collision presence / absence information indicating that no collision has occurred is displayed in the multi-rate control unit. 102 (S324).
- the collision presence / absence detection unit 101 detects collision presence / absence information indicating that no collision has occurred (No in S323)
- the collision presence / absence detection unit 101 does not interrupt the process of counting the transmission failure counter. .
- the radio communication terminal 100 monitors the collision of radio frame signals using the frame detection unit 13 and the collision presence / absence detection unit 101.
- the loss detection unit 12 monitors the wireless module unit 11 to obtain transmission loss information indicating that the wireless frame signal transmitted by the wireless module unit 11 did not reach the transmission destination. Obtain (S303). Then, the loss detection unit 12 transmits the acquired transmission loss information to the multi-rate control unit 102.
- the multi-rate control unit 102 determines whether a transmission loss has occurred based on the transmission loss information received from the loss detection unit 12 (S304). If no transmission loss has occurred (S304, No), the multirate control unit 102 adds 1 to the transmission success counter of the transmission success counter unit (S305). On the other hand, if a transmission loss has occurred (S304, Yes), the multirate control unit 102 attempts to add 1 to the transmission failure counter of the transmission failure counter unit.
- the collision detection unit 101 detects collision detection information indicating that a collision has occurred, the collision detection unit 101 counts a transmission failure counter based on the transmission loss information.
- the multirate control unit 102 is interrupted to stop the processing (S325 in FIG. 34).
- the multi-rate control unit 102 stops the process of counting the transmission failure counter when a transmission loss has occurred and a collision has occurred (S306, Yes). On the other hand, if a transmission loss has occurred and no collision has occurred (S306, No), the multirate control unit 102 adds 1 to the transmission failure counter of the transmission failure counter unit (S307). ).
- the multi-rate control unit 102 determines whether to count the transmission success counter, the transmission failure counter, or nothing based on the transmission loss information and the collision presence / absence information. to decide.
- the multirate control unit 102 compares the transmission failure counter counted by the transmission failure counter unit with the transmission failure counter threshold (n) to determine whether or not the transmission failure counter is equal to or greater than the transmission failure counter threshold. Is determined (S308). When the transmission failure counter is equal to or greater than the transmission failure counter threshold (S308, Yes), the multi-rate control unit 102 changes the transmission rate used by the wireless module unit 11 to a lower rate (S309). Thereafter, the multi-rate control unit 102 clears the transmission success counter and the transmission failure counter (S313).
- the multirate control unit 102 indicates that the transmission success counter counted by the transmission success counter unit is the transmission success counter threshold (m). It is determined whether or not this is the case (S310). Then, when the transmission success counter counted by the transmission success counter unit is greater than or equal to the transmission success counter threshold (S310, Yes), the multi-rate control unit 102 increases the transmission rate used by the wireless module unit 11 to one higher rate. (S311). Thereafter, the multi-rate control unit 102 clears the transmission success counter and the transmission failure counter (S313). On the other hand, when the transmission success counter counted by the transmission success counter unit is smaller than the transmission success counter threshold (No in S310), the multi-rate control unit 102 determines that the rate is not changed (No). S312).
- the above operation is repeated every time the wireless module unit 11 transmits a wireless frame signal.
- a wireless communication terminal that does not have a function of detecting collision presence / absence information indicating the presence / absence of a collision, which is related to the wireless communication terminal 100 in the present embodiment, will be described.
- the wireless communication terminal does not have a function of detecting the collision presence / absence information
- the wireless communication terminal can determine whether or not the transmission loss is caused by the collision when the transmission loss occurs. I can't. For this reason, when a transmission loss occurs, the wireless communication terminal as described above counts the transmission failure counter uniformly without considering the presence or absence of a collision. As a result, the wireless communication terminal as described above performs a process of uniformly reducing the transmission rate regardless of the presence or absence of a collision.
- the wireless communication terminal 100 includes a loss detection unit 12 that detects transmission loss information, a frame detection unit 13, and a collision presence / absence detection that detects collision presence / absence information based on detection results of the frame detection unit 13.
- Unit 101 and multi-rate control unit 102 can control the transmission rate based on the transmission loss information detected by the loss detection unit 12 and the collision presence / absence information detected by the collision presence / absence detection unit 101. That is, the multi-rate control unit 102 according to the present embodiment can perform control so as not to decrease the transmission rate when it is considered that a transmission loss has occurred due to a collision. . As a result, it is considered that redundant control can be reduced and control efficiency can be improved. Further, it is considered that communication quality can be ensured by accurate control without performing redundant control.
- the wireless communication terminal 100 according to the present embodiment can be realized only by adding the frame detection unit 13 and the collision presence / absence detection unit 101 to the wireless communication terminal related to the wireless communication terminal 100 according to the present embodiment. It is not always necessary to modify the rate control unit 102. Therefore, it is considered that the wireless communication terminal 100 in this embodiment is easy to mount.
- the wireless communication terminal 110 according to the ninth embodiment is configured to detect collision presence / absence information indicating the presence / absence of a collision and collision state information indicating a collision state (collision pattern). As will be described later, the wireless communication terminal 110 according to the present embodiment controls the transmission rate when the wireless module unit 11 transmits a wireless frame signal based on transmission loss information, collision presence / absence information, and collision status information. become.
- the wireless communication terminal 110 in the present embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision presence / absence detection unit 101, and a collision cause detection unit 111 (collision information detection). And a multi-rate control unit 112.
- the configurations of the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, and the collision presence / absence detection unit 101 are the same as those described in the above-described embodiment. Therefore, explanation is omitted.
- the collision cause detection unit 111 and the multi-rate control unit 112 have a CPU and a storage device (not shown), and the CPU executes a program stored in the storage device, thereby realizing each function described later.
- the collision cause detection unit 111 has a function of detecting, from the detection result detected by the frame detection unit 13, collision state information indicating a collision state that is a collision pattern between a radio frame signal and another radio frame signal. Further, the collision cause detection unit 111 detects the cause of collision of the collided radio frame signals according to the collision situation. That is, the collision cause detection unit 111 in the present embodiment detects the collision situation information including information indicating the cause of the collision.
- the collision cause detection unit 111 acquires the detection result detected by the frame detection unit 13 from the frame detection unit 13. Further, the collision cause detection unit 111 acquires collision presence / absence information from the collision presence / absence detection unit 101. When the collision cause detection unit 111 determines that a collision has occurred based on the collision presence / absence information acquired from the collision presence / absence detection unit 101, the collision cause detection unit 111 analyzes the detection result acquired from the frame detection unit 13, A collision situation that is a collision pattern is detected. Then, the collision cause detection unit 111 detects the cause of the collision according to the collision situation. Note that the collision cause detection unit 111 in the present embodiment is configured to detect the cause of the collision for each transmission frame in which a collision has occurred.
- the collision cause detection unit 111 detects the collision cause by determining which collision pattern is the detection result detected by the frame detection unit 13. For example, when the collision pattern detected by the frame detection unit 13 is (A) to (I) shown in FIG. 5, the collision cause detection unit 111 detects the coincidence of the back-off time as the cause of the collision. On the other hand, the collision cause detection unit 111 detects the hidden terminal problem as the cause of the collision when the collision pattern detected by the frame detection unit 13 is (J) or (K) shown in FIG.
- the collision cause detection unit 111 determines that a collision has occurred by simultaneously transmitting a radio frame signal from the radio module unit 11 and a radio frame signal transmitted from another radio communication terminal, Detects matching backoff time as a cause of collision.
- the collision cause detection unit 111 determines that a collision has occurred by transmitting a radio frame signal from another wireless communication terminal while the wireless module unit 11 is transmitting the wireless frame signal
- the collision cause detection unit 111 The hidden terminal problem is detected as the cause of the problem.
- the collision cause detection unit 111 detects a collision when it is determined that a wireless frame signal is transmitted by the wireless module unit 11 during transmission of a wireless frame signal by another wireless communication terminal. The hidden terminal problem is detected as the cause of the problem.
- the collision cause detection unit 111 has a back-off time as a cause of the collision when the wireless module unit 11 and another wireless communication terminal start transmission at the same time to cause a collision. Find a match.
- the collision cause detection unit 111 detects a hidden terminal problem as a cause of the collision when a collision occurs due to transmission of another radio frame signal during transmission of the radio frame signal. Thereafter, the collision cause detection unit 111 transmits collision state information including information indicating the detected cause of the collision to the multi-rate control unit 112.
- the collision cause detection unit 111 in the present embodiment detects the coincidence of the back-off time and the hidden terminal problem as the cause of the collision.
- the hidden terminal problem can be divided into a hidden terminal problem 1 and a hidden terminal problem 2 (the hidden terminal problem 3 is the hidden terminal problem 1 and the hidden terminal problem 2). Therefore, it is not determined in this embodiment. Therefore, the collision cause detection unit 111 may be configured to detect the coincidence of the back-off time, the hidden terminal problem 1 and the hidden terminal problem 2 as the cause of the collision.
- the multi-rate control unit 112 has the same configuration as the multi-rate control unit 102 described in the eighth embodiment. Furthermore, the multi-rate control unit 112 in the present embodiment is configured to acquire collision state information from the collision cause detection unit 111. With such a configuration, the multi-rate control unit 112 transmits the radio frame signal based on the transmission loss information, the collision presence / absence information, and the collision status information acquired from the collision cause detection unit 111. The transmission rate used at the time is controlled.
- the multi-rate control unit 112 in this embodiment has a hidden terminal problem collision counter unit (not shown) in addition to the configuration shown in the eighth embodiment. Furthermore, in addition to the transmission success counter threshold and the transmission failure counter threshold, the hidden terminal problem collision counter threshold (K) is stored in the storage device included in the multirate control unit 112.
- the hidden terminal problem collision counter unit determines the number of causes of the collision due to the hidden terminal problem under the control of the multi-rate control unit 112. Has the function to count. That is, the multi-rate control unit 112 performs a process of adding, for example, 1 to the hidden terminal problem collision counter of the hidden terminal problem collision counter unit by receiving collision status information indicating that the cause of the collision is a hidden terminal problem. Become. On the other hand, the multirate control unit 112 does not perform the process of counting the hidden terminal problem collision counter when the collision status information indicating that the coincidence of the back-off time is the cause of the collision is received.
- the multirate control unit 112 counts the transmission success counter and the transmission failure counter and the hidden terminal problem collision counter based on the transmission loss information, the collision presence / absence information, and the collision status information. Specifically, when the multi-rate control unit 112 according to the present embodiment is interrupted by the collision presence / absence detection unit 101 to stop processing, whether or not the cause of the collision is a hidden terminal problem based on the collision status information. Determine whether. Then, when the cause of the collision is a hidden terminal problem, the multirate control unit 112 counts the hidden terminal problem collision counter of the hidden terminal problem collision counter unit.
- the multi-rate control unit 112 receives the transmission loss information, receives the collision presence / absence information indicating that a collision has occurred, and the collision status information indicates that the collision cause is a hidden terminal problem. Is received, the hidden terminal problem collision counter is counted.
- the threshold for the hidden terminal problem collision counter is an arbitrary numerical value such as 4 times.
- the threshold value for the hidden terminal problem collision counter is compared with the count number of the hidden terminal problem collision counter unit.
- the multi-rate control unit 112 determines whether or not the hidden terminal problem collision counter counted by the hidden terminal problem collision counter unit is equal to or greater than the threshold for the hidden terminal problem collision counter after the counting process. . Then, when the counted hidden terminal problem collision counter is equal to or greater than the hidden terminal problem collision counter threshold, the multi-rate control unit 112 changes the transmission rate used by the wireless module unit 11 to a higher rate. That is, the multi-rate control unit 112, when transmission has failed, a collision has occurred, and the number of times the cause of the collision is a hidden terminal problem is greater than or equal to the threshold for the hidden terminal problem collision counter, Control is performed so that the transmission rate used by the wireless module unit 11 is changed to one higher rate.
- the multirate control unit 112 determines whether or not the transmission failure counter counted by the transmission failure counter unit is equal to or greater than the transmission failure counter threshold. Determine whether. Thereafter, the multirate control unit 112 performs the same processing as that described in the eighth embodiment.
- the multi-rate control unit 112 when performing control to change the transmission rate of the wireless module unit 11, the multi-rate control unit 112 clears all of the transmission success counter, the transmission failure counter, and the hidden terminal problem collision counter to 0. That is, the multi-rate control unit 112 in the present embodiment returns all counts to 0 when performing control to change the transmission rate of the wireless module unit 11.
- the radio module unit 11 transmits the radio frame signal based on the transmission loss information, the collision presence / absence information, and the collision status information received from the collision cause detection unit 111.
- the collision cause detection unit 111 can be configured to detect the coincidence of the back-off time, the hidden terminal problem 1 and the hidden terminal problem 2 as the cause of the collision. Therefore, the multi-rate control unit 112 may be configured to perform processing by distinguishing the hidden terminal problem 1 and the hidden terminal problem 2.
- the multi-rate control unit 112 may include a hidden terminal problem 1 collision counter unit and a hidden terminal problem 2 collision counter unit. With such a configuration, the multi-rate control unit 112 has a hidden terminal problem 1 collision counter counted by the hidden terminal problem 1 collision counter unit and a hidden terminal problem 2 collision counter counted by the hidden terminal problem 2 collision counter unit. Based on this, the transmission rate can be controlled.
- the hidden terminal problem collision counter threshold value may be the same value as the transmission success counter threshold value or the transmission failure counter threshold value, or may be a different value.
- the hidden terminal problem 1 collision counter threshold and the hidden terminal problem 2 collision counter threshold are the same value. It doesn't matter if it is a different value.
- the multi-rate control unit 112 may be configured to count the number of collision causes that coincide with the back-off time instead of counting the number of collision causes that are hidden terminal problems.
- the above is the configuration of the wireless communication terminal 110 in the present embodiment. Next, the operation of the wireless communication terminal 110 will be described.
- the operation of the wireless communication terminal 110 is the same as the operation of the wireless communication terminal 100 described in the eighth embodiment until the multi-rate control unit 112 determines whether or not a collision has occurred. If a transmission loss has occurred and no collision has occurred (S306, No), the multi-rate control unit 112 transmits the transmission failure counter unit as in the eighth embodiment. The failure counter is incremented by 1 (S307).
- the multi-rate control unit 112 attempts to add 1 to the transmission failure counter and cancels the addition process. You will be interrupted. In such a case, the multi-rate control unit 112 in the present embodiment analyzes the cause of the collision based on the collision status information (S331). If the cause of the collision is a hidden terminal problem (S332, Yes), the multi-rate control unit 112 adds 1 to the hidden terminal problem collision counter of the hidden terminal problem collision counter unit (S333). On the other hand, when the cause of the collision is not the hidden terminal problem (for example, when the back-off times coincide) (S332, No), the multi-rate control unit 112 does not count anything.
- the multi-rate control unit 112 counts the transmission success counter, the transmission failure counter, or the hidden terminal problem collision based on the transmission loss information, the collision presence / absence information, and the collision status information. It is judged whether the counter is counted or nothing is counted.
- the multi-rate control unit 102 compares the hidden terminal problem collision counter with the hidden terminal problem collision counter threshold (K) to determine whether the hidden terminal problem collision counter is equal to or greater than the hidden terminal problem collision counter threshold. Is determined (S334). When the hidden terminal problem collision counter is equal to or greater than the hidden terminal problem collision counter threshold (S334, Yes), the multi-rate control unit 112 changes the transmission rate used by the wireless module unit 11 to a higher rate. (S335). Thereafter, the multirate control unit 102 clears the transmission success counter, the transmission failure counter, and the hidden terminal problem collision counter (S336).
- the hidden terminal problem collision counter is smaller than the hidden terminal problem collision counter threshold value (S334, No)
- the above operation is repeated every time the wireless module unit 11 transmits a wireless frame signal.
- the wireless communication terminal 110 includes the collision cause detection unit 111 and the multirate control unit 112. With such a configuration, the wireless communication terminal 110 can control the transmission rate in consideration of the collision situation information.
- the cause of the collision is the coincidence of the back-off time
- the collision occurs depending on the back-off time. Therefore, when the cause of the collision is the coincidence of the back-off time, it is considered that there is no particular change in the probability of the collision even if the transmission rate is changed and the time required for one frame transmission is changed.
- the cause of the collision is a hidden terminal problem
- the collision occurs randomly without depending on the back-off time. Therefore, it is considered that by shortening the time required for transmitting one frame, the probability that one frame of communication can be normally completed during a period in which other wireless communication terminals that are interference sources are not communicating increases.
- the wireless communication terminal 110 includes the collision cause detection unit 111 and the multirate control unit 112, so that the transmission rate can be increased when the cause of the collision is a hidden terminal problem. As a result, it is possible to shorten the time taken to transmit one frame, and it is possible to reduce the probability that a transmission loss will occur due to a collision. Further, the wireless communication terminal 110 has the above-described configuration, so that the transmission rate cannot be controlled when the cause of the collision is not a hidden terminal problem (when the back-off time coincides). As a result, it is possible to perform processing so as not to control the transmission rate when there is no particular change in the probability that a collision will occur. That is, the wireless communication terminal 110 according to the present embodiment has the above-described configuration, so that higher communication quality can be ensured without performing redundant control.
- the traffic amount means the amount of signals and data transmitted / received on the channel and the usage rate per unit time.
- the wireless communication terminal 120 in this embodiment has the same configuration as the wireless communication terminal 110 in the ninth embodiment. Therefore, the detailed description about each structure is abbreviate
- the wireless communication terminal 120 in this embodiment is configured to be able to acquire the traffic volume. Acquisition of the traffic amount can be realized by using the wireless module unit 11, for example. Specifically, the traffic volume can be acquired by monitoring how much the channel is congested by using carrier sense by the wireless module unit 11, for example. Further, acquisition of the traffic amount can also be realized by monitoring the signal power using the frame detection unit 13, for example. As described above, the traffic volume can be obtained by using various configurations.
- the storage device included in the multi-rate control unit 112 in this embodiment stores a traffic volume threshold (TH) in addition to the transmission success counter threshold, the transmission failure counter threshold, and the hidden terminal problem collision counter threshold.
- TH traffic volume threshold
- the traffic amount threshold value is an arbitrary value, for example, indicating that the channel usage rate at one second intervals is 50%.
- the traffic amount threshold value is compared with the acquired traffic amount in the multi-rate control unit 112.
- the multi-rate control unit 112 determines whether or not the acquired surrounding traffic amount is equal to or greater than the traffic amount threshold when the hidden terminal issue collision counter exceeds the threshold for the hidden terminal issue collision counter. Judging. Then, the multi-rate control unit 112 changes the transmission rate used by the wireless module unit 11 to a higher rate when the traffic volume is equal to or greater than the traffic volume threshold. On the other hand, if the traffic volume is smaller than the traffic volume threshold, it is determined whether or not the transmission failure counter counted by the transmission failure counter unit is equal to or greater than the transmission failure counter threshold without changing the transmission rate. .
- the multi-rate control unit 112 even if the number of times that the cause of the collision is a hidden terminal problem is equal to or greater than the threshold for the hidden terminal problem collision counter, Therefore, control is performed so as not to increase the transmission rate. Other than the above control, the same control as described above is performed.
- the multi-rate control unit 112 in the present embodiment determines the transmission rate at which the wireless module unit 11 transmits the wireless frame signal based on the transmission loss information, the collision presence / absence information, the collision state information, and the traffic volume. It is configured to control.
- the wireless communication terminal 120 may acquire the traffic amount using a configuration other than that exemplified above.
- the traffic volume threshold value may be a numerical value other than 50%.
- the wireless communication terminal 120 may be configured to monitor only one of the traffics. , Both may be configured to be monitored.
- FIG. 37 is an example of the operation of the wireless communication terminal 120 in the present embodiment.
- the wireless communication terminal 120 acquires the amount of surrounding traffic (S341) when the wireless module unit 11 transmits a wireless frame signal (S301). Then, the acquired traffic amount is transmitted to the multi-rate control unit 112.
- the multirate control unit 112 included in the wireless communication terminal 120 acquires the above-described operation when the hidden terminal problem collision counter to be counted is equal to or greater than the threshold for the hidden terminal problem collision counter (S334, Yes). It is determined whether the traffic volume is equal to or greater than a traffic volume threshold value (S342). Then, when the traffic volume is equal to or greater than the traffic volume threshold (S342, Yes), the multi-rate controller 112 changes the transmission rate used by the wireless module unit 11 to a higher rate (S335). Thereafter, the multi-rate control unit 112 clears all the counters to 0 (S336).
- the multi-rate controller 112 determines whether or not the transmission failure counter is equal to or greater than the transmission failure counter threshold without changing the rate. Judgment is made (S308). The subsequent operations are the same as those already described.
- the wireless communication terminal 120 is configured to acquire the traffic amount. With such a configuration, the wireless communication terminal 120 can control the transmission rate in consideration of the traffic amount.
- the traffic volume indicates the amount of signals and data transmitted / received on the channel and the usage rate per unit time. For this reason, it is considered that the smaller the amount of traffic, the less likely the collision occurs even if the transmission time for one transmission is long. That is, even if a collision occurs due to the hidden terminal problem, it is considered that there is a high probability of successful re-transmission without increasing the transmission rate in an environment where traffic is not congested. On the other hand, in an environment where traffic is congested, it can be considered that it is desirable to increase the transmission rate in order to increase the probability of successful retransmission.
- the wireless communication terminal 120 is configured to acquire the traffic volume, so that even if the cause of the collision is a hidden terminal problem, if the traffic volume is smaller than the traffic volume threshold, It is possible to control so as not to make a change. Further, the wireless communication terminal 120 has the above-described configuration, so that the transmission rate is increased by one when the cause of the collision is a hidden terminal problem and the traffic volume is equal to or greater than the traffic volume threshold. Is possible. As a result, if there is a high probability of successful re-transmission without increasing the transmission rate, the transmission rate is not changed. It is possible to control to perform. In other words, the wireless communication terminal 120 having the above-described configuration can ensure communication quality while suppressing redundant multirate control.
- a wireless communication terminal 130 that detects collision presence / absence information indicating the presence / absence of a collision and controls retransmission control based on the detected collision presence / absence information will be described.
- retransmission control refers to control in which the wireless module unit 11 performs transmission again to deliver the same data again when transmission fails.
- the wireless communication terminal 130 in the present embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision presence / absence detection unit 101, and a retransmission control unit 131 (transmission control unit). And have. Note that the configurations of the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, and the collision presence / absence detection unit 101 are the same as the configurations described in the above-described embodiments. Therefore, in the following, detailed description of each of the above components is omitted.
- the retransmission control unit 131 includes a CPU and a storage device (not shown), and the CPU executes a program stored in the storage device, thereby realizing functions to be described later.
- the wireless module unit 11 in the present embodiment has a function of performing retransmission control based on the control of the retransmission control unit 131 when transmission of a wireless frame signal by the wireless module unit 11 fails. That is, if the wireless module unit 11 in the present embodiment fails to transmit a radio frame signal, the wireless module unit 11 has failed to transmit until no transmission loss occurs by the predetermined maximum number of retransmission attempts. The same content will be transmitted.
- the collision presence / absence detection unit 101 acquires the collision presence / absence information and transmits the acquired collision presence / absence information to the retransmission control unit 131.
- the collision presence / absence detection unit 101 according to the present embodiment only transmits the collision presence / absence information without performing an interrupt to stop predetermined processing. .
- the retransmission control unit 131 has a function of controlling retransmission control by the wireless module unit 11 based on transmission loss information and collision presence / absence information. Further, the retransmission control unit 131 has a function of determining the maximum number of retransmission attempts and a function of increasing the range of the back-off time at the time of retransmission.
- the retransmission control unit 131 has a storage device such as a memory (not shown).
- the retransmission control unit 131 in this embodiment determines the maximum number of retransmission attempts.
- the maximum number of retransmission attempts is an arbitrary value such as 4 times.
- the retransmission control unit 131 stores the determined maximum number of retransmission attempts in a storage device included in the retransmission control unit 131.
- the retransmission control unit 131 in this embodiment performs control to perform retransmission control within a range that does not exceed the determined maximum number of retransmission attempts.
- the maximum number of retransmission attempts may be a value other than 4.
- the retransmission control unit 131 controls retransmission control by the wireless module unit 11 based on the transmission loss information and the collision presence / absence information. Specifically, the retransmission control unit 131 receives transmission loss information from the loss detection unit 12. Also, the retransmission control unit 131 receives the collision presence / absence information from the collision presence / absence detection unit 101. Then, the retransmission control 131 performs the retransmission control within a range not exceeding the predetermined maximum number of retransmission attempts when the transmission loss information is received and the collision presence / absence information indicating that a collision has occurred is received. The wireless module unit 11 is controlled to perform.
- the retransmission control unit 131 executes retransmission for a predetermined maximum number of retransmission attempts when transmission is successful, or when transmission collision information is received indicating that transmission loss information has been received but no collision has occurred. In such a case, the retransmission control is controlled to end. As described above, the retransmission control unit 131 in this embodiment performs retransmission control only when a transmission loss occurs and a collision occurs based on the transmission loss information and the collision presence / absence information. Control as follows.
- the retransmission control unit 131 is configured to increase the back-off time range at the time of retransmission and decrease the collision probability at the time of retransmission.
- the parameter CW for determining the back-off time is an integer determined within the range of the minimum value CW min and the maximum value CW max , and the CW range increases for each retransmission based on the following equation. Therefore, the retransmission control unit 131 calculates the value. That is, the retransmission control unit 131 increases the parameter CW for determining the back-off time in accordance with the number of retransmissions within a range not exceeding the maximum value CW max .
- CW (CW min +1) ⁇ 2 ⁇ ⁇ 1 ⁇ is the number of retransmissions and is a value of 0 or more.
- CW min and CW max are values uniquely determined for each IEEE 802.11 standard used by the wireless communication terminal.
- the retransmission control unit 131 in this embodiment has a function of controlling retransmission control by the wireless module unit 11 based on transmission loss information and collision presence / absence information.
- the above is the configuration of the wireless communication terminal 130 in the present embodiment. Next, an example of the operation of the wireless communication terminal 130 in this embodiment will be described.
- the retransmission control unit 131 determines the maximum number of retransmission attempts (S401). Subsequently, the wireless module unit 11 transmits a wireless frame signal (S402). Then, the frame detection unit 13 acquires the radio frame signal transmitted by the radio module unit 11 (S403).
- the radio frame signal collision is monitored.
- the operation for monitoring the collision is the same as that already described, and is therefore omitted.
- the loss detection unit 12 acquires transmission loss information (S404). Then, the loss detection unit 12 transmits the acquired transmission loss information to the retransmission control unit 131.
- the retransmission control unit 131 determines whether a transmission loss has occurred based on the transmission loss information received from the loss detection unit 12 (S405). If no transmission loss has occurred (S405, No), the retransmission control unit 131 determines that there is no need for retransmission control, and ends the subsequent processing. That is, in the above case, the retransmission control unit 131 again determines the maximum number of retransmission attempts and waits for transmission of a wireless frame signal by the wireless module unit 11. On the other hand, when a transmission loss has occurred (when transmission loss information has been received) (S405, Yes), the retransmission control unit 131 determines whether or not a collision has occurred based on the collision presence / absence information.
- S406 If no collision has occurred (S406, No), it is determined that retransmission control is not necessary, and the subsequent processing is terminated. On the other hand, if a collision has occurred (S406, Yes), the retransmission control unit 131 determines whether or not the number of retransmissions exceeds the maximum number of retransmission attempts (S407). If retransmission for the maximum number of retransmission attempts has already been performed (S407, Yes), the retransmission control unit 131 ends the subsequent processing.
- the retransmission control unit 131 controls the wireless module unit 11 to perform retransmission control (S408). In addition, the retransmission control unit 131 counts the number of retransmissions. Thereafter, the frame detection unit 13 acquires the radio frame signal again, and the loss detection unit 12 acquires the transmission loss information. Thereafter, the retransmission control unit 131 repeats the same operation as the above-described operation.
- the retransmission control unit 131 controls the retransmission control of the wireless module unit 11 based on the transmission loss information and the collision presence / absence information.
- the retransmission control unit 131 repeats the above operation every time the wireless module unit 11 tries to transmit a wireless frame signal.
- the wireless communication terminal 130 includes the loss detection unit 12, the frame detection unit 13, the collision presence / absence detection unit 101, and the retransmission control unit 131.
- the retransmission control unit 131 can control retransmission control based on transmission loss information and collision presence / absence information.
- the wireless communication terminal 130 includes the frame detection unit 13 and the collision presence / absence detection unit 101 so that retransmission control is not performed when a transmission loss occurs and no collision occurs. It is possible to control. Further, the wireless communication terminal 130 having the above-described configuration makes it possible to perform control so that retransmission control is performed when a transmission loss occurs and a collision occurs. As a result, it is possible to control not to perform retransmission control when there is a high probability of transmission failure due to attenuation again, and control to perform retransmission when there is a probability of success by performing retransmission. Become. That is, it is possible to ensure communication quality while suppressing unnecessary retransmission.
- the wireless communication terminal 140 includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision presence / absence detection unit 101, a collision cause detection unit 111, and retransmission control. Part 141.
- the configurations of the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, and the collision presence / absence detection unit 101 are the same as those described in the above embodiments.
- the configuration of the collision cause detection unit 111 is the same as that described in the ninth embodiment. Therefore, description of each said structure is demonstrated.
- the retransmission control unit 141 includes a CPU and a storage device (not shown), and realizes functions to be described later by causing the CPU to execute a program stored in the storage device.
- the retransmission control unit 141 has the same function as the retransmission control unit 131 described in the eleventh embodiment. That is, the retransmission control unit 141 has a function of controlling retransmission control by the wireless module unit 11, a function of determining the maximum number of retransmission attempts, a function of increasing a back-off time range during retransmission, and the like. Furthermore, the retransmission control unit 141 according to the present embodiment is configured to control the retransmission control in consideration of collision situation information.
- the retransmission control unit 141 receives transmission loss information and collision presence / absence information, and also receives collision state information from the collision cause detection unit 111. Then, the retransmission control unit 141 according to the present embodiment controls the retransmission control in consideration of the cause of the collision indicated by the collision status information when a transmission loss has occurred and a collision has occurred. Specifically, the retransmission control unit 141 is configured not to perform retransmission control when the cause of collision is a hidden terminal problem. Therefore, the retransmission control unit 141 performs retransmission control when a transmission loss occurs, a collision occurs, and the cause of the collision is not a hidden terminal problem (for example, when the back-off times match). Will be controlled.
- the retransmission control unit 141 determines the maximum number of retransmission attempts (S401). Subsequently, the wireless module unit 11 transmits a wireless frame signal (S402). Then, the frame detection unit 13 acquires the radio frame signal transmitted by the radio module unit 11 (S403). Further, the loss detection unit 12 acquires transmission loss information (S404). Thereafter, the transmission loss information and the collision presence / absence information are transmitted to the retransmission control unit 141.
- the collision cause detection unit 111 detects the cause of the collision and transmits the collision status information to the retransmission control unit 141. With such an operation, the transmission loss information, the collision presence / absence information, and the collision status information are transmitted to the retransmission control unit 141.
- the retransmission control unit 141 determines whether a transmission loss has occurred based on the transmission loss information received from the loss detection unit 12 (S405). If no transmission loss has occurred (S405, No), the retransmission control unit 141 determines that there is no need for retransmission control, and ends the subsequent processing. On the other hand, if a transmission loss has occurred (S405, Yes), the retransmission control unit 141 determines whether or not a collision has occurred based on the collision presence / absence information (S406). If no collision has occurred (S406, No), it is determined that retransmission control is not necessary, and the subsequent processing is terminated.
- the retransmission control unit 141 analyzes the cause of the collision based on the collision status information (S411). If the cause of the collision is a hidden terminal problem (S412, Yes), the retransmission control unit 141 determines that there is no need for retransmission control, and ends the subsequent processing. On the other hand, when the cause of the collision is not a hidden terminal problem (when the back-off time coincides) (No in S412), the retransmission control unit 141 determines whether or not the number of retransmissions exceeds the maximum number of retransmission attempts. A determination is made (S407). Since the subsequent processing is the same as that already described, the description thereof is omitted.
- the wireless communication terminal 140 includes the collision cause detection unit 111 and the retransmission control unit 141. With such a configuration, the wireless communication terminal 140 can control retransmission control in consideration of collision situation information.
- the retransmission control unit 141 is configured to increase the back-off time range and reduce the collision probability during retransmission when performing retransmission. Therefore, when the cause of the collision is the coincidence of the back-off time, it is considered that the probability of successful transmission at the time of retransmission is increased. On the other hand, if the cause of the collision is a hidden terminal problem, the probability of collision does not depend on the back-off time, so even if retransmission is performed, the probability of collision again does not change and may result in wasted retransmission It is thought that there is.
- the wireless communication terminal 140 includes the collision cause detection unit 111, so that the probability of successful transmission by retransmission increases, and the retransmission control is performed when the cause of collision is coincident with the back-off time. It is possible to control. Further, the wireless communication terminal 140 can be controlled so as not to perform retransmission control when the cause of collision is a hidden terminal problem, which may cause unnecessary transmission without changing the probability of collision by having the above configuration. And As a result, it is possible to perform control so that retransmission control is performed only when the probability of successful transmission is increased by retransmission. That is, it is possible to ensure higher communication quality without performing redundant control.
- the wireless communication terminal 150 in this embodiment has the same configuration as the wireless communication terminal 140 in the twelfth embodiment. Therefore, the detailed description about each structure is abbreviate
- the wireless communication terminal 150 in the present embodiment is configured to be able to acquire the traffic amount, similarly to the wireless communication terminal 120 described in the tenth embodiment. Acquisition of the traffic amount can be realized by using the wireless module unit 11, for example. Specifically, for example, it is possible to obtain the amount of traffic by monitoring how much the channel is congested by using carrier sense by the wireless module unit 11. In addition, for example, it is possible to obtain the traffic amount by monitoring the signal power using the frame detection unit 13.
- the wireless communication terminal 150 may be configured to acquire the traffic amount by a method other than the above.
- the storage device included in the retransmission control unit 141 in the present embodiment is configured to store a traffic amount threshold value.
- the traffic amount threshold value is the same as that already described in the tenth embodiment, and a detailed description thereof will be omitted.
- the retransmission control unit 141 determines whether or not the acquired surrounding traffic amount is equal to or greater than a traffic amount threshold value.
- the traffic volume is equal to or greater than the traffic volume threshold, the retransmission control unit 141 determines that retransmission control is not necessary, and ends the subsequent processing.
- the traffic volume is smaller than the traffic volume threshold, the retransmission control unit 141 determines whether retransmission for the maximum number of retransmission attempts has already been performed. Thereafter, the retransmission control unit 141 controls the wireless module unit 11 to perform retransmission control according to the number of retransmissions.
- the retransmission control unit 141 in the present embodiment is within a range in which the number of retransmissions does not exceed the maximum number of retransmission attempts when the traffic volume is smaller than the traffic volume threshold. It is configured to control to perform retransmission control.
- the retransmission control unit 141 in the present embodiment is configured to control retransmission control based on transmission loss information, collision presence / absence information, collision status information, and traffic volume.
- FIG. 42 is an example of the operation of the wireless communication terminal 150 in the present embodiment.
- the wireless communication terminal 120 acquires the amount of surrounding traffic (S421) when the wireless module unit 11 transmits a wireless frame signal (S402). Then, the acquired traffic amount is transmitted to the retransmission control unit 141.
- the retransmission control unit 141 determines whether the traffic volume acquired by the above operation is equal to or greater than a traffic volume threshold (S422). ). Then, when the traffic volume is equal to or greater than the traffic volume threshold (S422, Yes), the retransmission control unit 141 determines that the retransmission control is not necessary and ends the subsequent processing. On the other hand, when the traffic volume is smaller than the traffic volume threshold (No in S422), the retransmission control unit 141 determines whether or not the number of retransmissions exceeds the maximum number of retransmission attempts (S407). Since the subsequent processing is the same as that already described, the description thereof is omitted.
- the wireless communication terminal 150 in the present embodiment is configured to acquire the traffic volume. With such a configuration, the wireless communication terminal 150 can control retransmission control in consideration of the traffic amount.
- the wireless communication terminal 150 in the present embodiment to acquire the traffic volume, even if a collision occurs due to the hidden terminal problem, if the traffic volume is smaller than the traffic volume threshold, It is possible to perform control so that retransmission control is performed within a range not exceeding the maximum number of retransmission attempts. Further, the wireless communication terminal 150 has the above configuration, and performs control so that retransmission control is not performed when a collision occurs due to the hidden terminal problem and the traffic volume is equal to or greater than the traffic volume threshold. Is possible. As a result, even if the probability of successful transmission due to retransmission has not increased, it is possible to control to perform retransmission control when it is determined that the probability of successful transmission is high by performing retransmission. In other words, the wireless communication terminal 150 having the above-described configuration can ensure communication quality while suppressing redundant control.
- Multi-rate retry refers to an algorithm that combines multi-rate control and retransmission control. That is, under the multi-rate retry control, when retransmission for the maximum number of retransmission attempts fails, retransmission is attempted in a state where communication is easier by lowering the transmission rate.
- Multi-rate retry is an algorithm that repeats such operations to perform retransmission and rate control.
- the wireless communication terminal 160 in the present embodiment includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision presence / absence detection unit 101, and a multi-rate retry control unit 161 (transmission control). Part).
- the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, and the collision presence / absence detection unit 101 have the same configurations as those described in the above embodiments. Therefore, in the following, detailed description of each of the above components is omitted.
- the multi-rate retry control unit 161 includes a CPU and a storage device (not shown), and the CPU executes a program stored in the storage device, thereby realizing functions to be described later.
- the wireless module unit 11 is configured to transmit a wireless frame signal using any one of a plurality of transmission rates. Further, the wireless module unit 11 is configured to perform retransmission control based on the control of the multi-rate retry control unit 161 when transmission of a wireless frame signal by the wireless module unit 11 fails. With this configuration, the wireless module unit 11 according to the present embodiment performs retransmission while lowering the transmission rate until retransmission is successful.
- FIG. 44 shows an example of a multi-rate retry algorithm.
- the wireless module unit 11 transmits (retransmits) a wireless frame signal using any one of the transmission rates shown in FIG. 44 based on the control by the multi-rate retry control unit 161. It will be. Specifically, if the wireless module unit 11 in the present embodiment fails to retransmit the maximum number of retransmission attempts previously associated with each transmission rate, the wireless module unit 11 attempts to retransmit by reducing the transmission rate by one. For example, when the wireless module unit 11 fails to retransmit three times at the transmission rate of 48 Mbps shown in FIG.
- the wireless module unit 11 controls the multi-rate retry control unit 161 to perform the next retransmission at the transmission rate of 36 Mbps. Will be. After that, when the wireless module unit 11 fails to retransmit three times at a transmission rate of 36 Mbps, the wireless module unit 11 is controlled by the multi-rate retry control unit 161 to perform the next retransmission at a transmission rate of 24 Mbps. It will be.
- the multi-rate retry control unit 161 has a function of controlling multi-rate retry by the wireless module unit 11 based on transmission loss information and collision presence / absence information. Further, the multi-rate retry control unit 161 has a function of determining a transmission rate to be used and the maximum number of retransmission attempts for each rate, a function of increasing a range of back-off time at the time of retransmission, and the like. Furthermore, the multi-rate retry control unit 161 has a storage device such as a memory (not shown).
- the multi-rate retry control unit 161 in the present embodiment determines the transmission rate used for retransmission and the maximum number of retransmission attempts for each rate.
- the transmission rate is a value such as 54 Mbps, 24 Mbps, or 1 Mbps
- the maximum number of retransmission attempts is an arbitrary value such as 4.
- the multi-rate retry control unit 161 stores the determined transmission rate and the maximum number of retransmission attempts in a storage device included in the multi-rate retry control unit 161.
- the multi-rate retry control unit 161 controls to perform retransmission again after changing to the next lower transmission rate when retransmission fails for the determined maximum number of retransmission attempts. .
- the transmission rate determined by the multi-rate retry control unit 161 may be other than that exemplified above.
- the maximum number of retransmission attempts determined by the multi-rate retry control unit 161 may be a value other than 4. Further, the maximum number of retransmission attempts may be a different value for each transmission rate.
- the multi-rate retry control unit 161 controls multi-rate retry by the wireless module unit 11 based on the transmission loss information and the collision presence / absence information. Specifically, the multi-rate retry control unit 161 receives transmission loss information from the loss detection unit 12. Further, the multi-rate retry control unit 161 receives collision presence / absence information from the collision presence / absence detection unit 101. Then, the multi-rate retry control unit 161 receives the transmission loss information, receives the collision presence / absence information indicating that a collision has occurred, and retransmits the predetermined maximum number of retransmission attempts. If not, the wireless module unit 11 is controlled to perform retransmission control.
- the multirate control unit 161 changes the transmission rate to the next transmission rate (one lower transmission rate) when the retransmission for the maximum number of retransmission attempts has already been performed at the currently used transmission rate.
- the wireless module unit 11 is controlled to perform retransmission control again.
- the multi-rate retry control unit 161 ends the process and does not control the retransmission control.
- the multi-rate retry control unit 161 in the present embodiment is configured to control multi-rate retry based on the transmission loss information and the collision presence / absence information.
- FIG. 45 is an example of the operation of the wireless communication terminal 160 in the present embodiment.
- the multi-rate retry control unit 161 of the wireless communication terminal 160 first determines a multi-rate retry table that is a collection of transmission rates used for retransmission (S501).
- the multi-rate retry control unit 161 determines the maximum number of retransmission attempts for each rate (S502).
- the multi-rate retry control unit 161 sets a transmission rate when the wireless module unit 11 first transmits a wireless frame signal using the multi-rate retry table (S503).
- the multi-rate retry control unit 161 sets the largest transmission rate (for example, R 1 shown in FIG. 44) in the multi-rate retry table as the transmission rate when the radio frame signal is first transmitted. To do. Thereafter, the wireless module unit 11 transmits a wireless frame signal (S504).
- the frame detection unit 13 acquires the radio frame signal transmitted by the radio module unit 11 (S505). Thereby, the radio transmission terminal 160 monitors the collision of radio frame signals.
- the operation for monitoring the collision is the same as that already described, and is therefore omitted.
- the loss detection unit 12 acquires transmission loss information (S506). Then, the loss detection unit 12 transmits the acquired transmission loss information to the multi-rate retry control unit 161.
- the multi-rate retry control unit 161 determines whether a transmission loss has occurred based on the transmission loss information received from the loss detection unit 12 (S507). If no transmission loss has occurred (S507, No), the multi-rate retry control unit 161 determines that control is not necessary and ends the subsequent processing. On the other hand, when a transmission loss has occurred (when transmission loss information has been received) (S507, Yes), the multi-rate retry control unit 161 determines whether or not a collision has occurred based on the collision presence / absence information. A determination is made (S508). If no collision has occurred (S508, No), the multi-rate retry control unit 161 checks whether there is a next settable rate (S510).
- the multi-rate retry control unit 161 When there is a settable rate (S510, Yes), the multi-rate retry control unit 161 changes the transmission rate to the next rate (lowers the transmission rate by one) (S511) and performs retransmission control. Thus, the wireless module unit 11 is controlled (S512). On the other hand, when there is no settable rate, the multi-rate retry control unit 161 interrupts the subsequent processing. If a collision has occurred (S508, Yes), the multi-rate retry control unit 161 determines whether or not retransmission for the maximum number of retransmission attempts has already been performed (S509).
- the wireless module unit 11 is controlled to perform retransmission control at the same transmission rate (S512).
- the multi-rate retry control unit 161 checks whether there is a next settable rate (S510). If there is a rate that can be set (S510, Yes), the multi-rate retry control unit 161 changes the transmission rate to the next rate (S511) and then performs retransmission control to the wireless module unit 11. Control is performed (S512). On the other hand, when there is no settable rate, the subsequent processing is interrupted.
- the multi-rate retry control unit 161 When control is performed on the wireless module unit 11 to perform retransmission control (S512), the multi-rate retry control unit 161 obtains a wireless frame signal again by the frame detection unit 13, and detects loss. The transmission loss information is acquired by the unit 12. Thereafter, the multi-rate retry control unit 161 repeats the same operation as that described above.
- the multi-rate retry control unit 161 controls multi-rate retry based on the transmission loss information and the collision presence / absence information.
- the wireless communication terminal 130 includes the loss detection unit 12, the frame detection unit 13, the collision presence / absence detection unit 101, and the multi-rate retry control unit 161.
- the multi-rate retry control unit 161 can control multi-rate retry based on the transmission loss information and the collision presence / absence information.
- the wireless communication terminal 160 includes the frame detection unit 13 and the collision presence / absence detection unit 101, so that when the transmission loss occurs and no collision occurs, the maximum retransmission attempt is performed.
- the transmission rate can be controlled (decreased) without waiting for the number of retransmissions. As a result, it is possible to reduce the transmission rate when transmission loss occurs due to attenuation, and it is possible to reduce the possibility of transmission loss due to attenuation. That is, it is possible to ensure communication quality while suppressing unnecessary retransmission.
- the transmission rate used for transmission of the next radio frame signal upon successful retransmission is always started from R 1 shown in FIG. 44 (always start from the same transmission rate). Will be). This is because it was not known whether the cause of the transmission failure was attenuation or frame collision.
- the radio communication terminal 160 in the present embodiment can be configured to use the transmission rate selected when retransmission is completed as the initial transmission rate at the next transmission of the radio frame signal. With this configuration, transmission of the next radio frame signal after completion of retransmission can be started using a transmission rate that is easy to connect to when transmission is successful. As a result, it is possible to suppress the possibility of transmission loss occurring at the next transmission.
- the wireless communication terminal 170 includes a wireless module unit 11, a loss detection unit 12, a frame detection unit 13, a collision presence / absence detection unit 101, a collision cause detection unit 111, a multi-rate.
- the configurations of the wireless module unit 11, the loss detection unit 12, the frame detection unit 13, the collision presence / absence detection unit 101, and the collision cause detection unit 111 are the same as those described in the above embodiments. is there. Therefore, a detailed description of each of the above configurations will be described.
- the multi-rate retry control unit 171 has a CPU and a storage device (not shown), and realizes functions to be described later by executing a program stored in the storage device by the CPU.
- the multi-rate retry control unit 171 has the same function as the multi-rate retry control unit 161 described in the fourteenth embodiment. Furthermore, the multi-rate retry control unit 171 according to the present embodiment is configured to control multi-rate retry in consideration of collision situation information.
- the multi-rate retry control unit 171 includes a hidden terminal problem collision counter unit and a storage device such as a memory that stores a threshold for the hidden terminal problem collision counter unit. Note that the hidden terminal problem collision counter unit and the threshold for the hidden terminal problem collision counter unit are the same as those already described, and a description thereof will be omitted.
- the multi-rate retry control unit 171 receives transmission loss information and collision presence / absence information, and also receives collision state information from the collision cause detection unit 111. Then, the multi-rate retry control unit 171 according to the present embodiment controls the retransmission control in consideration of the cause of the collision indicated by the collision status information when a transmission loss has occurred and a collision has occurred. . Specifically, the multi-rate retry control unit 171 has a transmission loss and collision, has not retransmitted the maximum number of retransmission attempts, and the cause of the collision is a hidden terminal problem. A process of adding 1 to the hidden terminal problem collision counter is performed.
- the multi-rate retry control unit 171 controls the wireless module unit 11 to perform retransmission control after the above addition process.
- the multi-rate retry control unit 171 performs a counting process when a transmission loss and a collision occur, the retransmission is not performed for the maximum number of retransmission attempts, and the cause of the collision is not a hidden terminal problem.
- the wireless module unit 11 is controlled so as to perform retransmission control without performing it.
- the multi-rate retry control unit 171 performs retransmission for the maximum number of retransmission attempts, is the hidden terminal problem collision counter counted by the hidden terminal problem collision counter unit greater than or equal to the threshold for the hidden terminal problem collision counter? Make a decision. Then, when the hidden terminal problem collision counter is greater than or equal to the threshold for the hidden terminal problem collision counter, the multi-rate retry control unit 171 checks whether there is a settable transmission rate and then increases the transmission rate by one. Control to do. Thereafter, the multi-rate retry control unit 171 clears the hidden terminal problem collision counter.
- the multi-rate retry control unit 171 performs control so that the rate is lowered by one. Then, the multi-rate retry control unit 171 clears the hidden terminal problem collision counter.
- the multi-rate retry control unit 171 in the present embodiment retransmits after increasing the transmission rate by one. It is configured to control the control.
- the operation of the wireless communication terminal 170 is the wireless communication described in the fourteenth embodiment. The operation is the same as that of the communication terminal 160. Therefore, explanation is omitted.
- the multi-rate retry control unit 171 analyzes the cause of the collision based on the collision status information when the retransmission of the maximum number of retransmission attempts has not been performed (S531). If the cause of the collision is a hidden terminal problem (S532, hidden terminal problem), the multi-rate retry control unit 171 increments the hidden terminal problem collision counter by 1 (S533). Thereafter, the multi-rate retry control unit 171 controls the wireless module unit 11 to perform retransmission control (S512). On the other hand, if the cause of the collision is not a hidden terminal problem (when the back-off time is coincident) (S532, coincidence of the back-off time), the multi-rate retry control unit 171 performs retransmission control without counting anything.
- the wireless module unit 11 is controlled (S512).
- the multi-rate retry control unit 171 in this embodiment has a transmission loss and collision, has not performed retransmission for the maximum number of retransmission attempts, and the cause of the collision is a hidden terminal problem.
- the hidden terminal problem collision counter counted by the hidden terminal problem collision counter unit is incremented by one. Then, the multi-rate retry control unit 171 controls the wireless module unit 11 to perform retransmission control.
- retransmission control is performed without counting anything.
- the wireless module unit 11 is controlled to perform.
- the multi-rate retry control unit 171 determines whether or not the hidden terminal problem collision counter is equal to or greater than the hidden terminal problem collision counter threshold (S534). When the hidden terminal problem collision counter is equal to or greater than the hidden terminal problem collision counter threshold value, the multi-rate retry control unit 171 determines whether or not there is a next (one higher) rate that can be set ( S535). When there is a settable rate (S535, Yes), the multi-rate retry control unit 171 controls the wireless module unit 11 to perform retransmission control after changing the transmission rate to one higher (S536). This is performed (S512).
- the wireless communication terminal 170 includes the collision cause detection unit 111 and the multi-rate retry control unit 171. With such a configuration, the wireless communication terminal 170 can control multi-rate retry in consideration of collision state information.
- the cause of the collision is a hidden terminal problem
- the probability of successful transmission at the time of retransmission can be increased.
- the cause of the collision is the coincidence of the back-off time, even if the transmission rate is changed to change the time taken to transmit one frame, it is considered that there is no particular change in the probability that the collision will occur.
- the wireless communication terminal 170 includes the collision cause detection unit 111 and the multi-rate retry control unit 171, so that retransmission control is performed after increasing the transmission rate when there are many hidden terminal problems as the cause of the collision. It is possible to perform. As a result, it is possible to shorten the time taken to transmit one frame, and it is possible to reduce the probability that a transmission loss will occur due to a collision. That is, the wireless communication terminal 170 according to the present embodiment has the above-described configuration, so that higher communication quality can be ensured without performing redundant control.
- control unit 171 may be configured to stop the subsequent processing.
- the collision cause detection unit 111 can be configured to detect the coincidence of the back-off time, the hidden terminal problem 1 and the hidden terminal problem 2 as the cause of the collision. Further, the multi-rate retry control unit 171 may be configured to perform the process by distinguishing the hidden terminal problem 1 and the hidden terminal problem 2 according to the configuration of the collision cause detecting unit 111.
- the wireless communication terminal 170 may be configured to use the transmission rate selected at the completion of retransmission as the initial transmission rate at the next transmission of the wireless frame signal.
- the wireless communication terminal 180 in this embodiment has the same configuration as the wireless communication terminal 170 in the fifteenth embodiment. Therefore, the detailed description about each structure is abbreviate
- the wireless communication terminal 180 in the present embodiment is configured to be able to acquire the traffic amount, similarly to the wireless communication terminal 120 and the wireless communication terminal 150.
- the storage device included in the multi-rate retry control unit 171 in the present embodiment is configured to store a traffic amount threshold value. Note that the configuration for acquiring the traffic volume and the traffic volume threshold are the same as those already described, and a detailed description thereof will be omitted.
- the multi-rate retry control unit 171 in the present embodiment determines whether or not the acquired surrounding traffic amount is equal to or greater than the traffic amount threshold value. Then, the multi-rate retry control unit 171 in the present embodiment tries to perform processing for increasing the transmission date when the traffic volume is equal to or greater than the traffic volume threshold. On the other hand, when the traffic volume is smaller than the traffic volume threshold, the multi-rate retry control unit 171 controls the retransmission control without performing the rate control.
- the retransmission control unit 171 is configured to control multi-rate retry based on the transmission loss information, the collision presence / absence information, the collision status information, and the traffic volume.
- FIG. 51 is an example of the operation of the wireless communication terminal 180 in the present embodiment.
- the radio communication terminal 180 determines the amount of surrounding traffic when the frame detection unit 13 acquires a radio frame signal (S505) or when the loss detection unit 12 acquires transmission loss information (S506). Obtain (S551). Then, the acquired traffic amount is transmitted to the multi-rate retry control unit 171.
- the timing which acquires traffic amount is not limited to the said case.
- the multi-rate retry control unit 171 in this embodiment determines whether or not the traffic volume acquired by the above operation is equal to or greater than the traffic volume threshold when counting the hidden terminal problem collision counter (S533) ( S552). Then, when the traffic amount is equal to or greater than the traffic amount threshold (S552, Yes), the multi-rate retry control unit 171 performs control to increase the transmission rate (S535, S536). On the other hand, when the traffic volume is smaller than the traffic volume threshold (S552, No), the retransmission control is controlled without changing the rate (S512).
- the wireless communication terminal 150 in the present embodiment is configured to acquire the traffic volume. With such a configuration, the wireless communication terminal 150 can control multi-rate retry in consideration of the amount of traffic.
- the cause of the collision is a hidden terminal problem in an environment where traffic is congested, it is highly likely that the collision will occur again even if retransmission is performed.
- the collision may not occur even if the retransmission is performed in an environment where the traffic is not congested. It is thought that there is.
- the wireless communication terminal 180 is configured to acquire the traffic volume, so that when the cause of collision is a hidden terminal problem and the traffic volume is smaller than the traffic volume threshold, the transmission rate remains unchanged. This makes it possible to control retransmission control. Further, the wireless communication terminal 180 is configured to acquire the traffic amount as described above, so that when the cause of collision is a hidden terminal problem and the traffic amount is equal to or greater than the traffic amount threshold, the transmission rate is increased. In addition, it is possible to control retransmission control. As a result, if there is a high probability of successful re-transmission without increasing the transmission rate, the transmission rate is not changed. It is possible to control to perform. In other words, the wireless communication terminal 180 having the above-described configuration can ensure communication quality while suppressing redundant control.
- the detection pattern detected by the frame detection unit 13 when a collision occurs it can be classified into 11 types of collision patterns shown in FIG.
- the collision patterns detected by the frame detection unit 13 can be classified into patterns other than eleven types.
- the collision patterns detected by the frame detection unit 13 can be classified into 27 types of collision patterns.
- the collision pattern that is determined to be the hidden terminal problem 1 shown in FIG. 5J is a total of 9 depending on the power, the transmission data amount, the transmission rate, and the like. It is possible to classify into different types of collision patterns.
- the collision patterns to be determined as the hidden terminal problem 2 shown in FIG. 5K are classified into a total of nine types of collision patterns based on power, transmission data amount, transmission rate, and the like. It is possible.
- (J) and (K) in FIG. 5 can be classified into a total of nine types of collision patterns, depending on power, transmission data amount, transmission rate, and the like. Therefore, the collision patterns detected by the frame detection unit 13 can be classified into 27 types of collision patterns together with the collision patterns shown in FIGS.
- the collision patterns detected by the frame detection unit 13 are not limited to eleven types.
- the collision patterns detected by the frame detection unit 13 can be classified into 27 types of collision patterns, for example. Further, as shown in the first embodiment, the eleven types of collision patterns can be classified into three main types of collision situations. This is the same when classified into 27 types of collision patterns.
- the collision patterns detected by the frame detection unit 13 can be classified into 11 types, 27 types, and 3 types, for example.
- the collision pattern detected by the frame detection unit 13 may be classified into other types of collision patterns.
- a wireless communication terminal 190 that detects collision information indicating a state of collision of radio frame signals and controls transmission processing based on the detected collision information will be described.
- an outline of the configuration of the wireless communication terminal 190 will be described.
- the wireless communication terminal 190 includes a wireless module unit 191, a transmission loss detection unit 192, a collision information detection unit 193, and a transmission control unit 194.
- the wireless module unit 191 has a function of transmitting a wireless frame signal.
- the transmission loss detection unit 192 has a function of detecting transmission loss information indicating whether or not the radio frame signal transmitted by the radio module unit has reached the transmission destination.
- the collision information detection unit 193 has a function of detecting collision information indicating a state of collision between a radio frame signal transmitted by the radio module unit and another radio frame signal.
- the transmission control unit 194 has a function of controlling transmission processing by the wireless module unit 191 based on transmission loss information and collision information.
- the wireless communication terminal 190 in the present embodiment includes the wireless module unit 191, the transmission loss information detection unit 192, the collision information detection unit 193, and the transmission control unit 194.
- the wireless communication terminal 190 controls transmission processing by the wireless module unit 191 based on the transmission loss information detected by the transmission loss information detection unit 192 and the collision information detected by the collision information detection unit 193. It becomes possible.
- the wireless communication terminal 190 can ensure communication quality while suppressing redundant control that is not processing according to the cause of communication quality degradation.
- a program according to another aspect of the present invention indicates to a wireless communication terminal a wireless module unit that transmits a wireless frame signal and whether or not the wireless frame signal transmitted by the wireless module unit has reached a transmission destination.
- the wireless communication method executed by the operation of the wireless communication terminal 190 described above includes transmission loss information indicating whether the transmitted wireless frame signal has reached the transmission destination, the wireless frame signal, and another wireless frame signal. And collision information indicating the state of the collision with the transmission, and the transmission processing is controlled based on the detected transmission loss information and the collision information.
- the above-described object of the present invention can be achieved because of having the same operation as the wireless communication terminal 190.
- a wireless module for transmitting a wireless frame signal;
- a frame detection unit for detecting the power of a spatial radio signal on the same channel as the radio frame signal transmitted by the radio module unit; Based on the detection result detected by the frame detection unit, a predetermined collision situation between the radio frame signal transmitted by the radio module unit and another radio frame signal is detected, and according to the detected predetermined collision situation
- a collision suppression control unit for changing parameters;
- a wireless communication terminal A wireless communication terminal.
- the wireless communication terminal according to attachment 2 wherein The collision suppression control unit detects, as the collision state, a simultaneous transmission collision occurrence state in which a collision has occurred by simultaneously transmitting the radio frame signal and another radio frame signal by the radio module unit, and Change the backoff time parameter that is a randomly selected transmission waiting time, which is a parameter according to the transmission collision occurrence situation, Wireless communication terminal.
- the wireless communication terminal according to attachment 2 or 3 The wireless communication terminal according to attachment 2 or 3, The collision suppression control unit detects a transmission collision occurrence state during transmission in which a collision has occurred due to transmission of another radio frame signal during transmission of the radio frame signal, and the transmission collision occurrence during transmission occurs. Change the carrier sense parameter used when checking the channel availability, which is a parameter according to the situation. Wireless communication terminal.
- the wireless communication terminal according to attachment 4 wherein The collision suppression control unit detects, as the collision state, a post-transmission transmission collision occurrence state in which a collision has occurred due to transmission of the wireless frame signal by the wireless module unit during transmission of the other wireless frame signal. , Change the carrier sense sensing range parameter, which is a sensing range of carrier sense, which is a parameter according to the transmission collision occurrence situation after transmission, Wireless communication terminal.
- the wireless communication terminal according to any one of appendices 1 to 4, A loss detection unit that detects whether or not the radio frame signal transmitted by the radio module unit has reached a transmission destination, and detects a transmission loss rate that is a probability that the radio frame signal has not reached the transmission destination; The collision suppression control unit changes the parameter when the transmission loss rate detected by the loss detection unit exceeds a transmission loss rate threshold that is a predetermined threshold. Wireless communication terminal.
- the wireless communication terminal according to any one of appendices 1 to 5,
- the collision suppression control unit calculates a collision rate based on the number of wireless communications performed by the module unit and the detected number of collisions, and the calculated collision rate is a predetermined threshold value for a collision rate. If the wireless module unit changes the transmission power parameter, which is a parameter for transmitting the wireless frame signal, and the collision rate exceeds the collision rate threshold, a collision occurs. Change the parameter according to the predetermined collision situation. Wireless communication terminal.
- the wireless communication terminal according to any one of appendices 1 to 6, It has a channel transition part that performs channel transition,
- the collision suppression control unit calculates a collision rate based on the number of wireless communications performed by the module unit and the detected number of collisions, and other wireless communication terminals existing in the vicinity based on the calculated collision rate Configured to make an estimate of the number of
- the channel transition unit determines to perform channel transition based on the number of other wireless communication terminals estimated by the collision suppression control unit and a predetermined threshold for transition, Wireless communication terminal.
- Wireless communication terminal A wireless module for transmitting a wireless frame signal; A frame detection unit for detecting the power of a spatial radio signal on the same channel as the radio frame signal transmitted by the radio module unit; Based on the detection result detected by the frame detection unit, a predetermined collision situation between the radio frame signal transmitted by the radio module unit and another radio frame signal is detected, and according to the detected predetermined collision situation A collision suppression control unit for changing parameters; A program to realize
- a wireless module for transmitting a wireless frame signal;
- a frame detection unit for detecting the power of a spatial radio signal on the same channel as the radio frame signal transmitted by the radio module unit; Based on the detection result detected by the frame detector, a collision between the radio frame signal transmitted by the radio module unit and another radio frame signal is detected, and a parameter is changed according to the detected collision.
- a suppression control unit A wireless communication terminal.
- a wireless module for transmitting a wireless frame signal;
- a transmission loss information detection unit for detecting transmission loss information indicating whether or not the radio frame signal transmitted by the radio module unit has reached a transmission destination;
- a collision information detection unit for detecting collision information indicating a state of collision between the radio frame signal transmitted by the radio module unit and another radio frame signal; Based on the transmission loss information and the collision information, a transmission control unit that controls transmission processing by the wireless module unit, A wireless communication terminal.
- the wireless communication terminal according to attachment 12 wherein The collision information detection unit is configured to detect the collision information including collision presence / absence information indicating presence / absence of a collision between the radio frame signal transmitted by the radio module unit and another radio frame signal, The transmission control unit controls transmission processing by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- Wireless communication terminal The wireless communication terminal according to attachment 12, wherein The collision information detection unit is configured to detect the collision information including collision presence / absence information indicating presence / absence of a collision between the radio frame signal transmitted by the radio module unit and another radio frame signal.
- the transmission control unit controls transmission processing by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- the wireless communication terminal according to attachment 13 or 14 The wireless module unit is configured to perform retransmission processing to transmit a wireless frame signal having the same content again according to the control of the transmission control unit, The transmission control unit controls the retransmission processing performed by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- Wireless communication terminal The wireless communication terminal according to attachment 13 or 14, The wireless module unit is configured to perform retransmission processing to transmit a wireless frame signal having the same content again according to the control of the transmission control unit, The transmission control unit controls the retransmission processing performed by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- the wireless communication terminal according to any one of appendices 13 to 15-1,
- the wireless module unit is configured to perform a multi-rate retry process that lowers a transmission rate and performs a retransmission process again when a predetermined number of retransmission processes fail according to the control of the transmission control unit,
- the transmission control unit controls the multi-rate retry process performed by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- Wireless communication terminal is configured to perform a multi-rate retry process that lowers a transmission rate and performs a retransmission process again when a predetermined number of retransmission processes fail according to the control of the transmission control unit.
- the transmission control unit controls the multi-rate retry process performed by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information.
- the wireless communication terminal according to any one of appendices 12 to 15,
- the collision information detection unit is configured to detect the collision information including collision situation information indicating a collision situation between the radio frame signal and another radio frame signal,
- the transmission control unit controls transmission processing by the wireless module unit based on the transmission loss information and the collision information including the collision status information.
- Wireless communication terminal The wireless communication terminal according to any one of appendices 12 to 15,
- the collision information detection unit is configured to detect the collision information including collision situation information indicating a collision situation between the radio frame signal and another radio frame signal,
- the transmission control unit controls transmission processing by the wireless module unit based on the transmission loss information and the collision information including the collision status information.
- the wireless communication terminal according to attachment 16 wherein The wireless module unit is configured to transmit the wireless frame signal using any one of a plurality of transmission rates, The transmission control unit is configured to transmit a transmission collision during transmission in which the collision occurs and a collision occurs when another radio frame signal is transmitted during transmission of a radio frame signal. If the situation is occurring, change the transmission rate to a high rate. Wireless communication terminal.
- the transmission control unit is configured to transmit a transmission collision during transmission in which the collision occurs and a collision occurs when another radio frame signal is transmitted during transmission of a radio frame signal.
- control so that the wireless module unit performs the retransmission processing, Wireless communication terminal.
- the wireless communication terminal according to any one of appendices 12 to 16,
- the transmission control unit is configured to acquire a traffic amount that is an amount of data flowing on a channel, and controls transmission processing by the wireless module unit in consideration of the acquired traffic amount; Wireless communication terminal.
- the wireless communication terminal according to any one of appendices 12 to 17,
- the collision detection unit is configured to detect the collision information including collision situation information indicating a collision situation between the radio frame signal and another radio frame signal;
- the transmission control unit controls a parameter according to the collision situation used when the wireless module unit performs transmission processing based on the transmission loss information and the collision information including the collision situation information.
- Wireless communication terminal The wireless communication terminal according to any one of appendices 12 to 17,
- the collision detection unit is configured to detect the collision information including collision situation information indicating a collision situation between the radio frame signal and another radio frame signal;
- the transmission control unit controls a parameter according to the collision situation used when the wireless module unit performs transmission processing based on the transmission loss information and the collision information including the collision situation information.
- the wireless communication terminal according to appendix 18 or 19,
- the collision information detection unit detects a transmission collision occurrence state during transmission in which a collision has occurred by transmitting another radio frame signal during transmission of a radio frame signal as a collision situation indicated by the collision situation information,
- the transmission control unit controls a carrier sense parameter used when checking a channel availability state, which is a parameter according to the transmission collision occurrence state during transmission.
- Wireless communication terminal The wireless communication terminal according to appendix 18 or 19,
- the collision information detection unit detects a transmission collision occurrence state during transmission in which a collision has occurred by transmitting another radio frame signal during transmission of a radio frame signal as a collision situation indicated by the collision situation information
- the transmission control unit controls a carrier sense parameter used when checking a channel availability state, which is a parameter according to the transmission collision occurrence state during transmission.
- Wireless communication terminal is a parameter according to the transmission collision occurrence state during transmission.
- the wireless communication terminal according to any one of appendices 18 to 20,
- the transmission loss information detection unit is configured to calculate a transmission loss rate that is a probability that the radio frame signal has not reached the transmission destination based on the transmission loss information,
- the transmission control unit controls a parameter corresponding to the collision situation when the transmission loss rate detected by the transmission loss information detection unit exceeds a threshold for transmission loss rate, which is a predetermined threshold set in advance.
- Wireless communication terminal Wireless communication terminal.
- the wireless communication terminal according to attachment 21, wherein The transmission control unit calculates a collision rate based on the number of wireless communications performed by the wireless module unit and the number of collisions detected by the collision information detection unit, and the calculated collision rate is a predetermined threshold value determined in advance. When the collision rate threshold is not exceeded, the wireless module unit changes a transmission power parameter that is a parameter for transmitting the wireless frame signal, and the collision rate exceeds the collision rate threshold. Determining that a collision has occurred and controlling parameters according to the collision situation; Wireless communication terminal.
- Wireless communication terminal A wireless module for transmitting a wireless frame signal; A transmission loss information detection unit for detecting transmission loss information indicating whether or not the radio frame signal transmitted by the radio module unit has reached a transmission destination; A collision information detection unit for detecting collision information indicating a state of collision between the radio frame signal transmitted by the radio module unit and another radio frame signal; Based on the transmission loss information and the collision information, a transmission control unit that controls transmission processing by the wireless module unit, A program to realize
- the collision information detection unit detects the collision information including collision presence / absence information indicating presence / absence of a collision between the radio frame signal transmitted by the radio module unit and another radio frame signal
- the transmission control unit controls transmission processing by the wireless module unit based on the transmission loss information and the collision information including the collision presence / absence information. program.
- the program according to attachment 26 wherein The collision detection unit detects the collision information including collision situation information indicating a collision situation which is a collision pattern between the radio frame signal and another radio frame signal, The transmission control unit controls a parameter according to the collision situation used when the wireless module unit performs a transmission process based on the transmission loss information and the collision information including the collision situation information. program.
- the programs described in the above embodiments and supplementary notes are stored in a storage device or recorded on a computer-readable recording medium.
- the recording medium is a portable medium such as a flexible disk, an optical disk, a magneto-optical disk, and a semiconductor memory.
- Wireless communication terminal 1, 3, 4 Wireless communication terminal 11 Wireless module unit 12 Loss detection unit 13 Frame detection unit 14 Collision suppression control unit 21 Collision detection unit 22 Transmission loss rate / collision rate threshold comparison unit 23 Collision cause analysis unit 24 Parameter adjustment unit 25 Parameters Storage unit 26 Adjustment content storage unit 34 Collision suppression control unit 37 Backoff time match probability storage unit 45 Channel transition determination unit 5 Transmission control unit 7 Wireless communication terminal 71 Collision suppression control unit 81 Collision detection unit 83 Parameter adjustment unit 84 Parameter storage unit 9 Wireless communication terminal 91 Wireless module unit 92 Frame detection unit 93 Collision suppression control unit 100, 110, 120, 130, 140, 150, 160, 170, 180, 190 Wireless communication terminal 101 Collision detection unit 102, 112 Multi rate control unit 111 Collision cause detection unit 131, 141 Retransmission control unit 161, 171 Multi rate retry control unit 191 Radio module unit 192 Transmission loss information detection unit 193 Collision information detection unit 194 Transmission control unit
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Abstract
Description
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を備える、
という構成を採る。
送信した無線フレーム信号が送信先に届いたか否かを示す送信ロス情報と、前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報と、を検出し、
検出した前記送信ロス情報と前記衝突情報とに基づいて、送信処理を制御する、
という構成を採る。
無線通信端末に、
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を実現させるためのプログラムである。
[第1の実施形態]
図1を参照すると、本発明の第1の実施形態における無線通信端末1は、他の無線通信端末や無線アクセスポイントなどと無線通信を行う端末である。後述するように、本実施形態における無線通信端末1は当該無線通信端末1が送信した無線フレーム信号と他機が送信した無線フレーム信号との衝突を検出することが出来るように構成されている。また、本実施形態における無線通信端末1は、無線フレーム信号の衝突の状況(衝突状況)を検出するよう構成されている。そして、本実施形態における無線通信端末1は、検出した衝突状況に応じたパラメータの変更を行うよう構成されている。
次に本発明の第2の実施形態について図面を参照して説明する。第2の実施形態では、第1の実施形態の応用として、周囲に存在している端末の数を推測することが可能な無線通信端末3について説明する。なお、無線通信端末3は、第1の実施形態で説明した無線通信端末1と同様の構成を備えている。そのため、本実施形態においては、第2の実施形態に特有の構成について説明する。なお、以下で説明する図においては、既に説明した構成と同様の構成については同じ符号が付されているものとする。
バックオフタイム=ランダム値×スロットタイム
n=1の場合:1-(15/16)1=約6%
n=2の場合:1-(15/16)2=約12%
n=3の場合:1-(15/16)3=約18%
n=16の場合:1―(15/16)16=約64%
つまり、ランダム値が一致する確率は以下の式で求めることが出来る。
1―((CW-1)/CW)n
衝突率=1―((CW-1)/CW)n
次に本発明の第3の実施形態について図面を参照して説明する。第3の実施形態では、衝突状況に応じたパラメータの変更の一つとしてチャネルの遷移も行うことが可能なよう構成された無線通信端末4について説明する。本実施形態における無線通信端末4は、周囲に存在している端末の数を推測するよう構成されている。また、本実施形態における無線通信端末4は、推測した端末の数が予め定められた遷移閾値を超えた場合に、チャネルの遷移を行うよう構成されている。
次に本発明の第4の実施形態について図面を参照して説明する。第4の実施形態では、衝突が検出された場合に、現在送信中の無線フレーム信号の送信を中止し、衝突を検出した無線フレーム信号の送信を再度行う無線通信端末5について説明する。
次に本発明の第5の実施形態について図面を参照して説明する。第5の実施形態では、自機のパラメータを調整し、他機の送信ロスを抑えることが可能な無線通信端末6について説明する。なお、本実施形態における無線通信端末6は、上記説明した無線通信端末と同様の構成を備えることが出来る。そのため、構成の説明については省略する。
次に本発明の第6の実施形態について図面を参照して説明する。第6の実施形態では、フレームの衝突を検出し、フレームの衝突を検出すると衝突原因の分析を行わずにパラメータの調整を行う無線通信端末7について説明する。
優先度1:何もしない
優先度2:バックオフタイムを上げる
優先度3:送信電力を上げる
優先度4:キャリアセンス閾値を下げる
優先度5:送信電力を上げ、キャリアセンス閾値を下げる
優先度6:伝送レートを下げる
優先度7:RTS/CTSを実行する
このように、パラメータ記憶部84は、上述したパラメータ記憶部24が記憶するパラメータ調整テーブルの内容を網羅的に記憶している。つまり、パラメータ記憶部84は、衝突原因毎に必要となるパラメータ調整の内容を網羅的に記憶している。
次に本発明の第7の実施形態について図面を参照して説明する。第7の実施形態では、無線フレーム信号の衝突状況を検出し、検出した衝突状況に応じたパラメータの変更を行う無線通信端末9について説明する。なお、本実施形態では、無線通信端末9の構成の概略について説明する。
次に本発明の第8の実施形態について図面を参照して説明する。第8の実施形態では、衝突の有無を示す衝突有無情報を検出して、当該検出した衝突有無情報に基づいて無線モジュール部11が無線フレーム信号を送信する際の伝送レートを制御する無線通信端末100について説明する。つまり、本実施形態における無線通信端末100は、衝突の有無に応じて上記各実施形態で説明したパラメータの一つである伝送レートの制御を行うことになる。
次に本発明の第9の実施形態について図面を参照して説明する。第9の実施形態における無線通信端末110は、衝突の有無を示す衝突有無情報と衝突状況(衝突パターン)を示す衝突状況情報とを検出するように構成されている。後述するように、本実施形態における無線通信端末110は、送信ロス情報と衝突有無情報と衝突状況情報とに基づいて、無線モジュール部11が無線フレーム信号を送信する際の伝送レートを制御することになる。
次に本発明の第10の実施形態について図面を参照して説明する。第10の実施形態では、トラフィック量を加味した上で伝送レートを制御する無線通信端末120について説明する。なお、トラフィック量とは、チャネル上で送受信される信号やデータの量や単位時間当たりの使用率のことをいう。
次に本発明の第11の実施形態について図面を参照して説明する。第11の実施形態では、衝突の有無を示す衝突有無情報を検出して、当該検出した衝突有無情報に基づいて再送制御を制御する無線通信端末130について説明する。なお、再送制御とは、送信が失敗した際に、同じデータを再度届けようと無線モジュール部11が再度の送信を行う制御のことをいう。
CW=(CWmin+1)×2α-1
なお、αは再送回数であり、0以上の値である。また、CWmin、及び、CWmaxは、無線通信端末が使用するIEEE802.11の規格ごとに一意に決定される値である。
次に本発明の第12の実施形態について図面を参照して説明する。第12の実施形態では、衝突の有無を示す衝突有無情報と衝突状況を示す衝突状況情報とを検出して、当該検出した衝突有無情報と衝突状況情報とに基づいて再送制御を制御する無線通信端末140について説明する。
次に本発明の第13の実施形態について図面を参照して説明する。第13の実施形態では、トラフィック量を加味した上で再送制御を制御する無線通信端末150について説明する。
次に本発明の第14の実施形態について図面を参照して説明する。第14の実施形態では、衝突の有無を示す衝突有無情報を検出して、当該検出した衝突有無情報に基づいてマルチレートリトライ制御を実行する無線通信端末160について説明する。なお、マルチレートリトライとは、マルチレート制御と再送制御とを組み合わせたアルゴリズムのことをいう。つまり、マルチレートリトライ制御のもとでは、最大再送試行回数分の再送が失敗した場合、伝送レートを下げてより通信しやすい状態での再送を試みることになる。また、伝送レートを下げた状態でさらに最大再送試行回数分の再送が失敗した場合、再度伝送レートを下げ再送を試みることになる。マルチレートリトライは、このような動作を繰り返して再送とレート制御とを行うアルゴリズムである。
次に本発明の第15の実施形態について図面を参照して説明する。第15の実施形態では、衝突の有無を示す衝突有無情報と衝突状況を示す衝突状況情報とを検出して、当該検出した衝突有無情報と衝突状況情報とに基づいてマルチレートリトライを制御する無線通信端末170について説明する。
次に本発明の第16の実施形態について図面を参照して説明する。第16の実施形態では、トラフィック量を加味した上で再送制御を制御する無線通信端末180について説明する。
次に本発明の第17の実施形態について図面を参照して説明する。第17の実施形態では、フレーム検出部13が検出する衝突発生時の衝突パターンの他の分類の一例について説明する。
また、同様に、図5の(K)で示した、隠れ端末問題2と判断されることになる衝突パターンは、電力、送信データ量、伝送レートなどにより、合計9種類の衝突パターンに分類することが可能である。このように、図5の(J)及び(K)は、電力、送信データ量、伝送レートなどにより、それぞれ合計9種類の衝突パターンに分類することが出来る。そのため、図5の(A)から(J)で示す衝突パターンと併せて、フレーム検出部13が検出する衝突パターンは、27種類の衝突パターンに分類することが出来る。
次に本発明の第18の実施形態について図面を参照して説明する。第18の実施形態では、無線フレーム信号の衝突の様子を示す衝突情報を検出し、当該検出した衝突情報に基づいて送信処理を制御する無線通信端末190について説明する。なお、本実施形態では、無線通信端末190の構成の概略について説明する。
上記実施形態の一部又は全部は、以下の付記のようにも記載されうる。以下、本発明における無線通信端末などの概略を説明する。但し、本発明は、以下の構成に限定されない
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号と同じチャネルで空間電波信号の電力を検出するフレーム検出部と、
前記フレーム検出部が検出した検出結果に基づいて、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との所定の衝突状況を検出し、当該検出した所定の衝突状況に応じたパラメータの変更を行う衝突抑制制御部と、
を備える無線通信端末。
付記1に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、前記無線モジュール部が送信した前記無線フレーム信号と前記他の無線フレーム信号との衝突のパターンを検出する、
無線通信端末。
付記2に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、前記無線モジュール部による前記無線フレーム信号と他の無線フレーム信号とが同時に送信されることで衝突が発生した同時送信衝突発生状況を検出し、当該同時送信衝突発生状況に応じたパラメータである、ランダムに選択される送信待ち時間であるバックオフタイムパラメータの変更を行う、
無線通信端末。
付記2又は3に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、無線フレーム信号の送信中に他の無線フレーム信号が送信されることで衝突が発生した送信中送信衝突発生状況を検出し、当該送信中送信衝突発生状況に応じたパラメータである、チャネルの空き状況を調べる際に用いるキャリアセンスパラメータを変更する、
無線通信端末。
付記4に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、前記無線モジュール部による前記無線フレーム信号の送信中に前記他の無線フレーム信号が送信されることで衝突が発生した送信前送信衝突発生状況を検出し、当該送信前送信衝突発生状況に応じたパラメータである、前記無線モジュール部が前記無線フレーム信号を送信する際に用いる送信電力パラメータを変更する、
無線通信端末。
付記4に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、前記他の無線フレーム信号の送信中に前記無線モジュール部による前記無線フレーム信号が送信されることで衝突が発生した送信後送信衝突発生状況を検出し、当該送信後送信衝突発生状況に応じたパラメータである、キャリアセンスの感知範囲であるキャリアセンス感知範囲パラメータを変更する、
無線通信端末。
付記4に記載の無線通信端末であって、
前記衝突抑制制御部は、前記衝突状況として、前記無線モジュール部による前記無線フレーム信号の送信中に前記他の無線フレーム信号が送信されることで衝突が発生した送信前送信衝突発生状況と、前記他の無線フレーム信号の送信中に前記無線モジュール部による前記無線フレーム信号が送信されることで衝突が発生した送信後送信衝突発生状況と、を検出し、前記送信前送信衝突発生状況と前記送信後送信衝突発生状況とに応じたパラメータである、前記送信電力パラメータと、前記キャリアセンス感知範囲パラメータと、を変更する、
無線通信端末。
付記1乃至4の何れかに記載の無線通信端末であって、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを検出し、当該無線フレーム信号が送信先に届かなかった確率である送信ロス率を検出するロス検出部を備え、
前記衝突抑制制御部は、前記ロス検出部が検出した前記送信ロス率が予め定められた所定の閾値である送信ロス率用閾値を超えた場合に、前記パラメータの変更を行う、
無線通信端末。
付記1乃至5の何れかに記載の無線通信端末であって、
前記衝突抑制制御部は、前記モジュール部による無線通信の回数と検出した衝突の回数とに基づいて衝突率を算出し、当該算出した衝突率が予め定められた所定の閾値である衝突率用閾値を超えていない場合、前記無線モジュール部が前記無線フレーム信号を送信する際のパラメータである送信電力パラメータを変更し、前記衝突率が前記衝突率用閾値を超えている場合、衝突が発生していると判断し前記所定の衝突状況に応じたパラメータの変更を行う、
無線通信端末。
付記1乃至6の何れかに記載の無線通信端末であって、
チャネルの遷移を行うチャネル遷移部を備え、
前記衝突抑制制御部は、前記モジュール部による無線通信の回数と検出した衝突の回数とに基づいて衝突率を算出し、当該算出した衝突率に基づいて周囲に存在している他の無線通信端末の数の推測を行うよう構成され、
前記チャネル遷移部は、前記衝突抑制制御部が推測した他の無線通信端末の数と予め定められた遷移用閾値に基づいて、チャネルの遷移を行うよう判断する、
無線通信端末。
送信した無線フレーム信号と同じチャネルで空間電波信号の電力を検出し、
検出結果に基づいて、前記前記無線フレーム信号と他の無線フレーム信号との所定の衝突状況を検出し、当該検出した所定の衝突状況に応じたパラメータの変更を行う、
無線通信方法。
付記7に記載の無線通信方法であって、
無線モジュール部が送信した前記無線フレーム信号と前記他の無線フレーム信号との衝突のパターンに基づいて前記衝突状況を検出する、
無線通信方法。
無線通信端末に、
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号と同じチャネルで空間電波信号の電力を検出するフレーム検出部と、
前記フレーム検出部が検出した検出結果に基づいて、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との所定の衝突状況を検出し、当該検出した所定の衝突状況に応じたパラメータの変更を行う衝突抑制制御部と、
を実現させるためのプログラム。
付記9に記載のプログラムであって、
前記衝突抑制制御部は、前記無線モジュール部が送信した前記無線フレーム信号と前記他の無線フレーム信号との衝突のパターンに基づいて前記衝突状況を検出する、
プログラム。
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号と同じチャネルで空間電波信号の電力を検出するフレーム検出部と、
前記フレーム検出部が検出した検出結果に基づいて、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突を検出し、当該検出した衝突に応じたパラメータの変更を行う衝突抑制制御部と、
を備える無線通信端末。
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を備える無線通信端末。
付記12に記載の無線通信端末であって、
前記衝突情報検出部は、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の有無を示す衝突有無情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する、
無線通信端末。
付記13に記載の無線通信端末であって、
前記無線モジュール部は、複数の伝送レートのうちの何れか一つの伝送レートを用いて前記無線フレーム信号を送信するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部が前記無線フレーム信号を送信する際に用いる前記伝送レートを制御する、
無線通信端末。
付記14に記載の無線通信端末であって、
前記送信制御部は、前記無線モジュール部による前記無線フレーム信号の送信に失敗し、かつ、前記無線フレーム信号と他の無線フレーム信号との衝突がない場合に送信失敗カウンタを加算するように構成され、当該送信失敗カウンタが所定の送信失敗閾値を超えた場合に、前記伝送レートを低レートへと変更する、
無線通信端末。
付記13又は14に記載の無線通信端末であって、
前記無線モジュール部は、前記送信制御部の制御に応じて、再度同じ内容の無線フレーム信号を送信する再送処理を行うよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部が行う前記再送処理を制御する、
無線通信端末。
付記15に記載の無線通信端末であって、
前記送信制御部は、前記無線モジュール部による前記無線フレーム信号の送信に失敗し、かつ、前記無線フレーム信号と他の無線フレーム信号との衝突がある場合に、前記無線モジュール部が前記再送処理を行うよう制御する、
無線通信端末。
付記13乃至15-1の何れかに記載の無線通信端末であって、
前記無線モジュール部は、前記送信制御部の制御に応じて、予め定められた回数再送処理が失敗した際に、伝送レートを下げて再度再送処理を行うマルチレートリトライ処理を行うよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部が行う前記マルチレートリトライ処理を制御する、
無線通信端末。
付記12乃至15の何れかに記載の無線通信端末であって、
前記衝突情報検出部は、前記無線フレーム信号と他の無線フレーム信号との衝突状況を示す衝突状況情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する、
無線通信端末。
付記16に記載の無線通信端末であって、
前記無線モジュール部は、複数の伝送レートのうちの何れか一つの伝送レートを用いて前記無線フレーム信号を送信するよう構成され、
前記送信制御部は、前記衝突が発生し、かつ、当該衝突が生じた際の衝突状況が無線フレーム信号の送信中に他の無線フレーム信号が送信されることで衝突が発生した送信中送信衝突発生状況である場合に、前記伝送レートを高レートへと変更する、
無線通信端末。
付記16又は16-1に記載の無線通信端末であって、
前記送信制御部は、前記衝突が発生し、かつ、当該衝突が生じた際の衝突状況が無線フレーム信号の送信中に他の無線フレーム信号が送信されることで衝突が発生した送信中送信衝突発生状況でない場合に、前記無線モジュール部が前記再送処理を行うよう制御する、
無線通信端末。
付記12乃至16の何れかに記載の無線通信端末であって、
前記送信制御部は、チャネル上で流れるデータの量であるトラフィック量を取得するよう構成され、当該取得したトラフィック量を考慮して前記無線モジュール部による送信処理を制御する、
無線通信端末。
付記12乃至17のいずれかに記載の無線通信端末であって、
前記衝突検出部は、前記無線フレーム信号と他の無線フレーム信号との衝突状況を示す衝突状況情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、前記無線モジュール部が送信処理を行う際に用いる前記衝突状況に応じたパラメータを制御する、
無線通信端末。
付記18に記載の無線通信端末であって、
前記衝突情報検出部は、前記衝突状況情報が示す衝突状況として、前記無線モジュール部による前記無線フレーム信号と他の無線フレーム信号とが同時に送信されることで衝突が発生した同時送信衝突発生状況を検出し、
前記送信制御部は、前記同時送信衝突発生状況に応じたパラメータである、ランダムに選択される送信待ち時間であるバックオフタイムパラメータを制御する、
無線通信端末。
付記18又は19に記載の無線通信端末であって、
前記衝突情報検出部は、前記衝突状況情報が示す衝突状況として、無線フレーム信号の送信中に他の無線フレーム信号が送信されることで衝突が発生した送信中送信衝突発生状況を検出し、
前記送信制御部は、前記送信中送信衝突発生状況に応じたパラメータである、チャネルの空き状況を調べる際に用いるキャリアセンスパラメータを制御する、
無線通信端末。
付記18乃至20の何れかに記載の無線通信端末であって、
前記送信ロス情報検出部は、前記送信ロス情報に基づいて前記無線フレーム信号が送信先に届かなかった確率である送信ロス率を算出するよう構成され、
前記送信制御部は、前記送信ロス情報検出部が検出した前記送信ロス率が予め定められた所定の閾値である送信ロス率用閾値を超えた場合に、前記衝突状況に応じたパラメータを制御する、
無線通信端末。
付記21に記載の無線通信端末であって、
前記送信制御部は、前記無線モジュール部による無線通信の回数と前記衝突情報検出部が検出した衝突の回数とに基づいて衝突率を算出し、当該算出した衝突率が予め定められた所定の閾値である衝突率用閾値を超えていない場合、前記無線モジュール部が前記無線フレーム信号を送信する際のパラメータである送信電力パラメータを変更し、前記衝突率が前記衝突率用閾値を超えている場合、衝突が発生していると判断し前記衝突状況に応じたパラメータを制御する、
無線通信端末。
送信した無線フレーム信号が送信先に届いたか否かを示す送信ロス情報と、前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報と、を検出し、
検出した前記送信ロス情報と前記衝突情報とに基づいて、送信処理を制御する、
無線通信方法。
付記24に記載の無線通信方法であって、
前記無線フレーム信号と他の無線フレーム信号との衝突の有無を示す衝突有無情報を含む前記衝突情報を検出し、
検出した前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、送信処理を制御する、
無線通信方法。
付記24に記載の無線通信方法であって、
前記無線フレーム信号と他の無線フレーム信号との衝突状況を示す衝突状況情報を含む前記衝突情報を検出し、
検出した前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、送信処理を行う際に用いる前記衝突状況に応じたパラメータを制御する、
無線通信方法。
無線通信端末に、
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を実現させるためのプログラム。
付記26に記載のプログラムであって、
前記衝突情報検出部は、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の有無を示す衝突有無情報を含む前記衝突情報を検出し、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する、
プログラム。
付記26に記載のプログラムであって、
前記衝突検出部は、前記無線フレーム信号と他の無線フレーム信号との衝突パターンである衝突状況を示す衝突状況情報を含む前記衝突情報を検出し、
前記送信制御部は、前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、前記無線モジュール部が送信処理を行う際に用いる、前記衝突状況に応じたパラメータを制御する、
プログラム。
11 無線モジュール部
12 ロス検出部
13 フレーム検出部
14 衝突抑制制御部
21 衝突検出部
22 送信ロス率・衝突率閾値比較部
23 衝突原因分析部
24 パラメータ調整部
25 パラメータ記憶部
26 調整内容記憶部
34 衝突抑制制御部
37 バックオフタイム一致確率記憶部
45 チャネル遷移判断部
5 送信制御部
7 無線通信端末
71 衝突抑制制御部
81 衝突検出部
83 パラメータ調整部
84 パラメータ記憶部
9 無線通信端末
91 無線モジュール部
92 フレーム検出部
93 衝突抑制制御部
100、110、120、130、140、150、160、170、180、190
無線通信端末
101 衝突有無検出部
102、112 マルチレート制御部
111 衝突原因検出部
131、141 再送制御部
161、171 マルチレートリトライ制御部
191 無線モジュール部
192 送信ロス情報検出部
193 衝突情報検出部
194 送信制御部
Claims (15)
- 無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を備える無線通信端末。 - 請求項1に記載の無線通信端末であって、
前記衝突情報検出部は、前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の有無を示す衝突有無情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する、
無線通信端末。 - 請求項2に記載の無線通信端末であって、
前記無線モジュール部は、複数の伝送レートのうちの何れか一つの伝送レートを用いて前記無線フレーム信号を送信するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部が前記無線フレーム信号を送信する際に用いる前記伝送レートを制御する、
無線通信端末。 - 請求項2又は3に記載の無線通信端末であって、
前記無線モジュール部は、前記送信制御部の制御に応じて、再度同じ内容の無線フレーム信号を送信する再送処理を行うよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、前記無線モジュール部が行う前記再送処理を制御する、
無線通信端末。 - 請求項1乃至4の何れかに記載の無線通信端末であって、
前記衝突情報検出部は、前記無線フレーム信号と他の無線フレーム信号との衝突パターンである衝突状況を示す衝突状況情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する、
無線通信端末。 - 請求項1乃至5の何れかに記載の無線通信端末であって、
前記送信制御部は、チャネル上で流れるデータの量であるトラフィック量を取得するよう構成され、当該取得したトラフィック量を考慮して前記無線モジュール部による送信処理を制御する、
無線通信端末。 - 請求項1乃至6のいずれかに記載の無線通信端末であって、
前記衝突検出部は、前記無線フレーム信号と他の無線フレーム信号との衝突パターンである衝突状況を示す衝突状況情報を含む前記衝突情報を検出するよう構成され、
前記送信制御部は、前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、前記無線モジュール部が送信処理を行う際に用いる、前記衝突状況に応じたパラメータを制御する、
無線通信端末。 - 請求項7に記載の無線通信端末であって、
前記衝突情報検出部は、前記衝突状況情報が示す衝突状況として、前記無線モジュール部による前記無線フレーム信号と他の無線フレーム信号とが同時に送信されることで衝突が発生した同時送信衝突発生状況を検出し、
前記送信制御部は、前記同時送信衝突発生状況に応じたパラメータである、ランダムに選択される送信待ち時間であるバックオフタイムパラメータを制御する、
無線通信端末。 - 請求項7又は8に記載の無線通信端末であって、
前記衝突情報検出部は、前記衝突状況情報が示す衝突状況として、無線フレーム信号の送信中に他の無線フレーム信号が送信されることで衝突が発生した送信中送信衝突発生状況を検出し、
前記送信制御部は、前記送信中送信衝突発生状況に応じたパラメータである、チャネルの空き状況を調べる際に用いるキャリアセンスパラメータを制御する、
無線通信端末。 - 請求項7乃至9の何れかに記載の無線通信端末であって、
前記送信ロス情報検出部は、前記送信ロス情報に基づいて前記無線フレーム信号が送信先に届かなかった確率である送信ロス率を算出するよう構成され、
前記送信制御部は、前記送信ロス情報検出部が検出した前記送信ロス率が予め定められた所定の閾値である送信ロス率用閾値を超えた場合に、前記衝突状況に応じたパラメータを制御する、
無線通信端末。 - 請求項10に記載の無線通信端末であって、
前記送信制御部は、前記無線モジュール部による無線通信の回数と前記衝突情報検出部が検出した衝突の回数とに基づいて衝突率を算出し、当該算出した衝突率が予め定められた所定の閾値である衝突率用閾値を超えていない場合、前記無線モジュール部が前記無線フレーム信号を送信する際のパラメータである送信電力パラメータを変更し、前記衝突率が前記衝突率用閾値を超えている場合、衝突が発生していると判断し前記衝突状況に応じたパラメータを制御する、
無線通信端末。 - 送信した無線フレーム信号が送信先に届いたか否かを示す送信ロス情報と、前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報と、を検出し、
検出した前記送信ロス情報と前記衝突情報とに基づいて、送信処理を制御する、
無線通信方法。 - 請求項12に記載の無線通信方法であって、
前記無線フレーム信号と他の無線フレーム信号との衝突の有無を示す衝突有無情報を含む前記衝突情報を検出し、
検出した前記送信ロス情報と前記衝突有無情報を含む前記衝突情報とに基づいて、送信処理を制御する、
無線通信方法。 - 請求項12に記載の無線通信方法であって、
前記無線フレーム信号と他の無線フレーム信号との衝突状況を示す衝突状況情報を含む前記衝突情報を検出し、
検出した前記送信ロス情報と前記衝突状況情報を含む前記衝突情報とに基づいて、送信処理を行う際に用いる前記衝突状況に応じたパラメータを制御する、
無線通信方法。 - 無線通信端末に、
無線フレーム信号を送信する無線モジュール部と、
前記無線モジュール部が送信した前記無線フレーム信号が送信先に届いたか否かを示す送信ロス情報を検出する送信ロス情報検出部と、
前記無線モジュール部が送信した前記無線フレーム信号と他の無線フレーム信号との衝突の様子を示す衝突情報を検出する衝突情報検出部と、
前記送信ロス情報と前記衝突情報とに基づいて、前記無線モジュール部による送信処理を制御する送信制御部と、
を実現させるためのプログラム。
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CN114980351A (zh) * | 2021-02-24 | 2022-08-30 | 瑞昱半导体股份有限公司 | 通信装置与碰撞侦测方法 |
CN114980351B (zh) * | 2021-02-24 | 2024-05-28 | 瑞昱半导体股份有限公司 | 通信装置与碰撞侦测方法 |
WO2023174346A1 (zh) * | 2022-03-16 | 2023-09-21 | 中兴通讯股份有限公司 | 碰撞检测方法、电子设备、计算机可读介质 |
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US10244558B2 (en) | 2019-03-26 |
JPWO2015121902A1 (ja) | 2017-03-30 |
US20160366702A1 (en) | 2016-12-15 |
JP6384924B2 (ja) | 2018-09-05 |
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