Method for determining spatial reuse parameter field in PPDU, communication device, computer-readable storage medium, and computer program product
The method determines spatial reuse parameters for EHT TB PPDU using trigger frame values to maintain transmission efficiency in overlapping basic service sets, addressing the configuration challenge in the 802.11be standard.
Patent Information
- Application Number
- JP2024220796
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-11-12
- Filing Date
- 2024-12-17
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2041-11-03
AI Technical Summary
The 802.11be standard faces challenges in configuring the spatial reuse parameter field for extremely high throughput trigger-based physical layer protocol data units (EHT TB PPDU) due to space limitations, which affects transmission efficiency in overlapping basic service sets (OBSSs) where both HE and EHT stations are scheduled simultaneously.
A method to determine the spatial reuse parameter field in EHT TB PPDU by using the values from the trigger frame's common information field to set the U-SIG fields without altering the frame structure, allowing both HE and EHT stations to be scheduled using the same trigger frame.
This approach maintains transmission efficiency by ensuring accurate spatial reuse parameter settings for both HE and EHT stations without changing the frame structure, thereby improving transmission efficiency in overlapping basic service sets.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims priority to Chinese Patent Application No. 202011263310.4, entitled "Method for determining spatial reuse parameter field in PPDU, and related device," filed with the State Intellectual Property Office of the People's Republic of China on November 12, 2020, which is incorporated herein by reference in its entirety.
[0002] The present application relates to the field of wireless communication technologies, and more particularly to a method for determining a spatial reuse parameter field in a physical layer protocol data unit (PPDU), and related apparatus. [Background technology]
[0003] Wireless local area networks (WLANs) have been developed for many generations, including 802.11a / b / g, 802.11n, 802.11ac, 802.11ax, and the currently under consideration 802.11be. The 802.11ax standard is sometimes referred to as the high-efficiency (HE) standard, and the 802.11be standard is sometimes referred to as the extreme high throughput (EHT) standard or Wi-Fi 7 standard. Unlike 802.11ax, 802.11be uses an ultra-high bandwidth, e.g., 320 MHz, to achieve ultra-high transmission rates and support scenarios with ultra-high user density. In the following, stations that support the 802.11ax standard but not the 802.11be standard are referred to as HE stations for short, and stations that support the 802.11be standard are referred to as EHT stations for short.
[0004] 802.11ax WLAN devices (such as access points (APs) and stations (STAs)) only support half-duplex transmission. In other words, only one device can transmit information on the same spectrum bandwidth or channel; other devices can only receive signals but cannot transmit signals to avoid interference with the current transmitting device. However, with the increasing density of WLAN devices, it is becoming more common for a basic service set (BSS) to overlap with another BSS. In other words, overlapping basic service sets (OBSSs) are becoming more common. Because a WLAN device located within an OBSS may receive physical layer protocol data units (PPDUs, also referred to as packets or data packets) from two BSSs, the transmission efficiency of the conventional method is low. Therefore, 802.11ax proposes a spatial reuse method. By adaptively adjusting the transmission power, WLAN devices within an overlapping basic service set can transmit simultaneously. This significantly improves transmission efficiency. Specifically, in 802.11ax, spatial reuse is introduced into the trigger-based uplink scheduling transmission method.When transmitting a high efficient trigger based physical layer protocol data unit (HE TB PPDU), a station copies the values of the four uplink spatial reuse parameter (UL SRP) fields (which may also be referred to as uplink parameterized spatial reuse (UL PSR)) in the uplink spatial reuse (UL) field in the common information field of the received trigger frame into the four spatial reuse parameter (SRP) fields contained in the high efficient signal field A (HE-SIG-A) of the HE TB PPDU, one by one.
[0005] The 802.11be standard still uses the trigger-based uplink scheduling transmission method in the 802.11ax standard. However, the structure of the HE TB PPDU is different from that of the extremely high throughput trigger-based physical layer protocol data unit (EHT TB PPDU). That is, the universal signaling information (U-SIG) field of the EHT TB PPDU contains at most two SRP fields due to space limitations. Therefore, how to configure the spatial reuse parameter field in the EHT TB PPDU in a scenario where an EHT station is scheduled by using a trigger frame or where an HE station and an EHT station are simultaneously scheduled has become an urgent problem to be solved. Summary of the Invention
[0006] The embodiments of the present application provide a method for determining a spatial reuse parameter field in a PPDU, and a related device, so that in a scenario where an EHT station is scheduled or an HE station and an EHT station are scheduled simultaneously by using a trigger frame, the frame structure of the EHT TB PPDU does not need to be changed, and the spatial reuse parameter field of the EHT TB PPDU may be set based on the four UL SRP fields in the trigger frame.
[0007] The present application will be described below from different aspects, and it should be understood that the following implementations and beneficial effects of different aspects can be cross-referenced.
[0008] According to a first aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes the steps of: an AP transmitting a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU; and the AP receiving the EHT TB PPDU transmitted by the station. The common information field of the trigger frame includes four UL SRP fields, which indicate the sum of the AP's transmit power and the maximum interference power received by the AP. The U-SIG of the EHT TB PPDU includes only two SRP fields, SRP1 and SRP2. The SRP1 and SRP2 fields each indicate an SRP value on a different subchannel, and the SRP value is equal to the sum of the AP's transmit power and the maximum interference power received by the AP on the corresponding subchannel. The values indicated by the SRP1 and SRP2 fields in the U-SIG are determined based on the values indicated by the four UL SRP fields in the common information field of the trigger frame.
[0009] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0010] In one aspect of this solution, the content of the trigger frame is not changed (i.e., the UL SRP value in the trigger frame is not changed), so that the HE station can set the spatial reuse parameters in the original manner and there is no loss of granularity for the HE station. In another aspect, the frame structure of the U-SIG is not changed (e.g., the length of 1 byte is maintained), and the spatial reuse parameters in the U-SIG of the EHT TB PPDU are set based on the four UL SRP fields in the trigger frame, so that the EHT station can be scheduled to transmit the uplink EHT TB PPDU by using the trigger frame, and the HE station and the EHT station can be scheduled by using the same trigger frame.
[0011] According to a second aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes the steps of: a STA receiving a trigger frame from an AP, where the trigger frame is used to trigger the STA to transmit an EHT TB PPDU; and the STA transmitting the EHT TB PPDU. The common information field of the trigger frame includes four UL SRP fields, which indicate the sum of the AP's transmit power and the maximum interference power received by the AP. The U-SIG of the EHT TB PPDU includes only two SRP fields, SRP1 and SRP2. The SRP1 and SRP2 fields each indicate an SRP value on a different subchannel, and the SRP value is equal to the sum of the AP's transmit power and the maximum interference power received by the AP on the corresponding subchannel. The values indicated by the SRP1 and SRP2 fields in the U-SIG are determined based on the values indicated by the four UL SRP fields in the common information field of the trigger frame.
[0012] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0013] Optionally, before the STA transmits the EHT TB PPDU, the method further includes the STA setting SRP1 and SRP2 fields included in the U-SIG of the EHT TB PPDU based on values indicated by four UL SRP fields in the common information field of the trigger frame, wherein the length of each SRP field in the U-SIG is 4 bits.
[0014] According to a third aspect, the present application provides a communication device. The communication device may be an AP or a chip in the AP, for example, a Wi-Fi chip. The communication device includes: a processing unit configured to generate a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU; and a transceiver unit configured to transmit the trigger frame. The transceiver unit is further configured to receive the EHT TB PPDU transmitted by the station. Values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are respectively determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame.
[0015] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0016] According to a fourth aspect, the present application provides a communication device. The communication device may be an STA or a chip within the STA, for example, a Wi-Fi chip. The communication device includes: a transceiver unit configured to receive a trigger frame, where the trigger frame is used to trigger the STA to transmit an EHT TB PPDU; and a processing unit configured to generate the EHT TB PPDU, where values indicated by SRP1 and SRP2 fields in a U-SIG of the EHT TB PPDU are respectively determined based on values indicated by one or more UL SRP fields in a common information field of the trigger frame. The transceiver unit is further configured to transmit the EHT TB PPDU.
[0017] Optionally, the processing unit is further configured for the STA to set SRP1 and SRP2 fields included in the U-SIG of the EHT TB PPDU based on values indicated by four UL SRP fields in the common information field of the trigger frame, wherein the length of each SRP field in the U-SIG is 4 bits.
[0018] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0019] In one implementation of any one of the aforementioned aspects, the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. When the bandwidth of the EHT TB PPDU is 20 MHz, the values indicated by the four UL SRP fields are the same, and both the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields.
[0020] In one implementation of any one of the aforementioned aspects, the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. When the bandwidth of the EHT TB PPDU is 40 MHz, the UL SRP1 field and the UL SRP3 field each indicate the SRP value of the first 20 MHz subchannel on the 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP1 field and the UL SRP3 field are the same; and the UL SRP2 field and the UL SRP4 field each indicate the SRP value of the second 20 MHz subchannel on the 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field.
[0021] In one implementation of any one of the aforementioned aspects, the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. If the bandwidth of the EHT TB PPDU is 80 MHz, the four UL SRP fields respectively indicate SRP values of four 20 MHz subchannels on an 80 MHz channel in ascending frequency order. If the bandwidth of the EHT TB PPDU is 160 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a 160 MHz channel in ascending frequency order. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum value of the values indicated by the UL SRP3 field and the UL SRP4 field.
[0022] In one implementation of any one of the aforementioned aspects, the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. When the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order, and the SRP values of the four 40 MHz subchannels on the secondary 160 MHz channel are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel. That is, the SRP values on the secondary 160 MHz channel are implicitly indicated. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum value of the values indicated by the UL SRP3 field and the UL SRP4 field.
[0023] Optionally, when the bandwidth of the EHT TB PPDU is 80 MHz, 160 MHz, or 320 MHz, the value indicated by the SRP1 field in the U-SIG is equal to the maximum value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG is equal to the maximum value of the values indicated by the UL SRP3 field and the UL SRP4 field. Alternatively, when the bandwidth of the EHT TB PPDU is 80 MHz, 160 MHz, or 320 MHz, the value indicated by the SRP1 field in the U-SIG is equal to the average value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG is equal to the average value of the values indicated by the UL SRP3 field and the UL SRP4 field.
[0024] In this solution, for the 80 MHz bandwidth, 160 MHz bandwidth, and 320 MHz bandwidth, the smaller value (or the minimum value) of the values indicated by the UL SRP1 field and the UL SRP2 field is assigned to the SRP1 field in the U-SIG, and the smaller value (or the minimum value) of the values indicated by the UL SRP3 field and the UL SRP4 field is assigned to the SRP2 field in the U-SIG. This can ensure that the transmit power of devices located in the same OBSS as the AP does not interfere with the AP's transmission on some 20 MHz subchannels, and can also solve the problem of the insufficient SRP field in the U-SIG.
[0025] According to a fifth aspect, the present application provides a method for determining spatial reuse parameter fields in a PPDU. The method includes the steps of: an AP transmitting a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU; and the AP receiving the EHT TB PPDU transmitted by the station. The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields. Two of the four UL SRP fields indicate the same value, and the other two indicate the same value. The U-SIG for the EHT TB PPDU includes only two SRP fields, the SRP1 field and the SRP2 field. The value indicated by the SRP1 field in the U-SIG for the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the SRP2 field in the U-SIG for the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields indicating the same value.
[0026] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0027] In this solution, the UL SRP value in the trigger frame is changed (i.e., the content of the trigger frame is changed) to match the SRP field of the U-SIG, so that the trigger frame can schedule the EHT station to transmit an uplink EHT TB PPDU, and the HE station and the EHT station can also be scheduled by using the same trigger frame.
[0028] According to a sixth aspect, the present application provides a method for determining spatial reuse parameter fields in a PPDU. The method includes the steps of: a STA receiving a trigger frame from an AP, where the trigger frame is used to trigger the station to transmit an EHT TB PPDU; and the STA transmitting the EHT TB PPDU. The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields. Two of the four UL SRP fields indicate the same value, and the other two indicate the same value. The U-SIG for the EHT TB PPDU includes only two SRP fields, an SRP1 field and an SRP2 field. The value indicated by the SRP1 field in the U-SIG for the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields that indicate the same value, and the value indicated by the SRP2 field in the U-SIG for the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields that indicate the same value.
[0029] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0030] Optionally, before the STA transmits the EHT TB PPDU, the method further includes the STA setting a value indicated by an SRP1 field included in a U-SIG of the EHT TB PPDU to a value indicated by either of two UL SRP fields indicating the same value, and setting a value indicated by an SRP2 field in the U-SIG to a value indicated by either of the other two UL SRP fields indicating the same value. Each SRP field in the U-SIG is 4 bits long.
[0031] According to a seventh aspect, the present application provides a communication device. The communication device may be an AP or a chip within the AP, for example, a Wi-Fi chip. The communication device includes: a processing unit configured to generate a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, where two of the four UL SRP fields indicate the same value and the other two indicate the same value; and a transceiver unit configured to transmit the trigger frame. The transceiver unit is further configured to receive the EHT TB PPDU transmitted by the station, where a value of the SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value of the SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by either of the other two UL SRP fields indicating the same value.
[0032] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0033] According to an eighth aspect, the present application provides a communication device. The communication device may be a station (STA) or a chip within the station, for example, a Wi-Fi chip. The communication device includes: a transceiver unit configured to receive a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, where two of the four UL SRP fields indicate the same value and the other two indicate the same value; and a processing unit configured to generate an EHT TB PPDU, where a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the other two UL SRP fields indicating the same value. The transceiver unit is further configured to transmit the EHT TB PPDU.
[0034] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0035] Optionally, the processing unit is further configured to set a value indicated by an SRP1 field included in the U-SIG of the EHT TB PPDU to a value indicated by either of two UL SRP fields indicating the same value, and to set a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU to a value indicated by either of the other two UL SRP fields indicating the same value. Each SRP field in the U-SIG has a length of 4 bits.
[0036] In one implementation of any one of the aforementioned aspects, the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, where the values indicated by the UL SRP1 field and the UL SRP2 field are the same, and the values indicated by the UL SRP3 field and the UL SRP4 field are the same.
[0037] Optionally, if the bandwidth of the EHT TB PPDU is 80 MHz, the four UL SRP fields indicate the SRP values of four 20 MHz subchannels on the 80 MHz channel in ascending frequency order, respectively. If the bandwidth of the EHT TB PPDU is 160 MHz, the four UL SRP fields indicate the SRP values of four 40 MHz subchannels on the 160 MHz channel in ascending frequency order, respectively. If the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order, respectively, and the SRP values of the four 40 MHz subchannels on the secondary 160 MHz channel are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel. That is, the SRP values on the secondary 160 MHz channel are implicitly indicated.
[0038] According to a ninth aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes: an AP transmitting a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU; and the AP receiving the EHT TB PPDU transmitted by the station. The trigger frame carries first indication information, and the first indication information indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0039] Optionally, the first indication information is located in a user information field of the trigger frame, and a value of an AID12 field of the user information field is a preset value, and the preset value is any one of 2008 to 2044 or 2046 to 4095.
[0040] Optionally, the common information field of the first indication information further includes four UL SRP fields, and the four UL SRP fields respectively indicate values of the four SRP fields in the HE TB PPDU.
[0041] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0042] In this solution, a special user information field in the trigger frame independently indicates the spatial reuse parameters of the EHT TB PPDU. The meaning of the special user information field is clear and the scheduling of the HE stations is not affected. In this way, the HE stations and the EHT stations can be scheduled by using the same trigger frame.
[0043] According to a tenth aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes: receiving a trigger frame by a STA, where the trigger frame is used to trigger the station to transmit an EHT TB PPDU; and transmitting the EHT TB PPDU by the STA. The trigger frame carries first indication information, and the first indication information indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0044] Optionally, the first indication information is located in a user information field of the trigger frame, and a value of an AID12 field of the user information field is a preset value, and the preset value is any one of 2008 to 2044 or 2046 to 4095.
[0045] Optionally, the common information field of the first indication information further includes four UL SRP fields, and the four UL SRP fields respectively indicate values of the four SRP fields in the HE TB PPDU.
[0046] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0047] According to an eleventh aspect, the present application provides a communication device. The communication device may be an AP or a chip, such as a Wi-Fi chip, within the AP. The communication device includes: a processing unit configured to generate a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, the trigger frame holding first indication information, the first indication information indicating a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU; and a transceiver unit configured to transmit the trigger frame. The transceiver unit is further configured to receive the EHT TB PPDU transmitted by the station, where the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0048] Optionally, the first indication information is located in a user information field of the trigger frame, and a value of an AID12 field of the user information field is a preset value, and the preset value is any one of 2008 to 2044 or 2046 to 4095.
[0049] Optionally, the common information field of the first indication information further includes four UL SRP fields, and the four UL SRP fields respectively indicate values of the four SRP fields in the HE TB PPDU.
[0050] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0051] According to a twelfth aspect, the present application provides a communication device. The communication device may be a station (STA) or a chip within the station (STA), for example, a Wi-Fi chip. The communication device includes: a transceiver unit configured to receive a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, the trigger frame carrying first indication information, where the first indication information indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU; and a processing unit configured to generate an EHT TB PPDU, where the value of the SRP1 field and / or the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information. The transceiver unit is further configured to transmit the EHT TB PPDU.
[0052] Optionally, the processing unit is further configured to set a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU based on an indication of the first indication information.
[0053] Optionally, the first indication information is located in a user information field of the trigger frame, and a value of an AID12 field of the user information field is a preset value, and the preset value is any one of 2008 to 2044 or 2046 to 4095.
[0054] Optionally, the common information field of the first indication information further includes four UL SRP fields, and the four UL SRP fields respectively indicate values of the four SRP fields in the HE TB PPDU.
[0055] Optionally, the trigger frame is further used to trigger the station to transmit an HE TB PPDU. The values of the four SRP fields included in the HE-SIG-A of the HE TB PPDU are respectively copied from the four UL SRP fields mentioned above. Each UL SRP field is 4 bits long, and each SRP field in the HE-SIG-A is also 4 bits long.
[0056] In one implementation of any one of the aforementioned aspects, the bandwidth of the EHT TB PPDU is 320 MHz.
[0057] In one implementation of any one of the aforementioned aspects, if the first indication information indicates a value of the SRP1 field and a value of the SRP2 field in the U-SIG of the EHT TB PPDU, the value of the SRP1 field and the value of the SRP2 field in the U-SIG of the EHT TB PPDU are also set to the values indicated by the first indication information.
[0058] In one implementation of any one of the aforementioned aspects, if the first indication information indicates a value of the SRP2 field in the U-SIG of the EHT TB PPDU, the value of the SRP2 field in the U-SIG of the EHT TB PPDU is set to the value indicated by the first indication information. The value of the SRP1 field in the U-SIG of the EHT TB PPDU may be set to the minimum (or maximum or average) value of the four UL SRP fields included in the common information field of the trigger frame. The four UL SRP fields respectively indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order.
[0059] Optionally, when the first indication information indicates a value of the SRP2 field in the U-SIG of the EHT TB PPDU, the first indication information may alternatively be located in a reserved bit in a common information field of the trigger frame. It should be understood that the reserved bit is different from the UL SRP field in the common information field of the trigger frame.
[0060] In this solution, the SRP1 field in the U-SIG is determined based on the four UL SRP fields in the trigger frame, and the SRP2 field in the U-SIG is determined based on a newly added field / information in the trigger frame. This can explicitly indicate the SRP value on the secondary 160 MHz channel. The indication is more flexible, and the SRP value on the secondary 160 MHz channel does not need to be the same as the SRP value on the primary 160 MHz channel.
[0061] According to a thirteenth aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes: an AP transmitting a trigger frame, where the trigger frame carries second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU; and the AP receiving an EHT TB PPDU transmitted by the station. A common information field of the trigger frame includes a first UL SRP field and a second UL SRP field, where the first UL SRP field indicates an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, and the second UL SRP field indicates an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both of the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. In other words, the first UL SRP field indicates the SRP value of a bandwidth with a lower frequency within the bandwidth of the EHT TB PPDU, and the second UL SRP field indicates the SRP value of a bandwidth with a higher frequency within the bandwidth of the EHT TB PPDU. For example, the bandwidth of the EHT TB PPDU is 80 MHz. The first UL SRP field indicates a lower 40 MHz bandwidth within the 80 MHz bandwidth, and the second UL SRP field indicates a higher 40 MHz bandwidth within the 80 MHz bandwidth. The bandwidth of the EHT TB PPDU can be any one of 40 MHz, 80 MHz, 160 MHz, and 320 MHz.
[0062] Therefore, the value indicated in the SRP1 field in the U-SIG of the EHT TB PPDU received by the AP is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG is equal to the value indicated by the second UL SRP field.
[0063] Optionally, the first UL SRP field and the second UL SRP field may be any one of a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, or a UL SRP4 field, and the first UL SRP field is different from the second UL SRP field. For example, the first UL SRP field is a UL SRP1 field, the second UL SRP field is a UL SRP2 field, and the other UL SRP fields (i.e., the UL SRP3 field and the UL SRP4 field) are reserved or used for another purpose.
[0064] Optionally, the second indication information may be 1 to 4 bits.
[0065] Optionally, when the bandwidth of the EHT TB PPDU is 20 MHz, the value of the first UL SRP field is the same as the value of the second UL SRP field, and both the first UL SRP field and the second UL SRP field indicate SRP values of the 20 MHz bandwidth.
[0066] In this solution, when the trigger frame indicates that the EHT station is scheduled to transmit only the EHT TB PPDU, only two UL SRP fields in the trigger frame (the other two UL SRP fields are reserved) are used to indicate the SRP values in the lower and upper half of the frequency of the total bandwidth, respectively. The EHT station copies the values of the two UL SRP fields in the trigger frame to the two SRP fields in the U-SIG. This overcomes the insufficiency of the SRP fields in the U-SRP and reduces the indication overhead in the trigger frame.
[0067] According to a fourteenth aspect, the present application provides a method for determining a spatial reuse parameter field in a PPDU. The method includes: receiving a trigger frame by a STA, where the trigger frame carries second indication information, the second indication information indicating that the trigger frame is used to schedule the station to transmit only an EHT TB PPDU; and transmitting the EHT TB PPDU by the STA. A common information field of the trigger frame includes a first UL SRP field and a second UL SRP field, where the first UL SRP field indicates an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, and the second UL SRP field indicates an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both of the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. In other words, the first UL SRP field indicates the SRP value of a bandwidth with a lower frequency within the bandwidth of the EHT TB PPDU, and the second UL SRP field indicates the SRP value of a bandwidth with a higher frequency within the bandwidth of the EHT TB PPDU. For example, the bandwidth of the EHT TB PPDU is 80 MHz. The first UL SRP field indicates a lower 40 MHz bandwidth within the 80 MHz bandwidth, and the second UL SRP field indicates a higher 40 MHz bandwidth within the 80 MHz bandwidth. The bandwidth of the EHT TB PPDU can be any one of 40 MHz, 80 MHz, 160 MHz, and 320 MHz.
[0068] Therefore, the value indicated in the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG is equal to the value indicated by the second UL SRP field.
[0069] Optionally, the first UL SRP field and the second UL SRP field may be any one of a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, or a UL SRP4 field, and the first UL SRP field is different from the second UL SRP field. For example, the first UL SRP field is a UL SRP1 field, the second UL SRP field is a UL SRP2 field, and the other UL SRP fields (i.e., the UL SRP3 field and the UL SRP4 field) are reserved or used for another purpose.
[0070] Optionally, the second indication information may be 1 to 4 bits.
[0071] Optionally, when the bandwidth of the EHT TB PPDU is 20 MHz, the value of the first UL SRP field is the same as the value of the second UL SRP field, and both the first UL SRP field and the second UL SRP field indicate SRP values of the 20 MHz bandwidth.
[0072] According to a fifteenth aspect, the present application provides a communication device. The communication device may be an AP or a chip, such as a Wi-Fi chip, within the AP. The communication device includes: a processing unit configured to generate a trigger frame, where the trigger frame holds second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, a common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of the first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of the second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth; and a transceiver unit configured to transmit the trigger frame. The transceiver unit is further configured to receive an EHT TB PPDU transmitted by a station, wherein a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by a first UL SRP field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by a second UL SRP field, and the bandwidth of the EHT TB PPDU is any one of 40 MHz, 80 MHz, 160 MHz, and 320 MHz.
[0073] Optionally, the first UL SRP field and the second UL SRP field may be any one of a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, or a UL SRP4 field, and the first UL SRP field is different from the second UL SRP field. For example, the first UL SRP field is a UL SRP1 field, the second UL SRP field is a UL SRP2 field, and the other UL SRP fields (i.e., the UL SRP3 field and the UL SRP4 field) are reserved or used for another purpose.
[0074] Optionally, the second indication information may be 1 to 4 bits.
[0075] Optionally, when the bandwidth of the EHT TB PPDU is 20 MHz, the value of the first UL SRP field is the same as the value of the second UL SRP field, and both the first UL SRP field and the second UL SRP field indicate SRP values of the 20 MHz bandwidth.
[0076] According to a sixteenth aspect, the present application provides a communication device. The communication device may be a station (STA) or a chip within the station, for example, a Wi-Fi chip. The communication device includes: a transceiver unit configured to receive a trigger frame, where the trigger frame holds second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, a common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and a frequency of the first bandwidth being lower than a frequency of the second bandwidth; and a processing unit configured to generate an EHT TB PPDU. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field. The transceiver unit is further configured to transmit the EHT TB PPDU.
[0077] Optionally, the processing unit is further configured to set a value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU to a value indicated by the first UL SRP field, and set a value indicated by the SRP2 field in the U-SIG to a value indicated by the second UL SRP field.
[0078] Optionally, the first UL SRP field and the second UL SRP field may be any one of a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, or a UL SRP4 field, and the first UL SRP field is different from the second UL SRP field. For example, the first UL SRP field is a UL SRP1 field, the second UL SRP field is a UL SRP2 field, and the other UL SRP fields (i.e., the UL SRP3 field and the UL SRP4 field) are reserved or used for another purpose.
[0079] Optionally, the second indication information may be 1 to 4 bits.
[0080] Optionally, when the bandwidth of the EHT TB PPDU is 20 MHz, the value of the first UL SRP field is the same as the value of the second UL SRP field, and both the first UL SRP field and the second UL SRP field indicate SRP values of the 20 MHz bandwidth.
[0081] According to a seventeenth aspect, the present application provides a spatial reuse method, the method including: determining, by a communication device, a transmit power of a PPDU based on values indicated by an SRP1 field and an SRP2 field in a U-SIG of an EHT TB PPDU, respectively, and / or values indicated by four UL SRP fields included in a common information field of a trigger frame; and transmitting, by the communication device, the PPDU based on the transmit power of the PPDU.
[0082] The communication device may be an AP or a STA. If the communication device is an AP, the PPDU is a parameterized spatial reuse reception (PSRR) PPDU. If the communication device is a STA, the PPDU is a response frame in response to the PSRR PPDU.
[0083] Optionally, before the step of the communication device determining the transmit power of the PPDU, the method further includes a step of the communication device receiving a trigger frame, where the trigger frame includes four UL SRP fields, and a value indicated by one UL SRP field is the sum of the transmit power of the first AP on a subchannel and the maximum interference power received by the first AP. The communication device and the first AP are located in the same overlapping basic service set (OBSS). The "first AP" in this specification refers to the AP that transmits the trigger frame and is also the AP in the above-mentioned method for determining the spatial reuse parameter field in the PPDU. The communication device and the first AP are not the same device.
[0084] Optionally, before the step of the communication device determining the transmit power of the PPDU, the method further includes a step of the communication device receiving an EHT TB PPDU, where the U-SIG of the EHT TB PPDU includes an SRP1 field and an SRP2 field. The value indicated by the SRP1 field is the sum of the transmit power of the first AP on the first subchannel and the maximum interference power received by the first AP. The value indicated by the SRP2 field is the sum of the transmit power of the first AP on the second subchannel and the maximum interference power received by the first AP. The bandwidth of the first subchannel and the bandwidth of the second subchannel are equal to half the bandwidth of the EHT TB PPDU, and the frequency of the first subchannel is lower than the frequency of the second subchannel. The communication device and the first AP are located in the same OBSS. The "first AP" in this specification is the AP that transmits the trigger frame and is also the AP in the above-mentioned method of determining the spatial reuse parameter field in the PPDU. If the station transmitting the EHT TB PPDU is considered to be the first STA, the communication device, the first STA and the first AP are different devices, and the communication device can receive information transmitted by the first STA and the first AP.
[0085] This solution provides a spatial reuse method to make the two SRP field cases in the U-SIG and the EHT TB PPDU compatible, and the spatial reuse is implemented in accordance with the EHT standard. In this way, devices in overlapping basic service sets can transmit simultaneously and improve transmission efficiency.
[0086] According to an eighteenth aspect, the present application provides a communication device. The communication device may be an AP or a STA. Furthermore, the communication device may be a chip in the AP or a STA, for example, a Wi-Fi chip. The communication device includes: a determination unit configured to determine a transmit power of a PPDU based on values indicated by an SRP1 field and an SRP2 field included in a U-SIG of an EHT TB PPDU and / or values indicated by four UL SRP fields included in a common information field of a trigger frame; and a transceiver unit configured to transmit the PPDU based on the transmit power of the PPDU.
[0087] The communication device may be an AP or a STA. If the communication device is an AP, the PPDU is a PSRR PPDU. If the communication device is a STA, the PPDU is a response frame in response to the PSRR PPDU.
[0088] Optionally, the transceiver unit is further configured to receive a trigger frame, where the trigger frame includes four UL SRP fields. A value indicated by one UL SRP field is the sum of the transmit power of the first AP on one subchannel and the maximum interference power received by the first AP. The communication device and the first AP are located in the same overlapping basic service set (OBSS). The "first AP" in this specification refers to the AP that transmits the trigger frame, and also refers to the AP in the above-mentioned method for determining the spatial reuse parameter field in the PPDU. The communication device and the first AP are not the same device.
[0089] Optionally, the transceiver unit is further configured to receive an EHT TB PPDU, where the U-SIG of the EHT TB PPDU includes an SRP1 field and an SRP2 field. The value indicated by the SRP1 field is the sum of the transmit power of the first AP on the first subchannel and the maximum interference power received by the first AP. The value indicated by the SRP2 field is the sum of the transmit power of the first AP on the second subchannel and the maximum interference power received by the first AP. The bandwidth of the first subchannel and the bandwidth of the second subchannel are equal to half the bandwidth of the EHT TB PPDU, and the frequency of the first subchannel is lower than the frequency of the second subchannel. The communication device and the first AP are located in the same OBSS. The "first AP" in this specification is the AP that transmits the trigger frame, and is also the AP in the above-mentioned method for determining the spatial reuse parameter field in the PPDU. If the station transmitting the EHT TB PPDU is considered to be the first STA, the communication device, the first STA and the first AP are different devices, and the communication device can receive information transmitted by the first STA and the first AP.
[0090] According to a 19th aspect, the present application provides a communication device, specifically the AP according to the first aspect, including a processor and a transceiver. The processor is configured to generate a trigger frame, and the trigger frame is used to trigger a station to transmit an EHT TB PPDU. The transceiver is configured to transmit the trigger frame, and the transceiver is further configured to receive the EHT TB PPDU transmitted by the station. Values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are each determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame.
[0091] According to a twentieth aspect, the present application provides a communication device, specifically the STA according to the second aspect, including a processor and a transceiver. The transceiver is configured to receive a trigger frame, and the trigger frame is used to trigger the STA to transmit an EHT TB PPDU. The processor is configured to generate the EHT TB PPDU, and the transceiver is further configured to transmit the EHT TB PPDU. Values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are each determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame. Optionally, the processor is further configured for the STA to set SRP1 and SRP2 fields included in the U-SIG of the EHT TB PPDU based on values indicated by the four UL SRP fields in the common information field of the trigger frame.
[0092] According to a 21st aspect, the present application provides a communication device, specifically the AP according to the fifth aspect, including a processor and a transceiver. The processor is configured to generate a trigger frame, the trigger frame being used to trigger a station to transmit an EHT TB PPDU, a common information field of the trigger frame including four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value. The transceiver is configured to transmit the trigger frame. The transceiver is further configured to receive an EHT TB PPDU transmitted by the station, wherein a value of the SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by one of the two UL SRP fields indicating the same value, and a value of the SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by one of the other two UL SRP fields indicating the same value.
[0093] According to a twenty-second aspect, the present application provides a communication device, specifically the STA according to the sixth aspect, including a processor and a transceiver. The transceiver is configured to receive a trigger frame, the trigger frame being used to trigger a station to transmit an EHT TB PPDU, a common information field of the trigger frame including four uplink spatial reuse parameter UL SRP fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value. The processor is configured to generate an EHT TB PPDU, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU equal to a value indicated by either of the other two UL SRP fields indicating the same value. The transceiver is further configured to transmit the EHT TB PPDU. Optionally, the processor is further configured to set a value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU to a value indicated by any UL SRP field in a first group of the two groups, and to set a value indicated by the SRP2 field in the U-SIG to a value indicated by any UL SRP field in a second group of the two groups.
[0094] According to a 23rd aspect, the present application provides a communication device, specifically the AP according to the 9th aspect, including a processor and a transceiver. The processor is configured to generate a trigger frame, the trigger frame is used to trigger a station to transmit an EHT TB PPDU, the trigger frame holds first indication information, the first indication information indicating a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The transceiver is configured to transmit the trigger frame. The transceiver unit is further configured to receive the EHT TB PPDU transmitted by the station, the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU being determined based on the first indication information.
[0095] According to a 24th aspect, the present application provides a communication device, specifically the STA according to the 10th aspect, including a processor and a transceiver. The transceiver is configured to receive a trigger frame, the trigger frame is used to trigger a station to transmit an EHT TB PPDU, the trigger frame holds first indication information, the first indication information indicating a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The processor is configured to generate the EHT TB PPDU, the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information. The transceiver is further configured to transmit the EHT TB PPDU. Optionally, the processor is further configured to set a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU based on an indication of the first indication information.
[0096] According to a 25th aspect, the present application provides a communication device, specifically the AP according to the 13th aspect, including a processor and a transceiver. The processor is configured to generate a trigger frame, the trigger frame holding second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, the common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of a second bandwidth in a bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. The transceiver is configured to transmit the trigger frame. The transceiver is further configured to receive the EHT TB PPDU transmitted by the station. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field.
[0097] According to a 26th aspect, the present application provides a communication device, specifically the STA according to the 14th aspect, including a processor and a transceiver. The transceiver is configured to receive a trigger frame, the trigger frame holding second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, a common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. The processor is configured to generate an EHT TB PPDU. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field. The transceiver is further configured to transmit the EHT TB PPDU. Optionally, the processor is further configured to set a value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU to a value indicated by the first UL SRP field, and to set a value indicated by the SRP2 field in the U-SIG to a value indicated by the second UL SRP field.
[0098] According to a 27th aspect, the present application provides a communication apparatus, specifically the communication device according to the 17th aspect, including a processor and a transceiver. The processor is configured to determine a transmit power of the PPDU based on values indicated by the SRP1 field and the SRP2 field included in the U-SIG of the EHT TB PPDU and / or values indicated by four UL SRP fields included in the common information field of the trigger frame. The transceiver is configured to transmit the PPDU based on the transmit power of the PPDU.
[0099] The communication device may be an AP or a STA. If the communication device is an AP, the PPDU is a PSRR PPDU. If the communication device is a STA, the PPDU is a response frame in response to the PSRR PPDU.
[0100] According to a twenty-eighth aspect, the present application provides an apparatus, the apparatus being implemented in a chip product form and including an input / output interface and a processing circuit.
[0101] In a possible design, the apparatus is a chip in the AP of the first aspect. The processing circuit is configured to generate a trigger frame, which is used to trigger a station to transmit an EHT TB PPDU. The input / output interface is configured to output the trigger frame and transmit the trigger frame through an antenna after processing is performed by using a radio frequency circuit. The input / output interface is further configured to input an EHT TB PPDU transmitted by the station and received by using the antenna and the radio frequency circuit. Values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are respectively determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame. In another implementation, the chip may include the radio frequency circuit.
[0102] In a possible design, the apparatus is an AP according to the fifth aspect. The processing circuit is configured to generate a trigger frame, the trigger frame being used to trigger a station to transmit an EHT TB PPDU, the common information field of the trigger frame including four uplink spatial reuse parameter UL SRP fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value. The input / output interface is configured to output the trigger frame and transmit the trigger frame through an antenna after processing is performed using a radio frequency circuit. The input / output interface is further configured to input an EHT TB PPDU transmitted by the station and received using the antenna and the radio frequency circuit. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields indicating the same value. In another implementation, the chip may include the radio frequency circuit.
[0103] In a possible design, the apparatus is an AP according to the ninth aspect. The processing circuit is configured to generate a trigger frame, the trigger frame being used to trigger a station to transmit an EHT TB PPDU, the trigger frame holding first indication information, the first indication information indicating a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The input / output interface is configured to output the trigger frame and transmit the trigger frame through an antenna after processing is performed using a radio frequency circuit. The input / output interface is further configured to input an EHT TB PPDU transmitted by the station and received using the antenna and the radio frequency circuit. The value of the SRP1 field and / or the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information. In another implementation, the chip may include the radio frequency circuit.
[0104] In a possible design, the apparatus is a chip in the AP of the thirteenth aspect. The processing unit is configured to generate a trigger frame, the trigger frame holding second indication information, the second indication information indicating that the trigger frame is used to schedule stations to transmit only EHT TB PPDUs, the common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of the first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of the second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. The input / output interface is configured to output the trigger frame and transmit the trigger frame through the antenna after processing is performed by using a radio frequency circuit. The input / output interface is further configured to input an EHT TB PPDU transmitted by a station and received by using the antenna and radio frequency circuitry. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field. In another implementation, the chip may include the radio frequency circuitry.
[0105] According to a twenty-ninth aspect, the present application provides another apparatus, the apparatus being implemented in a chip product form and including an input / output interface and a processing circuit.
[0106] In a possible design, the device is a chip in the STA in the second aspect. The input / output interface is configured to input a trigger frame received by using an antenna and a radio frequency circuit, and the trigger frame is used to trigger the device to transmit an EHT TB PPDU. The processing circuit is configured to generate the EHT TB PPDU, and values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are respectively determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame. The input / output interface is further configured to output the EHT TB PPDU and transmit the EHT TB PPDU through the antenna after processing is performed by using the radio frequency circuit. Optionally, the processing circuit is further configured for the STA to set SRP1 and SRP2 fields included in the U-SIG of the EHT TB PPDU based on values indicated by the four UL SRP fields in the common information field of the trigger frame. In another implementation, the chip may include a radio frequency circuit.
[0107] In a possible design, the device is a chip in a STA in the sixth aspect. The input / output interface is configured to input a trigger frame received by using an antenna and a radio frequency circuit, the trigger frame being used to trigger the device to transmit an EHT TB PPDU, and a common information field of the trigger frame including four uplink spatial reuse parameter UL SRP fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value. The processing circuit is configured to generate the EHT TB PPDU, where a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by any UL SRP field in a first group of two groups, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by any UL SRP field in a second group of two groups. The input / output interface is further configured to output the EHT TB PPDU and transmit the EHT TB PPDU through the antenna after processing is performed by using the radio frequency circuit. Optionally, the processing unit is further configured to set a value indicated by an SRP1 field included in the U-SIG of the EHT TB PPDU to a value indicated by either of two UL SRP fields indicating the same value, and to set a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU to a value indicated by either of the other two UL SRP fields indicating the same value. In another implementation, the chip may include a radio frequency circuit.
[0108] In a possible design, the apparatus is a chip in a STA according to the tenth aspect. The input / output interface is configured to input a trigger frame received by using an antenna and a radio frequency circuit, the trigger frame being used to trigger the station to transmit an EHT TB PPDU, the trigger frame carrying first indication information, the first indication information indicating a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The processing circuit is configured to generate the EHT TB PPDU. The value of the SRP1 field and / or the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information. The input / output interface is further configured to output the EHT TB PPDU and transmit the EHT TB PPDU through the antenna after processing is performed by using the radio frequency circuit. Optionally, the processing circuit is further configured to set a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU based on an indication of the first indication information. In another implementation, the chip may include a radio frequency circuit.
[0109] In a possible design, the apparatus is a chip within the STA of the fourteenth aspect. The input / output interface is configured to input a trigger frame received by using an antenna and a radio frequency circuit, the trigger frame carrying second indication information, the second indication information indicating that the trigger frame is used to schedule the station to transmit only an EHT TB PPDU, the common information field of the trigger frame including a first UL SRP field and a second UL SRP field, the first UL SRP field indicating an SRP value of a first bandwidth within a bandwidth of the EHT TB PPDU, the second UL SRP field indicating an SRP value of a second bandwidth within the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth being half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth being lower than the frequency of the second bandwidth. The processing circuit is configured to generate the EHT TB PPDU. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field. The input / output interface is further configured to output the EHT TB PPDU and transmit the EHT TB PPDU through the antenna after processing is performed by using a radio frequency circuit. Optionally, the processing circuit is further configured to set a value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU to a value indicated by the first UL SRP field, and to set a value indicated by the SRP2 field in the U-SIG to a value indicated by the second UL SRP field. In another implementation, the chip may include a radio frequency circuit.
[0110] According to a 30th aspect, the present application provides another apparatus. The apparatus is implemented in the form of a chip product and includes an input / output interface and a processing circuit. The apparatus is a chip in the communication device of the 17th aspect. The processing circuit is configured to determine the transmit power of the PPDU based on the values indicated by the SRP1 field and the SRP2 field included in the U-SIG of the EHT TB PPDU and / or the values indicated by the four UL SRP fields included in the common information field of the trigger frame. The input / output interface is configured to transmit the PPDU through the antenna based on the transmit power of the PPDU after processing is performed using a radio frequency unit. In another implementation, the chip may include the radio frequency circuit.
[0111] The device may be an AP or a STA. If the device is an AP, the PPDU is a PSRR PPDU. If the device is a STA, the PPDU is a response frame in response to the PSRR PPDU.
[0112] According to a thirty-first aspect, the present application provides a computer-readable storage medium storing instructions that, when executed on a computer, enable the computer to perform a method for determining a spatial reuse parameter field in a PPDU according to the first, second, fifth, sixth, ninth, tenth, thirteenth, or fourteenth aspect.
[0113] According to a thirty-second aspect, the present application provides a computer-readable storage medium storing instructions that, when executed on a computer, enable the computer to perform the spatial reuse method of the seventeenth aspect.
[0114] According to a thirty-third aspect, the present application provides a computer program product comprising instructions, which, when executed on a computer, enable the computer to perform the method for determining a spatial reuse parameter field in a PPDU according to the first, second, fifth, sixth, ninth, tenth, thirteenth or fourteenth aspect.
[0115] According to a thirty-fourth aspect, the present application further provides a computer program product comprising instructions which, when executed on a computer, enable the computer to perform the spatial reuse method of the seventeenth aspect.
[0116] In an embodiment of the present application, in a scenario where a trigger frame is used to schedule an EHT station or to simultaneously schedule an HE station and an EHT station, the frame structure of the EHT TB PPDU may not be changed, and the spatial reuse parameter field of the EHT TB PPDU may be set based on the four UL SRP fields in the trigger frame. [Brief explanation of the drawings]
[0117] In order to describe the technical solutions in the embodiments of the present application more clearly, the following briefly describes the accompanying drawings used to describe the embodiments.
[0118] [Figure 1] 1 is a schematic diagram illustrating the architecture of a wireless communication system according to an embodiment of the present application;
[0119] [Figure 2a] 1 is a schematic diagram illustrating the structure of an access point according to an embodiment of the present application;
[0120] [Figure 2b] 1 is a schematic diagram illustrating the structure of a station according to an embodiment of the present application;
[0121] [Figure 3a] 1 is a schematic diagram of an OBSS formed by overlapping one BSS and another BSS.
[0122] [Figure 3b] 1 is a schematic diagram of an OBSS formed by one BSS containing another BSS.
[0123] [Figure 4] 1 is a schematic diagram of a trigger-based uplink scheduling transmission method in the 802.11ax standard.
[0124] [Figure 5a] FIG. 2 is a schematic diagram of a frame format of a trigger frame.
[0125] [Figure 5b] FIG. 1 is a schematic diagram of the frame format of the common information field and user information field in a trigger frame in 802.11ax.
[0126] [Figure 6a] 1 is a schematic diagram of the frame format of the common information field and user information field in the trigger frame in 802.11be.
[0127] [Figure 6b] 1 is a schematic diagram showing the frame structure of an EHT TB PPDU.
[0128] [Figure 7] 1 is a schematic flowchart 1 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application;
[0129] [Figure 8]FIG. 2 is a sequence diagram in which an HE station and an EHT station are simultaneously scheduled to perform uplink data transmission by using a trigger frame according to one embodiment of the present application;
[0130] [Figure 9] 2 is a schematic flowchart 2 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application;
[0131] [Figure 10] 3 is a schematic flowchart 3 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application;
[0132] [Figure 11a] FIG. 10 is a schematic diagram illustrating an SRP within a U-SIG of a trigger frame according to an embodiment of the present application;
[0133] [Figure 11b] FIG. 10 is another schematic diagram illustrating an SRP within a U-SIG of a trigger frame according to an embodiment of the present application;
[0134] [Figure 12] 4 is a schematic flowchart 4 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application;
[0135] [Figure 13] 1 is a schematic flow chart of a spatial reuse method according to an embodiment of the present application;
[0136] [Figure 14] FIG. 2 is a sequence diagram of a spatial reuse method according to an embodiment of the present application.
[0137] [Figure 15] 3 is another schematic flow chart of a spatial reuse method according to an embodiment of the present application;
[0138] [Figure 16] 1 is a schematic diagram illustrating the structure of a communication device 1 according to an embodiment of the present application.
[0139] [Figure 17] 1 is a schematic diagram illustrating the structure of a communication device 2 according to an embodiment of the present application.
[0140] [Figure 18] 1 is a schematic diagram illustrating the structure of a communication device 3 according to an embodiment of the present application.
[0141] [Figure 19] 1 is a schematic diagram illustrating the structure of a communication device 1000 according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION
[0142] The following clearly and completely describes the technical solutions in the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application.
[0143] To facilitate understanding of the method provided in the embodiments of the present application, the following describes the system architecture and / or application scenario of the method provided in the embodiments of the present application. It can be understood that the system architecture and / or application scenario described in the embodiments of the present application are intended to more clearly describe the technical solutions in the embodiments of the present application, and do not constitute limitations on the technical solutions provided in the embodiments of the present application.
[0144] The embodiments of the present application provide a method for determining the spatial reuse parameter field in the PPDU. By using a trigger frame, in a scenario where an EHT station is scheduled or an HE station and an EHT station are scheduled simultaneously, the frame structure of the EHT TB PPDU is not changed. Specifically, the length of the U-SIG field of the EHT TB PPDU is not changed (i.e., remains 8 bits), and the spatial reuse parameter field of the EHT TB PPDU is set based on the four UL SRP fields in the trigger frame. In this way, HE stations and EHT stations may be scheduled by using the same trigger frame, and spatial reuse may be implemented in accordance with the EHT standard. WLAN devices in overlapping basic service sets may perform transmission simultaneously to improve transmission efficiency. The method for determining the spatial reuse parameter field in a PPDU may be applied to a wireless communication system, such as a wireless local area network system. The method for determining the spatial reuse parameter field in a PPDU may be implemented by a communication device in the wireless communication system or a chip or processor in the communication device. The communication device may be an access point device or a station device. Alternatively, the communication device may be a wireless communication device that supports simultaneous transmission on multiple links. For example, the communication device may be referred to as a multi-link device (MLD) or a multi-band device. Compared with a communication device that only supports single-link transmission, a multi-link device has higher transmission efficiency and higher throughput.
[0145] The method for determining a spatial reuse parameter field in a PPDU provided in an embodiment of the present application may be applied to a scenario in which an AP communicates with one or more STAs, a scenario in which an AP communicates with another AP, and a scenario in which a STA communicates with another STA. Please refer to FIG. 1. FIG. 1 is a schematic diagram illustrating the architecture of a wireless communication system according to an embodiment of the present application. As shown in FIG. 1, the wireless communication system may include one or more APs (e.g., AP1 and AP2 in FIG. 1) and one or more STAs (e.g., STA1, STA2, and STA3 in FIG. 1). AP1 and AP2 may be located in the same OBSS. Both the AP and the STA support a WLAN communication protocol. This communication protocol may include 802.11be (also referred to as Wi-Fi 7, EHT protocol) and may further include protocols such as 802.11ax and 802.11ac. Of course, with the continuous evolution and development of communication technology, this communication protocol may further include next-generation protocols of 802.11be, etc. WLAN is used as an example. An apparatus for implementing the methods in this application may be an AP or a STA in a WLAN, or a chip or processing system located in the AP or the STA.
[0146] An access point (e.g., AP1 or AP2 in FIG. 1 ) is a device with wireless communication capabilities, supports communication using a WLAN protocol, and has the capability of communicating with other devices (e.g., stations or other access points) in a WLAN network, and may also have the capability of communicating with other devices. In a WLAN system, an access point may be referred to as an access point station (AP STA). The device with wireless communication capabilities may be an entire device, or a chip or processing system installed in the entire device. A device with a chip or processing system installed may implement the methods and functions of the present embodiment under the control of the chip or processing system. An AP in the present embodiment is a device that provides services for STAs and may support 802.11 series protocols. For example, an AP may be a communication entity, such as a communication server, router, switch, or bridge. An AP may include various types of macro base stations, micro base stations, relay stations, etc. Of course, an AP may alternatively be a chip or processing system within these devices in various forms to implement the methods and functions of the present embodiment.
[0147] A station (e.g., STA1, STA2, or STA3 in FIG. 1) is a device having wireless communication capabilities, supports communication by using a WLAN protocol, and has the ability to communicate with other stations or access points in a WLAN network. In a WLAN system, a station may be referred to as a non-access point station (non-AP STA). For example, a STA is any user communication device that allows a user to communicate with an AP and further with a WLAN. A device having wireless communication capabilities may be an entire device, or a chip or processing system installed in the entire device. A device equipped with a chip or processing system may implement the methods and functions in the embodiments of the present application under the control of the chip or processing system. For example, a STA may be a user equipment capable of connecting to the Internet, such as a tablet computer, desktop computer, laptop computer, notebook computer, ultra-mobile personal computer (UMPC), handheld computer, notebook, personal digital assistant (PDA), or mobile phone. Alternatively, the STA may be an Internet of Things node in the Internet of Things, an in-vehicle communication device in the Internet of Vehicles, an entertainment device, a gaming device or system, or a global positioning system device, etc. The STA may alternatively be a chip and processing system within the aforementioned terminals.
[0148] WLAN systems can provide high-speed, low-latency transmission. With the continuous evolution of WLAN application scenarios, WLAN systems will be applied in more scenarios and industries, such as the Internet of Things industry, Internet of Vehicles industry, banking industry, corporate offices, stadium exhibition halls, concert halls, hotel rooms, dormitories, hospital rooms, classrooms, supermarkets, squares, streets, factories and warehouses. Of course, devices (such as access points or stations) supporting WLAN communication may be sensor nodes in a smart city (e.g., smart water meters, smart electricity meters, or smart air detection nodes), smart devices in a smart home (e.g., smart cameras, projectors, displays, televisions, stereos, refrigerators, or washing machines), nodes in the Internet of Things, entertainment terminals (e.g., AR, VR, or other wearable devices), smart devices in a smart office (e.g., printers, projectors, loudspeakers, or stereos), Internet of Vehicle devices in the Internet of Vehicles, infrastructure in daily life scenarios (e.g., vending machines, supermarket self-service navigation stations, self-service cash register devices, or self-service ordering machines), and devices in large sports and music venues, etc. The specific forms of the STAs and APs are not limited in the embodiments of the present application and are merely examples for explanation in this specification.
[0149] The 802.11 standard focuses on the physical layer (PHY) and medium access control (MAC) layers. See FIG. 2a for an example. FIG. 2a is a schematic diagram illustrating the structure of an access point according to one embodiment of the present application. The AP may be multi-antenna / multi-radio frequency or single-antenna / single-radio frequency. The antenna / radio frequency is configured to transmit / receive data packets. In one implementation, the antenna or radio frequency part of the AP may be separated from the AP body, i.e., remotely located. In FIG. 2a, the AP may include a physical layer processing circuit and a medium access control layer processing circuit. The physical layer processing circuit may be configured to process physical layer signals, and the MAC layer processing circuit may be configured to process MAC layer signals. See FIG. 2b for another example. FIG. 2b is a schematic diagram illustrating the structure of a station according to one embodiment of the present application. FIG. 2b is a schematic diagram illustrating the structure of a single-antenna / radio frequency STA. In a practical scenario, the STA may be a multi-antenna / multi-radio frequency device with more than two antennas. The antennas / radio frequencies are configured to transmit / receive data packets. In one implementation, the antenna or radio frequency part of the STA may be separated from the main body of the STA, i.e., may be remotely located. In FIG. 2b, the STA may include a PHY processing circuit and a MAC processing circuit. The physical layer processing circuit may be configured to process physical layer signals, and the MAC layer processing circuit may be configured to process MAC layer signals.
[0150] The above briefly describes the system architecture in the embodiments of the present application. In order to better understand the technical solutions in the embodiments of the present application, the following describes the relevant contents of the embodiments of the present application.
[0151] 1. Overlapping Basic Service Sets (OBSSs)
[0152] Overlapping basic service set: A basic service set and a basic service set of a station operate on the same channel and are (partially or completely) within the basic service area of the station's basic service set. An overlapping basic service area is also called an overlapping basic service set (OBSS): a basic service set (BSS) that operates on the same channel as the station's (STA's) BSS and is (partially or completely) within its basic service area (BSA). A basic service area is an area that contains members of the basic service set and may include members of other BSSs (basic service area (BSA): an area that contains members of the basic service set (BSS), which may include members of other BSSs).
[0153] In other words, the overlapping portion between the basic service area of one BSS and the basic service area of another BSS is an OBSS. It can be understood that overlapping in this specification can mean that the basic service area of one BSS partially overlaps or includes the basic service area of another BSS, specifically, that the basic service area of one BSS is included in the basic service area of another BSS. See Figure 3a. Figure 3a is a schematic diagram of an OBSS formed by partially overlapping one BSS and another BSS. In Figure 3a, AP1, STA1, and STA3 belong to BSS1, and AP2 and STA2 belong to BSS2. There is an overlapping area between BSS1 and BSS2, and AP1 and AP2 are located within the overlapping area between BSS1 and BSS2, or in other words, they are located within the OBSS formed by BSS1 and BSS2. See Figure 3b. Figure 3b is a schematic diagram of an OBSS formed by one BSS including another BSS. In Figure 3b, AP1, STA1, and STA3 belong to BSS1, and AP2 and STA2 belong to BSS2. BSS1 includes BSS2, and AP1 and AP2 are located within the overlapping area between BSS1 and BSS2 (i.e., the basic service area of BSS2 in Figure 3b), in other words, within the OBSS formed by BSS1 and BSS2.
[0154] Optionally, WLAN devices located in the same OBSS may receive information from two BSSs. For example, FIG. 3a is used as an example. When AP1 and STA1 located in the same BSS perform data transmission, AP2 located in the other BSS may receive information transmitted by AP1 and STA1, or AP2 may also receive information transmitted by STA3. AP2 may adaptively adjust the power with which AP2 transmits a PPDU to STA2 based on the spatial reuse parameter forwarded by AP1 to implement the simultaneous transmission within the OBSS. Similarly, when AP2 and STA2 in the same BSS perform data transmission, AP1 in the other BSS may receive the information transmitted by AP2. Alternatively, AP1 may adaptively adjust the power with which AP1 transmits a PPDU to STA1 and / or STA3 based on the spatial reuse parameter forwarded by AP2 to implement the simultaneous transmission within the OBSS.
[0155] [2. Trigger-based uplink scheduling transmission method in the 802.11ax standard]
[0156] Please refer to Figure 4. Figure 4 is a schematic diagram of a trigger-based uplink scheduling transmission method in the 802.11ax standard. As shown in Figure 4, the trigger-based uplink scheduling transmission method in the 802.11ax standard specifically includes: (1) an AP transmitting a trigger frame, where the trigger frame is used to schedule one or more STAs to transmit an uplink trigger-based HE PPDU. The trigger-based HE PPDU may be abbreviated as HE TB PPDU. Please refer to Figure 5a. Figure 5a is a schematic diagram of a frame format of a trigger frame. As shown in Figure 5a, the trigger frame includes a common information field and a user information list field. The common information field includes common information that all STAs need to read and includes an AP TX Power field and an uplink spatial reuse (UL Spatial Reuse) field. The user information list field includes one or more user information fields, and one user information field includes information that one STA needs to read. Please refer to Figure 5b. 5b is a schematic diagram of the frame format of the common information field and the user information field in the trigger frame in 802.11ax. As shown in FIG. 5b, in the user information field, an association identifier 12 (AID12) indicates the association identifier of the STA, and a resource unit (RU) allocation subfield indicates the location of a specific resource unit allocated to the STA (STA indicated by AID12).
[0157] (2) After receiving the trigger frame, one or more STAs parse the trigger frame to obtain the user information field that matches the AID of the STA, and then transmit the HE TB PPDU on the RU indicated by the resource unit allocation subfield in the user information field.
[0158] (3) After receiving the HE TB PPDU, the AP returns an acknowledgement frame to one or more STAs to acknowledge that the AP has received the HE TB PPDU.
[0159] See Table 1 below for the meaning and function of fields that may optionally be included in the HE TB PPDU. [Table 1] [Table 1]
[0160] [3. EHT TB PPDU]
[0161] The trigger-based uplink scheduling transmission method in 802.11ax is still used in 802.11be, and the frame format and method procedure of the trigger frame in 802.11be are similar to those in 802.11ax. Please refer to Figure 6a. Figure 6a is a schematic diagram of the frame format of the common information field and the user information field in the trigger frame in 802.11be. The trigger frame shown in Figure 6a can be used to schedule an EHT station to transmit uplink data, for example, to schedule an EHT station to transmit an EHT TB PPDU. It should be understood that Figure 6a is only an example. In this embodiment of the present application, the UL SRP field in the uplink spatial reuse field of the common information field is relevant. Other fields in the trigger frame may be different from those in Figure 6a, in other words, may be represented in a different format. This is not limited in this embodiment of the present application.
[0162] Please refer to Figure 6b, which is a schematic diagram showing the frame structure of the EHT TB PPDU. As shown in Figure 6b, the EHT TB PPDU includes a legacy short training sequence, a legacy long training sequence, a legacy signal field, a repeated legacy signal field, a universal signal field, a very high throughput short training sequence, a very high throughput long training sequence, a data field, and a data packet extension field. For the meanings of the fields included in the EHT TB PPDU, please refer to Table 2 below. [Table 2] [Table 2]
[0163] Due to the limited length of the U-SIG in the EHT TB PPDU (it is only 1 byte, i.e., 8 bits), the U-SIG contains at most two SRP fields, each of which is 4 bits long, as can be seen from the frame structure of the EHT TB PPDU in Figure 6b. The common information field of the trigger frame holds four UL SRP fields, and the HE-SIG-A field of the HE TB PPDU also contains four SRP fields that correspond one-to-one to the four UL SRP fields in the trigger frame. Therefore, in a scenario where an EHT station is scheduled to transmit an uplink EHT TB PPDU using a trigger frame, the SRP field in the EHT TB PPDU cannot be set according to the method for setting the SRP field in the HE TB PPDU. Therefore, how to set spatial reuse parameters for scheduling HE and EHT stations using the same trigger frame has become an urgent problem to be solved.
[0164] The embodiments of the present application provide a method for determining the spatial reuse parameter field in the PPDU. For different bandwidths, the uplink spatial reuse parameter in the trigger frame and the spatial reuse parameter in the EHT TB PPDU are set without changing the frame structure of the EHT TB PPDU, so that HE stations and EHT stations can be scheduled by using the same trigger frame, and spatial reuse can be implemented in the EHT standard. In this way, WLAN devices in overlapping basic service sets can perform transmissions simultaneously and improve transmission efficiency.
[0165] The following describes in detail the technical solutions provided in this application with reference to more accompanying drawings.
[0166] The technical solutions provided in this application are described using embodiments 1 to 5. Embodiment 1 describes how to set spatial reuse parameters in EHT TB PPDUs of different bandwidths (20 / 40 / 80 / 160 / 320 MHz) without changing the UL SRP value in the trigger frame of 802.11ax. Embodiment 2 describes how to set the UL SRP value in the trigger frame and the spatial reuse parameters in the trigger-based PPDUs of different bandwidths (80 / 160 / 320 MHz). Embodiment 3 describes that in the 320 MHz bandwidth, a special user information field in the trigger frame is used to separately indicate the spatial reuse parameters in the EHT TB PPDU. Embodiment 4 describes how to set the UL SRP value in the trigger frame when an EHT station is scheduled to transmit only the EHT TB PPDU. Embodiment 5 describes a spatial reuse method based on the spatial reuse parameters in 802.11be. It can be understood that any combination of the technical solutions described in Embodiments 1 to 5 of the present application can form a new embodiment.
[0167] It can be understood that the AP and STA in this application may be single-link devices, or may be functional entities or functional units in a multi-link device. For example, the AP in this application is the AP in an AP multi-link device, and the STA is the STA in a station multi-link device. This is not limited in this application.
[0168] It may be understood that the following describes the method provided in the present application using a communication system including one or more APs and one or more STAs as an example. The AP supports the 802.11be protocol (also referred to as Wi-Fi 7, EHT protocol) and may further support another WLAN communication protocol, such as 802.11ax and 802.11ac. At least one STA among the one or more STAs supports the 802.11be protocol; in other words, there is at least one EHT station. It should be understood that the AP and STA in the present application may also support a next-generation protocol of 802.11be. In other words, the method provided in the present application is applicable not only to the 802.11be protocol but also to the next-generation protocol of 802.11be. [Embodiment 1]
[0169] Embodiment 1 of the present application mainly describes setting spatial reuse parameters in EHT TB PPDU of 20 / 40 / 80 / 160 / 320 MHz bandwidth without changing the UL SRP value in the trigger frame (or without changing the content of the trigger frame).
[0170] Please refer to Figure 7. Figure 7 is a schematic flowchart 1 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application. As shown in Figure 7, the method for determining a spatial reuse parameter field in a PPDU includes, but is not limited to, the following steps:
[0171] S101: The AP sends a trigger frame, which is used to trigger the station to send an EHT TB PPDU (ultra-high throughput trigger-based physical layer protocol data unit).
[0172] S102: The STA receives a trigger frame.
[0173] S103: The STA transmits an EHT TB PPDU. The values indicated by the spatial reuse parameters SRP1 field and SRP2 field in the universal signal field U-SIG of the EHT TB PPDU are determined based on the values indicated by one or more uplink spatial reuse parameters UL SRP field in the common information field of the trigger frame.
[0174] S104: The AP receives the EHT TB PPDU sent by the station.
[0175] Optionally, the trigger frame may be used not only to trigger the EHT station to transmit the EHT TB PPDU, but also to trigger the HE station to transmit the HE TB PPDU. Alternatively, the trigger frame may be used only to trigger the EHT station to transmit the EHT TB PPDU, or only to trigger the HE station to transmit the HE TB PPDU. This embodiment of the present application focuses on the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, but is not limited to the case where the trigger frame is used only to trigger the EHT station to transmit the EHT TB PPDU, and may also include the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, or the HE station / EHT station to simultaneously transmit the HE TB PPDU. It may be understood that the HE station can transmit only the HE TB PPDU, while the EHT station may be compatible with the 802.11ax protocol. Thus, an EHT station may transmit both an HE TB PPDU and an EHT TB PPDU.
[0176] Optionally, the U-SIG of the EHT TB PPDU includes only two spatial reuse parameter (SRP) fields, the SRP1 field and the SRP2 field. The SRP1 field and the SRP2 field respectively indicate SRP values on different subchannels, and the SRP value is equal to the sum of the transmit power of the AP on the corresponding subchannel and the maximum interference power received by the AP. The values indicated by the SRP1 field and the SRP2 field may be determined based on the values indicated by the four UL SRP fields in the common information field of the trigger frame. It should be understood that the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU may have other names, for example, the PSR1 field and the PSR2 field. This is not limited in this embodiment of the present application.
[0177] Specifically, the trigger frame may be broadcast. After the AP transmits the trigger frame, one or more stations may receive the trigger frame. When the trigger frame is used to simultaneously schedule an EHT station to transmit an EHT TB PPDU and an HE station to transmit an HE TB PPDU, the EHT station may set the values indicated by the SRP1 and SRP2 fields in the U-SIG of the EHT TB PPDU based on the values indicated by one or more UL SRP fields in the common information field of the received trigger frame, and transmit the EHT TB PPDU. In other words, the EHT station may alternatively set the values indicated by the SRP1 and SRP2 fields in the U-SIG of the EHT TB PPDU based on the values indicated by one or more UL SRP fields in the common information field of the received trigger frame. The HE station may copy the values of the four UL SRP fields in the received trigger frame one by one into the four SRP fields in the HE TB PPDU, and transmit the HT TB PPDU.
[0178] Optionally, the correspondence between the values and meanings of the UL SRP field or SRP field in this application may be shown in Table 3 below. The uplink spatial reuse parameter (UL SRP) field may also be referred to as the uplink parameterized spatial reuse (UL PSR) field. In this application, the UL SRP and UL PSR may be used interchangeably, that is, the SRP and PSR may be used interchangeably. It may be understood that the value of the spatial reuse parameter is determined by the AP and is equal to the sum of the AP's transmit power and the maximum interference power received by the AP. [Table 3] [Table 3]
[0179] It may be understood that in this application, the value indicated by the UL SRP field may be any value in the second column in Table 3, and the value of the UL SRP field may be any value in the first column in Table 3.
[0180] Please refer to Figure 8. Figure 8 is a sequence diagram of simultaneously scheduling an HE station and an EHT station to perform uplink data transmission by using a trigger frame according to one embodiment of the present application. As shown in Figure 8, an AP transmits a trigger frame, which is used to simultaneously schedule an HE station (e.g., STA1 in Figure 8) and an EHT station (e.g., STA2 in Figure 8) to perform uplink data transmission. After STA1 and STA2 receive the trigger frame, STA1 transmits an HE TB PPDU and STA2 transmits an EHT TB PPDU within a certain time interval (e.g., short inter-frame space). After receiving the uplink multi-user PPDU, the AP returns a Multiple STA Block Acknowledgment (M-BA) frame within a certain time interval (e.g., short inter-frame space) to acknowledge that the AP has received the PPDU transmitted by one or more stations. It can be understood that the trigger frame shown in Figure 8 can be used to schedule only EHT stations, in other words, both STA1 and STA2 in Figure 8 are EHT stations. It should be further understood that the trigger frame shown in Figure 8 can also be used to schedule stations to transmit only EHT TB PPDUs, in other words, both STA1 and STA2 in Figure 8 transmit EHT TB PPDUs.
[0181] The following describes in detail the configuration of the SRP1 and SRP2 fields in the U-SIG of the EHT TB PPDU of different bandwidths. It can be seen that the common information field of the trigger frame includes four UL SRP fields: a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field.
[0182] [1. 20MHz bandwidth]
[0183] In a 20 MHz bandwidth, only one 20 MHz sub-channel is included, and only one UL SRP value and one SRP value are required. However, to unify the indication format, four UL SRP fields are still transmitted in the trigger frame, and the values of the four UL SRP fields are the same, that is, UL SRP1 = UL SRP2 = UL SRP3 = UL SRP4. In other words, in a 20 MHz bandwidth, the values indicated by the four UL SRP fields included in the trigger frame are the same, or the values of the four UL SRP fields included in the trigger frame are the same.
[0184] For an EHT station transmitting an EHT TB PPDU, if a 20 MHz bandwidth is used to schedule the EHT TB PPDU (i.e., the bandwidth of the EHT TB PPDU is 20 MHz), the U-SIG of the EHT TB PPDU includes two SRP fields (i.e., an SRP1 field and an SRP2 field). Both the value indicated by the SRP1 field and the value indicated by the SRP2 field are equal to the value indicated by any one of the four UL SRP fields of the trigger frame. In other words, if the bandwidth of the EHT TB PPDU is 20 MHz, both the value of the SRP1 field and the value of the SRP2 field in the U-SIG are equal to the value of any one of the UL SRP fields in the trigger frame, which can be expressed as SRP1 = SRP2 = any one of the UL SRPs.
[0185] For an HE or EHT station transmitting an HE TB PPDU, if a 20 MHz bandwidth is used to schedule the HE TB PPDU (i.e., the bandwidth of the HE TB PPDU is 20 MHz), the values of the four SRP fields in the HE-SIG-A of the HE TB PPDU are still copied from the four UL SRP values in the trigger frame.
[0186] It can be understood that the four SRP fields in the HE-SIG-A of the HE TB PPDU are described in comparison with the settings of the SRP1 and SRP2 fields in the U-SIG of the EHT TB PPDU in this embodiment of the present application. In this embodiment of the present application, the settings of the four SRP fields in the HE-SIG-A of the HE TB PPDU are not changed, that is, the values of the four UL SRP fields in the trigger frame are copied one by one.
[0187] [2. 40MHz Bandwidth]
[0188] In a 40 MHz bandwidth, the trigger frame still carries four UL SRP fields, with the value of the UL SRP1 field being the same as the value of the UL SRP3 field, and the value of the UL SRP2 field being the same as the value of the UL SRP4 field, i.e., UL SRP1 = UL SRP3 and UL SRP2 = UL SRP4. Specifically, in a 40 MHz bandwidth, the UL SRP1 field and the UL SRP3 field included in the trigger frame each indicate the SRP value of the first 20 MHz subchannel (i.e., the lower 20 MHz subchannel) in the 40 MHz bandwidth in ascending frequency order, and the values indicated by the UL SRP1 field and the UL SRP3 field are the same. In other words, the values of the UL SRP1 field and the UL SRP3 field are the same. The UL SRP2 field and the UL SRP4 field included in the trigger frame each indicate the SRP value of the second 20 MHz subchannel (i.e., the higher 20 MHz subchannel) in the 40 MHz bandwidth in ascending frequency order, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same. In other words, the values of the UL SRP2 and UL SRP4 fields are the same.
[0189] For an EHT TB PPDU with a 40 MHz bandwidth, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field; and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. In other words, when the bandwidth of the EHT TB PPDU is 40 MHz, the value of the SRP1 field in the U-SIG is equal to the value of the UL SRP1 field or the UL SRP3 field in the trigger frame, which can be expressed as SRP1 = UL SRP1 = UL SRP3. The value of the SRP2 field in the U-SIG is equal to the value of the UL SRP2 field or the UL SRP4 field in the trigger frame, which can be expressed as SRP2 = UL SRP2 = UL SRP4. In other words, in a 40 MHz bandwidth, the two SRP fields in the U-SIG correspond to the UL SRP1 field and the UL SRP2 field (or the UL SRP3 field and the UL SRP4 field), respectively, and each SRP field in the U-SIG indicates an SRP value on a 20 MHz subchannel.
[0190] For the HE TB PPDU (with 40 MHz bandwidth), the values of the four SRP fields in the HE-SIG-A of the HE TB PPDU are still copied from the four UL SRP values in the trigger frame.
[0191] [3. 80MHz or 160MHz bandwidth]
[0192] The 80 MHz bandwidth includes four 20 MHz subchannels, and the common information field of the trigger frame includes four UL SRP fields, each indicating the SRP value of the four 20 MHz subchannels on the 80 MHz channel in ascending frequency order. Similarly, the 160 MHz bandwidth includes four 40 MHz subchannels, and the four UL SRP fields in the trigger frame each indicating the SRP value of the four 40 MHz subchannels on the 160 MHz channel in ascending frequency order.
[0193] For the HE TB PPDU, the four SRP fields in the HE-SIG-A correspond one-to-one to the four UL SRP fields in the trigger frame. For example, the value of the SRP1 field in the HE-SIG-A is equal to the value of the UL SRP1 field, the value of the SRP2 field in the HE-SIG-A is equal to the value of the UL SRP2 field, the value of the SRP3 field in the HE-SIG-A is equal to the value of the UL SRP3 field, and the value of the SRP4 field in the HE-SIG-A is equal to the value of the UL SRP4 field.
[0194] For an EHT TB PPDU, the U-SIG contains only two SRP fields. In a case where the contents of the trigger frame are not changed, after receiving the trigger frame, the EHT station may group any two of the four UL SRP fields into one group and the other two UL SRP fields into another group, and assign the minimum value (or maximum value or average value) of one of the two groups to the SRP1 field in the U-SIG, and assign the minimum value (or maximum value or average value) of the other of the two groups to the SRP2 field in the U-SIG. In one example, the UL SRP1 field and the UL SRP3 field form one group, and the UL SRP2 field and the UL SRP4 field form one group. The minimum value (or maximum value or average value) of the values indicated by the UL SRP1 field and the UL SRP3 field is assigned to the SRP1 field in the U-SIG, and the minimum value (or maximum value or average value) of the values indicated by the UL SRP2 field and the UL SRP4 field is assigned to the SRP2 field in the U-SIG. In another example, the UL SRP1 field and the UL SRP4 field form one group, the UL SRP2 field and the UL SRP3 field form one group, the minimum value (or the maximum value or the average value) of the values indicated by the UL SRP1 field and the UL SRP4 field is assigned to the SRP1 field in the U-SIG, and the minimum value (or the maximum value or the average value) of the values indicated by the UL SRP2 field and the UL SRP3 field is assigned to the SRP2 field in the U-SIG.
[0195] In yet another example, after receiving the trigger frame, the EHT station selects the smaller value between the values indicated by the UL SRP1 field and the UL SRP2 field, and the smaller value between the values indicated by the UL SRP3 field and the UL SRP4 field, and assigns these values to the SRP1 field and the SRP2 field in the U-SIG. In other words, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field is equal to the minimum value of the values indicated by the UL SRP3 field and the UL SRP4 field. In other words, when the bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, the value of the SRP1 field in the U-SIG is equal to the minimum value of the values of the UL SRP1 field and the UL SRP2 field, which can be expressed as SRP1 = min {UL SRP1, UL SRP2}. The value of the SRP2 field in the U-SIG is equal to the minimum of the values of the UL SRP3 and UL SRP4 fields, which can be expressed as SRP2 = min{UL SRP3,UL SRP4}. It should be understood that the function min{x,y} indicates that the minimum value of x and y is taken.
[0196] Optionally, for an EHT TB PPDU, after receiving the trigger frame, the EHT station may alternatively assign the average value of the values indicated by the UL SRP1 field and the UL SRP2 field to the SRP1 field in the U-SIG, and the average value of the values indicated by the UL SRP3 field and the UL SRP4 field to the SRP2 field in the U-SIG. In other words, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the average value of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field is equal to the average value of the values indicated by the UL SRP3 field and the UL SRP4 field. This can be expressed as SRP1 = avg{UL SRP1, UL SRP2} and SRP2 = avg{UL SRP3, UL SRP4}. It should be understood that the function avg{x, y} indicates that the average value of x and y is taken.
[0197] Optionally, for an EHT TB PPDU, after receiving the trigger frame, the EHT station may alternatively assign the maximum value of the value indicated by the UL SRP1 field and the value indicated by the UL SRP2 field to the SRP1 field in the U-SIG, and assign the maximum value of the value indicated by the UL SRP3 field and the value indicated by the UL SRP4 field to the SRP2 field in the U-SIG. In other words, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the maximum value of the value indicated by the UL SRP1 field and the value indicated by the UL SRP2 field, and the value indicated by the SRP2 field is equal to the maximum value of the value indicated by the UL SRP3 field and the value indicated by the UL SRP4 field. This can be expressed as SRP1 = max{UL SRP1, UL SRP2} and SRP2 = max{UL SRP3, UL SRP4}. It should be understood that the function max{x, y} indicates that the maximum value of x and y is taken.
[0198] In this example, the minimum / maximum / average values are selected from the values assigned to the SRP1 field in the U-SIG indicated by the UL SRP1 and UL SRP2 fields, and the minimum / maximum / average values are selected from the values assigned to the SRP2 field in the U-SIG indicated by the UL SRP3 and UL SRP4 fields. As a result, it can be seen that the SRP1 field in the U-SIG may indicate the SRP value for the lower half of the total bandwidth in ascending frequency order, and the SRP2 field in the U-SIG may indicate the SRP value for the upper half of the total bandwidth in ascending frequency order. In other words, the SRP1 field in the U-SIG indicates the SRP value for the lower 40 MHz bandwidth of the 80 MHz bandwidth, and the SRP2 field in the U-SIG indicates the SRP value for the upper 40 MHz bandwidth of the 80 MHz bandwidth. This is the same for the 160 MHz bandwidth.
[0199] [4. 320MHz Bandwidth]
[0200] The maximum bandwidth supported in the 802.11be standard is 320 MHz, and the maximum bandwidth supported in the 802.11ax standard is 160 MHz. Therefore, to avoid affecting the setting of the SRP field in the HE-SIG-A of the HE TB PPDU on the primary 160 MHz channel (i.e., the HE station copies the UL SRP value on the primary 160 MHz channel into the HE-SIG-A of the HE TB PPDU transmitted by the HE station), the four UL SRP fields in the trigger frame (i.e., UL SRP1 to UL SRP4) still represent the UL SRP value on the primary 160 MHz channel.
[0201] Therefore, in the 320 MHz bandwidth, the four UL SRP fields included in the trigger frame indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order, respectively, and the SRP values of the four 40 MHz subchannels on the secondary 160 MHz channel are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel (i.e., the four SRP values on the secondary 160 MHz channel correspond one-to-one to the four SRP values on the primary 160 MHz channel). In other words, the UL SRP field represents the SRP value on the primary 160 MHz channel. As with the indication in the 160 MHz bandwidth, the SRP values on the secondary 160 MHz channel are the same as the SRP values on the primary 160 MHz channel, and the SRP values on the secondary 160 MHz channel are implicitly indicated.
[0202] When the trigger frame is not adjusted, the smaller of the values indicated by the UL SRP1 field and the UL SRP2 field, and the smaller of the values indicated by the UL SRP3 field and the UL SRP4 field, are selected as the values indicated by the two SRP fields in the U-SIG of the EHT TB PPDU. In other words, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field is equal to the minimum of the values indicated by the UL SRP3 field and the UL SRP4 field. In other words, when the bandwidth of the EHT TB PPDU is 320 MHz, the value of the SRP1 field in the U-SIG is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, which can be expressed as SRP1 = min{UL SRP1, UL SRP2}. The value of the SRP2 field in the U-SIG is equal to the minimum of the values of the UL SRP3 and UL SRP4 fields, which can be expressed as SRP2=min{UL SRP3, UL SRP4}.
[0203] Optionally, similar to the 80 MHz and 160 MHz bandwidths, SRP1 may be max{UL SRP1, UL SRP2} and SRP2 may be max{UL SRP3, UL SRP4}. Alternatively, SRP1 may be avg{UL SRP1, UL SRP2} and SRP2 may be avg{UL SRP3, UL SRP4}.
[0204] It can be seen that in the 80 MHz, 160 MHz, or 320 MHz bandwidth, in this embodiment of the present application, the smaller value (or the minimum value) of the value indicated by the UL SRP1 field and the value indicated by the UL SRP2 field is assigned to the SRP1 field in the U-SIG, and the smaller value (or the minimum value) of the value indicated by the UL SRP3 field and the value indicated by the UL SRP4 field is assigned to the SRP2 field in the U-SIG. This can ensure that the transmit power of devices located in the same OBSS as the AP does not interfere with the AP's transmission on some 20 MHz subchannels, and can also solve the problem of the insufficient SRP field in the U-SIG.
[0205] It can be seen that for different bandwidths (20MHz / 40MHz / 80MHz / 160MHz / 320MHz), the settings of the SRP1 and SRP2 fields in the U-SIG of the EHT TB PPDU and the settings of the SRP1 to SRP4 fields in the HE-SIG-A of the HE TB PPDU can be summarized as shown in Table 4. In Table 4, " / " represents an "or" relationship, that is, "A / B" represents A or B. [Table 4] [Table 4] JPEG0007807522000005.jpg140170
[0206] In this embodiment of the present application, for different bandwidths, the content of the trigger frame is not changed (i.e., the UL SRP value in the trigger frame is not changed), so that the HE station can set the spatial reuse parameters in the original manner, and the HE station sees no loss of granularity. In addition, in this embodiment of the present application, the frame structure of the U-SIG is not changed (e.g., the length of 1 byte is maintained), and the spatial reuse parameters in the U-SIG of the EHT TB PPDU are set based on the four UL SRP fields in the trigger frame, so that the EHT station can be scheduled to transmit the uplink EHT TB PPDU by using the trigger frame, and the HE station and the EHT station can be scheduled by using the same trigger frame. [Embodiment 2]
[0207] Embodiment 2 of the present application mainly describes how to change the UL SRP value in the trigger frame (i.e., how to change the content of the trigger frame) to fit the SRP field of the U-SIG of different bandwidths (80 / 160 / 320 MHz), and how to set the spatial reuse parameters in the trigger-based PPDU (HE TB PPDU and EHT TB PPDU) after the UL SRP value in the trigger frame is changed.
[0208] It can be understood that in practical application, Embodiment 2 of the present application may be implemented with reference to some implementations in Embodiment 1, or may be implemented separately. This is not limited to this embodiment of the present application. For example, Embodiment 2 of the present application is implemented together with the manner of setting the SRP1 field and the SRP2 field in the U-SIG when the bandwidth is 20 MHz and / or 40 MHz in Embodiment 1. In other words, in Embodiment 2 of the present application, when the bandwidth is 20 MHz or 40 MHz, the UL SRP value in the trigger frame is not changed. For the manner of setting the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU, please refer to the corresponding description in Embodiment 1. The details will not be described again here.
[0209] Please refer to Figure 9. Figure 9 is a schematic flowchart 2 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application. As shown in Figure 9, the method for determining a spatial reuse parameter field in a PPDU includes, but is not limited to, the following steps:
[0210] S201: The AP sends a trigger frame. The trigger frame is used to trigger the station to send an EHT TB PPDU, and the common information field of the trigger frame includes four UL SRP fields, two of which indicate the same value, and the other two indicate the same value.
[0211] S202: The STA receives a trigger frame.
[0212] S203: The STA transmits an EHT TB PPDU, where the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields indicating the same value.
[0213] S204: The AP receives the EHT TB PPDU sent by the station.
[0214] Optionally, the trigger frame may be used not only to trigger the EHT station to transmit the EHT TB PPDU, but also to trigger the HE station to transmit the HE TB PPDU. Alternatively, the trigger frame may be used only to trigger the EHT station to transmit the EHT TB PPDU, or only to trigger the HE station to transmit the HE TB PPDU. This embodiment of the present application focuses on the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, but is not limited to the case where the trigger frame is used only to trigger the EHT station to transmit the EHT TB PPDU, and may also include the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, and the HE station / EHT station to simultaneously transmit the HE TB PPDU.
[0215] Optionally, the U-SIG of the EHT TB PPDU includes only two spatial reuse parameter (SRP) fields, SRP1 field and SRP2 field. The SRP1 field and SRP2 field respectively indicate SRP values on different subchannels, and the SRP value is equal to the sum of the transmit power of the AP on the corresponding subchannel and the maximum interference power received by the AP. It should be understood that the SRP1 field and SRP2 field in the U-SIG of the EHT TB PPDU may have other names, for example, PSR1 field and PSR2 field. This is not limited in this embodiment of the present application.
[0216] The common information field of the trigger frame still includes four UL SRP fields: a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. Two of the four UL SRP fields indicate the same value, and the other two indicate the same value. In other words, the four UL SRP fields may be considered as two groups, each group including two UL SRP fields, and the values indicated by the two UL SRP fields in each group are the same. For example, the UL SRP1 field and the UL SRP2 field are considered as one group, and the UL SRP3 field and the UL SRP4 field are considered as another group; or the UL SRP1 field and the UL SRP3 field are considered as one group, and the UL SRP2 field and the UL SRP4 field are considered as another group; or the UL SRP1 field and the UL SRP4 field are considered as one group, and the UL SRP2 field and the UL SRP3 field are considered as another group. The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by any of the UL SRP fields in one group (i.e., two UL SRP fields indicating the same value), and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by any of the UL SRP fields in the other group (i.e., two other UL SRP fields indicating the same value).
[0217] For different bandwidths (80 / 160 / 320 MHz), the following will describe in detail the configuration of spatial reuse parameter fields in the trigger-based PPDU by using an example in which the UL SRP1 field and the UL SRP2 field form one group, and the UL SRP3 field and the UL SRP4 field form another group.
[0218] [1. 80MHz or 160MHz bandwidth]
[0219] The 80 MHz bandwidth includes four 20 MHz subchannels, and the common information field of the trigger frame includes four UL SRP fields, each indicating the SRP value of the four 20 MHz subchannels on the 80 MHz channel in ascending frequency order. Similarly, the 160 MHz bandwidth includes four 40 MHz subchannels, and the four UL SRP fields in the trigger frame each indicating the SRP value of the four 40 MHz subchannels on the 160 MHz channel in ascending frequency order.
[0220] In an 80 MHz or 160 MHz bandwidth, the UL SRP value in the trigger frame is changed so that the value indicated by the UL SRP1 field is the same as the value indicated by the UL SRP2 field, and the value indicated by the UL SRP3 field is the same as the value indicated by the UL SRP4 field. That is, in an 80 MHz or 160 MHz bandwidth, the value of the UL SRP1 field in the trigger frame is the same as the value of the UL SRP2 field, which can be expressed as UL SRP1 = UL SRP2. The value of the UL SRP3 field in the trigger frame is the same as the value of the UL SRP4 field, which can be expressed as UL SRP3 = UL SRP4. In other words, in an 80 MHz bandwidth, the UL SRP values of the two 20 MHz subchannels in the first 40 MHz subchannel in ascending frequency order in the trigger frame are the same, and the UL SRP values of the two 20 MHz subchannels in the second 40 MHz subchannel in ascending frequency order are also the same. In a 160 MHz bandwidth, in a trigger frame, the UL SRP values of the two 40 MHz subchannels of the first 80 MHz subchannel in ascending frequency order are the same, and the UL SRP values of the two 40 MHz subchannels of the second 80 MHz subchannel in ascending frequency order are also the same.
[0221] In the HE TB PPDU, the four SRP fields in the HE-SIG-A correspond one-to-one to the four UL SRP fields in the trigger frame, i.e., the values of the four SRP fields in the HE-SIG-A are still copied from the values of the four UL SRP fields in the trigger frame. For example, the value of the SRP1 field in the HE-SIG-A is equal to the value of the UL SRP1 field, the value of the SRP2 field in the HE-SIG-A is equal to the value of the UL SRP2 field, the value of the SRP3 field in the HE-SIG-A is equal to the value of the UL SRP3 field, and the value of the SRP4 field in the HE-SIG-A is equal to the value of the UL SRP4 field. For the EHT TB PPDU, the U-SIG contains only two SRP fields. The value indicated by the SRP1 field in the U-SIG is equal to the value indicated by the UL SRP1 field or the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG is equal to the value indicated by the UL SRP3 field or the UL SRP4 field. In other words, when the bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, the value of the SRP1 field in the U-SIG is equal to the value of the UL SRP1 field or the UL SRP2 field, which can be expressed as SRP1 = UL SRP1 / UL SRP2. The value of the SRP2 field in the U-SIG is equal to the value of the UL SRP3 field or the UL SRP4 field, which can be expressed as SRP2 = UL SRP3 / UL SRP4.
[0222] Optionally, in an 80 MHz or 160 MHz bandwidth, it may be determined by the AP how the value indicated by the UL SRP1 field in the trigger frame is made the same as the value indicated by the UL SRP2 field (or UL SRP1 = UL SRP2), and how the value indicated by the UL SRP3 field is made the same as the value indicated by the UL SRP4 field (or UL SRP3 = UL SRP4). In one example, in an 80 MHz bandwidth, UL SRP1 = UL SRP2 = min {AP transmit power + maximum interference power received by the AP on the first 20 MHz subchannel, AP transmit power + maximum interference power received by the AP on the second 20 MHz subchannel}; and UL SRP3 = UL SRP4 = min {AP transmit power + maximum interference power received by the AP on the third 20 MHz subchannel, AP transmit power + maximum interference power received by the AP on the fourth 20 MHz subchannel}. The first, second, third, and fourth 20 MHz subchannels are four 20 MHz subchannels in an 80 MHz bandwidth in ascending frequency order. The function min{x,y} indicates that the minimum value of x and y is taken.
[0223] Similarly, in another example, for a 160 MHz bandwidth, UL SRP1 = UL SRP2 = min {AP transmit power + maximum interference power received by the AP on the first 40 MHz subchannel, AP transmit power + maximum interference power received by the AP on the second 40 MHz subchannel}; and UL SRP3 = UL SRP4 = min {AP transmit power + maximum interference power received by the AP on the third 40 MHz subchannel, AP transmit power + maximum interference power received by the AP on the fourth 40 MHz subchannel}. The first, second, third, and fourth 40 MHz subchannels are four 40 MHz subchannels in the 160 MHz bandwidth in ascending order of frequency.
[0224] Optionally, in an 80 MHz or 160 MHz bandwidth, UL SRP1 = UL SRP2 = max {AP transmit power + maximum interference power received by the AP on the first 20 MHz (or 40 MHz) subchannel, AP transmit power + maximum interference power received by the AP on the second 20 MHz (or 40 MHz) subchannel}; and UL SRP3 = UL SRP4 = max {AP transmit power + maximum interference power received by the AP on the third 20 MHz (or 40 MHz) subchannel, AP transmit power + maximum interference power received by the AP on the fourth 20 MHz (or 40 MHz) subchannel}.
[0225] Optionally, in an 80 MHz or 160 MHz bandwidth, UL SRP1 = UL SRP2 = avg {AP transmit power + maximum interference power received by the AP on the first 20 MHz (or 40 MHz) subchannel, AP transmit power + maximum interference power received by the AP on the second 20 MHz (or 40 MHz) subchannel}; and UL SRP3 = UL SRP4 = avg {AP transmit power + maximum interference power received by the AP on the third 20 MHz (or 40 MHz) subchannel, AP transmit power + maximum interference power received by the AP on the fourth 20 MHz (or 40 MHz) subchannel}.
[0226] [2. 320MHz Bandwidth]
[0227] The maximum bandwidth supported in the 802.11be standard is 320 MHz, and the maximum bandwidth supported in the 802.11ax standard is 160 MHz. Therefore, to avoid affecting the setting of the SRP field in the HE-SIG-A of the HE TB PPDU on the primary 160 MHz channel (i.e., the HE station copies the UL SRP value on the primary 160 MHz channel into the HE-SIG-A of the HE TB PPDU transmitted by the HE station), the four UL SRP fields in the trigger frame (i.e., UL SRP1 to UL SRP4) still represent the UL SRP value on the primary 160 MHz channel.
[0228] Therefore, in a 320 MHz bandwidth, the four UL SRP fields included in the trigger frame respectively indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order, and the SRP values of the four 40 MHz subchannels on the secondary 160 MHz channel respectively are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel (i.e., the four SRP values on the secondary 160 MHz channel correspond one-to-one to the four SRP values on the primary 160 MHz channel).
[0229] In the 320 MHz bandwidth, the UL SRP value in the trigger frame is changed so that the value indicated by the UL SRP1 field is the same as the value indicated by the UL SRP2 field, and the value indicated by the UL SRP3 field is the same as the value indicated by the UL SRP4 field. That is, in the 320 MHz bandwidth, the value of the UL SRP1 field in the trigger frame is the same as the value of the UL SRP2 field, which can be expressed as UL SRP1 = UL SRP2. The value of the UL SRP3 field in the trigger frame is the same as the value of the UL SRP4 field, which can be expressed as UL SRP3 = UL SRP4.
[0230] In the EHT TB PPDU, the four SRP fields in the HE-SIG-A correspond one-to-one to the four UL SRP fields in the trigger frame, i.e., the values of the four SRP fields in the HE-SIG-A are still copied from the values of the four UL SRP fields in the trigger frame. For the EHT TB PPDU, the U-SIG contains only two SRP fields. The value indicated by the SRP1 field in the U-SIG is equal to the value indicated by the UL SRP1 field or the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG is equal to the value indicated by the UL SRP3 field or the UL SRP4 field. In other words, if the bandwidth of the EHT TB PPDU is 320 MHz, the value of the SRP1 field in the U-SIG is equal to the value of the UL SRP1 field or the UL SRP2 field, which can be expressed as SRP1 = UL SRP1 / UL SRP2. The value of the SRP2 field in the U-SIG is equal to the value of the UL SRP3 field or the UL SRP4 field, which can be expressed as SRP2 = UL SRP3 / UL SRP4. It can be seen that the U-SIG uses two SRP fields to determine the SRP value for the entire 320 MHz bandwidth (the four UL SRP fields in the trigger frame still only indicate the SRP value of each 80 MHz sub-band in the primary 160 MHz, and the SRP value in the secondary 160 MHz is the same as the SRP value in the primary 160 MHz), and the four SRP fields in the HE-SIG-A correctly indicate the SRP information on the primary 160 MHz channel.
[0231] Optionally, in the 320 MHz bandwidth, how to make the value indicated by the UL SRP1 field in the trigger frame the same as the value indicated by the UL SRP2 field (or UL SRP1=UL SRP2), and how to make the value indicated by the UL SRP3 field the same as the value indicated by the UL SRP4 field (or UL SRP3=UL SRP4) may be determined by the AP. For details, please refer to the corresponding descriptions in the 80 MHz or 160 MHz bandwidth above. The details will not be described again here.
[0232] It can be seen that for different bandwidths (80MHz / 160MHz / 320MHz), the settings of the UL SRP1 field to the UL SRP4 field in the trigger frame, the settings of the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU, and the settings of the SRP1 field to the SRP4 field in the HE-SIG-A of the HE TB PPDU in the U-SIG of the EHT TB PPDU can be summarized as shown in Table 5. In Table 5, " / " represents an "or" relationship. [Table 5] [Table 5] JPEG0007807522000007.jpg152170
[0233] In practical application, when the second embodiment of the present application is implemented with reference to the method of setting the SRP1 and SRP2 fields in the U-SIG, when the bandwidth is 20 MHz and / or 40 MHz as in the first embodiment, it can be understood that in the bandwidth of 20 / 40 / 80 / 160 / 320 MHz, the settings of the UL SRP1 to UL SRP4 fields in the trigger frame, the settings of the SRP1 and SRP2 fields in the U-SIG, and the settings of the SRP1 to SRP4 fields in the HE-SIG-A can be summarized as shown in the following Table 6. In Table 6, " / " represents an "or" relationship. [Table 6] [Table 6] JPEG0007807522000009.jpg147170
[0234] It can be seen that in this embodiment of the present application, the UL SRP value in the trigger frame is changed (i.e., the content of the trigger frame is changed) to match the SRP field of the U-SIG, and the spatial reuse parameter field in the U-SIG is set, so that the trigger frame can schedule the EHT station to transmit an uplink EHT TB PPDU, or the HE station and the EHT station can be scheduled by using the same trigger frame.
[0235] In an optional embodiment, for any bandwidth (e.g., 20 MHz, 40 MHz, 80 MHz, 160 MHz, or 320 MHz), the UL SRP value in the trigger frame is changed so that there is only one UL SRP value across the entire bandwidth, i.e., the value indicated by the four UL SRP fields included in the trigger frame is the same. In other words, for any bandwidth, the value of the four UL SRP fields included in the trigger frame is the same, which can be expressed as UL SRP1 = UL SRP2 = UL SRP3 = UL SRP4.
[0236] In the EHT TB PPDU, the four SRP fields in the HE-SIG-A correspond one-to-one to the four UL SRP fields in the trigger frame, i.e., the values of the four SRP fields in the HE-SIG-A are still copied from the values of the four UL SRP fields in the trigger frame. For the EHT TB PPDU, the U-SIG contains only two SRP fields. The values indicated by the SRP1 and SRP2 fields in the U-SIG are both equal to the values indicated by any one of the UL SRP1, SRP2, SRP3, and SRP4 fields. In other words, when the bandwidth of the EHT TB PPDU is any bandwidth, the values of the SRP1 and SRP2 fields in the U-SIG are equal to the values of any one of the UL SRP1, SRP2, SRP3, and SRP4 fields, which can be expressed as SRP1 = SRP2 = UL SRP1 / UL SRP2 / UL SRP3 / UL SRP4.
[0237] It can be seen that in this embodiment of the present application, the two SRP fields in the U-SIG still each indicate an SRP value of half the full bandwidth. [Embodiment 3]
[0238] Embodiment 3 of the present application mainly describes that in the case of 320 MHz bandwidth, a special user information field in the trigger frame independently indicates the spatial reuse parameter of the EHT TB PPDU.
[0239] It can be understood that in practical applications, the third embodiment of the present application can be implemented with reference to the first or second embodiment described above regarding the manner of setting the SRP1 field and the SRP2 field in the U-SIG in the bandwidths of 20 MHz, 40 MHz, 80 MHz, and 160 MHz. Alternatively, the third embodiment of the present application can be implemented separately. This is not limited to this embodiment of the present application.
[0240] Please refer to Figure 10. Figure 10 is a schematic flowchart 3 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application. As shown in Figure 10, the method for determining a spatial reuse parameter field in a PPDU includes, but is not limited to, the following steps:
[0241] S301: An AP transmits a trigger frame, which is used to trigger a station to transmit an EHT TB PPDU, and which carries first indication information, which indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU.
[0242] S302: The STA receives a trigger frame.
[0243] S303: The STA transmits an EHT TB PPDU, where the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0244] S304: The AP receives the EHT TB PPDU sent by the station.
[0245] Optionally, the trigger frame may be used not only to trigger the EHT station to transmit the EHT TB PPDU, but also to trigger the HE station to transmit the HE TB PPDU. Alternatively, the trigger frame may be used only to trigger the EHT station to transmit the EHT TB PPDU, or only to trigger the HE station to transmit the HE TB PPDU. This embodiment of the present application focuses on the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, but is not limited to the case where the trigger frame is used only to trigger the EHT station to transmit the EHT TB PPDU, and may also include the case where the trigger frame is used to trigger the EHT station to transmit the EHT TB PPDU, and the HE station / EHT station to simultaneously transmit the HE TB PPDU.
[0246] Optionally, the U-SIG of the EHT TB PPDU includes only two spatial reuse parameter (SRP) fields, SRP1 field and SRP2 field. The SRP1 field and SRP2 field respectively indicate SRP values on different subchannels, and the SRP value is equal to the sum of the transmit power of the AP on the corresponding subchannel and the maximum interference power received by the AP. It should be understood that the SRP1 field and SRP2 field in the U-SIG of the EHT TB PPDU may have other names, for example, PSR1 field and PSR2 field. This is not limited in this embodiment of the present application.
[0247] The trigger frame may carry first indication information, which may indicate values of the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU, or the first indication information indicates the value of the SRP2 field in the U-SIG of the EHT TB PPDU. The first indication information may be located in a user information field of the trigger frame. A value of an association identifier (AID) 12 field in the user information field is a preset value. The preset value may be any one of 2008 to 2044 or 2046 to 4095. For example, the preset value is 2044. Optionally, the common information field of the trigger frame includes four UL SRP fields: a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. The four UL SRP fields may indicate values of the four SRP fields in the EHT TB PPDU, respectively.
[0248] Optionally, the bandwidth of the EHT TB PPDU is 320 MHz. In cases where the HE station cannot transmit in the 320 MHz bandwidth, the four UL SRP fields included in the common information field of the trigger frame still indicate the SRP values of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order, respectively. After receiving the trigger frame, the HE station copies the values of the four UL SRP fields in the trigger frame to the four SRP fields in the HE-SIG-A of the HE TB PPDU. Therefore, the four UL SRP fields may also be understood as values indicating the four SRP fields in the HE-SIG-A.
[0249] For an EHT station, the AID12 field in the user information field in the trigger frame is set to a special value (e.g., AID12=2044), so that the EHT station can identify that the user information field functions to set the SRP field in the U-SIG. In other words, the user information field holds first indication information, which indicates the value of the SRP1 field and / or SRP2 field in the U-SIG. It should be understood that an HE station does not parse a user information field in which the AID12 field is the special value in a trigger frame, or an HE station receives a user information field in which the AID12 field is the special value, which indicates that this field is irrelevant to the HE station. In other words, the first indication information added to the trigger frame does not affect the behavior of the HE station.
[0250] When the first indication information indicates the values of the SRP1 field and the SRP2 field in the U-SIG, the 8 bits after the AID12 field in the user information field are used to hold the first indication information. The first 4 bits of the 8 bits indicate the value of the SRP1 field in the U-SIG, and the last 4 bits of the 8 bits indicate the value of the SRP2 field. It should be understood that the 8 bits can be represented by a first field and a second field. The first field is the first 4 bits of the 8 bits, and the second field is the last 4 bits of the 8 bits. Specifically, the first field following the AID12 field (e.g., AID12=2044) indicates the value of the SRP1 field in the U-SIG, and the second field following the AID12 field (e.g., AID12=2044) indicates the value of the SRP2 field in the U-SIG. It should be further understood that the first field may be referred to as the UL SRP1 field of the U-SIG, and the second field may be referred to as the UL SRP2 field of the U-SIG. The first field and the second field may have other names, which is not limited in this embodiment of the present application.
[0251] After receiving the trigger frame, the EHT station sets the value of the SRP1 field in the U-SIG of the EHT TB PPDU to the value of the first field in the user information field of the trigger frame, and sets the value of the SRP2 field in the U-SIG to the value of the second field in the user information field of the trigger frame. The first and second fields in the user information field of the trigger frame each correspond to a 160 MHz bandwidth. For example, the first field corresponds to the first 160 MHz bandwidth in ascending frequency order, and the second field corresponds to the second 160 MHz bandwidth in ascending frequency order. In other words, the SRP1 field in the U-SIG corresponds to the first 160 MHz bandwidth in ascending frequency order, and the SRP2 field in the U-SIG corresponds to the second 160 MHz bandwidth in ascending frequency order.
[0252] Please refer to Figure 11a. Figure 11a is a schematic diagram showing an SRP in a U-SIG of a trigger frame according to one embodiment of the present application. As shown in Figure 11a, the user information field of the trigger frame includes an AID12 field, a UL SRP1 field used for the U-SIG, and a UL SRP2 field used for the U-SIG. The value of the AID12 field is a special value, for example, 2044. The UL SRP1 field of the U-SIG and the UL SRP2 field of the U-SIG are located after the AID12 field and may or may not be adjacent to the AID12 field. The UL SRP1 field of the U-SIG indicates the value of the SRP1 field in the U-SIG, and the UL SRP2 field of the U-SIG indicates the value of the SRP2 field in the U-SIG. The value indicated by the UL SRP1 field of the U-SIG is equal to the sum of the AP's transmit power and the maximum interference power received by the AP on the primary 160 MHz channel. The value indicated by the UL SRP2 field of the U-SIG is equal to the sum of the AP's transmit power and the maximum interference power received by the AP on the secondary 160 MHz channel. For the correspondence between the values and the meanings of the UL SRP1 field of the U-SIG and the UL SRP2 field of the U-SIG, please refer to Table 3 in the above-mentioned Embodiment 1.
[0253] When the first indication information only indicates the value of the SRP2 field in the U-SIG, the four bits after the AID12 field in the user information field are used to hold the first indication information. In other words, these four bits indicate the value of the SRP2 field in the U-SIG. These four bits may be referred to as the UL SRP2 field of the U-SIG, and may have other names. This is not limited in this embodiment of the present application. Optionally, when the first indication information only indicates the value of the SRP2 field in the U-SIG, four reserved bits in the common information field of the trigger frame may be used to hold the first indication information, that is, the four reserved bits are used to indicate the value of the SRP2 field in the U-SIG. The common information field of the trigger frame includes four UL SRP fields. After receiving the trigger frame, the EHT station sets the value of the SRP1 field in the U-SIG of the EHT TB PPDU to be transmitted to the smallest value of the four UL SRP fields included in the common information field of the trigger frame, i.e., SRP1=min(UL SRP1,UL SRP2,UL SRP3,UL SRP4); and sets the value of the SRP2 field in the U-SIG to the value of the UL SRP2 field of the U-SIG in the user information field of the trigger frame. The SRP1 field in the U-SIG corresponds to the first 160 MHz bandwidth in ascending frequency order, and the SRP2 field in the U-SIG corresponds to the second 160 MHz bandwidth in ascending frequency order.
[0254] Please refer to Figure 11b. Figure 11b is another schematic diagram showing the SRP in the U-SIG of the trigger frame according to one embodiment of the present application. As shown in Figure 11b, the common information field of the trigger frame includes four UL SRP fields, each indicating the SRP value of four 40 MHz subchannels on the primary 160 MHz channel in ascending frequency order. The user information field of the trigger frame includes an AID12 field, a UL SRP2 field of the U-SIG, etc. The value of the AID12 field is a special value, for example, 2044. The UL SRP2 field of the U-SIG is located after the AID12 field and may or may not be adjacent to the AID12 field. The UL SRP2 field of the U-SIG indicates the value of the SRP2 field in the U-SIG. The value indicated by the UL SRP2 field of the U-SIG is equal to the sum of the AP's transmission power on the secondary 160 MHz channel and the maximum interference power received by the AP, or equal to the SRP value on the secondary 160 MHz channel. For the correspondence between the values and the meaning of the UL SRP2 field of the U-SIG, please refer to Table 3 in the above-mentioned embodiment 1.
[0255] It should be understood that this embodiment of the present application mainly focuses on the manner of setting the SRP1 field and the SRP2 field in the U-SIG in the 320 MHz bandwidth. For the manner of setting the SRP1 field and the SRP2 field in the U-SIG in the 160 MHz or smaller bandwidth, please refer to the relevant description in embodiment 1 or embodiment 2. The details will not be described again here.
[0256] In this embodiment of the present application, in the case of 320 MHz bandwidth, it can be seen that the special user information field in the trigger frame independently indicates the spatial reuse parameters of the EHT TB PPDU. The meaning of the special user information field is clear and the scheduling of the HE station is not affected. In this way, the HE station and the EHT station can be scheduled by using the same trigger frame. [Embodiment 4]
[0257] Embodiment 4 of the present application mainly describes a scheme for setting the UL SRP value in the trigger frame when the EHT station is scheduled to transmit only the EHT TB PPDU.
[0258] Please refer to Figure 12. Figure 12 is a schematic flowchart 4 of a method for determining a spatial reuse parameter field in a PPDU according to an embodiment of the present application. As shown in Figure 12, the method for determining a spatial reuse parameter field in a PPDU includes, but is not limited to, the following steps:
[0259] S401: An AP transmits a trigger frame. The trigger frame carries second indication information, and the second indication information indicates that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, and a common information field of the trigger frame includes a first UL SRP field and a second UL SRP field, where the first UL SRP field indicates an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, and the second UL SRP field indicates an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both of the first bandwidth and the second bandwidth are half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth is lower than the frequency of the second bandwidth.
[0260] S402: The STA receives a trigger frame.
[0261] S403: The STA transmits an EHT TB PPDU, where the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the first UL SRP field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the second UL SRP field.
[0262] S404: The AP receives the EHT TB PPDU transmitted by the station.
[0263] Optionally, the U-SIG of the EHT TB PPDU includes only two spatial reuse parameter (SRP) fields, SRP1 field and SRP2 field. The SRP1 field and SRP2 field respectively indicate SRP values on different subchannels, and the SRP value is equal to the sum of the transmit power of the AP on the corresponding subchannel and the maximum interference power received by the AP. It should be understood that the SRP1 field and SRP2 field in the U-SIG of the EHT TB PPDU may have other names, for example, PSR1 field and PSR2 field. This is not limited in this embodiment of the present application.
[0264] Specifically, the trigger frame carries second indication information, which indicates that the trigger frame is used to schedule a station (or an EHT station) to transmit only an EHT TB PPDU. The second indication information may be 1 to 4 bits. Since the U-SIG field of the EHT TB PPDU contains only two SRP fields and the trigger frame does not schedule an HE station, only two valid UL SRP fields are required in the common information field of the trigger frame. The common information field of the trigger frame may include a first UL SRP field and a second UL SRP field. The first UL SRP field may indicate an SRP value of a first bandwidth within the bandwidth of the EHT TB PPDU, and the second UL SRP field may indicate an SRP value of a second bandwidth within the bandwidth of the EHT TB PPDU. The first bandwidth and the second bandwidth are equal to half the bandwidth of the EHT TB PPDU. The first bandwidth is a low-frequency portion of the bandwidth of the EHT TB PPDU in ascending frequency order, and the second bandwidth is a high-frequency portion of the bandwidth of the EHT TB PPDU in ascending frequency order, i.e., the frequency of the first bandwidth is lower than the frequency of the second bandwidth.
[0265] After receiving the trigger frame, the EHT station sets the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU to the value indicated by the first UL SRP field, and sets the value indicated by the SRP2 field in the U-SIG to the value indicated by the second UL SRP field. In other words, the value of the SRP1 field in the U-SIG is equal to the value of the first UL SRP field, and the value of the SRP2 field in the U-SIG is equal to the value of the second UL SRP field.
[0266] It should be understood that if the bandwidth of the EHT TB PPDU is 40 MHz, the first UL SRP field indicates the SRP value in the first 20 MHz (i.e., lower 20 MHz) bandwidth in the 40 MHz bandwidth in ascending frequency order, and the second UL SRP field indicates the SRP value in the second 20 MHz (i.e., higher 20 MHz) bandwidth in the 40 MHz bandwidth in ascending frequency order. If the bandwidth of the EHT TB PPDU is 80 MHz, the first UL SRP field indicates the SRP value in the first 40 MHz (i.e., lower 40 MHz) bandwidth in the 80 MHz bandwidth in ascending frequency order, and the second UL SRP field indicates the SRP value in the second 40 MHz (i.e., higher 40 MHz) bandwidth in the 80 MHz bandwidth in ascending frequency order. If the bandwidth of the EHT TB PPDU is 160 MHz, the first UL SRP field indicates the SRP value in the first 80 MHz (i.e., lower 80 MHz) bandwidth in the 160 MHz bandwidth in ascending frequency order, and the second UL SRP field indicates the SRP value in the second 80 MHz (i.e., higher 80 MHz) bandwidth in the 160 MHz bandwidth in ascending frequency order. If the bandwidth of the EHT TB PPDU is 320 MHz, the first UL SRP field indicates the SRP value in the first 160 MHz (i.e., lower 160 MHz) bandwidth in the 320 MHz bandwidth in ascending frequency order, and the second UL SRP field indicates the SRP value in the second 160 MHz (i.e., higher 160 MHz) bandwidth in the 320 MHz bandwidth in ascending frequency order.
[0267] Optionally, when the bandwidth of the EHT TB PPDU is 20 MHz, the value of the first UL SRP field is the same as the value of the second UL SRP field, and both the first UL SRP field and the second UL SRP field indicate SRP values of the 20 MHz bandwidth.
[0268] Optionally, the first UL SRP field and the second UL SRP field may be any one of a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, or a UL SRP4 field, and the first UL SRP field is different from the second UL SRP field. For example, the first UL SRP field is the UL SRP1 field, the second UL SRP field is the UL SRP2 field, and the other UL SRP fields (i.e., the UL SRP3 field and the UL SRP4 field) are reserved or used for another purpose (e.g., used as parameters for uplink multi-AP transmission, e.g., number of APs, AP identifier; or parameters for automatic hybrid repeat request (HARQ), e.g., retransmission indication or HARQ combination type). In another example, the first UL SRP field is a UL SRP3 field, the second UL SRP field is a UL SRP4 field, and the other UL SRP fields (i.e., the UL SRP1 field and the UL SRP2 field) are reserved or used for other purposes. In yet another example, the first UL SRP field is a UL SRP1 field, the second UL SRP field is a UL SRP3 field, and the other UL SRP fields (i.e., the UL SRP2 field and the UL SRP4 field) are reserved or used for other purposes. In another example, the first UL SRP field is a UL SRP2 field, the second UL SRP field is a UL SRP3 field, and the other UL SRP fields (i.e., the UL SRP1 field and the UL SRP4 field) are reserved or used for other purposes.
[0269] In this embodiment of the present application, when the trigger frame indicates that the EHT station is scheduled to transmit only the EHT TB PPDU, it can be seen that only two UL SRP fields in the trigger frame (the other two UL SRP fields are reserved) are used to indicate the SRP values in the lower and upper half of the frequency of the total bandwidth, respectively. The EHT station copies the values of the two UL SRP fields in the trigger frame to the two SRP fields in the U-SIG. This overcomes the insufficiency of the SRP fields in the U-SIG and reduces the indication overhead in the trigger frame. [Embodiment 5]
[0270] The above-mentioned embodiments 1 to 4 describe methods for setting two SRP fields in a U-SIG when one or more stations transmit an EHT TB PPDU in different scenarios. Embodiment 5 of the present application mainly describes a spatial reuse method based on spatial reuse parameters in 802.11be.
[0271] It can be understood that in practical application, the fifth embodiment of the present application may be implemented with reference to any one of the first to fourth embodiments, or may be implemented separately, which is not limited to the present embodiment of the present application.
[0272] It can be understood that in this embodiment of the present application, the first AP and the first STA belong to the same BSS, denoted as BSS1. The second AP and the second STA belong to another BSS, denoted as BSS2. The first AP and the second AP are located in an OBSS formed by BSS1 and BSS2. Therefore, in order to reduce interference to the reception of the EHT TB PPDU by the first AP caused by the energy generated when the second AP transmits a parameterized spatial reuse transmission (PSRT) PPDU, the transmit power used when the second AP transmits the PSRT PPDU needs to be limited.
[0273] Optionally, in this embodiment of the present application, the second AP may receive information transmitted by the first AP and the first STA.
[0274] Please refer to Figure 13. Figure 13 is a schematic flowchart of a spatial reuse method according to one embodiment of the present application. As shown in Figure 13, the spatial reuse method includes, but is not limited to, the following steps:
[0275] S501: A first AP transmits a parameterized spatial reuse reception (PSRR) PPDU including a trigger frame. The trigger frame is used to schedule a first STA to transmit an EHT TB PPDU. In response, the first STA receives the trigger frame.
[0276] It can be understood that in addition to the trigger frame, the PSRR PPDU can further include other information. However, this embodiment of the present application focuses on the trigger frame portion in the PSRR PPDU. Therefore, other information included in the PSRR PPDU will not be described in this embodiment of the present application.
[0277] Specifically, the PSRR PPDU including the trigger frame is used to schedule stations to perform uplink data transmission, for example, to transmit an uplink EHT TB PPDU. As shown in Fig. 6a, the common information field of the trigger frame includes an uplink spatial reuse (UL Spatial Reuse) field. The uplink spatial reuse field may include four uplink spatial reuse parameter (UL SRP) fields, each 4 bits in length, which indicate the sum of the transmit power of the AP and the maximum interference power received by the AP. The four UL SRP fields included in the uplink spatial reuse field are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field. For implementation of the four UL SRP fields in different bandwidths, please refer to any one of embodiments 1 to 4. Details will not be described again here.
[0278] S502: The first STA transmits an EHT TB PPDU. In response, the first AP receives the EHT TB PPDU transmitted by the station.
[0279] The "first AP" in this embodiment of the present application is the "AP" described in embodiments 1 to 4, and the "first STA" in this embodiment of the present application is the "STA" described in embodiments 1 to 4.
[0280] Specifically, for the implementation of step S502 in this embodiment of the present application, please refer to the implementation of step S103 in embodiment 1. Details will not be described again here. Alternatively, for the implementation of step S502 in this embodiment of the present application, please refer to the implementation of step S203 in embodiment 2. Details will not be described again here. Alternatively, for the implementation of step S502 in this embodiment of the present application, please refer to the implementation of step S303 in embodiment 3. Details will not be described again here. Alternatively, for the implementation of step S502 in this embodiment of the present application, please refer to the implementation of step S403 in embodiment 4. Details will not be described again here.
[0281] S503: The second AP determines the transmission power of the parameterized spatial reuse transmission PSRT PPDU based on the values indicated by the SRP1 field and SRP2 field respectively included in the U-SIG of the EHT TB PPDU and / or the values indicated by the four UL SRP fields respectively included in the common information field of the trigger frame.
[0282] S504: The second AP transmits the PSRT PPDU based on the transmission power of the PSRT PPDU, and the second STA receives the PSRT PPDU in response.
[0283] Specifically, the first AP and the second AP are located within the BSS formed by BSS1 and BSS2. Therefore, the second AP may also receive the trigger frame transmitted to the first AP. Therefore, after the first AP transmits a PSRR PPDU including the trigger frame, the second AP receives the PSRR PPDU including the trigger frame. The trigger frame includes four UL SRP fields, and a value indicated by one UL SRP field is equal to the sum of the transmit power of the first AP and the maximum interference power received by the first AP. The second AP may also receive the EHT TB PPDU transmitted by the first STA, and the U-SIG of the EHT TB PPDU includes an SRP1 field and an SRP2 field. The value indicated by the SRP1 field is equal to the sum of the transmit power of the first AP on the first subchannel and the maximum interference power received by the first AP. The value indicated by the SRP2 field is the sum of the transmission power of the first AP on the second subchannel and the maximum interference power received by the first AP. The bandwidth of the first subchannel and the bandwidth of the second subchannel are equal to half the bandwidth of the EHT TB PPDU, and the frequency of the first subchannel is lower than the frequency of the second subchannel.
[0284] After the second AP receives the PSRR PPDU and the EHT TB PPDU (i.e., determines that the first STA has transmitted the EHT TB PPDU), the second AP calculates the transmit power to be used to transmit the PSRT PPDU based on the power at which the PSRR PPDU is received (i.e., the received power level, RPL), the values indicated by the SRP1 and SRP2 fields included in the U-SIG, and / or the values indicated by the four UL SRP fields. The second AP transmits the PSRT PPDU based on the transmit power obtained through the calculation. In response, the second STA receives the PSRT PPDU and returns a response frame to the second AP in response to the PSRT PPDU.
[0285] Please refer to Figure 14. Figure 14 is a sequence diagram of a spatial reuse method according to one embodiment of the present application. It is assumed that AP1 and AP2 are located in the same OBSS, AP1 and STA1 belong to BSS1, and AP2 and STA2 belong to BSS2. As shown in Figure 14, AP1 (i.e., the first AP) transmits a PSRR PPDU including a trigger frame. After receiving the PSRR PPDU, STA1 (i.e., the first STA) transmits an uplink EHT TB PPDU at a certain time interval (e.g., short inter-frame space) based on the indication of the trigger frame. Since AP1 and AP2 are located in the same OBSS, AP2 can receive the PSRR PPDU transmitted by AP1 and the EHT TB PPDU transmitted by the STA. After receiving the PSRR PPDU and the EHT TB PPDU, AP2 (i.e., the second AP) calculates the power used to transmit the PSRT PPDU by AP2 based on the power (i.e., RPL) at which the PSRR PPDU is received and the two SRP values and / or four UL SRP values in the EHT TB PPDU. After detecting that the EHT TB PPDU has been transmitted, AP2 transmits the PSRT PPDU based on the power obtained through the calculation. After receiving the PSRT PPDU, STA2 (i.e., the second STA) transmits a block acknowledge frame at a certain time interval (e.g., a short interframe space) to acknowledge that STA2 has received the PSRT PPDU.
[0286] Optionally, the transmission power of the PSRT PPDU obtained by the second AP through calculation satisfies the following formula: PPDU transmit power (used by the second AP to transmit the PSRT PPDU) - log 10 (PSRT PPDU bandwidth / 20MHz)≦SRP-RPL(1-1)
[0287] log in equation (1-1) 10(PSRT PPDU bandwidth / 20 MHz) denotes the bandwidth normalization factor. In equation (1-1), SRP is the SRP value on the subchannel. In equation (1-1), RPL is the combined transmit power at all receive antenna connectors in the PSRR PPDU bandwidth in the non-HE or non-EHT PPDU portion of the trigger PPDU (PPDU containing the trigger frame). (RPL is the combined transmit power at receive antenna connectors in the PSRR PPDU bandwidth in the non-HE portion of the HE PPDU preamble of the trigger PPDU, averaged over all antennas used to receive the PPDU.) Bandwidth normalization has been performed on the SRP and PRL values in equation (1-1). It should be understood that since the value indicated by the UL SRP field is equal to the sum of the transmit power of the AP (here, the first AP) and the maximum interference power received by the AP (here, the first AP), the maximum interference power received by the AP (here, the first AP) is determined by the value of the spatial reuse parameter (SRP).
[0288] Optionally, the second AP may acquire the RPL by using the PSRR PPDU, but does not acquire the UL SRP in the PSRR PPDU, but acquires the SRP by using the U-SIG of the EHT TB PPDU. Specifically, the second AP calculates the transmit power to be used to transmit the PSRT PPDU based on the power at which the PSRR PPDU is received (i.e., RPL) and the values indicated by the SRP1 and SRP2 fields included in the U-SIG. Alternatively, the second AP may acquire both the RPL and the UL SRP by using the PSRR PPDU, but does not acquire the SRP in the U-SIG after determining that the EHT TB PPDU is received. Specifically, the second AP calculates the transmit power to be used to transmit the PSRT PPDU based on the power at which the PSRR PPDU is received (i.e., RPL) and the values indicated by the four UL SRP fields.
[0289] Optionally, the above formula (1-1) may be equivalent to the following formula (1-2): The normalized transmit power of the second AP is equal to or less than the transmit power of the first AP plus the maximum interference power received by the first AP, minus the power at which the second AP receives the PSRR PPDU sent by the first AP (1-2).
[0290] The right side of equation (1-2), i.e., the transmit power of the first AP minus the power at which the second AP receives the PSRR PPDU sent by the first AP, is equal to the path loss between the first AP and the second AP.
[0291] Therefore, equation (1-2) may alternatively be equivalent to equation (1-3) below: The normalized transmit power of the second AP is equal to or less than the maximum interference power received by the first AP plus the path loss between the first AP and the second AP (1-3).
[0292] Equation (1-3) may alternatively be equivalent to the following equation (1-4): Normalized transmit power of the second AP - Path loss between the first AP and the second AP ≦ Maximum interference power received by the first AP (1-4)
[0293] Since the left side of equation (1-4), i.e., the normalized transmission power of the second AP minus the path loss between the first AP and the second AP, represents the interference caused by the second AP to the first AP, equation (1-4) may be equivalent to the following equation (1-5): Interference caused by the second AP to the first AP≦Maximum interference power received by the first AP (1-5)
[0294] This embodiment of the present application provides a spatial reuse method for making the EHT TB PPDU compatible with the two SRP field cases in the U-SIG, and it can be seen that spatial reuse is implemented in accordance with the EHT standard. In this way, devices in overlapping basic service sets can transmit simultaneously, improving transmission efficiency.
[0295] In an optional embodiment, the spatial reuse method provided in the present application may also be applied to a second STA. Figure 15 is another schematic flowchart of a spatial reuse method according to an embodiment of the present application. It can be understood that in this embodiment of the present application, the first AP and the first STA belong to the same BSS, denoted as BSS1. The second AP and the second STA belong to another BSS, denoted as BSS2. The first AP and the second STA are located within an OBSS formed by BSS1 and BSS2. Therefore, in order to reduce interference with the reception of the EHT TB PPDU by the first AP caused by the energy generated when the second STA transmits the PSRT PPDU response frame, the transmit power used when the second STA transmits the response frame needs to be limited.
[0296] Optionally, in this embodiment of the present application, the second STA may receive information transmitted by the first AP and the first STA.
[0297] As shown in FIG. 15, the spatial reuse method includes, but is not limited to, the following steps.
[0298] S601: A first AP transmits a parameterized spatial reuse receive PSRR PPDU including a trigger frame. The trigger frame is used to schedule a first STA to transmit an EHT TB PPDU. In response, the first STA receives the trigger frame.
[0299] S602: The first STA transmits an EHT TB PPDU. In response, the first AP receives the EHT TB PPDU transmitted by the station.
[0300] Specifically, for the implementation of step S601 and step S602 in this embodiment of the present application, please refer to the implementation of step S501 and step S502 in the embodiment shown in Figure 13. Details will not be described again here.
[0301] S603: The second AP transmits a PSRT PPDU, and the second STA receives the PSRT PPDU in response.
[0302] S604: The second STA determines the transmit power of a response frame in response to the PSRT PPDU based on the values indicated by the SRP1 field and SRP2 field respectively included in the U-SIG of the EHT TB PPDU and / or the values indicated by the four UL SRP fields respectively included in the common information field of the trigger frame.
[0303] S605: The second STA transmits a response frame based on the transmission power of the response frame.
[0304] Specifically, for the implementation of steps S604 and S605 in this embodiment of the present application, please refer to the implementation of steps S503 and S504 in the embodiment shown in Fig. 13. Details will not be described again here. It should be understood that the transmission power of the response frame in response to the PSRT PPDU in step S604 corresponds to the transmission power of the PSRT PPDU in step S503. For the manner of determining the transmission power of the response frame in step S604, please refer to the manner of determining the transmission power of the PSRT PPDU in step S503. Details will not be described again here.
[0305] Optionally, the second AP may also be located in the OBSS formed by BSS1 and BSS2. Therefore, in order to reduce interference with the reception of the EHT TB PPDU by the first AP caused by the energy generated when the second STA transmits the response frame of the PSRT PPDU and the energy generated when the second AP transmits the PSRT PPDU, both the transmit power used when the second STA transmits the response frame and the transmit power used when the second AP transmits the PSRT PPDU need to be limited. Therefore, when the first AP, the second STA, and the second AP are all located in the OBSS formed by BSS1 and BSS2, before the second AP transmits the PSRT PPDU (i.e., before step S603), the second AP may determine the transmit power of the PSRT PPDU based on the values indicated by the SRP1 field and the SRP2 field, respectively, included in the U-SIG of the EHT TB PPDU and / or the values indicated by the four UL SRP fields, respectively, included in the common information field of the trigger frame. In this case, step S603 specifically includes transmitting the PSRT PPDU based on the transmission power of the PSRT PPDU.
[0306] This embodiment of the present application provides a spatial reuse method for making the EHT TB PPDU compatible with the two SRP field cases in the U-SIG, and it can be seen that spatial reuse is implemented in accordance with the EHT standard. In this way, devices in overlapping basic service sets can transmit simultaneously, improving transmission efficiency.
[0307] The foregoing describes in detail the method provided in the present application. To facilitate the implementation of the foregoing solutions in the embodiments of the present application, the embodiments of the present application further provide a corresponding apparatus or device.
[0308] In this embodiment of the present application, the AP and the STA may be divided into functional modules based on the above-mentioned method examples. For example, the functional modules may be obtained through division based on corresponding functions, or two or more functions may be integrated into one processing module. The integrated module may be implemented in the form of hardware or in the form of a software functional module. It should be noted that in this embodiment of the present application, the division into modules is an example and is merely a logical division of functions, and other divisions may be used in actual implementation. Below, a communication device in this embodiment of the present application will be described in detail with reference to Figures 16 to 19. The communication device may be an access point or a station. Furthermore, the communication device may be a device in an AP or a device in an STA.
[0309] If an integrated unit is used, please refer to Fig. 16. Fig. 16 is a schematic diagram showing the structure of a communication device 1 according to an embodiment of the present application. The communication device 1 may be an AP or a chip in an AP, such as a Wi-Fi chip. As shown in Fig. 16, the communication device 1 includes a transceiver unit 11 and, optionally, a processing unit 12.
[0310] In a first design, the transceiver unit 11 is configured to transmit a trigger frame, where the trigger frame is used to trigger the station to transmit an EHT TB PPDU. The transceiver unit 11 is further configured to receive the EHT TB PPDU transmitted by the station. Values indicated by spatial reuse parameters SRP1 and SRP2 in a universal signal field U-SIG of the EHT TB PPDU are determined based on values indicated by one or more uplink spatial reuse parameters UL SRP in a common information field of the trigger frame.
[0311] Optionally, the processing unit 12 is configured to generate a trigger frame.
[0312] It should be understood that the communication device 1 in the first design may execute embodiment 1 accordingly, and each of the aforementioned operations or functions of the units in the communication device 1 is used to implement the corresponding operation of the AP in embodiment 1. For brevity, the details will not be described again here.
[0313] In a second design, transceiver unit 11 is configured to transmit a trigger frame, the trigger frame is used to trigger a station to transmit an EHT TB PPDU, a common information field of the trigger frame includes four UL SRP fields, two of the four UL SRP fields indicate the same value and the other two indicate the same value. Transceiver unit 11 is further configured to receive an EHT TB PPDU transmitted by a station, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in a U-SIG of the EHT TB PPDU equal to a value indicated by either of the other two UL SRP fields indicating the same value.
[0314] Optionally, the processing unit 12 is configured to generate a trigger frame.
[0315] It should be understood that the communication device 1 in the second design may perform embodiment 2 accordingly, and each of the aforementioned operations or functions of the units in the communication device 1 is used to implement the corresponding operation of the AP in embodiment 2. For brevity, the details will not be described again here.
[0316] In a third design, the transceiver unit 11 is configured to transmit a trigger frame, the trigger frame is used to trigger a station to transmit an EHT TB PPDU, the trigger frame carries first indication information, the first indication information indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU. The transceiver unit 11 is further configured to receive the EHT TB PPDU transmitted by the station, the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0317] Optionally, the processing unit 12 is configured to generate a trigger frame.
[0318] It should be understood that the communication device 1 in the third design may perform embodiment 3 accordingly, and the aforementioned operations or functions of the units in the communication device 1 are respectively used to implement the corresponding operations of the AP in embodiment 3. For brevity, the details will not be described again here.
[0319] In a fourth design, transceiver unit 11 is configured to transmit a trigger frame. Transceiver unit 11 is further configured to receive an EHT TB PPDU transmitted by a station, where a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by a first UL SRP field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by a second UL SRP field. The trigger frame carries second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, the common information field of the trigger frame includes a first UL SRP field and a second UL SRP field, the first UL SRP field indicates an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicates an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth are half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth is lower than the frequency of the second bandwidth.
[0320] Optionally, the processing unit 12 is configured to generate a trigger frame.
[0321] It should be understood that the communication device 1 in the fourth design may perform embodiment 4 accordingly, and the aforementioned operations or functions of the units in the communication device 1 are separately configured to implement the corresponding operations of the AP in embodiment 4. For brevity, the details will not be described again here.
[0322] Please refer to Fig. 17. Fig. 17 is a schematic diagram showing the structure of a communication device 2 according to an embodiment of the present application. The communication device 2 may be an STA or a chip within the STA, for example a Wi-Fi chip. As shown in Fig. 17, the communication device 2 includes a transceiver unit 21 and, optionally, a processing unit 22.
[0323] In a first design, transceiver unit 21 is configured to receive a trigger frame, where the trigger frame is used to trigger communication device 2 to transmit an EHT TB PPDU. Transceiver unit 21 is further configured to transmit the EHT TB PPDU, where values indicated by the SRP1 field and the SRP2 field in the U-SIG of the EHT TB PPDU are determined based on values indicated by one or more UL SRP fields in the common information field of the trigger frame, respectively.
[0324] Optionally, the processing unit 22 includes a generating subunit 221 and a setting subunit 222. The generating subunit 22 is configured to generate an EHT TB PPDU. The setting subunit 222 is configured to set SRP1 and SRP2 fields in a U-SIG of the EHT TB PPDU based on values indicated by one or more UL SRP fields in a common information field of the trigger frame.
[0325] It should be understood that the communication device 2 in the first design may execute embodiment 1 accordingly, and the aforementioned operations or functions of the units in the communication device 2 are respectively used to implement the corresponding operations of the STA in embodiment 1. For brevity, the details will not be described again here.
[0326] In a second design, transceiver unit 21 is configured to receive a trigger frame, the trigger frame is used to trigger communication device 2 to transmit an EHT TB PPDU, a common information field of the trigger frame includes four UL SRP fields, two of the four UL SRP fields indicate the same value and the other two indicate the same value. Transceiver unit 21 is further configured to transmit the EHT TB PPDU, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the other two UL SRP fields indicating the same value.
[0327] Optionally, the processing unit 22 includes a generating subunit 221 and a setting subunit 222. The generating subunit 22 is configured to generate an EHT TB PPDU. The setting subunit 222 is configured to set a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU to a value indicated by any UL SRP field in a first group of two groups, and to set a value indicated by an SRP2 field in the U-SIG to a value indicated by any UL SRP field in a second group of two groups.
[0328] It should be understood that the communication device 2 in the second design may execute embodiment 2 accordingly, and the aforementioned operations or functions of the units in the communication device 2 are respectively used to implement the corresponding operations of the STA in embodiment 2. For brevity, the details will not be described again here.
[0329] In a third design, the transceiver unit 21 is configured to receive a trigger frame, the trigger frame is used to trigger the communication device 2 to transmit an EHT TB PPDU, the trigger frame carries first indication information, the first indication information indicates a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU, and the transceiver unit 21 is further configured to transmit the EHT TB PPDU, the value of the SRP1 field and / or the value of the SRP2 field in the U-SIG of the EHT TB PPDU is determined based on the first indication information.
[0330] Optionally, the processing unit 22 includes a generating subunit 221 and a setting subunit 222. The generating subunit 22 is configured to generate an EHT TB PPDU. The setting subunit 222 is configured to set a value of an SRP1 field and / or a value of an SRP2 field in a U-SIG of the EHT TB PPDU based on the first indication information.
[0331] It should be understood that the communication device 2 in the third design may perform embodiment 3 accordingly, and the aforementioned operations or functions of the units in the communication device 2 are respectively used to implement the corresponding operations of the STA in embodiment 3. For brevity, the details will not be described again here.
[0332] In a fourth design, transceiver unit 21 is configured to receive a trigger frame. Transceiver unit 21 is further configured to transmit an EHT TB PPDU, where a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by a first UL SRP field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by a second UL SRP field. The trigger frame carries second indication information, the second indication information indicating that the trigger frame is used to schedule a station to transmit only an EHT TB PPDU, the common information field of the trigger frame includes a first UL SRP field and a second UL SRP field, the first UL SRP field indicates an SRP value of a first bandwidth in a bandwidth of the EHT TB PPDU, the second UL SRP field indicates an SRP value of a second bandwidth in the bandwidth of the EHT TB PPDU, both the first bandwidth and the second bandwidth are half the bandwidth of the EHT TB PPDU, and the frequency of the first bandwidth is lower than the frequency of the second bandwidth.
[0333] Optionally, the processing unit 22 includes a generating subunit 221 and a setting subunit 222. The generating subunit 22 is configured to generate an EHT TB PPDU. The setting subunit 222 is configured to set a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU to a value indicated by the first UL SRP, and set a value indicated by an SRP2 field in the U-SIG to a value indicated by the second UL SRP field.
[0334] It should be understood that the communication device 2 in the fourth design may execute embodiment 4 accordingly, and the aforementioned operations or functions of the units in the communication device 2 are separately configured to implement the corresponding operations of the STA in embodiment 4. For brevity, the details will not be described again here.
[0335] Please refer to Figure 18. Figure 18 is a schematic diagram showing the structure of a communication device 3 according to an embodiment of the present application. The communication device 3 may be an AP or an STA. Furthermore, the communication device 3 may be a chip in an AP, or an STA, for example a Wi-Fi chip. As shown in Figure 18, the communication device 3 may include a determining unit 31 and a transceiver unit 32.
[0336] In this design, the communication device 3 is an AP or a chip within the AP. The determination unit 31 is configured to determine the transmit power of the PSRT PPDU based on the values indicated by the SRP1 field and the SRP2 field included in the U-SIG of the EHT TB PPDU and / or the values indicated by the four UL SRP fields included in the common information field of the trigger frame. The transceiver unit 32 is configured to transmit the PSRT PPDU based on the transmit power of the PSRT PPDU.
[0337] Optionally, the transceiver unit 32 is further configured to receive a trigger frame, where the trigger frame includes four UL SRP fields. A value indicated by one UL SRP field is the sum of the transmission power of the first AP on one subchannel and the maximum interference power received by the first AP. The communication device 3 and the first AP are located in the same OBSS. The first AP refers to the AP that transmits the trigger frame.
[0338] Optionally, the transceiver unit 32 is further configured to receive an EHT TB PPDU, and the U-SIG of the EHT TB PPDU includes an SRP1 field and an SRP2 field. The value indicated by the SRP1 field is the sum of the transmission power of the first AP on the first subchannel and the maximum interference power received by the first AP. The value indicated by the SRP2 field is the sum of the transmission power of the first AP on the second subchannel and the maximum interference power received by the first AP. The bandwidth of the first subchannel and the bandwidth of the second subchannel are equal to half the bandwidth of the EHT TB PPDU, and the frequency of the first subchannel is lower than the frequency of the second subchannel. The communication device 3 and the first AP are located in the same OBSS.
[0339] It should be understood that communication device 3 in this design may perform the method in Figure 13 accordingly, and the aforementioned operations or functions of the units in communication device 3 are separately configured to implement the corresponding operations of the second AP in Figure 13. For brevity, the details will not be described again here.
[0340] In another design, the communication device 3 is a STA or a chip within the STA. The determination unit 31 is configured to determine the transmit power of a response frame in response to the PSRT PPDU based on the values indicated by the SRP1 and SRP2 fields included in the U-SIG of the EHT TB PPDU and / or the values indicated by four UL SRP fields included in the common information field of the trigger frame. The transceiver unit 32 is configured to transmit the response frame based on the transmit power of the response frame.
[0341] Optionally, the transceiver unit 32 is further configured to receive a trigger frame, where the trigger frame includes four UL SRP fields. A value indicated by one UL SRP field is the sum of the transmission power of the first AP on one subchannel and the maximum interference power received by the first AP. The communication device 3 and the first AP are located in the same OBSS. The first AP refers to the AP that transmits the trigger frame.
[0342] Optionally, the transceiver unit 32 is further configured to receive an EHT TB PPDU, and the U-SIG of the EHT TB PPDU includes an SRP1 field and an SRP2 field. The value indicated by the SRP1 field is the sum of the transmission power of the first AP on the first subchannel and the maximum interference power received by the first AP. The value indicated by the SRP2 field is the sum of the transmission power of the first AP on the second subchannel and the maximum interference power received by the first AP. The bandwidth of the first subchannel and the bandwidth of the second subchannel are equal to half the bandwidth of the EHT TB PPDU, and the frequency of the first subchannel is lower than the frequency of the second subchannel. The communication device 3 and the first AP are located in the same OBSS.
[0343] Optionally, the transceiver unit 32 is further configured to receive a PSRT PPDU transmitted by the second AP.
[0344] In any one of the above designs, decision unit 31 may be a processing unit.
[0345] It should be understood that the communication device 3 in this design may accordingly perform the method in Figure 15, and the aforementioned operations or functions of the units in the communication device 3 are separately configured to implement the corresponding operations of the second STA in Figure 15. For brevity, the details will not be described again here.
[0346] The above describes the AP and STA in the embodiment of the present application. The following describes possible product forms of the AP and STA. It should be understood that any product having the function of the AP described in Fig. 16, any product having the function of the STA described in Fig. 17, or any product having the function of the AP or STA described in Fig. 18 shall fall within the scope of protection of the embodiment of the present application. It should be further understood that the following description is merely an example, and the product forms of the AP and STA in the embodiment of the present application are not limited thereto.
[0347] In a possible product form, the AP and STA in the embodiment of the present application can be implemented by using a general-purpose bus architecture.
[0348] For ease of explanation, please refer to Fig. 19. Fig. 19 is a schematic diagram illustrating the structure of a communication device 1000 according to one embodiment of the present application. The communication device 1000 may be an AP or a STA, or a chip within an AP or a STA. Fig. 19 shows only the main components of the communication device 1000. In addition to a processor 1001 and a transceiver 1002, the communication device may further include a memory 1004 and input / output devices (not shown in this figure).
[0349] The processor 1001 is primarily configured to process communication protocols and communication data, control communication devices, execute software programs, and process software programs and data. The memory 1004 is primarily configured to store software programs and data. The transceiver 1002 may include control circuitry and an antenna. The control circuitry is primarily configured to convert between baseband signals and radio frequency signals and process radio frequency signals. The antenna is primarily configured to transmit and receive radio frequency signals in the form of electromagnetic waves. The input / output device, such as a touchscreen, display, or keyboard, is primarily configured to receive data input by a user and output data to a user.
[0350] After the communication device is powered on, the processor 1001 can read the software program in the memory 1004, interpret and execute the instructions of the software program, and process the data of the software program. When data needs to be transmitted wirelessly, the processor 1001 performs baseband processing on the data to be transmitted and then outputs the baseband signal to the radio frequency circuit. The radio frequency circuit performs radio frequency processing on the baseband signal and then transmits the radio frequency signal in the form of electromagnetic waves through an antenna. When data is transmitted to the communication device, the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor 1001. The processor 1001 converts the baseband signal into data and processes the data.
[0351] In another implementation, the radio frequency circuitry and antenna may be located independently from the processor that performs the baseband processing, e.g., in a distributed scenario, the radio frequency circuitry and antenna may be located remotely and independently from the communication device.
[0352] The processor 1001, the transceiver 1002 and the memory 1004 may be connected through a communication bus.
[0353] In design, the communication device 1000 may be configured to perform the functions of the AP in embodiment 1. The processor 1001 may be configured to generate a trigger frame to be transmitted in step S101 in FIG. 7 and / or perform other processing of the techniques described herein. The transceiver 1002 may be configured to perform steps S101 and S104 in FIG. 7 and / or perform other processing of the techniques described herein.
[0354] In another design, communication device 1000 may be configured to perform the functions of the STA in embodiment 1, that is, processor 1001 may be configured to generate the EHT TB PPDU transmitted in step S103 in FIG. 7 and / or perform other processes of the techniques described herein. Transceiver 1002 may be configured to perform steps S102 and S103 in FIG. 7 and / or perform other processes of the techniques described herein.
[0355] In design, the communication device 1000 may be configured to perform the functions of the AP in embodiment 2. The processor 1001 may be configured to generate the trigger frame transmitted in step S201 in FIG. 9 and / or perform other processing of the techniques described herein. The transceiver 1002 may be configured to perform steps S201 and S204 in FIG. 9 and / or perform other processing of the techniques described herein.
[0356] In another design, communications device 1000 may be configured to perform the functions of the STA in embodiment 2, that is, processor 1001 may be configured to generate the EHT TB PPDU transmitted in step S203 in FIG. 9 and / or perform other processing of the techniques described herein. Transceiver 1002 may be configured to perform steps S202 and S203 in FIG. 9 and / or perform other processing of the techniques described herein.
[0357] In design, the communication device 1000 may be configured to perform the functions of the AP in embodiment 3. The processor 1001 may be configured to generate a trigger frame to be transmitted in step S301 in FIG. 10 and / or perform other processing of the techniques described herein. The transceiver 1002 may be configured to perform steps S301 and S304 in FIG. 10 and / or perform other processing of the techniques described herein.
[0358] In another design, communications device 1000 may be configured to perform the functions of the STA in embodiment 3, i.e., processor 1001 may be configured to generate the EHT TB PPDU transmitted in step S303 in FIG. 10 and / or perform other processing of the techniques described herein. Transceiver 1002 may be configured to perform steps S302 and S303 in FIG. 10 and / or perform other processing of the techniques described herein.
[0359] In design, the communication device 1000 may be configured to perform the functions of the AP in embodiment 4. The processor 1001 may be configured to generate a trigger frame to be transmitted in step S401 in FIG. 12 and / or perform other processing of the techniques described herein. The transceiver 1002 may be configured to perform steps S401 and S404 in FIG. 12 and / or perform other processing of the techniques described herein.
[0360] In another design, communications device 1000 may be configured to perform the functions of the STA in embodiment 4, that is, processor 1001 may be configured to generate the EHT TB PPDU transmitted in step S403 in FIG. 12 and / or perform other processing of the techniques described herein. Transceiver 1002 may be configured to perform steps S402 and S403 in FIG. 12 and / or perform other processing of the techniques described herein.
[0361] In design, the communication device 1000 may be configured to perform the function of the second AP in embodiment 5. The processor 1001 may be configured to perform step S503 in FIG. 13 and / or other processing of the techniques described herein. The transceiver 1002 may be configured to perform step S504 in FIG. 13 and / or other processing of the techniques described herein.
[0362] In design, the communication device 1000 may be configured to perform the functions of the second STA in embodiment 5. The processor 1001 may be configured to perform step S604 in FIG. 15 and / or other processes of the techniques described herein. The transceiver 1002 may be configured to perform step S605 in FIG. 15 and / or other processes of the techniques described herein.
[0363] In any one of the above designs, the processor 1001 may include a transceiver configured to implement transmit and receive functions. For example, the transceiver may be a transceiver circuit, an interface, or an interface circuit. The transceiver circuit, the interface, or the interface circuit configured to implement the transmit and receive functions may be separate or integrated together. The transceiver circuit, the interface, or the interface circuit may be configured to read and write code / data. Alternatively, the transceiver circuit, the interface, or the interface circuit may be configured to transmit or forward signals.
[0364] In any one of the above designs, the processor 1001 may store instructions. The instructions may be a computer program. The computer program executes on the processor 1001, thereby enabling the communication device 1000 to perform the method described in any one of the above method embodiments. The computer program may be fixed within the processor 1001. In this case, the processor 1001 may be implemented in hardware.
[0365] In one implementation, the communication device 1000 may include circuitry that may implement the transmitting, receiving, or communication functions of the aforementioned method embodiments. The processors and transceivers described herein may be implemented in integrated circuits (ICs), analog ICs, radio frequency integrated circuits (RFICs), mixed signal ICs, application-specific integrated circuits (ASICs), printed circuit boards (PCBs), electronic devices, etc. The processors and transceivers may alternatively be fabricated using various IC technologies, such as complementary metal oxide semiconductor (CMOS), n-type metal oxide semiconductor (nMOS), p-type metal oxide semiconductor (PMOS), bipolar junction transistor (BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), and gallium arsenide (GaAs).
[0366] The scope of the communication device described herein is not limited to these, and the structure of the communication device may not be limited by FIG. 19. The communication device may be a standalone device or may be part of a larger device. For example, the communication device may be: (1) A stand-alone integrated circuit IC, chip, or chip system or subsystem; (2) a set including one or more ICs, which may optionally further include a storage component configured to store data and computer programs; (3) ASIC, e.g., modem; (4) a module that can be embedded in another device; (5) Receivers, terminals, intelligent terminals, mobile phones, wireless devices, handheld devices, mobile units, in-vehicle devices, network devices, cloud devices, or artificial intelligence devices; or (6) Other devices, etc. It may be.
[0367] In a possible product form, the AP and STA in the embodiments of the present application may be implemented by a general-purpose processor.
[0368] A general-purpose processor for implementing an AP includes a processing circuit and an input / output interface interconnected to and communicating with the processing circuit.
[0369] In design, the general-purpose processor may be configured to perform the functions of the AP in embodiment 1. Specifically, the processing circuit may be configured to generate the trigger frame transmitted in step S101 in Fig. 7 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S101 and S104 in Fig. 7 and / or perform other processing of the techniques described herein.
[0370] In design, the general-purpose processor may be configured to perform the functions of the AP in embodiment 2. Specifically, the processing circuit is configured to generate the trigger frame transmitted in step S201 in Fig. 9 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S201 and S204 in Fig. 9 and / or perform other processing of the techniques described herein.
[0371] In design, the general-purpose processor may be configured to perform the functions of the AP in embodiment 3. Specifically, the processing circuit is configured to generate the trigger frame transmitted in step S301 in Fig. 10 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S301 and S304 in Fig. 10 and / or perform other processing of the techniques described herein.
[0372] In design, the general-purpose processor may be configured to perform the functions of the AP in embodiment 4. Specifically, the processing circuit is configured to generate the trigger frame transmitted in step S401 in FIG. 12 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S401 and S404 in FIG. 12 and / or perform other processing of the techniques described herein.
[0373] In design, the general-purpose processor may be configured to perform the functions of the second AP in embodiment 5. Specifically, the processing circuit is configured to perform step S503 in FIG. 13 and / or other processing of the techniques described herein. The input / output interface may be configured to perform step S504 in FIG. 13 and / or other processing of the techniques described herein.
[0374] A general-purpose processor for implementing an STA includes a processing circuit and an input / output interface interconnected to and communicating with the processing circuit.
[0375] In design, the general-purpose processor may be configured to perform the functions of the STA in embodiment 1. Specifically, the processing circuit is configured to generate the EHT TB PPDU transmitted in step S103 in Fig. 7 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S102 and S103 in Fig. 7 and / or perform other processing of the techniques described herein.
[0376] In design, the general-purpose processor may be configured to perform the functions of the STA in embodiment 2. Specifically, the processing circuit is configured to generate the EHT TB PPDU transmitted in step S203 in Figure 9 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S202 and S203 in Figure 9 and / or perform other processing of the techniques described herein.
[0377] In design, the general-purpose processor may be configured to perform the functions of the STA in embodiment 3. Specifically, the processing circuit is configured to generate the EHT TB PPDU transmitted in step S303 in Fig. 10 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S302 and S303 in Fig. 10 and / or perform other processing of the techniques described herein.
[0378] In design, the general-purpose processor may be configured to perform the functions of the STA in embodiment 4. Specifically, the processing circuit is configured to generate the EHT TB PPDU transmitted in step S403 in Figure 12 and / or perform other processing of the techniques described herein. The input / output interface may be configured to perform steps S402 and S403 in Figure 12 and / or perform other processing of the techniques described herein.
[0379] In design, the general-purpose processor may be configured to perform the functions of the second STA in embodiment 5. Specifically, the processing circuit is configured to perform step S604 in FIG. 15 and / or other processing of the techniques described herein. The input / output interface may be configured to perform step S605 in FIG. 15 and / or other processing of the techniques described herein.
[0380] It should be understood that the communication devices in the various product forms mentioned above have any functions of the AP or STA in the method embodiments, and the details will not be described again here.
[0381] An embodiment of the present application further provides a computer-readable storage medium, which stores computer program code, which, when executed by a processor, causes the electronic device to perform the method in any one of the previous embodiments.
[0382] An embodiment of the present application further provides a computer program product, which, when executed on a computer, enables the computer to perform the method in any one of the preceding embodiments.
[0383] An embodiment of the present application further provides a communication device, which may be in the form of a chip product, and the structure of the device includes a processor and an interface circuit, the processor is configured to communicate with another device through the interface circuit to enable the device to perform the method in any one of the previous embodiments.
[0384] An embodiment of the present application further provides a wireless communication system, including an AP and a STA, wherein the AP and the STA can perform the method in any one of the foregoing embodiments.
[0385] The method or algorithm steps described in combination with the contents disclosed herein may be implemented by hardware or by a processor executing software instructions. The software instructions may include corresponding software modules. The software modules may be stored in a random access memory (RAM), flash memory, erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), registers, a hard disk, a removable hard disk, a compact disk read-only memory (CD-ROM), or any other form of storage medium known in the art. For example, a storage medium may be coupled to a processor such that the processor can read information from and write information to the storage medium. Of course, the storage medium may be components of the processor. The processor and the storage medium may be located in an ASIC. In addition, the ASIC may be located within a core network interface device. Of course, the processor and the storage medium may reside as discrete components within the core network interface device.
[0386] Those skilled in the art will recognize that the functions described herein in one or more of the foregoing examples may be implemented by hardware, software, firmware, or any combination thereof. If these functions are implemented by software, they may be stored on or transmitted as one or more instructions or code in a computer-readable medium. Computer-readable media include computer-readable storage media and communication media. Communication media include any medium that facilitates the transfer of a computer program from one place to another. Storage media may be any available medium accessible to a general-purpose or special-purpose computer.
[0387] In the above specific implementations, the objectives, technical solutions and beneficial effects of the present application are further described in detail. It should be understood that the above description is only a specific implementation of the present application and is not intended to limit the protection scope of the present application. Any modifications, equivalent replacements or improvements made based on the technical solutions of the present application shall fall within the protection scope of the present application. [Other possible items] [Item 1] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: an access point AP transmitting a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a special user information field of the trigger frame includes a first field and a second field; and receiving the EHT TB PPDU transmitted by the station, wherein the value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is set to the value indicated by the first field, and the value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is set to the value indicated by the second field; A method comprising: [Item 2] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: a station STA receiving a trigger frame, where the trigger frame is used to trigger the station to transmit an EHT TB PPDU, and a special user information field of the trigger frame includes a first field and a second field; and a step of the STA transmitting the EHT TB PPDU, wherein a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is set to a value indicated by the first field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is set to a value indicated by the second field. A method comprising: [Item 3] 3. The method of claim 1, wherein the common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value; and the value indicated by the first field is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the second field is equal to the value indicated by either of the other two UL SRP fields indicating the same value. [Item 4] 4. The method of any one of items 1 to 3, wherein the special user information field includes an association identifier 12 field, and the value of the association identifier 12 field is a special value. [Item 5] 5. The method according to any one of items 1 to 4, wherein the bandwidth of the EHT TB PPDU is any one of 80 MHz, 160 MHz and 320 MHz. [Item 6] Item 4. The method according to item 3, wherein the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the values indicated by the UL SRP1 field and the UL SRP2 field are the same, and the values indicated by the UL SRP3 field and the UL SRP4 field are the same. [Item 7] 7. The method of claim 3 or 6, wherein the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a primary 160 MHz channel in ascending frequency order, and the SRP values of four 40 MHz subchannels on a secondary 160 MHz channel respectively are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel. [Item 8] The four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the four UL SRP fields are the same; and 7. The method according to item 3 or 6, wherein when the bandwidth of the EHT TB PPDU is 20 MHz, the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields. [Item 9] the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the values indicated by the UL SRP1 field and the UL SRP3 field are the same, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same; and When the bandwidth of the EHT TB PPDU is 40 MHz, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. The method according to item 3 or 6. [Item 10] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: an access point (AP) transmitting a trigger frame, where the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value; and receiving the EHT TB PPDU transmitted by the station, wherein the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields indicating the same value; A method comprising: [Item 11] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: A step of receiving a trigger frame by a station STA, where the trigger frame is used to trigger the station to transmit an EHT TB PPDU, a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicate the same value and the other two indicate the same value; and A step in which the STA transmits an EHT TB PPDU, wherein a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by either of the other two UL SRP fields indicating the same value. A method comprising: [Item 12] 12. The method according to item 10 or 11, wherein the bandwidth of the EHT TB PPDU is any one of 80 MHz, 160 MHz and 320 MHz. [Item 13] 13. The method according to any one of items 10 to 12, wherein the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, wherein the values indicated by the UL SRP1 field and the UL SRP2 field are the same, and the values indicated by the UL SRP3 field and the UL SRP4 field are the same. [Item 14] 14. The method according to any one of items 10 to 13, wherein the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a primary 160 MHz channel in ascending order of frequency, and the SRP values of four 40 MHz subchannels on a secondary 160 MHz channel respectively are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel. [Item 15] The four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the four UL SRP fields are the same; and 15. The method according to any one of items 10 to 14, wherein when the bandwidth of the EHT TB PPDU is 20 MHz, the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields. [Item 16] the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the values indicated by the UL SRP1 field and the UL SRP3 field are the same, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same; and When the bandwidth of the EHT TB PPDU is 40 MHz, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. 15. The method according to any one of items 10 to 14. [Item 17] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: an access point AP transmitting a trigger frame, wherein the trigger frame is used to trigger a station to transmit an ultra-high throughput trigger-based physical layer protocol data unit (EHT TB PPDU); and receiving the EHT TB PPDU transmitted by the station, wherein the values indicated by spatial reuse parameters SRP1 and SRP2 in a universal signal field U-SIG of the EHT TB PPDU are determined based on values indicated by one or more uplink spatial reuse parameters UL SRP in a common information field of the trigger frame, respectively; A method comprising: [Item 18] 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: receiving a trigger frame by a station STA, wherein the trigger frame is used to trigger the station to transmit an EHT TB PPDU; and the STA transmitting the EHT TB PPDU, wherein values indicated by an SRP1 field and an SRP2 field in a U-SIG of the EHT TB PPDU are determined based on values indicated by one or more UL SRP fields in a common information field of the trigger frame, respectively. A method comprising: [Item 19] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the four UL SRP fields are the same; and Item 19. The method according to item 17 or 18, wherein, when the bandwidth of the EHT TB PPDU is 20 MHz, the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields. [Item 20] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and When the bandwidth of the EHT TB PPDU is 40 MHz, the UL SRP1 field and the UL SRP3 field each indicate an SRP value of a first 20 MHz sub-channel on a 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP1 field and the UL SRP3 field are the same; and the UL SRP2 field and the UL SRP4 field each indicate an SRP value of a second 20 MHz subchannel on the 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. Item 19. The method according to item 17 or 18. [Item 21] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and If the bandwidth of the EHT TB PPDU is 80 MHz, the four UL SRP fields respectively indicate the SRP values of four 20 MHz sub-channels on an 80 MHz channel in ascending frequency order; or If the bandwidth of the EHT TB PPDU is 160 MHz, the four UL SRP fields respectively indicate the SRP values of four 40 MHz sub-channels on a 160 MHz channel in ascending frequency order; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP3 field and the UL SRP4 field. Item 19. The method according to item 17 or 18. [Item 22] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and When the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a primary 160 MHz channel in ascending order of frequency, and the SRP values of four 40 MHz subchannels on a secondary 160 MHz channel respectively are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP3 field and the UL SRP4 field. Item 19. The method according to item 17 or 18. [Item 23] 10. A communication device comprising a processor and a transceiver, the transceiver configured to transmit and receive PPDUs, and the processor configured to execute program instructions to enable the communication device to perform the method described in any one of items 1 to 9. [Item 24] 17. A communication device comprising a processor and a transceiver, the transceiver configured to transmit and receive PPDUs, and the processor configured to execute program instructions to enable the communication device to perform the method described in any one of items 10 to 16. [Item 25] a processing unit configured to generate a trigger frame, wherein the trigger frame is used to trigger a station to transmit an Ultra High Throughput Trigger Based Physical Layer Protocol Data Unit (EHT TB PPDU); and a transceiver unit configured to transmit the trigger frame, wherein the transceiver unit is further configured to receive the EHT TB PPDU transmitted by the station; wherein: The values indicated by spatial reuse parameters SRP1 field and SRP2 field in a universal signal field U-SIG of the EHT TB PPDU are determined based on the values indicated by one or more uplink spatial reuse parameters UL SRP field in a common information field of the trigger frame. Communication equipment. [Item 26] A communication device, a transceiver unit configured to receive a trigger frame, wherein the trigger frame is used to trigger the communication device to transmit an EHT TB PPDU; and a processing unit configured to generate the EHT TB PPDU, wherein values indicated by an SRP1 field and an SRP2 field in a U-SIG of the EHT TB PPDU are respectively determined based on values indicated by one or more UL SRP fields in a common information field of the trigger frame. Equipped with The transceiver unit is further configured to transmit the EHT TB PPDU. Communication equipment. [Item 27] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the four UL SRP fields are the same; and 27. The communication device of item 25 or 26, wherein when the bandwidth of the EHT TB PPDU is 20 MHz, the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields. [Item 28] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and When the bandwidth of the EHT TB PPDU is 40 MHz, the UL SRP1 field and the UL SRP3 field each indicate an SRP value of a first 20 MHz sub-channel on a 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP1 field and the UL SRP3 field are the same; and the UL SRP2 field and the UL SRP4 field each indicate an SRP value of a second 20 MHz subchannel on the 40 MHz channel in ascending frequency order, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. 27. The communication device according to item 25 or 26. [Item 29] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and If the bandwidth of the EHT TB PPDU is 80 MHz, the four UL SRP fields respectively indicate the SRP values of four 20 MHz sub-channels on an 80 MHz channel in ascending frequency order; or If the bandwidth of the EHT TB PPDU is 160 MHz, the four UL SRP fields respectively indicate the SRP values of four 40 MHz sub-channels on a 160 MHz channel in ascending frequency order; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP3 field and the UL SRP4 field. 27. The communication device according to item 25 or 26. [Item 30] The common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field; and When the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a primary 160 MHz channel in ascending order of frequency, and the SRP values of four 40 MHz subchannels on a secondary 160 MHz channel respectively are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel; and The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP1 field and the UL SRP2 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the minimum of the values indicated by the UL SRP3 field and the UL SRP4 field. 27. The communication device according to item 25 or 26. [Item 31] a processing unit configured to generate a trigger frame, wherein the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value; and a transceiver unit configured to transmit the trigger frame, wherein the transceiver unit is further configured to receive an EHT TB PPDU transmitted by the station; wherein: The value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the two UL SRP fields indicating the same value, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by either of the other two UL SRP fields indicating the same value. Communication equipment. [Item 32] a transceiver unit configured to receive a trigger frame, wherein the trigger frame is used to trigger a station to transmit an EHT TB PPDU, and a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, two of the four UL SRP fields indicating the same value and the other two indicating the same value; and a processing unit configured to generate the EHT TB PPDU; wherein: a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by either of the two UL SRP fields indicating the same value, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by either of the other two UL SRP fields indicating the same value; the transceiver unit is further configured to transmit the EHT TB PPDU. Communication equipment. [Item 33] 33. The communication device according to item 31 or 32, wherein the bandwidth of the EHT TB PPDU is any one of 80 MHz, 160 MHz and 320 MHz. [Item 34] 34. The communication device of any one of items 31 to 33, wherein the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the UL SRP1 field and the UL SRP2 field are the same, and the values indicated by the UL SRP3 field and the UL SRP4 field are the same. [Item 35] 35. The communications device of any one of items 31 to 34, wherein the bandwidth of the EHT TB PPDU is 320 MHz, the four UL SRP fields respectively indicate SRP values of four 40 MHz subchannels on a primary 160 MHz channel in ascending frequency order, and the SRP values of four 40 MHz subchannels on a secondary 160 MHz channel are the same as the SRP values of the four 40 MHz subchannels on the primary 160 MHz channel. [Item 36] The four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, and the values indicated by the four UL SRP fields are the same; and 36. The communication device of any one of items 32 to 35, wherein when the bandwidth of the EHT TB PPDU is 20 MHz, the value indicated by the SRP1 field and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU are equal to the value indicated by any one of the four UL SRP fields. [Item 37] the four UL SRP fields are a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the values indicated by the UL SRP1 field and the UL SRP3 field are the same, and the values indicated by the UL SRP2 field and the UL SRP4 field are the same; and When the bandwidth of the EHT TB PPDU is 40 MHz, the value indicated by the SRP1 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP1 field or the value indicated by the UL SRP3 field, and the value indicated by the SRP2 field in the U-SIG of the EHT TB PPDU is equal to the value indicated by the UL SRP2 field or the value indicated by the UL SRP4 field. 36. A communication device according to any one of items 32 to 35. [Item 38] 23. A computer-readable storage medium having stored thereon program instructions that, when executed on a computer, enable the computer to perform the method according to any one of items 1 to 22. [Item 39] 23. A computer program product comprising instructions, which when executed on a computer, enable the computer to perform the method according to any one of items 1 to 22.
Claims
1. 1. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: an access point (AP) transmitting a trigger frame, wherein a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the UL SRP1 field and the UL SRP2 field indicating the same value, and the UL SRP3 field and the UL SRP4 field indicating the same value; receiving, by the AP, an EHT TB PPDU transmitted by a station, wherein a bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP1 field or the UL SRP2 field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP3 field or the UL SRP4 field; A method comprising:
2. The method of claim 1 , wherein the trigger frame is used to trigger the station to transmit the EHT TB PPDU.
3. 3. The method of claim 1, wherein the bandwidth of the EHT TB PPDU is 80 MHz, and the four UL SRP fields are used to indicate SRP values of four 20 MHz subchannels of an 80 MHz channel, respectively.
4. 3. The method of claim 1, wherein the bandwidth of the EHT TB PPDU is 160 MHz, and the four UL SRP fields are used to indicate SRP values of four 40 MHz subchannels of a 160 MHz channel, respectively.
5. 5. A communications device comprising a processor and a transceiver, the transceiver configured to transmit and receive PPDUs, and the processor configured to execute program instructions to enable the communications device to perform the method of any one of claims 1 to 4.
6. A method for determining a spatial reuse parameter field in a physical layer protocol data unit, comprising: a station (STA) receiving a trigger frame, wherein a common information field of the trigger frame includes four uplink spatial reuse parameter (UL SRP) fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, the UL SRP1 field and the UL SRP2 field indicating the same value, and the UL SRP3 field and the UL SRP4 field indicating the same value; a step of the STA transmitting an EHT TB PPDU, wherein a bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP1 field or the UL SRP2 field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP3 field or the UL SRP4 field; A method comprising:
7. The method of claim 6, wherein the trigger frame is used to trigger the station to transmit the EHT TB PPDU.
8. The method of claim 6 or 7, wherein the bandwidth of the EHT TB PPDU is 80 MHz, and the four UL SRP fields are used to indicate SRP values of four 20 MHz subchannels of an 80 MHz channel, respectively.
9. The method of claim 6 or 7, wherein the bandwidth of the EHT TB PPDU is 160 MHz, and the four UL SRP fields are used to indicate SRP values of four 40 MHz subchannels of a 160 MHz channel, respectively.
10. A communications device comprising a processor and a transceiver, wherein the transceiver is configured to transmit and receive PPDUs, and the processor is configured to execute program instructions to enable the communications device to perform a method according to any one of claims 6 to 9.
11. a processing unit configured to generate a trigger frame, wherein a common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field, and a UL SRP4 field, wherein the UL SRP1 field and the UL SRP2 field indicate the same value, and the UL SRP3 field and the UL SRP4 field indicate the same value; a transceiver unit configured to transmit the trigger frame; Equipped with the transceiver unit is further configured to receive an EHT TB PPDU transmitted by a station; a bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP1 field or the UL SRP2 field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP3 field or the UL SRP4 field.
12. The communications device of claim 11 , wherein the trigger frame is used to trigger the station to transmit the EHT TB PPDU.
13. 13. The communication device of claim 11 or 12, wherein the bandwidth of the EHT TB PPDU is 80 MHz, and the four UL SRP fields are used to indicate SRP values of four 20 MHz subchannels of an 80 MHz channel, respectively.
14. 13. The communication device of claim 11 or 12, wherein the bandwidth of the EHT TB PPDU is 160 MHz, and the four UL SRP fields are used to indicate SRP values of four 40 MHz subchannels of a 160 MHz channel, respectively.
15. A transceiver unit configured to receive a trigger frame, wherein a common information field of the trigger frame includes four uplink spatial reuse parameter UL SRP fields, the four UL SRP fields being a UL SRP1 field, a UL SRP2 field, a UL SRP3 field and a UL SRP4 field, the UL SRP1 field and the UL SRP2 field indicating the same value, and the UL SRP3 field and the UL SRP4 field indicating the same value; a processing unit configured to generate an EHT TB PPDU, wherein a bandwidth of the EHT TB PPDU is 80 MHz or 160 MHz, a value indicated by an SRP1 field in a U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP1 field or the UL SRP2 field, and a value indicated by an SRP2 field in the U-SIG of the EHT TB PPDU is equal to a value indicated by the UL SRP3 field or the UL SRP4 field; Equipped with The transceiver unit is further configured to transmit the EHT TB PPDU.
16. The communications device of claim 15, wherein the trigger frame is used to trigger a station to transmit the EHT TB PPDU.
17. The communication device of claim 15 or 16, wherein the bandwidth of the EHT TB PPDU is 80 MHz, and the four UL SRP fields are used to indicate SRP values of four 20 MHz subchannels of an 80 MHz channel, respectively.
18. The communications device of claim 15 or 16, wherein the bandwidth of the EHT TB PPDU is 160 MHz, and the four UL SRP fields are used to indicate SRP values of four 40 MHz subchannels of a 160 MHz channel, respectively.
19. 5. A computer readable storage medium having stored thereon program instructions which, when executed on a computer, enable the computer to perform the method of any one of claims 1 to 4.
20. A computer-readable storage medium storing program instructions which, when executed on a computer, enable the computer to perform a method according to any one of claims 6 to 9.
21. A computer program causing a computer to carry out the method according to any one of claims 1 to 4.
22. A computer program that causes a computer to execute a method according to any one of claims 6 to 9.
Citation Information
Patent Citations
Method for transmitting and receiving data in a wireless communication system and wireless communication terminal
JP2023518048A