WO2021120738A1 - Stf sending and receiving method and device, storage medium, and terminal - Google Patents

Stf sending and receiving method and device, storage medium, and terminal Download PDF

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Publication number
WO2021120738A1
WO2021120738A1 PCT/CN2020/116115 CN2020116115W WO2021120738A1 WO 2021120738 A1 WO2021120738 A1 WO 2021120738A1 CN 2020116115 W CN2020116115 W CN 2020116115W WO 2021120738 A1 WO2021120738 A1 WO 2021120738A1
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Prior art keywords
stf
channel
mapping table
parameter mapping
adjacent channel
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PCT/CN2020/116115
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French (fr)
Chinese (zh)
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曹明伟
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展讯通信(上海)有限公司
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Publication of WO2021120738A1 publication Critical patent/WO2021120738A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/04Arrangements for maintaining operational condition
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access, e.g. scheduled or random access
    • H04W74/002Transmission of channel access control information

Definitions

  • the present invention relates to the field of communication technology, in particular to an STF sending and receiving method and device, storage medium, and terminal.
  • AGC Automatic Gain Control
  • the 8us signal at the front end of the frame header is repeatedly generated from 10 known signals of 0.8us. That is to say, the frame header signal is repeated periodically, with a period of 0.8 us, repeated 10 times, and it is known that the 8 us signal is a short training field (Short Training Field, STF) signal. Therefore, when the frame header is detected and the gain is suitable, the receiver uses the known 8us information to identify whether the current signal is the target signal, usually the signal delay correlation detection and the correlation detection with the local sequence. If both of these two detections are passed, it is deemed to be the target signal, and subsequent reception demodulation is required. If any one of the detections fails, it is regarded as noise or interference, and the subsequent reception process is not started, and the frame detection state is returned.
  • STF Short Training Field
  • the current Wi-Fi protocols include 802.11a/g and 802.11n/ac/ax, and multiple channels are allocated on the 2.4GHz and 5GHz frequency bands, each of which is at least 20MHz, so that 20MHz/40MHz/80MHz or even 160MHz broadband channels can be formed.
  • the center frequency of each channel is as follows: 8 20M center frequency points f 20_1 , f 20_2 , f 20_3 , f 20_4 , f 20_5 , f 20_6 , f 20_7 , f 20_8 ; four 40M center frequency points f 40_1 , f 40_2 , f 40_3 , f 40_4 ; two 80M center frequency points f 80_1 and f 80_2 ; and one 160M center frequency point f 160 .
  • an access point such as device a
  • a mobile phone are performing wifi communication on a 20MHz bandwidth with f 20_2 as the center frequency point; at the same time, there is another pair of AP (such as device b) and a computer Wi-Fi communication is performed on the 20MHz bandwidth with f 20_3 as the center frequency point.
  • the signal sent by the device b and the computer is adjacent channel interference to the device a and the mobile phone.
  • the device b and the computer send a strong signal, it may trigger the AGC of the device a or the mobile phone, and pass the inspection of the known characteristics of the frame header to start receiving demodulation.
  • adjacent channel interference causes the device a or the mobile phone to be in a wrong working state, which affects the timely recognition of the target signal and causes packet loss. That is to say, when there is strong interference in the adjacent channel, no matter whether it is an analog filter or a digital filter, the interference suppression ability of the adjacent channel is limited, so that the leakage of sufficiently strong interference signal will cause damage to the wifi equipment working in the current channel. It is very likely to trigger the AGC of the current channel wifi device, and because all wifi 802.11a/g/n/ac/ax frames have the same first 8us signal, they will pass the inspection of the known characteristics of the frame header and mistakenly Start receiving demodulation. As a result, the wifi device working on the current channel will be in a wrong working state, which will affect the timely identification of the real target signal and cause packet loss.
  • the technical problem solved by the present invention is how to reduce the influence of adjacent channel interference on current channel data transmission and improve data transmission efficiency.
  • an embodiment of the present invention provides an STF sending method.
  • the STF sending method includes: determining an STF parameter mapping table.
  • the STF parameter mapping table includes multiple adjacent channel groups and multiple adjacent channel groups. The mapping relationship between adjacent channels and STFs, the STFs corresponding to multiple adjacent channels in the same adjacent channel group are different; the STF corresponding to the current working channel is selected according to the current working channel and the STF parameter mapping table; the selected STF is selected Send it out.
  • the multiple STFs in the STF parameter mapping table are determined offline in the following manner: For each non-zero value in the preset STF sequence, phase rotation is performed at least according to various angle combinations to obtain multiple new STFs Sequence; calculate the correlation value of every two new STF sequences; select new STF sequences whose correlation values with other new STF sequences are all less than the preset value, as the STF sequence group, for adding to the STF parameter mapping table .
  • the STF parameter mapping table is determined offline in the following manner: the multiple adjacent channel groups are determined, each adjacent channel group includes multiple adjacent channels; for multiple adjacent channel groups in each adjacent channel group Adjacent channels, selecting multiple different new STF sequences from the STF sequence group, and establishing a mapping relationship with the multiple adjacent channels.
  • the performing phase rotation on each non-zero value in the preset STF sequence at least according to multiple angle combinations includes: performing phase rotation according to multiple angle combinations; performing IFFT transformation on the rotated STF to obtain the result.
  • performing phase rotation according to multiple angle combinations includes: performing IFFT transformation on the rotated STF to obtain the result.
  • the STFs corresponding to multiple adjacent channels in different adjacent channel groups are the same or different.
  • the embodiment of the present invention also discloses an STF receiving method.
  • the STF receiving method includes: receiving a wireless frame signal, the wireless frame signal includes STF, and the STF is determined by the transmitting device in the following manner: OK STF parameter mapping table, the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and STF, and STFs corresponding to multiple adjacent channels in the same adjacent channel group Different; select the STF corresponding to the current working channel according to the current working channel of the sending device and the STF parameter mapping table; perform correlation detection between the received STF and the STF corresponding to the current working channel; if the correlation detection fails, Then it is determined that the wireless frame signal is an interference signal.
  • the STF receiving method further includes: determining the STF corresponding to the source channel of the interference signal as the STF of the interference channel; performing correlation detection between the STF of the interference signal and the STF of the interference channel; The result of the correlation detection determines the source of the interference signal, and the source is selected from wifi channel and noise.
  • the STF receiving method further includes: if the correlation detection is passed, determining that the wireless frame signal is a target signal; and demodulating the wireless frame signal.
  • the embodiment of the present invention also discloses an STF sending device.
  • the STF sending device includes: a mapping table determining module for determining an STF parameter mapping table.
  • the STF parameter mapping table includes a plurality of adjacent channel groups and each adjacent channel group. The mapping relationship between multiple adjacent channels and STF in the same adjacent channel group corresponds to different STFs; the STF determination module is used to select the current working channel according to the current working channel and the STF parameter mapping table The STF corresponding to the channel; the STF sending module is used to send the selected STF.
  • the embodiment of the present invention also discloses an STF receiving device.
  • the STF receiving device includes a receiving module for receiving a wireless frame signal, the wireless frame signal includes STF, and the STF is determined by the sending device in the following manner: Determine STF A parameter mapping table, where the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and the STFs corresponding to multiple adjacent channels in the same adjacent channel group are different Select the STF corresponding to the current working channel according to the current working channel of the sending device and the STF parameter mapping table; a correlation detection module for performing correlation detection between the received STF and the STF corresponding to the current working channel; interference
  • the signal determining module is configured to determine that the wireless frame signal is an interference signal if it fails the correlation detection.
  • the embodiment of the present invention also discloses a storage medium on which computer instructions are stored, and when the computer instructions are executed, the steps of the STF sending method or the STF receiving method are executed.
  • the embodiment of the present invention also discloses a terminal, including a memory and a processor, the memory stores computer instructions that can run on the processor, and the processor executes the STF sending when the computer instructions are executed.
  • the steps of the method, or the steps of the STF receiving method are executed.
  • the STF parameter mapping table may be pre-established.
  • the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. Multiple adjacent channels in the channel group correspond to different STFs.
  • the wifi device can search in the STF parameter mapping table through its current working channel, determine the STF corresponding to the current working channel, and send it out. Through the above-mentioned STF determination method, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel, so that the receiver of the current channel performs frame header detection even when AGC is triggered by the adjacent channel signal.
  • the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, ensuring the current channel receiver to recognize the target signal in time, and reducing the packet loss rate. , Improve the efficiency of data transmission.
  • the preset STF sequence For each non-zero value in the preset STF sequence, perform phase rotation at least according to various angle combinations to obtain multiple new STF sequences; calculate the correlation value of every two new STF sequences; select pairwise correlation The new STF sequence whose value is less than the preset value is used as the STF sequence group to be added to the STF parameter mapping table.
  • the technical solution of the present invention can expand to obtain multiple STF sequences by rotating each non-zero value in the preset STF sequence with multiple angles; and then calculate the correlation value , Select the STF sequence group with a smaller correlation value, so that the STF corresponding to multiple adjacent channels in the STF parameter mapping table has a smaller correlation, so that the receiver will not perform frame header detection on the STF of the adjacent channel. Pass the detection to further reduce the interference of adjacent channels and ensure the transmission efficiency.
  • FIG. 1 is a flowchart of an STF sending method according to an embodiment of the present invention
  • Figure 2 is a schematic diagram of a specific application scenario of an embodiment of the present invention.
  • FIG. 3 is a partial flowchart of an STF sending method according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of an STF sending device according to an embodiment of the present invention.
  • FIG. 6 is a schematic structural diagram of an STF receiving device according to an embodiment of the present invention.
  • adjacent channel interference causes the device a or the mobile phone to be in an incorrect working state, thereby affecting the timely recognition of the target signal, and thereby causing packet loss. That is to say, when there is strong interference in the adjacent channel, no matter whether it is an analog filter or a digital filter, the interference suppression ability of the adjacent channel is limited, so that the leakage of sufficiently strong interference signal will cause damage to the wifi equipment working in the current channel. It is very likely to trigger the AGC of the current channel wifi device, and because all wifi 802.11a/g/n/ac/ax frames have the same first 8us signal, they will pass the inspection of the known characteristics of the frame header and mistakenly Start receiving demodulation. As a result, the wifi device working on the current channel will be in a wrong working state, which will affect the timely identification of the real target signal and cause packet loss.
  • the STF parameter mapping table may be pre-established, and the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. Multiple adjacent channels in the channel group correspond to different STFs.
  • the wifi device can search in the STF parameter mapping table through its current working channel, determine the STF corresponding to the current working channel, and send it out. Through the above-mentioned STF determination method, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel, so that the receiver of the current channel performs frame header detection even when AGC is triggered by the adjacent channel signal.
  • the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, ensuring the current channel receiver to recognize the target signal in time, and reducing the packet loss rate. , Improve the efficiency of data transmission.
  • Fig. 1 is a flowchart of an STF sending method according to an embodiment of the present invention.
  • the STF sending method can be used in a wifi device in a WLAN system, that is, the wifi device can execute each step shown in FIG. 1.
  • the STF sending method shown in FIG. 1 may include the following steps:
  • Step S101 Determine the STF parameter mapping table.
  • the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and multiple adjacent channels in the same adjacent channel group The STF corresponding to the channel is different;
  • Step S102 Select the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
  • Step S103 Send the selected STF.
  • sequence number of each step in this embodiment does not represent a limitation on the execution order of each step.
  • the STF parameter mapping table may be pre-appointed by the wifi protocol.
  • the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and multiple adjacent channels in the same adjacent channel group have different STFs.
  • the channels in the same adjacent channel group are adjacent channels to each other.
  • the frequency spectrums between the channels that are adjacent to each other are adjacent, and the frequency spectrum ranges of the channels do not overlap.
  • the STFs corresponding to multiple adjacent channels in different adjacent channel groups may be the same or different.
  • multiple adjacent channels in different adjacent channel groups are not adjacent channels to each other, so the same STF can be used.
  • frequency point f 20_1 represents the leftmost 20MHz frequency band
  • frequency point f 40_1 represents the leftmost 40MHz frequency band
  • frequency point f 80_1 represents the leftmost frequency band.
  • the frequency point f 160_1 represents the entire 160MHz frequency band, and other frequency points can be deduced by analogy, so I won’t repeat them here.
  • the adjacent channels are the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 .
  • the adjacent channel has a strong signal, due to insufficient filter suppression, it will leak to the current channel, causing incorrect synchronization and demodulation, and affecting the detection of the frame header of the current channel target signal.
  • different channels STF STF need for frequency channel allocation and frequency f 20_2 represented f 20_1, f 20_3 and f 40_2 representation.
  • the channels represented by frequency points f 20_1 , f 20_3 and f 40_2 are not adjacent channels, the mutual interference will basically be suppressed by the filter; the channels represented by frequency points f 20_3 and f 40_2 are in-band interference There are other existing solutions, so the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 can use the same STF.
  • channel frequency f 20_5 represented by adjacent channel is a frequency f 20_4, channel f 20_6, f 40_2 and f 80_1 represented, can channel allocation and frequency frequency f 20_5 represented f
  • the STFs of the channels represented by 20_4, f 20_6 , f 40_2, and f 80_1 are different.
  • the channels represented by frequency points f 20_4 , f 20_6 , f 40_2 and f 80_1 are not adjacent channels, so the same STF can be used.
  • Other frequency points also have corresponding constraint relationships, which are no longer cumbersome.
  • the wifi device may determine the STF parameter mapping table through the wifi protocol. Specifically, the STF parameter mapping table can be imported into the wifi device in advance.
  • the wifi device can transmit data on the current working channel.
  • the wifi device can work on the channel represented by the frequency point f 20_2 in FIG. 2, that is, the current working channel of the wifi device is the channel represented by the frequency point f 20_2 .
  • the wifi device can search in the STF parameter mapping table, that is, according to multiple adjacent channels in each adjacent channel group The mapping relationship with STF is searched, and the STF corresponding to the current working channel is obtained.
  • step S101 and step S102 may be executed by the baseband of the wifi device in the process of generating digital signals.
  • the selected STF can be sent out.
  • the digital signal generated by the baseband includes the selected STF, that is, the first 8us of the digital signal is the selected STF; after the digital signal is generated at the baseband, it can be converted into an analog signal by digital-to-analog conversion and input into the radio frequency system for processing. Operations such as spectrum shifting, filtering, and amplification are finally transmitted through the antenna.
  • the STF in the digital signal of the adjacent channel is different from the STF in the digital signal of the current working channel.
  • the known characteristics of the frame header can identify the digital signal of the adjacent channel as an interference signal, so as to continue to be in the frame header detection state, and obtain the target signal (that is, the digital signal of the current working channel) in time.
  • the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel through the above-mentioned STF determination method, so that the receiver of the current channel can be different even when the AGC is triggered by the adjacent channel signal.
  • the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, and the current channel receiver can recognize the target signal in time. Reduce the packet loss rate and improve the efficiency of data transmission.
  • multiple STFs in the STF parameter mapping table can be determined offline in the following manner:
  • Step S301 For each non-zero value in the preset STF sequence, perform phase rotation at least according to various angle combinations to obtain multiple new STF sequences;
  • Step S302 Calculate the correlation value of every two new STF sequences
  • Step S303 Select a new STF sequence whose correlation values with other new STF sequences are all less than a preset value as an STF sequence group for adding to the STF parameter mapping table.
  • performing phase rotation on each non-zero value in the preset STF sequence according to multiple angle combinations refers to rotating the phase of each non-zero value by the same or different angle.
  • the preset STF sequence may be agreed upon by the existing wifi protocol, and the preset STF sequence may represent the frequency domain value from the -26th subcarrier to the 26th subcarrier.
  • the preset STF sequence S -26, 26 can be expressed by the following formula:
  • the length of the STF sequence is 64, and the frequency domain length of the preset STF sequence is 53, therefore, the preset STF sequence is extended, and the length of the extended STF sequence is 64. That is, the first 6 bits and the back 5 bits of the above-mentioned preset STF sequence are supplemented with the frequency domain value 0.
  • each non-zero value in the preset STF sequence is phase-rotated according to various angle combinations.
  • the -24th, -20, -16, -12, -8, -4, 4, 8, 12, 16, 20, and 24th subcarrier values in the preset STF sequence are combined according to various angles.
  • Independent phase rotation, multiple angles can be any implementable angles such as 45 degrees, 60 degrees, and 90 degrees.
  • step S302 the correlation values of every two new STF sequences obtained in the above steps are calculated.
  • a new STF sequence whose correlation value with other new STF sequences is less than a preset value can be selected as the STF sequence group.
  • the correlation value less than the preset value means that for all ls in the above formula, the correlation value C(l) is less than the preset value.
  • the preset value can be set and adjusted according to the actual application environment, which is not limited in the embodiment of the present invention.
  • the embodiment of the present invention can expand to obtain multiple STF sequences by rotating each non-zero value in the preset STF sequence at multiple angles; and then by calculating the correlation value, Select the STF sequence group with the smaller pairwise correlation value, so that the STF corresponding to multiple adjacent channels in the STF parameter mapping table has a smaller correlation, so that the receiver does not perform frame header detection on the STF of the adjacent channel. It will pass the test to further reduce the interference of adjacent channels and ensure the transmission efficiency.
  • the STF parameter mapping table can be determined offline in the following manner:
  • Step S304 Determine the multiple adjacent channel groups, and each adjacent channel group includes multiple adjacent channels;
  • Step S305 For multiple adjacent channels in each adjacent channel group, select multiple different new STF sequences from the STF sequence group, and establish a mapping relationship with the multiple adjacent channels.
  • step S304 for each channel, its adjacent channel group is determined, and the channels in the same adjacent channel group are adjacent channels to each other.
  • the adjacent channels are the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 , then the adjacent channel group 1 may include the frequency points f 20_2 and f 20_1 channel indicated; adjacent channel set 2 may include a frequency f 20_2, f 20_3 channel indicated; adjacent channel set 3 may include a channel frequency f 20_2 and f 40_2 indicated.
  • the adjacent channels are the channels represented by the frequency points f 20_4 , f 20_6 , f 40_2 and f 80_1
  • the adjacent channel group 4 can include the frequency points f 20_5 , f 20_4
  • the adjacent channel group 5 may include the channels represented by the frequency points f 20_5 and f 20_6
  • the adjacent channel group 6 may include the channels represented by the frequency points f 20_5 and f 40_2
  • the adjacent channel group 7 may include Channels represented by frequency points f 20_5 and f 80_1.
  • the other frequency points can be deduced by analogy.
  • step S305 different STF sequences are assigned to multiple adjacent channels in the adjacent channel group, that is, multiple adjacent channels in the adjacent channel group correspond to different STFs.
  • step S301 shown in FIG. 3 may specifically include the following steps: performing phase rotation according to various angle combinations; performing IFFT transformation on the rotated STF to obtain the multiple new STF sequences.
  • the digital signal sent by the wifi device through the transmitter is a time-domain signal.
  • the STF can be converted into a time-domain sequence through IFFT, and then subsequent processing steps are performed.
  • the embodiment of the present invention also discloses an STF receiving method.
  • the STF receiving method can be used for the wifi device in the WLAN system, that is, the receiver of the wifi device can perform the steps shown in FIG. 4.
  • the STF receiving method may include the following steps:
  • Step S401 Receive a wireless frame signal, where the wireless frame signal includes STF,
  • Step S402 Perform correlation detection between the received STF and the STF corresponding to the current working channel
  • Step S403 If the correlation detection is not passed, it is determined that the wireless frame signal is an interference signal.
  • the receiver of the wifi device works on the current working channel.
  • the wireless frame signal may come from the current working channel, or it may come from an adjacent channel of the current working channel. That is to say, when the adjacent channel of the current working channel sends a larger signal, the receiver will trigger AGC.
  • the receiver when the receiver detects the known signal of the frame header, that is, when the received STF is related to the STF corresponding to the current working channel, the current working channel is different from the STF of its adjacent channel, so the related detection is The result will not pass the threshold, and the digital signal of the adjacent channel will not be determined as the target signal by the receiver, that is, it is determined that the wireless frame signal is an interference signal.
  • the receiver stops subsequent work, and instead searches for the target signal (that is, the digital signal of the current working channel) frame header again.
  • the embodiments of the present invention can help the receiver to better combat adjacent channel interference.
  • the STF receiving method may further include the following steps: determining the STF corresponding to the source channel of the interference signal as the STF of the interference channel; performing correlation detection between the STF of the interference signal and the STF of the interference channel ; The source of the interference signal is determined according to the result of the relevant detection, and the source is selected from the wifi channel and noise.
  • the receiver can perform delay-related detection of the interference signal, that is, use the STF of the interference channel (that is, the source channel of the interference signal) and the frame header of the interference signal to perform correlation detection to confirm whether the detected signal is a neighbor.
  • Road interference if the relevant detection is passed, it means that the interference signal comes from the interference channel, and the source of the interference signal is the wifi signal of the wifi channel; otherwise, it means that the source of the interference signal is other signals such as noise or single tone.
  • the embodiment of the present invention helps the receiver to perform further operations, such as clear channel assessment; in this case, the receiver can notify the CCA that the current energy is generated by the adjacent channel.
  • the STF receiving method may further include the following steps: if the correlation detection is passed, determining that the wireless frame signal is a target signal; demodulating the wireless frame signal.
  • FIG. 5 is a schematic structural diagram of an STF sending apparatus according to an embodiment of the present invention.
  • the STF sending device 50 may include:
  • the mapping table determining module 501 is used to determine the STF parameter mapping table.
  • the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. The same adjacent channel group The STFs corresponding to multiple adjacent channels are different;
  • the STF determining module 502 is configured to select the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
  • the STF sending module 503 is used to send the selected STF.
  • the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel through the above-mentioned STF determination method, so that the receiver of the current channel can be different even when the AGC is triggered by the adjacent channel signal.
  • the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, ensuring the timely identification of the target signal by the current channel receiver, reducing the packet loss rate, and improving the data transmission efficiency.
  • FIG. 6 is a schematic structural diagram of an STF receiving device according to an embodiment of the present invention.
  • the STF receiving device 60 may include:
  • the receiving module 601 is configured to receive a wireless frame signal, where the wireless frame signal includes STF;
  • the correlation detection module 602 is configured to perform correlation detection between the received STF and the STF corresponding to the current working channel;
  • the interference signal determining module 603 is configured to determine that the wireless frame signal is an interference signal if it fails the relevant detection.
  • the STF receiving device 60 may further include: an interference channel STF determination module (not shown in the figure) to determine the STF corresponding to the source channel of the interference signal as the STF of the interference channel; a detection module ( (Not shown in the figure) to perform correlation detection between the STF of the interference signal and the STF of the interference channel; a signal type determination module (not shown in the figure) is used to determine the source of the interference signal according to the result of the related detection, The source is selected from wifi channel and noise.
  • an interference channel STF determination module (not shown in the figure) to determine the STF corresponding to the source channel of the interference signal as the STF of the interference channel
  • a detection module (Not shown in the figure) to perform correlation detection between the STF of the interference signal and the STF of the interference channel
  • a signal type determination module (not shown in the figure) is used to determine the source of the interference signal according to the result of the related detection, The source is selected from wifi channel and noise.
  • the STF receiving device 60 may further include: a target signal determining module (not shown in the figure) for determining that the wireless frame signal is a target signal if the relevant detection is passed; a demodulation module (not shown in the figure) ) To demodulate the wireless frame signal.
  • the embodiment of the present invention also discloses a storage medium.
  • the storage medium is a computer-readable storage medium on which computer instructions are stored. When the computer instructions are executed, the method shown in FIG. 1, FIG. 3, or FIG. 4 can be executed. A step of.
  • the storage medium may include ROM, RAM, magnetic disk or optical disk, etc.
  • the storage medium may also include non-volatile memory (non-volatile) or non-transitory memory, etc.
  • the embodiment of the present invention also discloses a terminal.
  • the terminal may include a memory and a processor, and computer instructions that can run on the processor are stored in the memory.
  • the processor may execute the steps of the method shown in FIG. 1, FIG. 3, or FIG. 4 when running the computer instruction.
  • the terminal includes, but is not limited to, terminal devices such as mobile phones, computers, and tablets.

Abstract

An STF sending and receiving method and device, a storage medium, and a terminal, wherein the STF sending method comprises: determining an STF parameter mapping table, wherein the STF parameter mapping table comprises multiple adjacent channel groups and mapping relationships between multiple adjacent channels in each adjacent channel group and STFs, and the STFs corresponding to multiple adjacent channels in the same adjacent channel group are different; selecting the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table; send out the selected STF. The technical solution of the present invention can reduce the influence of adjacent channel interference on data transmission of the current channel and improve data transmission efficiency.

Description

STF发送、接收方法及装置、存储介质、终端STF sending and receiving method and device, storage medium and terminal
本申请要求2019年12月16日提交中国专利局、申请号为2019112989811、发明名称为“STF发送、接收方法及装置、存储介质、终端”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。This application claims the priority of a Chinese patent application filed with the Chinese Patent Office on December 16, 2019, the application number is 2019112989811, and the invention title is "STF sending and receiving methods and devices, storage media, and terminals", the entire contents of which are incorporated by reference In this application.
技术领域Technical field
本发明涉及通信技术领域,尤其涉及一种STF发送、接收方法及装置、存储介质、终端。The present invention relates to the field of communication technology, in particular to an STF sending and receiving method and device, storage medium, and terminal.
背景技术Background technique
对于wifi及其它突发式通信系统,信号通常是分帧独立突发传输的,因此接收设备在接收一帧信号时,并不知道信号何时到来。接收设备首先要及时检测到帧头,并将接收机的模拟增益调到合适的大小,才能保证后续接收解调,这就是自动增益控制(Automatic Gain Control,AGC)模块的作用。For wifi and other burst communication systems, signals are usually transmitted in separate bursts in frames, so when receiving a frame of signal, the receiving device does not know when the signal will arrive. The receiving device must first detect the frame header in time and adjust the analog gain of the receiver to an appropriate size to ensure subsequent reception and demodulation. This is the function of the Automatic Gain Control (AGC) module.
由于wifi信号帧的特点,即帧头最前端的8us信号是由10个0.8us的已知信号重复生成。也就是说,帧头信号是周期重复的,周期为0.8us,重复10次,并且已知,这8us的信号就是短训练字段(Short Training Field,STF)信号。因此,在检测到帧头并在增益适合时,接收机利用这已知的8us信息来识当前信号是否是目标信号,通常是信号的延迟相关检测及与本地序列的相关检测。若这两项检测均通过,则认定是目标信号,需要进行后续接收解调。若任一项检测未通过,则认定为噪声或干扰,不启动后续接收过程,重新回到帧检测状态。Due to the characteristics of the wifi signal frame, the 8us signal at the front end of the frame header is repeatedly generated from 10 known signals of 0.8us. That is to say, the frame header signal is repeated periodically, with a period of 0.8 us, repeated 10 times, and it is known that the 8 us signal is a short training field (Short Training Field, STF) signal. Therefore, when the frame header is detected and the gain is suitable, the receiver uses the known 8us information to identify whether the current signal is the target signal, usually the signal delay correlation detection and the correlation detection with the local sequence. If both of these two detections are passed, it is deemed to be the target signal, and subsequent reception demodulation is required. If any one of the detections fails, it is regarded as noise or interference, and the subsequent reception process is not started, and the frame detection state is returned.
目前的wifi协议包括802.11a/g和802.11n/ac/ax,在2.4GHz和5GHz频段上分配了多个信道,每个信道至少20MHz,这样可以组成20MHz/40MHz/80MHz甚至160MHz的宽带信道。以5GHz频段 为例,在一个连续可用的频率段5170MHz-5330MHz,各个信道的中心频点如下:8个20M的中心频点f 20_1,f 20_2,f 20_3,f 20_4,f 20_5,f 20_6,f 20_7,f 20_8;四个40M的中心频点f 40_1,f 40_2,f 40_3,f 40_4;二个80M的中心频点f 80_1,f 80_2;以及一个160M的中心频点f 160。假如一接入点(Access Point,AP)(如设备a)与一手机正在以f 20_2为中心频率点的20MHz带宽上进行wifi通信;同时有另一对AP(如设备b)及一电脑正在以f 20_3为中心频率点的20MHz带宽上进行wifi通信。那么,设备b及电脑发的信号对于设备a和手机而言是邻道干扰。当设备b及电脑发出的较强信号时,可能会触发设备a或手机的AGC,并通过帧头已知特性的检验,从而启动接收解调。 The current Wi-Fi protocols include 802.11a/g and 802.11n/ac/ax, and multiple channels are allocated on the 2.4GHz and 5GHz frequency bands, each of which is at least 20MHz, so that 20MHz/40MHz/80MHz or even 160MHz broadband channels can be formed. Taking the 5GHz frequency band as an example, in a continuously available frequency range of 5170MHz-5330MHz, the center frequency of each channel is as follows: 8 20M center frequency points f 20_1 , f 20_2 , f 20_3 , f 20_4 , f 20_5 , f 20_6 , f 20_7 , f 20_8 ; four 40M center frequency points f 40_1 , f 40_2 , f 40_3 , f 40_4 ; two 80M center frequency points f 80_1 and f 80_2 ; and one 160M center frequency point f 160 . If an access point (Access Point, AP) (such as device a) and a mobile phone are performing wifi communication on a 20MHz bandwidth with f 20_2 as the center frequency point; at the same time, there is another pair of AP (such as device b) and a computer Wi-Fi communication is performed on the 20MHz bandwidth with f 20_3 as the center frequency point. Then, the signal sent by the device b and the computer is adjacent channel interference to the device a and the mobile phone. When the device b and the computer send a strong signal, it may trigger the AGC of the device a or the mobile phone, and pass the inspection of the known characteristics of the frame header to start receiving demodulation.
但是,邻道干扰使得设备a或手机处于错误的工作状态,从而影响对目标信号的及时识别,进而发生丢包。也就是说,当邻道有较强干扰时,由于无论是模拟滤波器还是数字滤波器,对紧邻信道的干扰抑制能力有限,使泄漏进来足够强的干扰信号造成对在当前信道工作的wifi设备的干扰,从而极可能会触发当前信道wifi设备的AGC,并且由于所有wifi 802.11a/g/n/ac/ax帧拥有相同的前8us信号,所以会通过帧头已知特性的检验,错误地启动接收解调。导致在当前信道工作的wifi设备将处于错误的工作状态,故而影响对真正目标信号的及时识别,发生丢包。However, adjacent channel interference causes the device a or the mobile phone to be in a wrong working state, which affects the timely recognition of the target signal and causes packet loss. That is to say, when there is strong interference in the adjacent channel, no matter whether it is an analog filter or a digital filter, the interference suppression ability of the adjacent channel is limited, so that the leakage of sufficiently strong interference signal will cause damage to the wifi equipment working in the current channel. It is very likely to trigger the AGC of the current channel wifi device, and because all wifi 802.11a/g/n/ac/ax frames have the same first 8us signal, they will pass the inspection of the known characteristics of the frame header and mistakenly Start receiving demodulation. As a result, the wifi device working on the current channel will be in a wrong working state, which will affect the timely identification of the real target signal and cause packet loss.
发明内容Summary of the invention
本发明解决的技术问题是如何降低邻道干扰对当前信道数据传输的影响,提升数据传输效率。The technical problem solved by the present invention is how to reduce the influence of adjacent channel interference on current channel data transmission and improve data transmission efficiency.
为解决上述技术问题,本发明实施例提供一种STF发送方法,STF发送方法包括:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;将选取的STF发送出去。In order to solve the above technical problems, an embodiment of the present invention provides an STF sending method. The STF sending method includes: determining an STF parameter mapping table. The STF parameter mapping table includes multiple adjacent channel groups and multiple adjacent channel groups. The mapping relationship between adjacent channels and STFs, the STFs corresponding to multiple adjacent channels in the same adjacent channel group are different; the STF corresponding to the current working channel is selected according to the current working channel and the STF parameter mapping table; the selected STF is selected Send it out.
可选的,采用以下方式离线确定所述STF参数映射表中的多个STF:对于预设STF序列中各个非零值,至少按照多种角度组合分别进行相位旋转,以得到多个新的STF序列;计算每两个新的STF序列的相关值;选取与其他新的STF序列的相关值均小于预设值的新的STF序列,作为STF序列组,以用于加入所述STF参数映射表。Optionally, the multiple STFs in the STF parameter mapping table are determined offline in the following manner: For each non-zero value in the preset STF sequence, phase rotation is performed at least according to various angle combinations to obtain multiple new STFs Sequence; calculate the correlation value of every two new STF sequences; select new STF sequences whose correlation values with other new STF sequences are all less than the preset value, as the STF sequence group, for adding to the STF parameter mapping table .
可选的,采用以下方式离线确定所述STF参数映射表:确定所述多个相邻信道组,每一相邻信道组包括多个相邻信道;对于每一相邻信道组内的多个相邻信道,从所述STF序列组中选取多个不同的新的STF序列,并与所述多个相邻信道建立映射关系。Optionally, the STF parameter mapping table is determined offline in the following manner: the multiple adjacent channel groups are determined, each adjacent channel group includes multiple adjacent channels; for multiple adjacent channel groups in each adjacent channel group Adjacent channels, selecting multiple different new STF sequences from the STF sequence group, and establishing a mapping relationship with the multiple adjacent channels.
可选的,所述至少按照多种角度组合分别对预设STF序列中各个非零值进行相位旋转包括:按照多种角度组合分别进行相位旋转;对旋转后的STF进行IFFT变换,以得到所述多个新的STF序列。Optionally, the performing phase rotation on each non-zero value in the preset STF sequence at least according to multiple angle combinations includes: performing phase rotation according to multiple angle combinations; performing IFFT transformation on the rotated STF to obtain the result. A number of new STF sequences are described.
可选的,不同相邻信道组内多个相邻信道对应的STF相同或不同。Optionally, the STFs corresponding to multiple adjacent channels in different adjacent channel groups are the same or different.
为解决上述技术问题,本发明实施例还公开了一种STF接收方法,STF接收方法包括:接收无线帧信号,所述无线帧信号包括STF,所述STF是发送设备通过以下方式确定的:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;根据所述发送设备的当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;将接收到的STF与当前工作信道对应的STF进行相关检测;如果未通过相关检测,则确定所述无线帧信号为干扰信号。In order to solve the above technical problem, the embodiment of the present invention also discloses an STF receiving method. The STF receiving method includes: receiving a wireless frame signal, the wireless frame signal includes STF, and the STF is determined by the transmitting device in the following manner: OK STF parameter mapping table, the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and STF, and STFs corresponding to multiple adjacent channels in the same adjacent channel group Different; select the STF corresponding to the current working channel according to the current working channel of the sending device and the STF parameter mapping table; perform correlation detection between the received STF and the STF corresponding to the current working channel; if the correlation detection fails, Then it is determined that the wireless frame signal is an interference signal.
可选的,所述STF接收方法还包括:确定所述干扰信号的来源信道对应的STF,以作为干扰信道的STF;将所述干扰信号的STF与所述干扰信道的STF进行相关检测;根据相关检测的结果确定所述干扰信号的来源,所述来源选自wifi信道和噪声。Optionally, the STF receiving method further includes: determining the STF corresponding to the source channel of the interference signal as the STF of the interference channel; performing correlation detection between the STF of the interference signal and the STF of the interference channel; The result of the correlation detection determines the source of the interference signal, and the source is selected from wifi channel and noise.
可选的,所述STF接收方法还包括:如果通过相关检测,则确定所述无线帧信号为目标信号;对所述无线帧信号进行解调。Optionally, the STF receiving method further includes: if the correlation detection is passed, determining that the wireless frame signal is a target signal; and demodulating the wireless frame signal.
本发明实施例还公开了一种STF发送装置,STF发送装置包括:映射表确定模块,用以确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;STF确定模块,用以根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;STF发送模块,用以将选取的STF发送出去。The embodiment of the present invention also discloses an STF sending device. The STF sending device includes: a mapping table determining module for determining an STF parameter mapping table. The STF parameter mapping table includes a plurality of adjacent channel groups and each adjacent channel group. The mapping relationship between multiple adjacent channels and STF in the same adjacent channel group corresponds to different STFs; the STF determination module is used to select the current working channel according to the current working channel and the STF parameter mapping table The STF corresponding to the channel; the STF sending module is used to send the selected STF.
本发明实施例还公开了一种STF接收装置,STF接收装置包括:接收模块,用以接收无线帧信号,所述无线帧信号包括STF,所述STF是发送设备通过以下方式确定的:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;根据所述发送设备的当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;相关检测模块,用以将接收到的STF与当前工作信道对应的STF进行相关检测;干扰信号确定模块,用以如果未通过相关检测,则确定所述无线帧信号为干扰信号。The embodiment of the present invention also discloses an STF receiving device. The STF receiving device includes a receiving module for receiving a wireless frame signal, the wireless frame signal includes STF, and the STF is determined by the sending device in the following manner: Determine STF A parameter mapping table, where the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and the STFs corresponding to multiple adjacent channels in the same adjacent channel group are different Select the STF corresponding to the current working channel according to the current working channel of the sending device and the STF parameter mapping table; a correlation detection module for performing correlation detection between the received STF and the STF corresponding to the current working channel; interference The signal determining module is configured to determine that the wireless frame signal is an interference signal if it fails the correlation detection.
本发明实施例还公开了一种存储介质,其上存储有计算机指令,所述计算机指令运行时执行所述STF发送方法的步骤,或者所述STF接收方法的步骤。The embodiment of the present invention also discloses a storage medium on which computer instructions are stored, and when the computer instructions are executed, the steps of the STF sending method or the STF receiving method are executed.
本发明实施例还公开了一种终端,包括存储器和处理器,所述存储器上存储有可在所述处理器上运行的计算机指令,所述处理器运行所述计算机指令时执行所述STF发送方法的步骤,或者所述STF接收方法的步骤。The embodiment of the present invention also discloses a terminal, including a memory and a processor, the memory stores computer instructions that can run on the processor, and the processor executes the STF sending when the computer instructions are executed. The steps of the method, or the steps of the STF receiving method.
与现有技术相比,本发明实施例的技术方案具有以下有益效果:Compared with the prior art, the technical solution of the embodiment of the present invention has the following beneficial effects:
本发明技术方案中,STF参数映射表可以是预先建立的,该STF 参数映射表中包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同。wifi设备可以通过自身的当前工作信道在STF参数映射表中进行查找,确定当前工作信道对应的STF,并发送出去。通过上述STF确定方式可以使得当前工作信道对应的STF与当前工作信道的相邻信道对应的STF是不同的,从而使得当前信道的接收机即使被相邻信道信号触发AGC时,在进行帧头检测时也不会对相邻信道的信号通过检测,避免了相邻信道的信号干扰,让接收机AGC处于正确的抓包状态中,保证当前信道接收机对目标信号的及时识别,降低丢包率,提升了数据传输效率。In the technical solution of the present invention, the STF parameter mapping table may be pre-established. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. Multiple adjacent channels in the channel group correspond to different STFs. The wifi device can search in the STF parameter mapping table through its current working channel, determine the STF corresponding to the current working channel, and send it out. Through the above-mentioned STF determination method, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel, so that the receiver of the current channel performs frame header detection even when AGC is triggered by the adjacent channel signal. The signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, ensuring the current channel receiver to recognize the target signal in time, and reducing the packet loss rate. , Improve the efficiency of data transmission.
进一步地,对于预设STF序列中各个非零值,至少按照多种角度组合分别进行相位旋转,以得到多个新的STF序列;计算每两个新的STF序列的相关值;选取两两相关值小于预设值的新的STF序列,作为STF序列组,以用于加入所述STF参数映射表。由于现有WIFI无线通信系统中STF序列仅有一个,因此本发明技术方案通过对预设STF序列中各个非零值用多个角度进行旋转,可以扩展得到多个STF序列;再通过计算相关值,选取相关值较小的STF序列组,从而使得STF参数映射表中多个相邻信道对应的STF具有较小的相关性,进而使得接收机对相邻信道的STF进行帧头检测时不会检测通过,进一步降低相邻信道的干扰,保证传输效率。Further, for each non-zero value in the preset STF sequence, perform phase rotation at least according to various angle combinations to obtain multiple new STF sequences; calculate the correlation value of every two new STF sequences; select pairwise correlation The new STF sequence whose value is less than the preset value is used as the STF sequence group to be added to the STF parameter mapping table. Since there is only one STF sequence in the existing WIFI wireless communication system, the technical solution of the present invention can expand to obtain multiple STF sequences by rotating each non-zero value in the preset STF sequence with multiple angles; and then calculate the correlation value , Select the STF sequence group with a smaller correlation value, so that the STF corresponding to multiple adjacent channels in the STF parameter mapping table has a smaller correlation, so that the receiver will not perform frame header detection on the STF of the adjacent channel. Pass the detection to further reduce the interference of adjacent channels and ensure the transmission efficiency.
附图说明Description of the drawings
图1是本发明实施例一种STF发送方法的流程图;FIG. 1 is a flowchart of an STF sending method according to an embodiment of the present invention;
图2是本发明实施例一种具体应用场景的示意图;Figure 2 is a schematic diagram of a specific application scenario of an embodiment of the present invention;
图3是本发明实施例一种STF发送方法的部分流程图;FIG. 3 is a partial flowchart of an STF sending method according to an embodiment of the present invention;
图4是本发明实施例一种STF接收方法的流程图;4 is a flowchart of an STF receiving method according to an embodiment of the present invention;
图5是本发明实施例一种STF发送装置的结构示意图;FIG. 5 is a schematic structural diagram of an STF sending device according to an embodiment of the present invention;
图6是本发明实施例一种STF接收装置的结构示意图。FIG. 6 is a schematic structural diagram of an STF receiving device according to an embodiment of the present invention.
具体实施方式Detailed ways
如背景技术中所述,邻道干扰使得设备a或手机处于错误的工作状态,从而影响对目标信号的及时识别,进而发生丢包。也就是说,当邻道有较强干扰时,由于无论是模拟滤波器还是数字滤波器,对紧邻信道的干扰抑制能力有限,使泄漏进来足够强的干扰信号造成对在当前信道工作的wifi设备的干扰,从而极可能会触发当前信道wifi设备的AGC,并且由于所有wifi 802.11a/g/n/ac/ax帧拥有相同的前8us信号,所以会通过帧头已知特性的检验,错误地启动接收解调。导致在当前信道工作的wifi设备将处于错误的工作状态,故而影响对真正目标信号的及时识别,发生丢包。As described in the background art, adjacent channel interference causes the device a or the mobile phone to be in an incorrect working state, thereby affecting the timely recognition of the target signal, and thereby causing packet loss. That is to say, when there is strong interference in the adjacent channel, no matter whether it is an analog filter or a digital filter, the interference suppression ability of the adjacent channel is limited, so that the leakage of sufficiently strong interference signal will cause damage to the wifi equipment working in the current channel. It is very likely to trigger the AGC of the current channel wifi device, and because all wifi 802.11a/g/n/ac/ax frames have the same first 8us signal, they will pass the inspection of the known characteristics of the frame header and mistakenly Start receiving demodulation. As a result, the wifi device working on the current channel will be in a wrong working state, which will affect the timely identification of the real target signal and cause packet loss.
本发明技术方案中,STF参数映射表可以是预先建立的,该STF参数映射表中包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同。wifi设备可以通过自身的当前工作信道在STF参数映射表中进行查找,确定当前工作信道对应的STF,并发送出去。通过上述STF确定方式可以使得当前工作信道对应的STF与当前工作信道的相邻信道对应的STF是不同的,从而使得当前信道的接收机即使被相邻信道信号触发AGC时,在进行帧头检测时也不会对相邻信道的信号通过检测,避免了相邻信道的信号干扰,让接收机AGC处于正确的抓包状态中,保证当前信道接收机对目标信号的及时识别,降低丢包率,提升了数据传输效率。In the technical solution of the present invention, the STF parameter mapping table may be pre-established, and the STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. Multiple adjacent channels in the channel group correspond to different STFs. The wifi device can search in the STF parameter mapping table through its current working channel, determine the STF corresponding to the current working channel, and send it out. Through the above-mentioned STF determination method, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel, so that the receiver of the current channel performs frame header detection even when AGC is triggered by the adjacent channel signal. The signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, ensuring the current channel receiver to recognize the target signal in time, and reducing the packet loss rate. , Improve the efficiency of data transmission.
为使本发明的上述目的、特征和优点能够更为明显易懂,下面结合附图对本发明的具体实施例做详细的说明。In order to make the above objectives, features and advantages of the present invention more obvious and understandable, specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
图1是本发明实施例一种STF发送方法的流程图。Fig. 1 is a flowchart of an STF sending method according to an embodiment of the present invention.
所述STF发送方法可以用于WLAN系统中的wifi设备,也即可以由wifi设备执行图1所示的各个步骤。The STF sending method can be used in a wifi device in a WLAN system, that is, the wifi device can execute each step shown in FIG. 1.
具体而言,图1所示STF发送方法可以包括以下步骤:Specifically, the STF sending method shown in FIG. 1 may include the following steps:
步骤S101:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;Step S101: Determine the STF parameter mapping table. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and multiple adjacent channels in the same adjacent channel group The STF corresponding to the channel is different;
步骤S102:根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;Step S102: Select the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
步骤S103:将选取的STF发送出去。Step S103: Send the selected STF.
需要指出的是,本实施例中各个步骤的序号并不代表对各个步骤的执行顺序的限定。It should be pointed out that the sequence number of each step in this embodiment does not represent a limitation on the execution order of each step.
本实施例中,STF参数映射表可以是由wifi协议预先约定好的。其中,STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同。同一相邻信道组内的信道互为相邻信道。In this embodiment, the STF parameter mapping table may be pre-appointed by the wifi protocol. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and multiple adjacent channels in the same adjacent channel group have different STFs. The channels in the same adjacent channel group are adjacent channels to each other.
具体地,互为相邻信道的信道之间的频谱相邻,且信道的频谱范围不重叠。Specifically, the frequency spectrums between the channels that are adjacent to each other are adjacent, and the frequency spectrum ranges of the channels do not overlap.
本发明一个具体实施例中,不同相邻信道组内多个相邻信道对应的STF可以相同或不同。也就是说,不同相邻信道组内的多个相邻信道并不是互为相邻信道,因此可以采用相同的STF。In a specific embodiment of the present invention, the STFs corresponding to multiple adjacent channels in different adjacent channel groups may be the same or different. In other words, multiple adjacent channels in different adjacent channel groups are not adjacent channels to each other, so the same STF can be used.
具体可参照图2,以频点来表示相应的频段以及信道,如频点f 20_1表示最左边的20MHz的频段,频点f 40_1表示最左边的40MHz的频段,频点f 80_1表示最左边的80MHz的频段,频点f 160_1表示整个160MHz的频段,其他频点以此类推,此处不再赘述。 For details, refer to Figure 2 to indicate the corresponding frequency bands and channels by frequency points. For example, frequency point f 20_1 represents the leftmost 20MHz frequency band, frequency point f 40_1 represents the leftmost 40MHz frequency band, and frequency point f 80_1 represents the leftmost frequency band. For the 80MHz frequency band, the frequency point f 160_1 represents the entire 160MHz frequency band, and other frequency points can be deduced by analogy, so I won’t repeat them here.
对于频点f 20_2所表示的信道,其相邻信道为频点f 20_1、f 20_3和f 40_2表示的信道。当相邻信道有较强信号时,由于滤波器抑制度不够,会泄漏到当前信道,造成错误的同步及解调,影响当前信道目标信号帧头的检测。因此,需要对频点f 20_2所表示的信道分配与频点f 20_1、f 20_3和f 40_2表示的信道的STF不同的STF。而对于频点f 20_1、f 20_3和f 40_2表示的信道之间并非邻道关系,相互间的干扰基本会被滤波器抑制 掉;频点f 20_3和f 40_2表示的信道之间是带内干扰,有其它已有方案解决,因此频点f 20_1、f 20_3和f 40_2表示的信道可用相同的STF。 For the channel represented by the frequency point f 20_2 , the adjacent channels are the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 . When the adjacent channel has a strong signal, due to insufficient filter suppression, it will leak to the current channel, causing incorrect synchronization and demodulation, and affecting the detection of the frame header of the current channel target signal. Thus, different channels STF STF need for frequency channel allocation and frequency f 20_2 represented f 20_1, f 20_3 and f 40_2 representation. For the channels represented by frequency points f 20_1 , f 20_3 and f 40_2 are not adjacent channels, the mutual interference will basically be suppressed by the filter; the channels represented by frequency points f 20_3 and f 40_2 are in-band interference There are other existing solutions, so the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 can use the same STF.
同理,对于频点f 20_5所表示的信道,其相邻信道为频点f 20_4、f 20_6、f 40_2及f 80_1表示的信道,可以对频点f 20_5所表示的信道分配与频点f 20_4、f 20_6、f 40_2及f 80_1表示的信道的STF不同的STF。而频点f 20_4、f 20_6、f 40_2和f 80_1表示的信道之间并非邻道关系,因此可用相同的STF。其它频点也是相应的约束关系,不再累赘。 Similarly, for channel frequency f 20_5 represented by adjacent channel is a frequency f 20_4, channel f 20_6, f 40_2 and f 80_1 represented, can channel allocation and frequency frequency f 20_5 represented f The STFs of the channels represented by 20_4, f 20_6 , f 40_2, and f 80_1 are different. However, the channels represented by frequency points f 20_4 , f 20_6 , f 40_2 and f 80_1 are not adjacent channels, so the same STF can be used. Other frequency points also have corresponding constraint relationships, which are no longer cumbersome.
在步骤S101的具体实施中,wifi设备可以通过wifi协议确定STF参数映射表。具体可以将STF参数映射表预先导入至wifi设备。In the specific implementation of step S101, the wifi device may determine the STF parameter mapping table through the wifi protocol. Specifically, the STF parameter mapping table can be imported into the wifi device in advance.
wifi设备可以在当前工作信道传输数据,例如,wifi设备可以工作在图2中频点f 20_2所表示的信道,也即wifi设备的当前工作信道为频点f 20_2所表示的信道。 The wifi device can transmit data on the current working channel. For example, the wifi device can work on the channel represented by the frequency point f 20_2 in FIG. 2, that is, the current working channel of the wifi device is the channel represented by the frequency point f 20_2 .
由于STF参数映射表中包括每个信道对应的STF,因此在步骤S102的具体实施中,wifi设备可以通过在STF参数映射表中进行查找,也即根据各个相邻信道组内多个相邻信道与STF的映射关系进行查找,得到当前工作信道对应的STF。Since the STF parameter mapping table includes the STF corresponding to each channel, in the specific implementation of step S102, the wifi device can search in the STF parameter mapping table, that is, according to multiple adjacent channels in each adjacent channel group The mapping relationship with STF is searched, and the STF corresponding to the current working channel is obtained.
具体而言,步骤S101和步骤S102可以是由wifi设备的基带在生成数字信号的过程中执行的。Specifically, step S101 and step S102 may be executed by the baseband of the wifi device in the process of generating digital signals.
进而在步骤S103的具体实施中,可以将选取的STF发送出去。具体而言,基带生成的数字信号包括所述选取的STF,也即数字信号的前8us为该选取的STF;在基带生成数字信号后,可以经数模转换转化为模拟信号,输入射频系统进行频谱搬移、滤波以及放大等操作,最后通过天线发射出去。Furthermore, in the specific implementation of step S103, the selected STF can be sent out. Specifically, the digital signal generated by the baseband includes the selected STF, that is, the first 8us of the digital signal is the selected STF; after the digital signal is generated at the baseband, it can be converted into an analog signal by digital-to-analog conversion and input into the radio frequency system for processing. Operations such as spectrum shifting, filtering, and amplification are finally transmitted through the antenna.
本实施例中,对于接收该数字信号的接收机而言,即使被相邻信道的数字信号触发AGC,由于相邻信道的数字信号中STF与当前工作信道的数字信号中的STF不同,因此也能通过帧头已知特性来识别相邻信道的数字信号为干扰信号,从而继续处于帧头检测状态,及 时获取目标信号(也即当前工作信道的数字信号)。In this embodiment, for the receiver that receives the digital signal, even if the AGC is triggered by the digital signal of the adjacent channel, the STF in the digital signal of the adjacent channel is different from the STF in the digital signal of the current working channel. The known characteristics of the frame header can identify the digital signal of the adjacent channel as an interference signal, so as to continue to be in the frame header detection state, and obtain the target signal (that is, the digital signal of the current working channel) in time.
本发明实施例通过上述STF确定方式可以使得当前工作信道对应的STF与当前工作信道的相邻信道对应的STF是不同的,从而使得当前信道的接收机即使被相邻信道信号触发AGC时,在进行帧头检测时也不会对相邻信道的信号通过检测,避免了相邻信道的信号干扰,让接收机AGC处于正确的抓包状态中,保证当前信道接收机对目标信号的及时识别,降低丢包率,提升了数据传输效率。In the embodiment of the present invention, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel through the above-mentioned STF determination method, so that the receiver of the current channel can be different even when the AGC is triggered by the adjacent channel signal. During the frame header detection, the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, so that the receiver AGC is in the correct packet capture state, and the current channel receiver can recognize the target signal in time. Reduce the packet loss rate and improve the efficiency of data transmission.
本发明一个非限制性的实施例中,请参照图3,可以采用以下方式离线确定所述STF参数映射表中的多个STF:In a non-limiting embodiment of the present invention, referring to FIG. 3, multiple STFs in the STF parameter mapping table can be determined offline in the following manner:
步骤S301:对于预设STF序列中各个非零值,至少按照多种角度组合分别进行相位旋转,以得到多个新的STF序列;Step S301: For each non-zero value in the preset STF sequence, perform phase rotation at least according to various angle combinations to obtain multiple new STF sequences;
步骤S302:计算每两个新的STF序列的相关值;Step S302: Calculate the correlation value of every two new STF sequences;
步骤S303:选取与其他新的STF序列的相关值均小于预设值的新的STF序列,作为STF序列组,以用于加入所述STF参数映射表。Step S303: Select a new STF sequence whose correlation values with other new STF sequences are all less than a preset value as an STF sequence group for adding to the STF parameter mapping table.
其中,按照多种角度组合分别对预设STF序列中各个非零值进行相位旋转是指对每个非零值的相位旋转相同或不同的角度。Wherein, performing phase rotation on each non-zero value in the preset STF sequence according to multiple angle combinations refers to rotating the phase of each non-zero value by the same or different angle.
本实施例中,预设STF序列可以是现有的wifi协议所约定的,预设STF序列可以表示从第-26号子载波至第26号子载波的频域值。具体地,预设STF序列S -26,26可以采用以下公式来表示:
Figure PCTCN2020116115-appb-000001
Figure PCTCN2020116115-appb-000002
In this embodiment, the preset STF sequence may be agreed upon by the existing wifi protocol, and the preset STF sequence may represent the frequency domain value from the -26th subcarrier to the 26th subcarrier. Specifically, the preset STF sequence S -26, 26 can be expressed by the following formula:
Figure PCTCN2020116115-appb-000001
Figure PCTCN2020116115-appb-000002
由于wifi协议对STF序列的长度有要求,STF序列的长度为64,而预设STF序列的频域长度为53,因此对预设STF序列进行扩展,扩展后的STF序列的长度为64。即在上述预设STF序列的前边6位和后边5位补充频域值0。Since the wifi protocol requires the length of the STF sequence, the length of the STF sequence is 64, and the frequency domain length of the preset STF sequence is 53, therefore, the preset STF sequence is extended, and the length of the extended STF sequence is 64. That is, the first 6 bits and the back 5 bits of the above-mentioned preset STF sequence are supplemented with the frequency domain value 0.
在步骤S301的具体实施中,对预设STF序列中各个非零值按照 多种角度组合进行相位旋转。具体地,对预设STF序列中第-24、-20、-16、-12、-8、-4、4、8、12、16、20、24号子载波值分别按照多种角度组合进行独立相位旋转,多个角度可以是45度、60度、90度等任意可实施的角度。In the specific implementation of step S301, each non-zero value in the preset STF sequence is phase-rotated according to various angle combinations. Specifically, the -24th, -20, -16, -12, -8, -4, 4, 8, 12, 16, 20, and 24th subcarrier values in the preset STF sequence are combined according to various angles. Independent phase rotation, multiple angles can be any implementable angles such as 45 degrees, 60 degrees, and 90 degrees.
在步骤S302的具体实施中,计算上述步骤得到的每两个新的STF序列的相关值。具体可以采用以下公式计算两个新的STF序列x{n}和y{n}的相关值C(l):
Figure PCTCN2020116115-appb-000003
l=0,1,…,63;n+l=(n+l)mod64,其中,x{n}和y{n}为两个新的STF序列,n=0~63。
In the specific implementation of step S302, the correlation values of every two new STF sequences obtained in the above steps are calculated. Specifically, the following formula can be used to calculate the correlation value C(l) of the two new STF sequences x{n} and y{n}:
Figure PCTCN2020116115-appb-000003
l=0,1,...,63; n+1=(n+1)mod64, where x{n} and y{n} are two new STF sequences, n=0-63.
进而在步骤S303的具体实施中,可以选取与其他新的STF序列的相关值均小于预设值的新的STF序列,作为STF序列组。相关值小于预设值是指对于上述公式中的所有l,相关值C(l)均小于所述预设值。Furthermore, in the specific implementation of step S303, a new STF sequence whose correlation value with other new STF sequences is less than a preset value can be selected as the STF sequence group. The correlation value less than the preset value means that for all ls in the above formula, the correlation value C(l) is less than the preset value.
需要说明的是,所述预设值可以根据实际的应用环境进行设置和调整,本发明实施例对此不作限制。It should be noted that the preset value can be set and adjusted according to the actual application environment, which is not limited in the embodiment of the present invention.
由于现有无线通信系统中TF序列仅有一个,因此本发明实施例通过对预设STF序列中各个非零值在多个角度进行旋转,可以扩展得到多个STF序列;再通过计算相关值,选取两两相关值较小的STF序列组,从而使得STF参数映射表中多个相邻信道对应的STF具有较小的相关性,进而使得接收机对相邻信道的STF进行帧头检测时不会检测通过,进一步降低相邻信道的干扰,保证传输效率。Since there is only one TF sequence in the existing wireless communication system, the embodiment of the present invention can expand to obtain multiple STF sequences by rotating each non-zero value in the preset STF sequence at multiple angles; and then by calculating the correlation value, Select the STF sequence group with the smaller pairwise correlation value, so that the STF corresponding to multiple adjacent channels in the STF parameter mapping table has a smaller correlation, so that the receiver does not perform frame header detection on the STF of the adjacent channel. It will pass the test to further reduce the interference of adjacent channels and ensure the transmission efficiency.
进一步地,继续参照图3,可以采用以下方式离线确定所述STF参数映射表:Further, referring to FIG. 3 continuously, the STF parameter mapping table can be determined offline in the following manner:
步骤S304:确定所述多个相邻信道组,每一相邻信道组包括多个相邻信道;Step S304: Determine the multiple adjacent channel groups, and each adjacent channel group includes multiple adjacent channels;
步骤S305:对于每一相邻信道组内的多个相邻信道,从所述STF序列组中选取多个不同的新的STF序列,并与所述多个相邻信道建立映射关系。Step S305: For multiple adjacent channels in each adjacent channel group, select multiple different new STF sequences from the STF sequence group, and establish a mapping relationship with the multiple adjacent channels.
在步骤S304的具体实施中,对于每个信道,确定其相邻信道组,同一相邻信道组内的信道互为相邻信道。In the specific implementation of step S304, for each channel, its adjacent channel group is determined, and the channels in the same adjacent channel group are adjacent channels to each other.
一并参照图2,对于频点f 20_2所表示的信道,其相邻信道为频点f 20_1、f 20_3和f 40_2表示的信道,那么相邻信道组1可以包括频点f 20_2、f 20_1所表示的信道;相邻信道组2可以包括频点f 20_2、f 20_3所表示的信道;相邻信道组3可以包括频点f 20_2和f 40_2所表示的信道。 2 together, for the channel represented by the frequency point f 20_2 , the adjacent channels are the channels represented by the frequency points f 20_1 , f 20_3 and f 40_2 , then the adjacent channel group 1 may include the frequency points f 20_2 and f 20_1 channel indicated; adjacent channel set 2 may include a frequency f 20_2, f 20_3 channel indicated; adjacent channel set 3 may include a channel frequency f 20_2 and f 40_2 indicated.
同理,对于频点f 20_5所表示的信道,其相邻信道为频点f 20_4、f 20_6、f 40_2及f 80_1表示的信道,那么相邻信道组4可以包括频点f 20_5、f 20_4所表示的信道;相邻信道组5可以包括频点f 20_5、f 20_6所表示的信道;相邻信道组6可以包括频点f 20_5、f 40_2所表示的信道;相邻信道组7可以包括频点f 20_5和f 80_1所表示的信道。其它频点以此类推。 Similarly, for the channel represented by the frequency point f 20_5 , the adjacent channels are the channels represented by the frequency points f 20_4 , f 20_6 , f 40_2 and f 80_1 , then the adjacent channel group 4 can include the frequency points f 20_5 , f 20_4 The adjacent channel group 5 may include the channels represented by the frequency points f 20_5 and f 20_6 ; the adjacent channel group 6 may include the channels represented by the frequency points f 20_5 and f 40_2 ; the adjacent channel group 7 may include Channels represented by frequency points f 20_5 and f 80_1. The other frequency points can be deduced by analogy.
在步骤S305的具体实施中,对于相邻信道组内的多个相邻信道,分别为其分配不同的STF序列,也即相邻信道组内的多个相邻信道对应不同的STF。In the specific implementation of step S305, different STF sequences are assigned to multiple adjacent channels in the adjacent channel group, that is, multiple adjacent channels in the adjacent channel group correspond to different STFs.
进一步地,图3所示步骤S301具体可以包括以下步骤:按照多种角度组合分别进行相位旋转;对旋转后的STF进行IFFT变换,以得到所述多个新的STF序列。Further, step S301 shown in FIG. 3 may specifically include the following steps: performing phase rotation according to various angle combinations; performing IFFT transformation on the rotated STF to obtain the multiple new STF sequences.
具体实施中,wifi设备通过发射机发送的数字信号为时域信号,在对数字信号处理时可以将STF通过IFFT转换为时域序列,再进行后续的处理步骤。In specific implementation, the digital signal sent by the wifi device through the transmitter is a time-domain signal. When processing the digital signal, the STF can be converted into a time-domain sequence through IFFT, and then subsequent processing steps are performed.
请参照图4,本发明实施例还公开了一种STF接收方法。所述STF接收方法可以用于WLAN系统中的wifi设备,也即可以由wifi设备的接收机执行图4所示的各个步骤。Referring to FIG. 4, the embodiment of the present invention also discloses an STF receiving method. The STF receiving method can be used for the wifi device in the WLAN system, that is, the receiver of the wifi device can perform the steps shown in FIG. 4.
具体而言,所述STF接收方法可以包括以下步骤:Specifically, the STF receiving method may include the following steps:
步骤S401:接收无线帧信号,所述无线帧信号包括STF,Step S401: Receive a wireless frame signal, where the wireless frame signal includes STF,
步骤S402:将接收到的STF与当前工作信道对应的STF进行相关检测;Step S402: Perform correlation detection between the received STF and the STF corresponding to the current working channel;
步骤S403:如果未通过相关检测,则确定所述无线帧信号为干扰信号。Step S403: If the correlation detection is not passed, it is determined that the wireless frame signal is an interference signal.
本实施例中,wifi设备的接收机工作在当前工作信道。无线帧信号可能来自当前工作信道,也可能来自当前工作信道的相邻信道。也就是说,当前工作信道的相邻信道发送较大信号时,接收机会触发AGC。In this embodiment, the receiver of the wifi device works on the current working channel. The wireless frame signal may come from the current working channel, or it may come from an adjacent channel of the current working channel. That is to say, when the adjacent channel of the current working channel sends a larger signal, the receiver will trigger AGC.
具体实施中,接收机在进行帧头已知信号检测时,也即将接收到的STF与当前工作信道对应的STF进行相关检测时,由于当前工作信道与其相邻信道的STF不同,所以相关检测的结果不会通过门限,相邻信道的数字信号不会被接收机判定为目标信号,也即确定所述无线帧信号为干扰信号。在这种情况下,接收机停止后续的工作,转而重新搜索目标信号(也即当前工作信道的数字信号)帧头。本发明实施例能够帮助接收机更好地对抗邻道干扰。In specific implementation, when the receiver detects the known signal of the frame header, that is, when the received STF is related to the STF corresponding to the current working channel, the current working channel is different from the STF of its adjacent channel, so the related detection is The result will not pass the threshold, and the digital signal of the adjacent channel will not be determined as the target signal by the receiver, that is, it is determined that the wireless frame signal is an interference signal. In this case, the receiver stops subsequent work, and instead searches for the target signal (that is, the digital signal of the current working channel) frame header again. The embodiments of the present invention can help the receiver to better combat adjacent channel interference.
进一步地,所述STF接收方法还可以包括以下步骤:确定所述干扰信号的来源信道对应的STF,以作为干扰信道的STF;将所述干扰信号的STF与所述干扰信道的STF进行相关检测;根据相关检测的结果确定所述干扰信号的来源,所述来源选自wifi信道和噪声。Further, the STF receiving method may further include the following steps: determining the STF corresponding to the source channel of the interference signal as the STF of the interference channel; performing correlation detection between the STF of the interference signal and the STF of the interference channel ; The source of the interference signal is determined according to the result of the relevant detection, and the source is selected from the wifi channel and noise.
本实施例中,接收机可以对干扰信号做延迟相关检测,也即用干扰信道(也即干扰信号的来源信道)的STF与干扰信号的帧头进行相关检测,来确认检测到的是否是邻道干扰。也就是说,如果相关检测通过,则表示干扰信号来自干扰信道,干扰信号的来源为wifi信道的wifi信号;否则表示干扰信号的来源为噪声或单音等其他信号。In this embodiment, the receiver can perform delay-related detection of the interference signal, that is, use the STF of the interference channel (that is, the source channel of the interference signal) and the frame header of the interference signal to perform correlation detection to confirm whether the detected signal is a neighbor. Road interference. In other words, if the relevant detection is passed, it means that the interference signal comes from the interference channel, and the source of the interference signal is the wifi signal of the wifi channel; otherwise, it means that the source of the interference signal is other signals such as noise or single tone.
本发明实施例有助于接收机做进一步的操作,例如空频道检测(Clear Channel Assessment);这种情况下,接收机可以通知CCA目 前的能量是由邻道产生。The embodiment of the present invention helps the receiver to perform further operations, such as clear channel assessment; in this case, the receiver can notify the CCA that the current energy is generated by the adjacent channel.
进一步地,所述STF接收方法还可以包括以下步骤:如果通过相关检测,则确定所述无线帧信号为目标信号;对所述无线帧信号进行解调。Further, the STF receiving method may further include the following steps: if the correlation detection is passed, determining that the wireless frame signal is a target signal; demodulating the wireless frame signal.
图5是本发明实施例一种STF发送装置的结构示意图。请参照图5,STF发送装置50可以包括:FIG. 5 is a schematic structural diagram of an STF sending apparatus according to an embodiment of the present invention. Referring to FIG. 5, the STF sending device 50 may include:
映射表确定模块501,用以确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;The mapping table determining module 501 is used to determine the STF parameter mapping table. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. The same adjacent channel group The STFs corresponding to multiple adjacent channels are different;
STF确定模块502,用以根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;The STF determining module 502 is configured to select the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
STF发送模块503,用以将选取的STF发送出去。The STF sending module 503 is used to send the selected STF.
本发明实施例通过上述STF确定方式可以使得当前工作信道对应的STF与当前工作信道的相邻信道对应的STF是不同的,从而使得当前信道的接收机即使被相邻信道信号触发AGC时,在进行帧头检测时也不会对相邻信道的信号通过检测,避免了相邻信道的信号干扰,保证当前信道接收机对目标信号的及时识别,降低丢包率,提升了数据传输效率。In the embodiment of the present invention, the STF corresponding to the current working channel can be different from the STF corresponding to the adjacent channel of the current working channel through the above-mentioned STF determination method, so that the receiver of the current channel can be different even when the AGC is triggered by the adjacent channel signal. When the frame header is detected, the signal of the adjacent channel will not pass the detection, avoiding the signal interference of the adjacent channel, ensuring the timely identification of the target signal by the current channel receiver, reducing the packet loss rate, and improving the data transmission efficiency.
图6是本发明实施例一种STF接收装置的结构示意图。请参照图6,STF接收装置60可以包括:FIG. 6 is a schematic structural diagram of an STF receiving device according to an embodiment of the present invention. Referring to FIG. 6, the STF receiving device 60 may include:
接收模块601,用以接收无线帧信号,所述无线帧信号包括STF;The receiving module 601 is configured to receive a wireless frame signal, where the wireless frame signal includes STF;
相关检测模块602,用以将接收到的STF与当前工作信道对应的STF进行相关检测;The correlation detection module 602 is configured to perform correlation detection between the received STF and the STF corresponding to the current working channel;
干扰信号确定模块603,用以如果未通过相关检测,则确定所述无线帧信号为干扰信号。The interference signal determining module 603 is configured to determine that the wireless frame signal is an interference signal if it fails the relevant detection.
在一个具体实施例中,STF接收装置60还可以包括:干扰信道STF确定模块(图未示),用以确定所述干扰信号的来源信道对应的STF,以作为干扰信道的STF;检测模块(图未示),用以将所述干扰信号的STF与所述干扰信道的STF进行相关检测;信号类型确定模块(图未示),用以根据相关检测的结果确定所述干扰信号的来源,所述来源选自wifi信道和噪声。In a specific embodiment, the STF receiving device 60 may further include: an interference channel STF determination module (not shown in the figure) to determine the STF corresponding to the source channel of the interference signal as the STF of the interference channel; a detection module ( (Not shown in the figure) to perform correlation detection between the STF of the interference signal and the STF of the interference channel; a signal type determination module (not shown in the figure) is used to determine the source of the interference signal according to the result of the related detection, The source is selected from wifi channel and noise.
在一个具体实施例中,STF接收装置60还可以包括:目标信号确定模块(图未示),用以如果通过相关检测,则确定所述无线帧信号为目标信号;解调模块(图未示),用以对所述无线帧信号进行解调。In a specific embodiment, the STF receiving device 60 may further include: a target signal determining module (not shown in the figure) for determining that the wireless frame signal is a target signal if the relevant detection is passed; a demodulation module (not shown in the figure) ) To demodulate the wireless frame signal.
关于所述STF发送装置50以及STF接收装置60的工作原理、工作方式的更多内容,可以参照图1至图4中的相关描述,这里不再赘述。For more details about the working principles and working methods of the STF sending device 50 and the STF receiving device 60, reference may be made to the related descriptions in FIGS. 1 to 4, and details are not repeated here.
本发明实施例还公开了一种存储介质,所述存储介质为计算机可读存储介质,其上存储有计算机指令,所述计算机指令运行时可以执行图1、图3或图4中所示方法的步骤。所述存储介质可以包括ROM、RAM、磁盘或光盘等。所述存储介质还可以包括非挥发性存储器(non-volatile)或者非瞬态(non-transitory)存储器等。The embodiment of the present invention also discloses a storage medium. The storage medium is a computer-readable storage medium on which computer instructions are stored. When the computer instructions are executed, the method shown in FIG. 1, FIG. 3, or FIG. 4 can be executed. A step of. The storage medium may include ROM, RAM, magnetic disk or optical disk, etc. The storage medium may also include non-volatile memory (non-volatile) or non-transitory memory, etc.
本发明实施例还公开了一种终端,所述终端可以包括存储器和处理器,所述存储器上存储有可在所述处理器上运行的计算机指令。所述处理器运行所述计算机指令时可以执行图1、图3或图4中所示方法的步骤。所述终端包括但不限于手机、计算机、平板电脑等终端设备。The embodiment of the present invention also discloses a terminal. The terminal may include a memory and a processor, and computer instructions that can run on the processor are stored in the memory. The processor may execute the steps of the method shown in FIG. 1, FIG. 3, or FIG. 4 when running the computer instruction. The terminal includes, but is not limited to, terminal devices such as mobile phones, computers, and tablets.
虽然本发明披露如上,但本发明并非限定于此。任何本领域技术人员,在不脱离本发明的精神和范围内,均可作各种更动与修改,因此本发明的保护范围应当以权利要求所限定的范围为准。Although the present invention is disclosed as above, the present invention is not limited to this. Any person skilled in the art can make various changes and modifications without departing from the spirit and scope of the present invention. Therefore, the protection scope of the present invention should be subject to the scope defined by the claims.

Claims (12)

  1. 一种STF发送方法,其特征在于,包括:An STF sending method, characterized in that it includes:
    确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;Determine the STF parameter mapping table. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF. The multiple adjacent channels in the same adjacent channel group correspond to multiple adjacent channels. STF is different;
    根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;Selecting the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
    将选取的STF发送出去。Send the selected STF.
  2. 根据权利要求1所述的STF发送方法,其特征在于,采用以下方式离线确定所述STF参数映射表中的多个STF:The STF sending method according to claim 1, characterized in that multiple STFs in the STF parameter mapping table are determined offline in the following manner:
    对于预设STF序列中各个非零值,至少按照多种角度组合分别进行相位旋转,以得到多个新的STF序列;For each non-zero value in the preset STF sequence, perform phase rotation at least according to various angle combinations to obtain multiple new STF sequences;
    计算每两个新的STF序列的相关值;Calculate the correlation value of every two new STF sequences;
    选取与其他新的STF序列的相关值均小于预设值的新的STF序列,作为STF序列组,以用于加入所述STF参数映射表。A new STF sequence whose correlation value with other new STF sequences is less than a preset value is selected as the STF sequence group for adding to the STF parameter mapping table.
  3. 根据权利要求2所述的STF发送方法,其特征在于,采用以下方式离线确定所述STF参数映射表:The STF sending method according to claim 2, wherein the STF parameter mapping table is determined offline in the following manner:
    确定所述多个相邻信道组,每一相邻信道组包括多个相邻信道;Determining the multiple adjacent channel groups, each adjacent channel group including multiple adjacent channels;
    对于每一相邻信道组内的多个相邻信道,从所述STF序列组中选取多个不同的新的STF序列,并与所述多个相邻信道建立映射关系。For multiple adjacent channels in each adjacent channel group, multiple different new STF sequences are selected from the STF sequence group, and a mapping relationship is established with the multiple adjacent channels.
  4. 根据权利要求2所述的STF发送方法,其特征在于,所述至少按照多种角度组合分别进行相位旋转包括:The STF sending method according to claim 2, wherein said performing phase rotation at least according to a combination of multiple angles comprises:
    按照多种角度组合分别进行相位旋转;Perform phase rotation according to various angle combinations;
    对旋转后的STF进行IFFT变换,以得到所述多个新的STF序列。Perform IFFT transformation on the rotated STF to obtain the multiple new STF sequences.
  5. 根据权利要求1所述的STF发送方法,其特征在于,不同相邻信道组内多个相邻信道对应的STF相同或不同。The STF sending method according to claim 1, wherein the STFs corresponding to multiple adjacent channels in different adjacent channel groups are the same or different.
  6. 一种STF接收方法,其特征在于,包括:An STF receiving method, characterized in that it includes:
    接收无线帧信号,所述无线帧信号包括STF,所述STF是发送设备通过以下方式确定的:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;根据所述发送设备的当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;Receive a wireless frame signal, the wireless frame signal includes STF, the STF is determined by the sending device in the following manner: determine the STF parameter mapping table, the STF parameter mapping table includes multiple adjacent channel groups and each adjacent channel group The mapping relationship between multiple adjacent channels and STF in the same adjacent channel group corresponds to different STFs; the current operating channel is selected according to the current operating channel of the sending device and the STF parameter mapping table Corresponding STF;
    将接收到的STF与当前工作信道对应的STF进行相关检测;Perform correlation detection between the received STF and the STF corresponding to the current working channel;
    如果未通过相关检测,则确定所述无线帧信号为干扰信号。If it fails the correlation detection, it is determined that the wireless frame signal is an interference signal.
  7. 根据权利要求6所述的STF接收方法,其特征在于,还包括:The STF receiving method according to claim 6, further comprising:
    确定所述干扰信号的来源信道对应的STF,以作为干扰信道的STF;Determine the STF corresponding to the source channel of the interference signal as the STF of the interference channel;
    将所述干扰信号的STF与所述干扰信道的STF进行相关检测;Performing correlation detection between the STF of the interference signal and the STF of the interference channel;
    根据相关检测的结果确定所述干扰信号的来源,所述来源选自wifi信道和噪声。The source of the interference signal is determined according to the result of the related detection, and the source is selected from wifi channel and noise.
  8. 根据权利要求6所述的STF接收方法,其特征在于,还包括:The STF receiving method according to claim 6, further comprising:
    如果通过相关检测,则确定所述无线帧信号为目标信号;If the correlation detection is passed, it is determined that the wireless frame signal is a target signal;
    对所述无线帧信号进行解调。Demodulate the wireless frame signal.
  9. 一种STF发送装置,其特征在于,包括:An STF sending device, characterized in that it comprises:
    映射表确定模块,用以确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与 STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;The mapping table determining module is used to determine the STF parameter mapping table. The STF parameter mapping table includes multiple adjacent channel groups and the mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and within the same adjacent channel group The STFs corresponding to multiple adjacent channels are different;
    STF确定模块,用以根据当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;The STF determining module is used to select the STF corresponding to the current working channel according to the current working channel and the STF parameter mapping table;
    STF发送模块,用以将选取的STF发送出去。The STF sending module is used to send the selected STF.
  10. 一种STF接收装置,其特征在于,包括:An STF receiving device, characterized in that it comprises:
    接收模块,用以接收无线帧信号,所述无线帧信号包括STF,所述STF是发送设备通过以下方式确定的:确定STF参数映射表,所述STF参数映射表包括多个相邻信道组以及各个相邻信道组内多个相邻信道与STF的映射关系,同一相邻信道组内多个相邻信道对应的STF不同;根据所述发送设备的当前工作信道以及所述STF参数映射表选取所述当前工作信道对应的STF;The receiving module is configured to receive a wireless frame signal, the wireless frame signal includes STF, and the STF is determined by the sending device in the following manner: determining an STF parameter mapping table, the STF parameter mapping table including a plurality of adjacent channel groups and The mapping relationship between multiple adjacent channels in each adjacent channel group and the STF, and the multiple adjacent channels in the same adjacent channel group correspond to different STFs; selected according to the current working channel of the sending device and the STF parameter mapping table The STF corresponding to the current working channel;
    相关检测模块,用以将接收到的STF与当前工作信道对应的STF进行相关检测;The correlation detection module is used to perform correlation detection between the received STF and the STF corresponding to the current working channel;
    干扰信号确定模块,用以如果未通过相关检测,则确定所述无线帧信号为干扰信号。An interference signal determining module is used to determine that the wireless frame signal is an interference signal if it fails the relevant detection.
  11. 一种存储介质,其上存储有计算机指令,其特征在于,所述计算机指令运行时执行权利要求1至5中任一项所述STF发送方法的步骤,或者权利要求6至8中任一项所述STF接收方法的步骤。A storage medium having computer instructions stored thereon, wherein the computer instructions execute the steps of the STF sending method according to any one of claims 1 to 5 when the computer instructions are run, or any one of claims 6 to 8 The steps of the STF receiving method.
  12. 一种终端,包括存储器和处理器,所述存储器上存储有可在所述处理器上运行的计算机指令,其特征在于,所述处理器运行所述计算机指令时执行权利要求1至5中任一项所述STF发送方法的步骤,或者权利要求6至8中任一项所述STF接收方法的步骤。A terminal, comprising a memory and a processor, the memory stores computer instructions that can run on the processor, wherein the processor executes any of claims 1 to 5 when the computer instructions are executed. One of the steps of the STF sending method, or the steps of the STF receiving method of any one of claims 6 to 8.
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