Method for adopting different modulation modes for data fields of same frame

By replicating data in the same frame data field using high- and low-order modulation and combining it with pilot signal markings, the problems of data transmission stability and error resistance in complex communication environments are solved, achieving efficient and reliable data transmission.

CN121261850AActive Publication Date: 2026-01-02SHENYANG BONCHREE TECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202511804346.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-03
Publication Date
2026-01-02
Estimated Expiration
2045-12-03

AI Technical Summary

Technical Problem

Existing modulation techniques are difficult to adapt to different signal-to-noise ratios in complex and ever-changing communication environments, resulting in insufficient data transmission stability and error resistance, which affects user experience, especially in applications with high-speed data transmission and high real-time requirements.

Method used

In the data field of the same frame, two identical copies of the data are made and modulated using different methods, one high-order modulation and the other low-order modulation. The modulation method and position are marked by pilot signals. The receiver demodulates the data in sequence and confirms the correctness of the data, ensuring that the original data can be recovered even under poor channel conditions.

Benefits of technology

It improves the robustness and reliability of data transmission, reduces bit errors and packet loss, lowers hardware costs and latency, and achieves a balance between high reliability and high efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a method for adopting different modulation modes for data fields of the same frame, which relates to the technical field of communication technology, and comprises the following steps of: copying the original data fields of the same frame into two parts; specific modulation modes of the first data segment and the second data segment are determined respectively; in a data field in a pilot signal, marking modulation modes of the data of the first segment and the data of the second segment, and outputting a starting position and an ending position of the data of the first segment and a starting position and an ending position of the data of the second segment at the same time; and sending the marked pilot signal according to the lowest modulation mode, sending and demodulating the data of the segment I through a transmitter according to the specific modulation mode of the data of the segment I, simultaneously sending the data of the segment II according to the specific modulation mode of the segment II, demodulating the two segments in sequence, and finally obtaining the data. The invention provides an innovative communication method, aims to improve the reliability of data transmission, and is particularly suitable for a complex and changeable channel environment.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of communication technology, in particular, especially relates to a method for using different modulation methods in data fields of the same frame. BACKGROUND

[0002] In modern communication technology, modulation technology is the key to achieving efficient and reliable data transmission. With the growing demand for communication, the performance requirements of modulation technology are also increasing. Traditional modulation technologies, such as frequency shift keying (FSK), phase shift keying (PSK) and quadrature amplitude modulation (QAM), although to some extent meet the needs of data transmission, but in the face of complex and changeable communication environment, still exposed some limitations.

[0003] In wireless communication, signals will be affected by factors such as multipath effect, fading, noise and interference, resulting in signal distortion and increased error rate. For example, in urban environments, the shielding and reflection of buildings can cause signal multipath propagation, and signals from different paths will interfere with each other when they reach the receiving end, affecting the accuracy of signal demodulation. In satellite communication, due to the long distance of signal transmission, large path loss, and the influence of the ionosphere, the stability and reliability of the signal are facing severe challenges.

[0004] The existing modulation technology has deficiencies in data transmission stability and anti-error packet loss. On the one hand, when the channel condition is poor, a single modulation method is difficult to adapt to different signal-to-noise ratio environments, which can easily lead to data transmission errors or loss. For example, in low signal-to-noise ratio conditions, high-order modulation methods (such as 1024-QAM) can provide higher data transmission rates, but have lower tolerance to noise and interference, and the error rate will increase significantly; while low-order modulation methods (such as BPSK) have strong anti-interference ability, but the data transmission rate is low, which cannot meet the demand of high-speed data transmission. On the other hand, in some application scenarios with high real-time requirements, such as video conferencing, online gaming, etc., the loss or delay of data will seriously affect the user experience. SUMMARY

[0005] According to the technical problems mentioned in the above background technology, a method for using different modulation methods in data fields of the same frame is provided. The present application can dynamically adjust the modulation method according to the channel condition, ensure the stability of data transmission, improve the data transmission rate, effectively reduce the error packet loss phenomenon, and meet the requirements of different application scenarios for communication quality.

[0006] The technical means adopted by the present application are as follows: A method for using different modulation methods in data fields of the same frame, comprising the following steps: Step 1: Copy the data fields of the original same frame into two copies; one copy is the data of segment one and the other copy is the data of segment two. Step 2: Perform high-order modulation on the segment 1 data based on the signal-to-noise ratio data of the current channel measurement results to determine the specific modulation method of the segment 1 data; Step 3: Perform low-order modulation on the data of segment two to determine the specific modulation method of the data of segment two; Step 4: Broadcast the modulation scheme determined in Step 2 and Step 3 to the receiving end in the pilot signal; In the data field of the pilot signal, mark the modulation scheme of the first segment data and the second segment data, and output the start and end positions of the first segment data and the start and end positions of the second segment data. Step 5: Send the pilot signal after the mark according to the lowest modulation mode, send the segment 1 data according to the specific modulation mode of segment 1 data through the transmitter, and send the segment 2 data according to the specific modulation mode of segment 2. Step 6: The receiving end demodulates the pilot signal to obtain the modulation scheme of the segment one data and the segment two data, the start and end positions of the segment one data and the start and end positions of the segment two data; Step 7: Demodulate the data of segment 1. If segment 1 data is received correctly, immediately report segment 1 data to the application layer and simultaneously report ack. If segment 1 data is not received correctly, demodulate the data of segment 2. If segment 2 data is received correctly, immediately report segment 2 data to the application layer and simultaneously report ack. If segment 2 data is not received successfully, return to step 1.

[0007] Furthermore, in step 3, the low-order modulation method for the segment two data is any one of the following two methods: A. Use the lowest order modulation for the data in segment two; B. Based on the specific modulation method of segment one data, adjust the specific modulation method of segment one data down by N modulation systems.

[0008] Furthermore, the standard for correct reception is a bit error rate of 0.

[0009] Furthermore, in step 1, the two copies are two data segments with identical content, that is, the data segment one and the data segment two have completely identical content.

[0010] Furthermore, the specific modulation scheme of the segment 1 data is any one of 4096QAM, 1024QAM, 256QAM, 64QAM, and QPSK.

[0011] Furthermore, the specific modulation method of the second segment data is any one of 1024QAM, 256QAM, 64QAM, QPSK, and BPSK.

[0012] Furthermore, the pilot signal includes, in sequence: a power measurement field, a channel estimation field, and a data segment information field.

[0013] Furthermore, the flag is a bit flag added to the bit position of the pilot signal.

[0014] Furthermore, the receiving end includes an analog-to-digital conversion module.

[0015] Compared with the prior art, the present invention has the following advantages: This invention proposes an innovative communication method aimed at improving the reliability of data transmission, particularly suitable for complex and variable channel environments. Its core idea is to cleverly embed two identical, backup-like sets of data within a single transmission frame. Through careful design of the modulation scheme, such as employing a modulation scheme with strong anti-interference capabilities, and combining it with advanced channel coding techniques, it ensures that the receiver can effectively recover the original data even under adverse channel conditions. This method not only significantly improves the robustness and reliability of data transmission in complex electromagnetic environments and avoids the additional delays caused by traditional Automatic Repeat Request (ARQ) mechanisms, but also offers a simpler hardware implementation, reducing the requirements for device processing power and thus saving hardware costs. Simultaneously, by reducing the number of retransmissions, it greatly improves the real-time performance and overall efficiency of data transmission, achieving a perfect balance between high reliability, low cost, and high timeliness. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the overall process of the present invention. Detailed Implementation

[0018] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.

[0019] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of the invention described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0020] like Figure 1 As shown, the present invention provides a method for using different modulation schemes for data fields in the same frame, comprising the following steps: Step 1: Copy the data fields of the same frame into two copies; one copy is segment one data and the other copy is segment two data; in this preferred embodiment, the two copies are two data segments with the same content, that is, the content of segment one data and segment two data is exactly the same.

[0021] Step 2: Perform high-order modulation on the segment 1 data based on the signal-to-noise ratio (SNR) data from the current channel measurement results to determine the specific modulation scheme of the segment 1 data. In this application, the modulation scheme is determined based on the average SNR of the subcarriers and the SNR threshold range of different modulations. As a preferred embodiment of this application, the specific modulation scheme of the segment 1 data is any one of 4096QAM, 1024QAM, 256QAM, 64QAM, and QPSK.

[0022] Step 3: Perform low-order modulation on the segment two data to determine the specific modulation scheme of the segment two data; in this application, the specific modulation scheme of the segment two data is any one of 1024QAM, 256QAM, 64QAM, QPSK, and BPSK. In step 3, the low-order modulation method for the segment two data is any one of the following two methods: A. Use the lowest order modulation for the data in segment two; B. Based on the specific modulation method of segment one data, adjust the specific modulation method of segment one data down by N modulation systems.

[0023] In a preferred embodiment, in this application, the modulation order in Wi-Fi decreases sequentially from MCS11 to MCS0, i.e., from 1024QAM to BPSK. A higher modulation order is called high modulation, and vice versa. The N value can be set in advance based on the actual packet loss rate test results. For example, if reducing the MCS by 2 will eliminate packet loss, then N=2. Alternatively, a difference relative to the average SNR can be set based on the lowest SNR of the subcarrier measured by the channel. For example, if the difference between the lowest and average SNR is 5dB, and the current high modulation is reduced by 2 levels, the demodulation threshold will decrease by 6dB, then N=2 can be set. Alternatively, the modulation order can be manually reduced by a certain number, lowering the modulation to the lowest level of BPSK.

[0024] Step 4: Broadcast the modulation schemes determined in Step 2 and Step 3 to the receiving end in the pilot signal; in the data field of the pilot signal, mark the modulation schemes of the first segment data and the second segment data, and output the start and end positions of the first segment data and the second segment data.

[0025] In this application, the pilot signal includes, in sequence, a power measurement field, a channel estimation field, and a data segment information field.

[0026] Preferably, in this application, the marker is added to the bit positions of the pilot signal. A corresponding bit marker is added to the pilot field bit positions, for example, adding 20 bits. The first 4 bits represent the modulation scheme of high-modulation segment 1, the next 4 bits represent the modulation scheme of low-modulation segment 2, the next 6 bits represent the start and end positions of segment 1, and the last 6 bits represent the start and end positions of segment 2. This only describes the function; no restrictions are placed on the bit width or the order of the bits.

[0027] Step 5: Send the pilot signal after the mark according to the lowest modulation mode, send the segment 1 data according to the specific modulation mode of segment 1 data through the transmitter, and send the segment 2 data according to the specific modulation mode of segment 2. Step 6: The receiving end demodulates the pilot signal to obtain the modulation scheme of the segment one data and the segment two data, the start and end positions of the segment one data and the start and end positions of the segment two data; Step 7: Demodulate the data in segment 1. If segment 1 data is received correctly (bit error rate is 0), immediately report segment 1 data to the application layer and simultaneously report ack. If segment 1 data is not received correctly (bit error rate is not 0), demodulate the data in segment 2. If segment 2 data is received correctly (bit error rate is 0), immediately report segment 2 data to the application layer and simultaneously report ack. If segment 2 data is not received successfully (bit error rate is not 0), return to step 1.

[0028] To ensure data transmission stability and reduce errors and packet loss, assuming the data to be sent is A, data A is first modulated according to the modulation scheme in step 2, generating modulated data B in step 5. Then, data A is modulated according to the low modulation scheme in step 3 to generate data C. Both B and C carry data A. The data is then arranged with high-modulation data first, followed by low-modulation data, and so on. That is, the overall data, in terms of time structure, is as follows: [pilot, high-modulation data B (carrying A), low-modulation data C (carrying A)]. After the transmitter sends the combined data, the receiver receives the data and demodulates it in chronological order. The first data to be demodulated is B. If B is received correctly, then the correct A has been obtained, and C is discarded. If the demodulation is incorrect, then C needs to be demodulated again to obtain the correct A.

[0029] A bit error rate of 0 indicates correct reception; any bit errors indicate incorrect reception. This data is then reported to the application layer. Since this data A is likely important, the chip processes it with the highest priority and shortest latency (immediate processing). Discarding the data means discarding it without demodulation. The demodulation method is the same for different modulation schemes; all follow the standard procedure.

[0030] The sequence numbers of the above embodiments of the present invention are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments. In the above embodiments of the present invention, the descriptions of each embodiment have their own emphasis; parts not described in detail in a certain embodiment can be referred to in the relevant descriptions of other embodiments. It should be understood that the disclosed technical content in the several embodiments provided in this application can be implemented in other ways.

[0031] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A method for using different modulation schemes for data fields in the same frame, characterized in that, Includes the following steps: Step 1: Copy the data fields of the original same frame into two copies; one copy is the data of segment one and the other copy is the data of segment two. Step 2: Perform high-order modulation on the segment 1 data based on the signal-to-noise ratio data of the current channel measurement results to determine the specific modulation method of the segment 1 data; Step 3: Perform low-order modulation on the data of segment two to determine the specific modulation method of the data of segment two; Step 4: Broadcast the modulation scheme determined in Step 2 and Step 3 to the receiving end in the pilot signal; In the data field of the pilot signal, mark the modulation scheme of the first segment data and the second segment data, and output the start and end positions of the first segment data and the start and end positions of the second segment data. Step 5: Send the pilot signal after the mark according to the lowest modulation mode, send the segment 1 data according to the specific modulation mode of segment 1 data through the transmitter, and send the segment 2 data according to the specific modulation mode of segment 2. Step 6: The receiving end demodulates the pilot signal to obtain the modulation scheme of the segment one data and the segment two data, the start and end positions of the segment one data and the start and end positions of the segment two data; Step 7: Demodulate the data of segment 1. If segment 1 data is received correctly, immediately report segment 1 data to the application layer and simultaneously report ack. If segment 1 data is not received correctly, demodulate the data of segment 2. If segment 2 data is received correctly, immediately report segment 2 data to the application layer and simultaneously report ack. If segment 2 data is not received successfully, return to step 1.

2. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, In step 3, the low-order modulation method for segment two data can be any one of the following two methods: A. Use the lowest order modulation for the data in segment two; B. Based on the specific modulation method of segment one data, adjust the specific modulation method of segment one data down by N modulation systems.

3. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The standard for correct reception is a bit error rate of 0.

4. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, In step 1, the two copies are two data segments with identical content, that is, the data segment one and the data segment two have completely identical content.

5. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The specific modulation scheme of the data in segment one is any one of 4096QAM, 1024QAM, 256QAM, 64QAM, and QPSK.

6. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The specific modulation scheme of the data in segment two is any one of 1024QAM, 256QAM, 64QAM, QPSK, and BPSK.

7. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The pilot signal includes, in sequence: a power measurement field, a channel estimation field, and a data segment information field.

8. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The flag is a bit flag added to the bit position of the pilot signal.

9. The method for using different modulation schemes for data fields in the same frame according to claim 1, characterized in that, The receiving end includes an analog-to-digital conversion module.

Citation Information

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