Link adaptation method and apparatus
The link adaptation method dynamically adjusts MCS based on Doppler shift and CQI to stabilize OFDM communication in high-speed mobile environments, addressing reliability issues.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- KDDI CORP
- Filing Date
- 2023-09-29
- Publication Date
- 2026-05-19
AI Technical Summary
OFDM modulation schemes face instability and reduced communication reliability in high-speed mobile environments due to unaccounted Doppler shifts, necessitating adaptive MCS switching.
A link adaptation method involving OFDM-CSI-RS transmission, OTFS-SRS estimation, and CQI feedback to dynamically set MCS based on Doppler shift and CQI, using lookup tables to correlate CQI, Doppler index, and MCS.
Enhances communication stability and reliability by adaptively setting MCS according to terminal speed, improving OFDM performance in mobile environments.
Smart Images

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Abstract
Description
Technical Field
[0006] , , ,
[0001] The present invention relates to a link adaptation method and apparatus in a mobile communication system, and more particularly, to a link adaptation method and apparatus for setting the MCS (Modulation and Coding Scheme) of a radio access link according to the moving speed of a wireless terminal in a mobile communication system.
Background Art
[0002] The orthogonal frequency division multiplexing (OFDM: Orthogonal Frequency Division Multiplexing) method used in the 4th and 5th generation mobile communication services has high spectral efficiency and excellent resistance to multipath fading. Also, in the above services, link adaptation that switches the MCS according to the communication quality of the communication terminal is used, and the signal-to-interference and noise power ratio (SINR), or the CQI (Channel Quality Indicator) having a corresponding relationship with them, is used as an index of the communication quality.
[0003] Orthogonal time frequency space (OTFS: Orthogonal Time Frequency Space) transmission has attracted attention as a transmission method capable of coping with temporal changes caused by different Doppler shifts.
[0004] Patent Document 1 discloses a technique related to the co-operation of an OTFS modulation communication system and an LTE system using OFDM.
[0005] Non-Patent Document 1 shows a fair comparison between OTFS and OFDM in an environment with sparsity.
Prior Art Documents
Patent Documents
[0006]
Patent Document 1
[0007] [Non-Patent Document 1] IEEE, OTFS vs. OFDM in the Presence of Sparsity: A FairComparison [Overview of the project] [Problems that the invention aims to solve]
[0008] Figure 2 compares the throughput of OFDM and OTFS modulation schemes for each Doppler frequency. OFDM has a problem in high-speed mobile environments where the Doppler shift causes unstable data communication quality and reduces communication reliability.
[0009] While it would be possible to improve performance by adaptively switching the MCS of the wireless access link in response to the Doppler shift, the OFDM modulation scheme does not include Doppler shift information in the CQI. Therefore, it is necessary to periodically set the MCS according to the Doppler shift.
[0010] The object of the present invention is to solve the above technical problems and to provide a link adaptation method and apparatus that can adaptively switch the MCS in response to the effects of Doppler shift. [Means for solving the problem]
[0011] To achieve the above objectives, the present invention provides a link adaptation method for a wireless access link in a mobile communication system, wherein an OFDM-CSI-RS is transmitted from a wireless base station to a wireless terminal, an OTFS-SRS is transmitted from the wireless terminal to the wireless base station, the wireless terminal receives the OFDM-CSI-RS and determines the CQI, the wireless base station receives the OTFS-SRS and estimates the Doppler shift, the CQI is fed back from the wireless terminal to the wireless base station, the wireless base station determines the MCS of the wireless access link based on the fed-back CQI and the estimated Doppler shift, the wireless base station notifies the terminal of the determined MCS via PDCCH, and the signal generated by the determined MCS is transmitted to the wireless terminal via PDSCH.
[0012] Furthermore, the present invention can be realized not only as a link adaptation method for a wireless access link that includes such characteristic procedures, but also as a link adaptation device that utilizes such characteristic procedures as a means. [Effects of the Invention]
[0013] According to the present invention, the MCS of the wireless access link in a mobile communication system can be adaptively set according to the mobile speed of the wireless terminal, thereby improving the quality of data communication by OFDM and enhancing the stability of communication. [Brief explanation of the drawing]
[0014] [Figure 1] This is a sequence flow illustrating an example of a link adaptation method according to one embodiment of the present invention. [Figure 2] This figure compares the throughput of OFDM and OTFS modulation schemes for each Doppler frequency. [Figure 3] This figure shows an example of a lookup table that determines the MCS based on the CQI and Doppler Index. [Figure 4] This figure shows an example of a lookup table that determines the Doppler index based on the Doppler frequency. [Figure 5] FIG. is a diagram showing a specific example (part 1) of determining MCS based on CQI and Doppler shift. [Figure 6] FIG. is a diagram showing a specific example (part 2) of determining MCS based on CQI and Doppler shift. [Figure 7] FIG. is a diagram showing a specific example (part 3) of determining MCS based on CQI and Doppler shift. [Figure 8] FIG. is a diagram showing a specific example (part 4) of determining MCS based on CQI and Doppler shift.
Embodiments for Carrying Out the Invention
[0015] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. FIG. 1 is a sequence flow showing an example of a link adaptation method in a mobile communication system according to an embodiment of the present invention, and shows a communication sequence in a radio access link between a 5G base station (gNB) and a 5G terminal (UE).
[0016] Therefore, CSI-RS unique to 4G / 5G is adopted as a reference signal for downlink propagation path estimation and quality measurement, CQI is similarly adopted as channel quality information, and PDCCH is adopted as a downlink control channel. However, the present invention is not limited to this, and various reference signals, quality information, and control channels can be adopted according to the assumed radio communication system.
[0017] In this embodiment, an RRC configuration (OFDM CSI-RS config, OTFS SRS Config) is periodically transmitted from the gNB to the UE, and the transmission conditions of the OFDM-modulated CSI-RS (OFDM CSI-RS) transmitted in the subsequent step 1 are notified to the UE.
[0018] In step 1, OFDM-CSI-RS is transmitted from the gNB to the UE under the conditions notified to the UE. The UE calculates a CQI (Channel Quality Indicator) indicating the propagation quality of the downlink of the radio access link based on the OFDM-CSI-RS received from the gNB.
[0019] In step 2, OTFS-SRS is transmitted from the UE to the gNB under the notified conditions. The gNB estimates the Doppler shift based on the OTFS-SRS received from the UE. In step 3, the CQI of the downlink is fed back to the gNB from the UE as OFDM-CSI.
[0020] The gNB determines the MCS to be adopted for the downlink of the radio access link based on the CQI fed back from the UE and the Doppler shift estimated by itself. Here, the MCS is information obtained by indexing combinations such as modulation schemes and coding rates.
[0021] Figures 3 and 4 are diagrams showing an example of a method for the gNB to determine the MCS of the radio access link based on the CQI fed back from the UE and the Doppler shift information estimated by itself.
[0022] In this embodiment, as shown in an example in Figure 3, a look-up table (LUT1) defining the correspondence relationship among the CQI, Doppler index, and MCS is set in the gNB in advance. Further, as shown in an example in Figure 4, a LUT2 defining the relationship between the Doppler frequency and the Doppler index is set in the gNB in advance. The gNB discriminates the corresponding Doppler index by applying the Doppler shift frequency estimated by itself to its own LUT2.
[0023] Figures 5 to 8 are diagrams showing more specifically the method for the gNB to determine the MCS, and show the correspondence relationship between the combination of "modulation scheme", "Code rate x1024", and "efficiency" in the MCS and the Doppler shift for each CQI.
[0024] In the example of the correspondence shown in Figure 5 (Part 1), when the Doppler shift is 0.025 or greater, even if the CQI fed back from the UE is "3", the modulation scheme is converted from 64QAM to 16QAM, and the MCS of the radio access link is determined to be an MCS corresponding to 16QAM.
[0025] Similarly, if the Doppler shift is greater than 0.1, the MCS of the radio access link is determined to be the MCS corresponding to QPSK, so that the modulation scheme is converted from 16QAM to QPSK, even if the CQI index fed back from the UE is "2".
[0026] In the example of the correspondence shown in Figure 6 (part 2), when the Doppler shift is 0.1 or greater, even if the CQI index fed back from the UE is "3", the modulation scheme is converted from 64QAM to 16QAM, and the MCS of the radio access link is determined to be an MCS corresponding to 16QAM.
[0027] Similarly, if the Doppler shift is 0.175 or greater, the MCS of the radio access link is determined to be the MCS corresponding to QPSK, so that the modulation scheme is converted from 16QAM to QPSK, even if the CQI index fed back from the UE is "2".
[0028] In the example of the correspondence shown in Figure 7 (part 3), when the Doppler shift is 0.1 or greater, even if the CQI index fed back from the UE is "2", the MCS of the radio access link is determined to be the MCS corresponding to QPSK so that the modulation scheme is converted from 16QAM to QPSK.
[0029] In the example of the correspondence shown in Figure 8 (part 4), when the Doppler shift is 0.025 or greater, even if the CQI index fed back from the UE is "4", the modulation scheme is converted from 256QAM to 64QAM, and the MCS of the radio access link is determined to be an MCS corresponding to 64QAM.
[0030] Similarly, if the Doppler shift is greater than 0.125, the MCS of the radio access link is determined to be a 16QAM-compatible MCS, so that the modulation scheme is converted from 64QAM to 16QAM, even if the CQI index fed back from the UE is "3".
[0031] Similarly, if the Doppler shift is 0.175 or greater, the MCS of the radio access link is determined to be the MCS corresponding to QPSK, so that the modulation scheme is converted from 16QAM to QPSK, even if the CQI index fed back from the UE is "2".
[0032] Returning to Figure 1, once the MCS is determined based on the estimation results of CQI and Doppler shift as described above, in step 4, the gNB assigns a downlink control channel (PDCCH: Physical Downlink Control Channel) to the radio access link and notifies the radio terminal of the MCS. In step 5, the signal generated by the determined MCS is transmitted to the radio terminal via the PDCCH.
[0033] In the embodiments described above, the present invention was explained using the application to the downlink channel of a wireless access link between a UE and a gNB as an example. However, the present invention is not limited to this, and can be similarly applied to the downlink channel of a wireless access link between a UE and a wireless access point (AP).
[0034] Furthermore, according to the above embodiment, the MCS of the wireless access link in the mobile communication system can be adaptively set according to the mobile speed of the wireless terminal, thereby improving the stability of OFDM transmission and enhancing the reliability of communication. Consequently, it becomes possible to contribute to Goal 9, "Build resilient infrastructure and promote inclusive and sustainable industrialization," and Goal 11, "Make cities inclusive, safe, resilient and sustainable." [Explanation of symbols]
[0035] AP... Wireless access point, gNB... Wireless base station, UE... Wireless terminal
Claims
1. In a link adaptation method for a wireless access link in a mobile communication system, A reference signal modulated with OFDM is transmitted from the wireless base station to the wireless terminal. A wireless terminal transmits an OTFS-modulated reference signal to a wireless base station. The wireless terminal receives the OFDM-modulated reference signal and determines the channel quality information of the wireless access link. The wireless base station receives the OTFS-modulated reference signal and estimates the Doppler shift. The channel quality information is fed back from the wireless terminal to the wireless base station. The aforementioned wireless base station determines the MCS of the wireless access link based on the feedback channel quality information and the estimated Doppler shift results. A link adaptation method characterized in that the wireless base station notifies the wireless terminal of the determined MCS.
2. The aforementioned wireless base station is equipped with a lookup table that sets the correspondence between Doppler frequencies and Doppler indices, The aforementioned wireless base station estimates the Doppler frequency as the Doppler shift, The link adaptation method according to claim 1, characterized in that the wireless base station applies the estimated Doppler frequency to the lookup table to determine the Doppler index.
3. The aforementioned wireless base station is equipped with a lookup table that sets the correspondence between channel quality information, Doppler index, and MCS. The link adaptation method according to claim 2, characterized in that the MCS is determined by applying the Doppler index to the lookup table.
4. The aforementioned wireless base station is equipped with a lookup table that sets the correspondence between channel quality information, MCS, and Doppler shift reference values. The link adaptation method according to claim 1, characterized in that if the estimated Doppler shift exceeds the Doppler shift reference value corresponding to the received channel quality information, the MCS corresponding to the estimated Doppler shift is determined to be the MCS of the wireless access link.
5. The link adaptation method according to any one of claims 1 to 4, characterized in that the OFDM-modulated reference signal is OFDM-CSI-RS, the OTFS-modulated reference signal is OTFS-SRS, and the channel quality information is CQI.
6. In a link adaptation device for a wireless access link at a wireless base station of a mobile communication system, A means for transmitting an OFDM-modulated reference signal to a wireless terminal, A means for receiving an OTFS-modulated reference signal from a wireless terminal, A means for receiving feedback of channel quality information determined by the wireless terminal receiving the OFDM-modulated reference signal, A means for receiving the OTFS-modulated reference signal and estimating the Doppler shift, Means for determining the MCS of a wireless access link based on the feedback channel quality information and the estimated Doppler shift, A link adaptation device characterized by comprising means for notifying the determined MCS to the wireless terminal.
7. The link adaptation device according to claim 6, characterized in that the OFDM-modulated reference signal is OFDM-CSI-RS, the OTFS-modulated reference signal is OTFS-SRS, and the channel quality information is CQI.