HARQ Feasibility for EHT

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HARQ Feasibility for EHT 7/13/2019 doc.: IEEE 802.11-yy/xxxxr0 7/13/2019 HARQ Feasibility for EHT Date: 2019-1-09 Authors: Name Affiliations Address Phone email Yan Zhang Hongyuan Zhang  Sudhir Srinivasa Liwen Chu Rui Cao Mao Yu Marvell   Hongyuan@marvell.com  Hongyuan Zhang et al (Marvell) John Doe, Some Company

7/13/2019 HARQ Overview HARQ is claimed as a major feature differentiation of cellular over WLAN. Compared with ARQ (simple retransmission as in current 802.11 MAC), HARQ enables soft combining or additional parity at Rx to improve link level reliability on retransmissions. HARQ may significantly enhance user experience on top of the current 802.11 retransmission schemes. Much higher chance that a retransmission may get through without rate drop. User experience enhancement especially when the connection is weak or experiencing interferences. HARQ may be of less use when link is already strong or stable (e.g. close range, and/or clean environment) Following are some schemes used in dense Wifi deployments: Usage of directional antennas. APs will be using same BW (higher BW available). On the intersection area, the CCI (if both APs are transmitting) is more. Usage Band planning Because of CCI, the band which is used by adjacent AP need to have higher separation. Planning of band for each AP based on the location is required. Spatial diversity Use higher number of antenna to exploit the spatial diversity in the channel. Requires more hardware and high cost. Pcell Use multiple-antenna placed at widely different location and use BF scheme to direct the transmission Proposed Solution (SDM) Similar to Pcell but use different APs to attain the effect of multiple antennas. The co-operation of APs will be done as required. Can be implemented using software update. Hongyuan Zhang et al (Marvell)

HARQ Choices HARQ with two flavors: 7/13/2019 HARQ Choices HARQ with two flavors: Chase combining (CC)-retry the same coded MPDU. Incremental redundancy (IR)—retry with additional parity. HARQ-CC is easier to work with the current 802.11 re-transmission mechanism (at MPDU level). HARQ-IR may require FEC design changes and other major PHY/MAC changes, but could be more efficient than CC. Hongyuan Zhang et al (Marvell)

7/13/2019 Retransmissions Baseline 802.11 retransmission : retry the failed MPDU(s) in the next AMPDU, likely aggregated with fresh MPDUs; when FER is high or when retransmissions keep failing, rate is dropped. How much rate drop may be determined by FER. When combining HARQ with 802.11 AMPDU retransmissions, the chance of rate drop gets much lower due to improved FER—see simulation results. This enhances user experience (or link reliability) especially for cases: Long range/weak signal strength OBSS or other interferences “come and go”. Channel variation, e.g. due to movements (people walking around) Hongyuan Zhang et al (Marvell)

7/13/2019 Simulation setup 20MHz 1x1(1SS) and 2x2 (2SS) DNLOS channel (per channel normalization) 4x HE-LTF, MCS0-11, LDPC HARQ CC Up to 2 or 4 (re)transmissions for each packet, same channel realization is applied across all (re)transmissions for each packet. For the throughput results from slides 7-16, up to 4 (re)transmissions are simulated. Artificial frequency diversity : LPDC mapper patterns are shifted across the (re)transmissions to maximize the frequency domain distance of the same coded bit. DTM are still the same as 11ax Hongyuan Zhang et al (Marvell)

Simulation setup (Cont) 7/13/2019 Simulation setup (Cont) 1000 packets are transmitted via1000 independent channel realizations for PER and throughput evaluations. For PER evaluation, one packet will be sent up to 2 or 4 (re)transmissions until it is correctly decoded. If the packet cannot be decoded correctly after 2 or 4 (re)transmissions, it is counted as an error packet; otherwise it is counted as a successful packet. After sending 1000 packets, PER = total number of error packets/1000. For first transmission PER, the statistics are collected after the first transmission of each packet. For throughput evaluation, Thput = total number of correctly decoded data bits for 1000 packets /total air time used to send 1000 packets. Note that total air time does not include preambles, ACK and SIFs time for simplicity. It only include air time duration for data part. Note that each packet can take up to 4 (re)transmissions. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (1) 7/13/2019 HARQ vs ARQ Throughput Comparison (1) There is up to 2.5dB gain using HARQ CC over ARQ even with optimal link adaptation for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (2) 7/13/2019 HARQ vs ARQ Throughput Comparison (2) “ARQ without rate drop in retransmission” refers to the same MCS is applied across all (re)transmissions. “ARQ with rate drop in retransmission” refers to MCS is dropped by one level starting from a pre-determined ReTx index (e.g., 3rd Retx) if the previous (re)transmissions are failed. If MCS is selected with first transmission PER around 10%, there is up to 4.5dB gain using HARQ CC over ARQ without rate drop and up to 3.5dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (3) 7/13/2019 HARQ vs ARQ Throughput Comparison (3) If MCS is selected with first transmission PER around 20%, there is up to 8dB gain using HARQ CC over ARQ without rate drop and up to 5.5dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (4) 7/13/2019 HARQ vs ARQ Throughput Comparison (4) If MCS is selected with first transmission PER around 30% (this sometimes happens in real scenarios), there is up to 11dB gain using HARQ CC over ARQ without rate drop and up to 8dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (5) 7/13/2019 HARQ vs ARQ Throughput Comparison (5) If MCS is selected with first transmission PER around 40% (this may happen in real scenarios), there is up to 15dB gain using HARQ CC over ARQ without rate drop and up to 11dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (6) 7/13/2019 HARQ vs ARQ Throughput Comparison (6) There is up to up to 3.5dB gain using HARQ CC over ARQ even with optimal link adaptation for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (7) 7/13/2019 HARQ vs ARQ Throughput Comparison (7) If MCS is selected with first transmission PER around 10%, there is up to up to 6dB gain using HARQ CC over ARQ without rate drop and up to 5dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (8) 7/13/2019 HARQ vs ARQ Throughput Comparison (8) If MCS is selected with first transmission PER around 20%, there is up to up to 9.5dB gain using HARQ CC over ARQ without rate drop and up to 6.5dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (9) 7/13/2019 HARQ vs ARQ Throughput Comparison (9) If MCS is selected with first transmission PER around 30% (this sometimes happen in real scenarios), there is up to up to 11.5dB gain using HARQ CC over ARQ over ARQ without rate drop and up to 9.5dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

HARQ vs ARQ Throughput Comparison (10) 7/13/2019 HARQ vs ARQ Throughput Comparison (10) If MCS is selected with first transmission PER around 40% (this may happen in real scenarios), there is up to 14.5dB gain using HARQ CC over ARQ without rate drop and up to 11.3dB gain over ARQ with rate drop for the same throughput. Hongyuan Zhang et al (Marvell)

PHY Link Level Simulation Results (DNLOS 1x1) 7/13/2019 PHY Link Level Simulation Results (DNLOS 1x1) Refer to Appendix for all the curves HARQ CC retransmission dB gain over ARQ @ %1 PER for selected cases: Up to 2 (re)transmissions no freq diversity freq diversity Up to 4 (re)transmissions LDPC, MCS0 1.4dB 4.7dB 3.2dB 7.0dB LDPC, MCS4 2dB 7.8dB 4.0dB 11.5dB LDPC, MCS7 2.1dB 8.8dB 4.6dB 12.7dB LDPC, MCS9 7.9dB 11.7dB Table 1 HARQ CC dB gain over ARQ @1% PER Hongyuan Zhang et al (Marvell)

7/13/2019 Conclusions HARQ may potentially bring big improvement on link reliability, enabling EHT to claim a major differentiation feature from previous gens. Simulations show significant link level (PER) improvement upon ARQ by employing HARQ on the transmissions, especially when LDPC tone mapper patterns are shifted across all (re)transmissions. For the same throughput, HARQ CC provides about 2.5dB gain over ARQ for DNLOS 1x1 channel, and about 3.5dB gain over ARQ for DNLOS 2x2 channel even with optimal MCS selection. HARQ CC provides significant gain over ARQ if MCS selection is not optimal for the current channel state, especially when rate drop is not enabled in the retransmissions, which is common in many rate adaptation algorithms to prevent unnecessary rate drop when packet failure is due to collisions instead of channel degradations. Hongyuan Zhang et al (Marvell)

7/13/2019 Appendix: PER Curves Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS0 (1500bytes) Note that up to 4 (re)transmissions are used in ARQ scheme for all PER simulations. There are not much difference for ARQ between up to 2 and up to 4 (re)transmissions. Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS1 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS2 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS3 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS4 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS5 (1500bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS6 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS7 (1500bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS8 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS9 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS10 (1500 bytes) Hongyuan Zhang et al (Marvell)

7/13/2019 LDPC MCS11 (1500 bytes) Hongyuan Zhang et al (Marvell)