Methods, apparatuses, and computer readable media for terahertz channel communication
US-2024349127-A1 · Oct 17, 2024 · US
US2024243959A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2024243959-A1 |
| Application number | US-202418621237-A |
| Country | US |
| Kind code | A1 |
| Filing date | Mar 29, 2024 |
| Priority date | Sep 30, 2021 |
| Publication date | Jul 18, 2024 |
| Grant date | — |
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This application relates to the field of communication technologies, and provides a communication method and apparatus, to improve demodulation performance. A first subcarrier spacing, a second subcarrier spacing, a CP length of a first symbol, and a CP length of a second symbol are determined, where the first subcarrier spacing is K times the second subcarrier spacing, K is an integer greater than 1, and the CP length of the first symbol is greater than or equal to the CP length of the second symbol.
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What is claimed is: 1 . A communication method, comprising: determining a first subcarrier spacing, a second subcarrier spacing, a cyclic prefix (CP) length of a first symbol, and a CP length of a second symbol, wherein the first subcarrier spacing is K times the second subcarrier spacing, K is an integer greater than 1, and the CP length of the first symbol is greater than or equal to the CP length of the second symbol; and sending a reference signal based on the CP length of the first symbol and the first subcarrier spacing, and sending data based on the CP length of the second symbol and the second subcarrier spacing; or sending a reference signal based on the CP length of the second symbol and the first subcarrier spacing, and sending data based on the CP length of the first symbol, the CP length of the second symbol, and the second subcarrier spacing. 2 . The method according to claim 1 , wherein the determining a first subcarrier spacing, a second subcarrier spacing, a cyclic prefix CP length of a first symbol, and a CP length of a second symbol comprises: selecting a first correspondence from a table, wherein the table comprises a plurality of correspondences of parameter information, and parameter information in any correspondence comprises a ratio K of the first subcarrier spacing to the second subcarrier spacing, the CP length of the first symbol in a reference time unit, and the CP length of the second symbol in the reference time unit, and for any correspondence, K is an integer greater than 1, and the CP length of the first symbol is greater than or equal to the CP length of the second symbol. 3 . The method according to claim 2 , wherein the parameter information in any correspondence further comprises: a quantity M1 of symbols corresponding to the first subcarrier spacing in the reference time unit, and a quantity M2 of symbols corresponding to the second subcarrier spacing in the reference time unit. 4 . The method according to claim 3 , wherein for any correspondence, the quantity M1 of symbols corresponding to the first subcarrier spacing is less than or equal to the quantity M2 of symbols corresponding to the second subcarrier spacing. 5 . The method according to claim 2 , wherein for at least one value of K, the table comprises at least two correspondences. 6 . The method according to claim 2 , wherein When T unit , ref = 7.5 Δ f 2 · τ and N 2 =2048·ρT unit,ref is duration of the reference time unit, Δƒ 2 is the second subcarrier spacing, N 2 is a length of a symbol corresponding to the second subcarrier spacing, both τ and ρ are greater than 0, and the plurality of correspondences comprise at least one of the following: when K=2, M1=2τ, and M2=6τ, CP lengths of the first symbol and the second symbol are 128ρ; when K=2, M1=3τ, and M2=5τ, CP lengths of the first symbol and the second symbol are 256ρ; when K=2, M1=4τ, and M2=4τ, CP lengths of the first symbol and the second symbol are 384ρ; when K=4, M1=2τ, and M2=6τ, CP lengths of the first symbol and the second symbol are 256ρ; when K=4, M1=5τ, and M2=5τ, CP lengths of the first symbol and the second symbol are 256ρ; when K=8, M1=2τ, and M2=6τ, CP lengths of the first symbol and the second symbol are 320ρ; when K=8, M1=3τ, and M2=6τ, CP lengths of the first symbol and the second symbol are 256ρ; or when K=8, M1=6τ, and M2=6τ, CP lengths of the first symbol and the second symbol are 128ρ. 7 . The method according to claim 2 , wherein when T unit , ref = 7.5 Δ f 2 · τ and N 2 =2048·ρ, T unit,ref is duration of the reference time unit, Δƒ 2 is the second subcarrier spacing, N 2 is a length of a symbol corresponding to the second subcarrier spacing, both τ and ρ are greater than 0, and the plurality of correspondences comprise at least one of the following: when K=2, M1=4τ, and M2=5τ, the CP length of the first symbol is 128ρ and the CP length of the second symbol is 112ρ; when K=4, M1=3τ, and M2=6τ, the CP length of the first symbol is 256ρ and the CP length of the second symbol is 160ρ; when K=4, M1=3τ, and M2=6τ, the CP length of the first symbol is 192ρ and the CP length of the second symbol is 168ρ; when K=4, M1=4τ, and M2=6τ, the CP length of the first symbol is 160ρ and the CP length of the second symbol is 96ρ; when K=4, M1=4τ, and M2=6τ, the CP length of the first symbol is 124ρ and the CP length of the second symbol is 100ρ; when K=8, M1=4τ, and M2=6τ, the CP length of the first symbol is 248ρ and the CP length of the second symbol is 200ρ; and when K=8, M1=4τ, and M2=6τ, the CP length of the first symbol is 212ρ and the CP length of the second symbol is 204ρ. 8 . The method according to claim 2 , wherein when T unit , ref = 7.5 Δ f 2 · τ and N 2 =2048·ρ, T unit,ref is duration of the reference time unit, Δƒ 2 is the second subcarrier spacing, N 2 is a length of a symbol corresponding to the second subcarrier spacing, both τ and ρ are greater than 0, and the plurality of correspondences comprise at least one of the following: when K=2, M1=2τ, and M2=6τ, the CP length of the first symbol is 176ρ and the CP length of the second symbol is 112ρ; when K=2, M1=2τ, and M2=6τ, the CP length of the first symbol is 152ρ and the CP length of the second symbol is 120ρ; when K=2, M1=4τ, and M2=5τ, the CP length of the first symbol is 136ρ and the CP length of the second symbol is 96ρ; when K=2, M1=4τ, and M2=5τ, the CP length of the first symbol is 116ρ and the CP length of the second symbol is 112ρ; when K=4, M1=3τ, and M2=6τ, the CP length of the first symbol is 192ρ and the CP length of the second symbol is 160ρ; when K=4, M1=4τ, and M2=6τ, the CP length of the first symbol is 112ρ and the CP length of the second symbol is 96ρ; when K=8, M1=4τ, and M2=6τ, the CP length of the first symbol is 224ρ and the CP length of the second symbol is 192ρ; or when K=8, M1=6τ, and M2=6τ, the CP length of the first symbol is 144ρ and the CP length of the second symbol is 112ρ. 9 . The method according to claim 1 , further comprising: sending the data based on the first subcarrier s
Numerology, i.e. varying one or more of symbol duration, subcarrier spacing, Fourier transform size, sampling rate or down-clocking (allocating sub-channels of the transmission path H04L5/003) · CPC title
Allocation of pilot signals, i.e. of signals known to the receiver (allocation of control signalling H04L5/0053; use of control signalling H04L5/0091) · CPC title
Cyclic extensions · CPC title
Indication of how the channel is divided · CPC title
Acquisition of further OFDM parameters, e.g. bandwidth, subcarrier spacing, or guard interval length · CPC title
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