IP Library Patent Application 18757085
Patent Application
App. No. 18/757,085

MULTIPLE ACCESS USING ORTHOGONAL TIME FREQUENCY SPACE MODULATION

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Patent No.
US None
App. No.
18/757,085
Abstract

An Orthogonal Time Frequency Space Modulation (OTFS) modulation scheme achieving multiple access by multiplexing multiple signals at the transmitter-side performs allocation of transmission resources to a first signal and a second signal, combining and converting to a transmission format via OTFS modulation and transmitting the signal over a communication channel. At the receiver, multiplexed signals are recovered using orthogonality property of the basis functions used for the multiplexing at the transmitter.

Claims (32)

1 . A signal transmission method, implemented at a transmitter-side, comprising:

performing a logical mapping of transmission resources of a digital communication channel along a first two-dimensional resource plane represented by a first and a second orthogonal axes corresponding to a first transmission dimension and a second transmission dimension respectively;

allocating, to a first signal, a first group of transmission resources from the logical mapping for transmission;

transforming, using a first two-dimensional transform, the first signal having the first group of transmission resources to a corresponding transformed signal in a second two-dimensional resource plane represented by a third and a fourth orthogonal axes corresponding to a third transmission dimension and a fourth transmission dimension respectively;

converting the transformed signal to a formatted signal according to a transmission format of the communications channel; and

transmitting the formatted signal over the communications channel.

2 . The method of claim 1 , wherein the first two-dimensional resource plane comprises a delay-Doppler plane and wherein the second two-dimensional resource plane comprises a time-frequency plane.

3 . The method of claim 1 , wherein the converting the transformed signal to the formatted signal includes applying a multicarrier modulation scheme to the transformed signal.

4 . The method of claim 3 , wherein the multicarrier modulation scheme is an orthogonal frequency division multiplexing (OFDM) scheme.

5 . The method of claim 4 , wherein the transmission format comprises a Long Term Evolution (LTE) transmission format and wherein the OFDM scheme produces a signal compatible with the LTE transmission format.

6 . The method of claim 1 , further including:

allocating, to at least one additional second signal, a second group of resources from the logical mapping for transmission, wherein transmission resources used by the first signal and the second signal are non-overlapping in at least one of the first two-dimensional resource plane and the second two-dimensional resource plane.

7 . The method of claim 6 , wherein the first signal comprises a first information signal for a first user equipment and wherein the second signal comprises a second information signal for a second user equipment.

8 . The method of claim 1 , wherein the first signal comprises an information signal for a user equipment and the second signal comprises a reference signal.

9 . The method of claim 1 , wherein the first signal comprises a pilot signal.

10 . The method of claim 2 , wherein the two-dimensional delay-Doppler plane comprises a lattice with lattice points defined as (m/Δf, n/T), wherein 1/Δf is a maximum delay representable on the two-dimensional delay-Doppler plane, 1/T is a maximum Doppler representable on the two-dimensional delay-Doppler plane, and m and n are integers.

11 . A transmission apparatus comprising at least one processor and a memory, wherein the memory stores instructions that, upon execution by the at least one processor, cause the transmission apparatus to implement a method comprising:

performing a logical mapping of transmission resources of a digital communication channel along a first two-dimensional resource plane represented by a first and a second orthogonal axes corresponding to a first transmission dimension and a second transmission dimension respectively;

allocating, to a first signal, a first group of transmission resources from the logical mapping for transmission;

transforming, using a first two-dimensional transform, the first signal having the first group of transmission resources to a corresponding transformed signal in a second two-dimensional resource plane represented by a third and a fourth orthogonal axes corresponding to a third transmission dimension and a fourth transmission dimension respectively;

converting the transformed signal to a formatted signal according to a transmission format of the communications channel; and

transmitting the formatted signal over the communications channel.

12 . The transmission apparatus of claim 11 , wherein the first two-dimensional resource plane comprises a delay-Doppler plane and wherein the second two-dimensional resource plane comprises a time-frequency plane.

13 . The transmission apparatus of claim 11 , wherein the converting the transformed signal to the formatted signal includes applying a multicarrier modulation scheme to the transformed signal.

14 . The transmission apparatus of claim 13 , wherein the multicarrier modulation scheme is an orthogonal frequency division multiplexing (OFDM) scheme.

15 . The transmission apparatus of claim 14 , wherein the transmission format comprises a Long Term Evolution (LTE) transmission format and wherein the OFDM scheme produces a signal compatible with the LTE transmission format.

16 . The transmission apparatus of claim 11 , wherein the method further includes:

allocating, to at least one additional second signal, a second group of resources from the logical mapping for transmission, wherein transmission resources used by the first signal and the second signal are non-overlapping in at least one of the first two-dimensional resource plane and the second two-dimensional resource plane.

17 . The transmission apparatus of claim 16 , wherein the first signal comprises a first information signal for a first user equipment and wherein the second signal comprises a second information signal for a second user equipment.

18 . The transmission apparatus of claim 11 , wherein the first signal comprises an information signal for a user equipment and the second signal comprises a reference signal.

19 . The transmission apparatus of claim 11 , wherein the first signal comprises a pilot signal.

20 . The transmission apparatus of claim 12 , wherein the two-dimensional delay-Doppler plane comprises a lattice with lattice points defined as (m/Δf, n/T), wherein 1/Δf is a maximum delay representable on the two-dimensional delay-Doppler plane, 1/T is a maximum Doppler representable on the two-dimensional delay-Doppler plane, and m and n are integers.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2025
From: HADANI, RONNY; MONK, ANTON; RAKIB, SHLOMO SELIM; TSATSANIS, MICHAIL
To: COHERE TECHNOLOGIES, INC.
Reel/Frame 070185/0206 →