IP Library Granted Patent US 12,603,749
Granted Patent B1
US 12,603,749 · App. 18/462,632 · Granted Apr 14, 2026

System and method for in-band full-duplex waveform coexistence for joint communication and sensing (JCAS)

Inventors: Huseyin Arslan (Tampa, FL); Joshua Karl Thomas Ranstrom (Bradenton, FL); Mehmet Mert Sahin (Tampa, FL)
Assignee: University of South Florida
H04L5/14G01S7/006
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Quick Facts
Patent No.
US 12,603,749
App. No.
18/462,632
Granted
Apr 14, 2026
Kind
B1
Abstract

In various embodiments, the present invention provides joint communication and sensing (JCAS) for in-band full duplex (IBFD) communication, wherein the transmitting device performs transmission of superimposed data and radar signals while simultaneously receiving a data signal. A self-interference cancellation process is additional implemented either in parallel with a conventional SI cancellation scheme or in series with a SI cancellation stage that handles multipath components.

Claims (38)

1 . A method for in-band full duplex (IBFD) radio communication, the method comprising:

transmitting a superimposed communication and sensing signal from a transceiver;

receiving, from another transceiver, a communication signal at the transceiver while substantially simultaneously transmitting the superimposed communication and sensing signal from the transceiver, wherein transmitting the superimposed communication and sensing signal and receiving the communication signal from the other transceiver utilize the same time and frequency resources of the transceiver;

receiving a reflected superimposed communication and sensing signal at the transceiver;

performing waveform separation of the reflected superimposed communication and sensing signal at the transceiver to extract;

a sensing waveform and a communication waveform from the reflected superimposed communication and sensing signal; and

a communication waveform from the communication signal received from the other transceiver.

2 . The method of claim 1 , wherein transmitting the superimposed communication and sensing signal and receiving the communication signal from another transceiver utilize a same center frequency.

3 . The method of claim 1 , further comprising superimposing the communication signal and the sensing signal at the transceiver to generate the superimposed communication and sensing signal.

4 . The method of claim 1 , further comprising performing self-interference (SI) cancellation of the reflected superimposed communication and sensing signal to suppress only direct SI while preserving multipath SI.

5 . The method of claim 1 , further comprising

performing self-interference (SI) cancellation of the reflected superimposed communication and sensing signal at the transceiver.

6 . The method of claim 5 , wherein performing SI cancellation of the reflected communication and sensing signal at the transceiver comprises:

performing direct SI cancellation; and

performing multipath SI cancellation.

7 . The method of claim 6 , wherein performing direct SI cancellation and performing multipath SI cancellation are implemented in parallel.

8 . The method of claim 6 , wherein performing direct SI cancellation and performing multipath SI cancellation are implemented in series.

9 . A method for in-band full duplex (IBFD) radio communication, the method comprising:

generating a superimposed communication and sensing signal at a transceiver;

transmitting the superimposed communication and sensing signal from the transceiver;

receiving a communication signal at the transceiver while substantially simultaneously transmitting the superimposed communication and sensing signal from the transceiver;

receiving a reflected superimposed communication and sensing signal at the transceiver; and

performing waveform separation of the transmitted superimposed communication and sensing signal at the transceiver.

10 . The method of claim 9 , further comprising:

performing self-interference (SI) cancellation of the reflected communication signal at the transceiver.

11 . An in-band full duplex (IBFD) transceiver comprising:

a transmitter comprising circuitry to transmit a superimposed communication and sensing signal;

a receiver comprising circuitry to receive a communication signal, from another transceiver, while substantially simultaneously transmitting the superimposed communication and sensing signal from the transmitter, wherein the transmitter and the receiver utilize the same time and frequency resources of the transceiver;

the receiver circuitry further to receive a reflected superimposed communication and sensing signal and to perform waveform separation of the reflected superimposed communication and sensing signal to extract;

a sensing waveform and a communication waveform from the reflected superimposed communication and sensing signal; and

a communication waveform from the communication signal received from the other transceiver.

12 . The transceiver of claim 11 , wherein the transmitter and the receiver utilize a same center frequency.

13 . The transceiver of claim 11 , wherein the transmitter comprises circuitry to superimpose the communication signal and the sensing signal at the transceiver to generate the superimposed communication and sensing signal.

14 . The transceiver of claim 11 , wherein the receiver comprises circuitry to perform self-interference (SI) cancellation of the reflected superimposed communication and sensing signal to suppress only direct SI while preserving multipath SI.

15 . The transceiver of claim 11 , wherein the receiver comprises circuitry to perform self-interference (SI) cancellation of the reflected communication and sensing signal.

16 . The transceiver of claim 15 , wherein SI cancellation of the reflected communication and sensing signal is performed using direct SI cancellation and multipath SI cancellation.

17 . The transceiver of claim 16 , wherein the direct SI cancellation and the multipath SI cancellation are implemented in parallel.

18 . The transceiver of claim 16 , wherein the direct SI cancellation and the multipath SI cancellation are implemented in series.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2023
From: ARSLAN, HUSEYIN; RANSTROM, JOSHUA KARL THOMAS; SAHIN, MEHMET MERT
To: UNIVERSITY OF SOUTH FLORIDA
Reel/Frame 064903/0223 →
Continuity (1)
Provisional Application 63404271 · Sep 7, 2022
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