IP Library › Granted Patent US 12,238,766
Granted Patent B2
US 12,238,766 · App. 17/787,301 · Granted Feb 25, 2025

Devices and methods for low power adaptive channel sensing

Inventors: Manuj Mukherjee (Paris, FR); Aslan Tchamkerten (Verrieres le Buisson, FR); Chadi Jabbour (Paris, FR)
Assignee: INSTITUT MINES TELECOM
H04W74/0808
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Quick Facts
Patent No.
US 12,238,766
App. No.
17/787,301
Granted
Feb 25, 2025
Kind
B2
Abstract

A channel sensing device for detecting preamble transmission by observing a channel sensing sequence of a length smaller than or equal to a maximum given length, the channel sensing device being implemented in a receiver, the channel sensing sequence includes one or more samples. The channel sensing device is configured to: receive input parameters comprising a target reliability metric, a receiver noise profile, the maximum given length, a received power, and a probability of there being a preamble; determine channel sensing parameters given the input parameters and according to the inimization of the average energy consumption per given length, the channel sensing parameters comprising a number of channel sensing phases, and a number of samples, a receiver power consumption value, and a preamble detection threshold corresponding to each of the channel sensing phases; perform a first channel sensing phase comprising: observing a batch of samples of the one or more samples by consuming the receiver power consumption value corresponding to the first phase channel sensing phase; applying a hypothesis test comprising the comparison of a value derived from the observed samples with the preamble detection threshold corresponding to the first channel sensing phase; deciding on the presence of a preamble or on performing a subsequent channel sensing phase based on the comparison and/or whether the number of channel sensing phases is greater than one; a subsequent channel sensing phase comprising: observing a batch of samples by consuming the receiver power consumption value corresponding to the channel sensing phase; applying a hypothesis test comprising the comparison of a value derived from all of the so far observed samples with the preamble detection threshold; deciding on the presence of a preamble or on performing a subsequent channel sensing phase based on the comparison and/or on a condition related to a number of performed channel sensing phases compared with the number of channel sensing phases.

Claims (34)

1. A channel sensing device, implemented in a wireless receiver in a wireless system, for detecting a presence of a preamble transmitted by a wireless transmitter over a wireless transmission channel in said wireless system, the channel sensing device being configured to detect the presence of the preamble by observing a channel sensing sequence of a given length smaller than or equal to a maximum given length, said channel sensing sequence comprising one or more samples, wherein the channel sensing device:

receives input parameters comprising a target reliability metric, a receiver noise profile, said maximum given length, a received power, and a probability of a presence of a preamble;

determines channel sensing parameters given said input parameters and according to the minimization of the average energy consumption per given length, said channel sensing parameters comprising a number of channel sensing phases, and a number of samples, a receiver power consumption value, and a preamble detection threshold corresponding to each of said channel sensing phases;

performs a first channel sensing phase comprising:

observing a batch of samples of said one or more samples by consuming the receiver power consumption value corresponding to the first channel sensing phase, said batch of samples comprising a number of samples equal to the number of samples corresponding to the first channel sensing phase;

applying a hypothesis test comprising the comparison of a value derived from the observed samples with the preamble detection threshold corresponding to the first channel sensing phase;

deciding on the presence of a preamble or on performing a subsequent channel sensing phase depending on said comparison and/or whether the number of channel sensing phases is greater than one; and

a subsequent channel sensing phase comprising:

observing a batch of samples of said one or more samples by consuming the receiver power consumption value corresponding to said channel sensing phase, said batch of samples comprising a number of samples equal to the number of samples corresponding to said channel sensing phase;

applying a hypothesis test comprising the comparison of a value derived from all of the so far observed samples with the preamble detection threshold corresponding to said channel sensing phase;

deciding on the presence of a preamble or on performing a subsequent channel sensing phase based on said comparison and/or on a condition related to a number of performed channel sensing phases compared with said number of channel sensing phases.

2. The channel sensing device of claim 1 , wherein a decision performed at a channel sensing phase comprises:

deciding against the presence of a preamble if the value determined at said channel sensing phase is smaller than or equal to the preamble detection threshold corresponding to said channel sensing phase;

declaring the presence of a preamble if said value is larger than said preamble detection threshold and the number of the performed channel sensing phases is equal to the number of channel sensing phases;

deciding to perform a channel sensing phase if said value is larger than said preamble detection threshold and the number of the performed channel sensing phases is lower than said number of channel sensing phases.

3. The channel sensing device of claim 1 , wherein said reliability metric is chosen in a group comprising a probability of false alarm and a probability of missed detection.

4. The channel sensing device of claim 1 , wherein the channel sensing device is configured to previously determine said receiver noise profile as a non-negative and non-increasing function relating the receiver power consumption with the variance of the receiver noise.

5. The channel sensing device of claim 4 , wherein said variance of the receiver noise is tunable.

6. The channel sensing device of claim 1 , wherein the channel sensing device is configured to previously determine said probability depending on an application of said receiver.

7. The channel sensing device of claim 1 , wherein said hypothesis test is a likelihood test, said value being a log-likelihood ratio value.

8. The channel sensing device of claim 1 , wherein the channel sensing device is configured to previously determine said maximum given length depending on an application of said channel sensing device.

9. A wireless receiver comprising a wake-up receiver for waking-up a component in said wireless device, wherein the channel sensing device according to claim 1 is implemented as part of the wake-up receiver.

10. The wake-up receiver of claim 9 , wherein said component is chosen in a group comprising a main receiver, an actuator, and a transmitter.

11. A channel sensing method for detecting a presence of transmitted preamble by observing a channel sensing sequence of a length smaller than or equal to a maximum given length, said channel sensing method being implemented in a receiver, said channel sensing sequence comprising one or more samples, wherein the channel sensing method comprises the steps consisting in:

receiving input parameters comprising a target reliability metric, a receiver noise profile, said maximum given length, a received power, and a probability of a presence of a preamble;

determining channel sensing parameters given said input parameters and according to the minimization of the average energy consumption per given length, said channel sensing parameters comprising a number of channel sensing phases, and a number of samples, a receiver power consumption value, and a preamble detection threshold corresponding to each of said channel sensing phases;

performing a first channel sensing phase comprising:

observing a batch of samples of said one or more samples by consuming the receiver power consumption value corresponding to said first channel sensing phase, said batch of samples comprising a number of samples equal to the number of samples corresponding to the first channel sensing phase;

applying a hypothesis test comprising the comparison of a value derived from the observed samples with the preamble detection threshold corresponding to the first channel sensing phase;

deciding on the presence of a preamble or on performing a subsequent channel sensing phase based on said comparison and/or whether the number of channel sensing phases is greater than one;

a subsequent channel sensing phase comprising:

observing a batch of samples of said one or more samples by consuming the receiver power consumption value corresponding to said channel sensing phase, said batch of samples comprising a number of samples equal to the number of samples corresponding to said channel sensing phase;

applying a hypothesis test comprising the comparison of a value derived from all of the so far observed samples with the preamble detection threshold corresponding to said channel sensing phase;

deciding on the presence of a preamble or on performing a subsequent channel sensing phase based on said comparison and/or on a condition related to a number of performed channel sensing phases compared with said number of channel sensing phases.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE CORRECT THE THIRD INVENTOR'S LAST NAME FROM JABOUR TO JABBOUR PREVIOUSLY RECORDED AT REEL: 60790 FRAME: 740. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Aug 19, 2024
From: MUKHERJEE, MANUJ; TCHAMKERTEN, ASLAN; JABBOUR, CHADI
To: INSTITUT MINES TELECOM
Reel/Frame 068763/0465 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 12, 2022
From: MUKHERJEE, MANUJ; TCHAMKERTEN, ASLAN; JABOUR, CHADI
To: INSTITUT MINES TELECOM
Reel/Frame 060790/0740 →
Priority Claims (1)
EP 19306766 · Dec 24, 2019 · regional
Continuity (1)
Related Publication 20230030851A1 · Feb 2, 2023
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