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Jean-François Chamberland

5 accepted papers

2024

Coding for the Unsourced B-Channel with Erasures: Enhancing the Linked Loop Code

ICASSP 2024accepted

In [1], the linked loop code (LLC) is presented as a promising code for the unsourced A-channel with erasures (UACE). The UACE is an unsourced multiple access channel in which active users’ transmitted symbols are erased with a given probability and the channel output is obtained as the union of the…

Cited by 0SourceScholar
2021

A Hybrid Approach to Coded Compressed Sensing Where Coupling Takes Place Via the Outer Code

ICASSP 2021accepted

This article seeks to advance coded compressed sensing (CCS) as a practical scheme for unsourced random access. The CCS algorithm features a concatenated structure where an inner code is tasked with support recovery and an outer code conducts message disambiguation. Recently, the CCS scheme was impr…

Cited by 0SourceScholar
2020

An Enhanced Decoding Algorithm for Coded Compressed Sensing

ICASSP 2020accepted

Coded compressed sensing is an algorithmic framework tailored to sparse recovery in very large dimensional spaces. This framework is originally envisioned for the unsourced multiple access channel, a wireless paradigm attuned to machine-type communications. Coded compressed sensing uses a divide-and…

Cited by 0SourceScholar
2019

Asynchronous Neighbor Discovery Using Coupled Compressive Sensing

ICASSP 2019accepted

The neighbor discovery paradigm finds wide application in Internet of Things networks, where the number of active devices is orders of magnitude smaller than the total device population. Designing low-complexity schemes for asynchronous neighbor discovery has recently gained significant attention fr…

Cited by 0SourceScholar
2018

A Coupled Compressive Sensing Scheme for Unsourced Multiple Access

ICASSP 2018accepted

This article introduces a novel paradigm for the unsourced multiple-access communication problem. This divide-and-conquer approach leverages recent advances in compressive sensing and forward error correction to produce a computationally efficient algorithm. Within the proposed framework, every acti…

Cited by 0SourceScholar