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Ofer Schwartz

6 accepted papers

2023

RNN-Based Step-Size Estimation for the RLS Algorithm with Application to Acoustic Echo Cancellation

ICASSP 2023accepted

In this paper, we propose an recurrent neural network (RNN) based step-size estimation for the recursive least squares (RLS) algorithm with application to acoustic echo cancellation (AEC). RLS-based AEC (as compared to the least mean square (LMS) based) has a better convergence rate and less distort…

Cited by 0SourceScholar
2022

Low Resources Online Single-Microphone Speech Enhancement with Harmonic Emphasis

ICASSP 2022accepted

In this paper, we propose a deep neural network (DNN)-based single-microphone speech enhancement algorithm characterized by a short latency and low computational resources. Many speech enhancement algorithms suffer from low noise reduction capabilities between pitch harmonics, and in severe cases, t…

Cited by 0SourceScholar
2020

Low Complexity NLMS for Multiple Loudspeaker Acoustic ECHO Canceller Using Relative Loudspeaker Transfer Functions

ICASSP 2020accepted

Speech signals captured by a microphone mounted to a smart soundbar or speaker are inherently contaminated by echos. Modern smart devices are usually characterized by low computational capabilities and low memory resources; in these cases, a low-complexity acoustic echo canceller (AEC) may be prefer…

Cited by 0SourceScholar
2019

An Online Multiple-speaker DOA Tracking Using the CappÉ-Moulines Recursive Expectation-maximization Algorithm

ICASSP 2019accepted

In this paper, we present a multiple-speaker direction of arrival (DOA) tracking algorithm with a microphone array that utilizes the recursive EM (REM) algorithm proposed by Cappé and Moulines. In our model, all sources can be located in one of a predefined set of candidate DOAs. Accordingly, the re…

Cited by 0SourceScholar
2016

Joint maximum likelihood estimation of late reverberant and speech power spectral density in noisy environments

ICASSP 2016accepted

An estimate of the power spectral density (PSD) of the late reverberation is often required by dereverberation algorithms. In this work, we derive a novel multichannel maximum likelihood (ML) estimator for the PSD of the reverberation that can be applied in noisy environments. Since the anechoic spe…

Cited by 0SourceScholar
2015

Nested generalized sidelobe canceller for joint dereverberation and noise reduction

ICASSP 2015accepted

Speech signal is often contaminated by both room reverberation and ambient noise. In this contribution, we propose a nested generalized sidelobe canceller (GSC) beamforming structure, comprising an inner and an outer GSC beamformers (BFs), that decouple the speech dereverberation and the noise reduc…

Cited by 0SourceScholar