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Extending GCC-PHAT using Shift Equivariant Neural Networks

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arxiv 2208.04654 v1 pith:PNPT5GSV submitted 2022-08-09 eess.AS cs.LGcs.SD

classification eess.AScs.LGcs.SD
keywords gcc-phatneuralbeenconditionsdelayequivariantextendingguarantees
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Speaker localization using microphone arrays depends on accurate time delay estimation techniques. For decades, methods based on the generalized cross correlation with phase transform (GCC-PHAT) have been widely adopted for this purpose. Recently, the GCC-PHAT has also been used to provide input features to neural networks in order to remove the effects of noise and reverberation, but at the cost of losing theoretical guarantees in noise-free conditions. We propose a novel approach to extending the GCC-PHAT, where the received signals are filtered using a shift equivariant neural network that preserves the timing information contained in the signals. By extensive experiments we show that our model consistently reduces the error of the GCC-PHAT in adverse environments, with guarantees of exact time delay recovery in ideal conditions.

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Cited by 1 Pith paper

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  1. Efficient and Microphone-Fault-Tolerant 3D Sound Source Localization

    cs.SD 2025-05 reject novelty 5.0 of 10

    A masked-autoencoder SSL model with sparse cross-attention and pretrained audio embeddings reports the best localization error on LuViRA music3 and speech3 while also estimating faulty microphone positions.

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