Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays

We address the problem of localizing and tracking alternating (moving or stationary) talkers using microphone arrays in a room environment. One of the main challenges is the frequent (and possibly abrupt) change of talker positions which requires the algorithm to capture the active talker rapidly. I...

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Main Authors: Goh, Shu Ting, Wu, Kai, Reju, Vaninirappuputhenpurayil Gopalan, Khong, Andy Wai Hoong
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2017
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Online Access:https://hdl.handle.net/10356/81851
http://hdl.handle.net/10220/42286
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-818512020-03-07T13:57:21Z Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays Goh, Shu Ting Wu, Kai Reju, Vaninirappuputhenpurayil Gopalan Khong, Andy Wai Hoong School of Electrical and Electronic Engineering Talker localization and tracking Microphone arrays We address the problem of localizing and tracking alternating (moving or stationary) talkers using microphone arrays in a room environment. One of the main challenges is the frequent (and possibly abrupt) change of talker positions which requires the algorithm to capture the active talker rapidly. In addition, the presence of interference, background noise and room reverberation degrades the tracking performance. We propose a new algorithm that jointly exploits the advantages of the particle filter (PF) and particle swarm intelligence. The PF is used as a general tracking framework which incorporates a proposed alternating source-dynamic model for recursive estimation of talker position. Unlike the conventional PF where particles operate independently in the particle sampling stage, the use of swarm intelligence allows particles to interact with each other, thereby improving convergence toward the active talker location. In addition, the memory mechanism in swarm intelligence allows particles to remain at their previous best-fit state estimate when signals are corrupted by interference, noise and/or reverberation. Simulations and experiments were conducted to demonstrate the effectiveness of the proposed algorithm. Accepted version 2017-04-19T04:32:59Z 2019-12-06T14:41:33Z 2017-04-19T04:32:59Z 2019-12-06T14:41:33Z 2017 2016 Journal Article Wu, K., Reju, V. G., Khong, A. W. H., & Goh, S. T. (2017). Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays. IEEE/ACM Transactions on Audio, Speech and Language Processing, 25(6), 1384-1397. 2329-9290 https://hdl.handle.net/10356/81851 http://hdl.handle.net/10220/42286 10.1109/TASLP.2017.2693566 197817 en IEEE/ACM Transactions on Audio, Speech and Language Processing © 2016 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works. The published version is available at: [https://doi.org/10.1109/TASLP.2017.2693566]. 14 p. application/pdf
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Talker localization and tracking
Microphone arrays
spellingShingle Talker localization and tracking
Microphone arrays
Goh, Shu Ting
Wu, Kai
Reju, Vaninirappuputhenpurayil Gopalan
Khong, Andy Wai Hoong
Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
description We address the problem of localizing and tracking alternating (moving or stationary) talkers using microphone arrays in a room environment. One of the main challenges is the frequent (and possibly abrupt) change of talker positions which requires the algorithm to capture the active talker rapidly. In addition, the presence of interference, background noise and room reverberation degrades the tracking performance. We propose a new algorithm that jointly exploits the advantages of the particle filter (PF) and particle swarm intelligence. The PF is used as a general tracking framework which incorporates a proposed alternating source-dynamic model for recursive estimation of talker position. Unlike the conventional PF where particles operate independently in the particle sampling stage, the use of swarm intelligence allows particles to interact with each other, thereby improving convergence toward the active talker location. In addition, the memory mechanism in swarm intelligence allows particles to remain at their previous best-fit state estimate when signals are corrupted by interference, noise and/or reverberation. Simulations and experiments were conducted to demonstrate the effectiveness of the proposed algorithm.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Goh, Shu Ting
Wu, Kai
Reju, Vaninirappuputhenpurayil Gopalan
Khong, Andy Wai Hoong
format Article
author Goh, Shu Ting
Wu, Kai
Reju, Vaninirappuputhenpurayil Gopalan
Khong, Andy Wai Hoong
author_sort Goh, Shu Ting
title Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
title_short Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
title_full Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
title_fullStr Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
title_full_unstemmed Swarm Intelligence Based Particle Filter for Alternating Talker Localization and Tracking Using Microphone Arrays
title_sort swarm intelligence based particle filter for alternating talker localization and tracking using microphone arrays
publishDate 2017
url https://hdl.handle.net/10356/81851
http://hdl.handle.net/10220/42286
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