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Visual Speech Recognition Using Weighted Dynamic Time Warping

Authors
Lee, KyungsunKeum, MinseokHan, David K.Ko, Hanseok
Issue Date
Jul-2015
Publisher
IEICE-INST ELECTRONICS INFORMATION COMMUNICATIONS ENG
Keywords
visual speech recognition; lip reading
Citation
IEICE TRANSACTIONS ON INFORMATION AND SYSTEMS, v.E98D, no.7, pp.1430 - 1433
Indexed
SCIE
SCOPUS
Journal Title
IEICE TRANSACTIONS ON INFORMATION AND SYSTEMS
Volume
E98D
Number
7
Start Page
1430
End Page
1433
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/93208
DOI
10.1587/transinf.2015EDL8002
ISSN
1745-1361
Abstract
It is unclear whether Hidden Markov Model (HMM) or Dynamic Time Warping (DTW) mapping is more appropriate for visual speech recognition when only small data samples are available. In this letter, the two approaches are compared in terms of sensitivity to the amount of training samples and computing time with the objective of determining the tipping point. The limited training data problem is addressed by exploiting a straightforward template matching via weighted-DTW. The proposed framework is a refined DTW by adjusting the warping paths with judicially injected weights to ensure a smooth diagonal path for accurate alignment without added computational load. The proposed WDTW is evaluated on three databases (two in the public domain and one developed in-house) for visual recognition performance. Subsequent experiments indicate that the proposed WDTW significantly enhances the recognition rate compared to the DTW and HMM based algorithms, especially under limited data samples.
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