DocumentCode :
177993
Title :
Motion history images for online speaker/signer diarization
Author :
Gebre, Binyam Gebrekidan ; Wittenburg, Peter ; Heskes, Tom ; Drude, Sebastian
fYear :
2014
fDate :
4-9 May 2014
Firstpage :
1537
Lastpage :
1541
Abstract :
We present a solution to the problem of online speaker/signer diarization - the task of determining who spoke/signed when?. Our solution is based on the idea that gestural activity (hands and body movement) is highly correlated with uttering activity. This correlation is necessarily true for sign languages and mostly true for spoken languages. The novel part of our solution is the use of motion history images (MHI) as a likelihood measure for probabilistically detecting uttering activities. MHI is an efficient representation of where and how motion occurred for a fixed period of time. We conducted experiments on 4.9 hours of the AMI meeting data and 1.4 hours of sign language dataset (Kata Kolok data). The best performance obtained is 15.70% for sign language and 31.90% for spoken language (measurements are in DER). These results show that our solution is applicable in real-world applications like video conferences and information retrieval.
Keywords :
image motion analysis; image representation; maximum likelihood estimation; speaker recognition; AMI meeting data; Kata Kolok data; MHI; gestural activity; information retrieval; likelihood measure; motion history images; online speaker-signer diarization; sign language dataset; sign languages; spoken languages; uttering activity; video conferences; Assistive technology; Conferences; Density estimation robust algorithm; Gesture recognition; History; Speech; Speech processing; Speaker diarization; motion energy images; motion history images; signer diarization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech and Signal Processing (ICASSP), 2014 IEEE International Conference on
Conference_Location :
Florence
Type :
conf
DOI :
10.1109/ICASSP.2014.6853855
Filename :
6853855
Link To Document :
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