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Incremental Transfer Learning in Two-pass Information Bottleneck Based Speaker Diarization System for Meetings
, , Nauman Dawalatabad, Srikanth Madikeri
Published in Institute of Electrical and Electronics Engineers Inc.
2019
Volume: 2019-May
   
Pages: 6291 - 6295
Abstract
The two-pass information bottleneck (TPIB) based speaker diarization system operates independently on different conversational recordings. TPIB system does not consider previously learned speaker discriminative information while di-arizing new conversations. Hence, the real time factor (RTF) of TPIB system is high owing to the training time required for the artificial neural network (ANN). This paper attempts to improve the RTF of the TPIB system using an incremental transfer learning approach where the parameters learned by the ANN from other conversations are updated using current conversation rather than learning parameters from scratch. This reduces the RTF significantly. The effectiveness of the proposed approach compared to the baseline IB and the TPIB systems is demonstrated on standard NIST and AMI conversational meeting datasets. With a minor degradation in performance, the proposed system shows a significant improvement of 33.07% and 24.45% in RTF with respect to TPIB system on the NIST RT-04Eval and AMI-1 datasets, respectively. © 2019 IEEE.
About the journal
JournalData powered by TypesetICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings
PublisherData powered by TypesetInstitute of Electrical and Electronics Engineers Inc.
ISSN15206149
Open AccessYes
Concepts (12)
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    Audio signal processing
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    Data communication systems
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    Neural networks
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    Speech communication
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    INFORMATION BOTTLENECK
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    Learning parameters
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    Real time
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    SPEAKER DIARIZATION
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    Training time
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    Transfer learning
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    UPDATED USING
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    Learning systems