Improving Plda Speaker Verification With Limited Development Data
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IEEE
Abstract
This paper analyses the probabilistic linear discriminant analysis
(PLDA) speaker verification approach with limited development
data. This paper investigates the use of the median
as the central tendency of a speaker’s i-vector representation,
and the effectiveness of weighted discriminative
techniques on the performance of state-of-the-art lengthnormalised
Gaussian PLDA (GPLDA) speaker verification
systems. The analysis within shows that the median (using
a median fisher discriminator (MFD)) provides a better
representation of a speaker when the number of representative
i-vectors available during development is reduced, and
that further, usage of the pair-wise weighting approach in
weighted LDA and weighted MFD provides further improvement
in limited development conditions. Best performance is
obtained using a weighted MFD approach, which shows over
10% improvement in EER over the baseline GPLDA system
on mismatched and interview-interview conditions.
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Kanagasundaram, A., Dean, D., & Sridharan, S. (2014, May). Improving PLDA speaker verification with limited development data. In 2014 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP) (pp. 1665-1669). IEEE.