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BUT Systems and Analyses for the ASVspoof 5 Challenge

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This paper describes the BUT submitted systems for the ASVspoof 5 challenge, along with analyses. For the conventional deepfake detection task, we use ResNet18 and self-supervised models for the closed and open conditions, respectively. In addition, we analyze and visualize different combinations of speaker information and spoofing information as label schemes for training. For spoofing-robust automatic speaker verification (SASV), we introduce effective priors and propose using logistic regression to jointly train affine transformations of the countermeasure scores and the automatic speaker verification scores in such a way that the SASV LLR is optimized.

Johan Rohdin, Lin Zhang, Old\v{r}ich Plchot, Vojt\v{e}ch Stan\v{e}k, David Mihola, Junyi Peng, Themos Stafylakis, Dmitriy Beveraki, Anna Silnova, Jan Brukner, Luk\'a\v{s} Burget• 2024

Related benchmarks

TaskDatasetResultRank
Audio Spoof DetectionPartialSpoof (PS) (test)
EER6.921
22
Fake DetectionPartialSpoof (dev)
EER4.196
12
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