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ShaneRun System Description to VoxCeleb Speaker Recognition Challenge 2020

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arxiv 2011.01518 v1 pith:JW2K5WOD submitted 2020-11-03 cs.SD cs.LGeess.AS

ShaneRun System Description to VoxCeleb Speaker Recognition Challenge 2020

classification cs.SD cs.LGeess.AS
keywords speakerchallengedistanceencodermindcfrecognitionshanerunsystem
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In this report, we describe the submission of ShaneRun's team to the VoxCeleb Speaker Recognition Challenge (VoxSRC) 2020. We use ResNet-34 as encoder to extract the speaker embeddings, which is referenced from the open-source voxceleb-trainer. We also provide a simple method to implement optimum fusion using t-SNE normalized distance of testing utterance pairs instead of original negative Euclidean distance from the encoder. The final submitted system got 0.3098 minDCF and 5.076 % ERR for Fixed data track, which outperformed the baseline by 1.3 % minDCF and 2.2 % ERR respectively.

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