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Kiwano: A Cutting-Edge Open-Source Toolkit for Speaker Verification

About

In this paper, we present Kiwano, an open-source toolkit designed to advance research and evaluation for speaker verification. Kiwano provides a lightweight yet extensible framework built on PyTorch, offering standardized recipes, pretrained models, and integration of several widely used speaker verification architectures. The toolkit emphasizes reproducibility, by delivering transparent training pipelines, unified evaluation protocols and ready-to-use baselines across multiple corpora. Beyond conventional training and inference, Kiwano includes tools for benchmarking, experiment tracking and rapid prototyping of new architectures. To foster community adoption, the toolkit is distributed under the Apache 2.0 license, accompanied by comprehensive documentation and reproducible experiments. By lowering entry barriers and standardizing evaluation practices, Kiwano contributes a valuable resource for both academic research and applied development in speaker verification. The toolkit is publicly available at: https://github.com/kiwano-toolkit/kiwano/

Mickael Rouvier, Pierre Michel Bousquet• 2026

Related benchmarks

TaskDatasetResultRank
Speaker VerificationVoxCeleb1 (Vox1-O)
EER34
160
Speaker VerificationVoxCeleb1 (Vox1-H)
EER1.13
103
Speaker VerificationVoxCeleb-E
EER64
95
Speaker VerificationVoxCeleb1 hard (H)
EER0.92
21
Speaker VerificationVoxCeleb1 extended
EER54
21
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Other info

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