Papers › XLSR-Mamba: A Dual-Column Bidirectional State Space Model for Spoofing Attack Detection

XLSR-Mamba: A Dual-Column Bidirectional State Space Model for Spoofing Attack Detection

15 Nov 2024arXiv:2411.10027archive 2025-07-28

Yang Xiao, Rohan Kumar Das

Transformers and their variants have achieved great success in speech processing. However, their multi-head self-attention mechanism is computationally expensive. Therefore, one novel selective state space model, Mamba, has been proposed as an alternative. Building on its success in automatic speech recognition, we apply Mamba for spoofing attack detection. Mamba is well-suited for this task as it can capture the artifacts in spoofed speech signals by handling long-length sequences. However, Mamba's performance may suffer when it is trained with limited labeled data. To mitigate this, we propose combining a new structure of Mamba based on a dual-column architecture with self-supervised learning, using the pre-trained wav2vec 2.0 model. The experiments show that our proposed approach achieves competitive results and faster inference on the ASVspoof 2021 LA and DF datasets, and on the more challenging In-the-Wild dataset, it emerges as the strongest candidate for spoofing attack detection. The code has been publicly released in https://github.com/swagshaw/XLSR-Mamba.

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Code

swagshaw/xlsr-mamba officialmentioned in papermentioned on GitHubpytorch report

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Tasks

Audio Deepfake DetectionAutomatic Speech RecognitionMambaSelf-Supervised LearningSpeech Recognitionspeech-recognition

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Audio Deepfake Detection ASVspoof 2021 XLSR-Mamba 21DF EER 1.88 #1 of 8 Archive leaderboard report
Audio Deepfake Detection ASVspoof 2021 XLSR-Mamba 21LA EER 0.93 #1 of 8 Archive leaderboard report

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Methods

Mamba

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