172 results on '"Matrouf, Driss"'
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2. How to Leverage DNN-based speech enhancement for multi-channel speaker verification?
3. A bridge between features and evidence for binary attribute-driven perfect privacy
4. Adversarial Disentanglement of Speaker Representation for Attribute-Driven Privacy Preservation
5. Speech Pseudonymisation Assessment Using Voice Similarity Matrices
6. Data augmentation versus noise compensation for x- vector speaker recognition systems in noisy environments
7. ASVspoof 2019: A large-scale public database of synthesized, converted and replayed speech
8. Towards a unified assessment framework of speech pseudonymisation
9. Language Adaptation for Speaker Recognition Systems Using Contrastive Learning
10. LIA system description for NIST SRE 2016
11. ASVspoof 2019: A large-scale public database of synthesized, converted and replayed speech
12. Preserving privacy in speaker and speech characterisation
13. Language Adaptation for Speaker Recognition Systems Using Contrastive Learning
14. Fast i-vector denoising using MAP estimation and a noise distributions database for robust speaker recognition
15. Hiding Speaker’s Sex in Speech Using Zero-Evidence Speaker Representation in an Analysis/Synthesis Pipeline
16. Speaker Matching
17. Session Effects on Speaker Modeling
18. Integration of Word and Semantic Features for Theme Identification in Telephone Conversations
19. Robust Speaker Recognition Using MAP Estimation of Additive Noise in i-vectors Space
20. Identify the Benefits of the Different Steps in an i-Vector Based Speaker Verification System
21. Joint Optimization of Diffusion Probabilistic-Based Multichannel Speech Enhancement with Far-Field Speaker Verification
22. The pretrained models of the paper 'Hiding speaker's sex in speech using zero-evidence speaker representation in an analysis/synthesis pipeline'
23. On the Results of the First Mobile Biometry (MOBIO) Face and Speaker Verification Evaluation
24. Speaker Matching
25. Session Effects on Speaker Modeling
26. Feature Selection Based on Information Theory for Speaker Verification
27. Barlow Twins self-supervised learning for robust speaker recognition
28. A Comprehensive Exploration of Noise Robustness and Noise Compensation in ResNet and TDNN-based Speaker Recognition Systems
29. Learning Noise Robust ResNet-Based Speaker Embedding for Speaker Recognition
30. Faire le pont entre l’observation et la preuve : Application au respect de la vie privée
31. A Bridge between Features and Evidence for Binary Attribute-Driven Perfect Privacy
32. Modeling nuisance variabilities with factor analysis for GMM-based audio pattern classification
33. Applying SVMs and weight-based factor analysis to unsupervised adaptation for speaker verification
34. Compensate multiple distortions for speaker recognition systems
35. Adversarial Disentanglement of Speaker Representation for Attribute-Driven Privacy Preservation
36. Compensate multiple distortions for speaker recognition systems
37. Data augmentation versus noise compensation for x- vector speaker recognition systems in noisy environments
38. MULTICHANNEL SPEECH ENHANCEMENT FOR SPEAKER VERIFICATION IN NOISY AND REVERBERANT ENVIRONMENTS
39. Robust Speaker Recognition Using MAP Estimation of Additive Noise in i-vectors Space
40. Identify the Benefits of the Different Steps in an i-Vector Based Speaker Verification System
41. On the Results of the First Mobile Biometry (MOBIO) Face and Speaker Verification Evaluation
42. Feature Selection Based on Information Theory for Speaker Verification
43. Data augmentation versus noise compensation for x-vector speaker recognition systems in noisy environments
44. Denoising x-vectors for Robust Speaker Recognition
45. Speech Pseudonymisation Assessment Using Voice Similarity Matrices
46. A Unified Joint Model to Deal With Nuisance Variabilities in the i-Vector Space
47. LIA System for the SITW Speaker Recognition Challenge
48. Probabilistic Approach Using Joint Clean and Noisy i-Vectors Modeling for Speaker Recognition
49. Probabilistic Approach Using Joint Long and Short Session i-Vectors Modeling to Deal with Short Utterances for Speaker Recognition
50. Local binary patterns as features for speaker recognition
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