AI Verification Library for Deep Learning Toolbox
Verify and test robustness of deep learning networks, deploy with confidence
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Mise à jour
15 oct. 2025
Deep Learning Toolbox Verification Library allows you to verify and test properties of deep learning networks, and deploy these models with confidence.
Use this library to:
- Verify network robustness to adversarial examples (Since R2022b)
- Estimate how sensitive the network predictions are to input perturbation (Since R2022b)
- Verify network properties in parellel with multiple GPU and CPU support (Since R2024a; Library Version 24.1.1)
- Verify branched networks (Since R2024b; Library Version 24.2.2)
- Explain object detection network predictions using D-RISE (Since R2024a)
- Create a distribution discriminator that separates data into in- and out-of-distribution (Since R2023a)
- Runtime Monitoring: detect out-of-distribution (ODD) data in neural networks (Since R2023a)
- Runtime Monitoring: generate C/C++ and CUDA code for out-of-distribution detection (Since R2023a)
Please refer to the documentation here: https://www.mathworks.com/help/deeplearning/verification.html
If you have download or installation problems, please contact Technical Support: https://www.mathworks.com/support/contact_us.html
Compatibilité avec les versions de MATLAB
Créé avec
R2022b
Compatible avec les versions R2022b à R2026a
Plateformes compatibles
Windows macOS (Apple Silicon) macOS (Intel) LinuxTags
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