#automatic differentiation

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chainer
Chainer, a Python-centric deep learning framework, utilizes a define-by-run approach for dynamic computational graphs and automatic differentiation. It supplies high-level APIs for neural network construction and leverages CuPy for superior CUDA-based training and inference. Despite transitioning to a maintenance phase, Chainer remains a robust solution for various deep learning applications, with Docker images ensuring easy deployment and NVIDIA Docker support.
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pennylane
Discover this powerful Python library for quantum computing and machine learning. Utilize just-in-time compilation, automatic differentiation, and a wide range of quantum backends with plugins for IBM Q, Google Cirq, and more. Access extensive tutorials and community resources for rapid prototyping and contributions.