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#
algorithmic-differentation
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CasADi is a symbolic framework for numeric optimization implementing automatic differentiation in forward and reverse modes on sparse matrix-valued computational graphs. It supports self-contained C-code generation and interfaces state-of-the-art codes such as SUNDIALS, IPOPT etc. It can be used from C++, Python or Matlab/Octave.
Source Code Generation for Automatic Differentiation using Operator Overloading
A single header-only C++ library for automatic / algorithmic differentiation.
Complex Numbers for Algorithmic Differentiation
CUDA subgradients using forward-mode Algorithmic Differentiation (AD).
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