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Differentiation of the Cholesky decomposition

Published 24 Feb 2016 in stat.CO and cs.MS | (1602.07527v1)

Abstract: We review strategies for differentiating matrix-based computations, and derive symbolic and algorithmic update rules for differentiating expressions containing the Cholesky decomposition. We recommend new blocked' algorithms, based on differentiating the Cholesky algorithm DPOTRF in the LAPACK library, which usesLevel 3' matrix-matrix operations from BLAS, and so is cache-friendly and easy to parallelize. For large matrices, the resulting algorithms are the fastest way to compute Cholesky derivatives, and are an order of magnitude faster than the algorithms in common usage. In some computing environments, symbolically-derived updates are faster for small matrices than those based on differentiating Cholesky algorithms. The symbolic and algorithmic approaches can be combined to get the best of both worlds.

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