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A comprehensive implementation of dynamic time warping (DTW) algorithms in Python. DTW computes the optimal (least cumulative distance) alignment between points of two time series. Common DTW variants covered include local (slope) and global (window) constraints, subsequence matches, arbitrary distance definitions, normalizations, minimum variance matching, and so on. Provides cumulative distances, alignments, specialized plot styles, etc.

copied from cf-post-staging / dtw-python
Type Size Name Uploaded Downloads Labels
conda 337.4 kB | linux-64/dtw-python-1.7.4-py314h7958e34_0.conda  21 days and 3 hours ago 78 main
conda 332.5 kB | linux-64/dtw-python-1.7.4-py313h29aa505_0.conda  21 days and 3 hours ago 86 main
conda 333.1 kB | linux-64/dtw-python-1.7.4-py312h4f23490_0.conda  21 days and 3 hours ago 83 main
conda 333.7 kB | linux-64/dtw-python-1.7.4-py311h0372a8f_0.conda  21 days and 3 hours ago 83 main

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