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Efficient Tensor Decomposition

This chapter studies the problem of decomposing a tensor into a sum of constituent rank one tensors. While tensor decompositions are very useful in designing learning algorithms and data analysis, they are NP-hard in the worst-case. We will see how to design efficient algorithms with provable guarantees under mild assumptions, and using beyond worst-case frameworks like smoothed analysis.

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Related contextAuthorshipTopic signalTopic signalWEfficient Tensor Decompositionpreprint / 2020AAravindan VijayaraghavanResearcherTMachine Learning49008 worksTData Structures and Alg...3564 works
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Efficient Tensor Decomposition

preprint / 2020

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