Dictionary Learning

0 benchmarks823 papers

Dictionary Learning is an important problem in multiple areas, ranging from computational neuroscience, machine learning, to computer vision and image processing. The general goal is to find a good basis for given data. More formally, in the Dictionary Learning problem, also known as sparse coding, we are given samples of a random vector yRny\in\mathbb{R}^n, of the form y=Axy=Ax where AA is some unknown matrix in Rn×m\mathbb{R}^{n×m}, called dictionary, and xx is sampled from an unknown distribution over sparse vectors. The goal is to approximately recover the dictionary AA.

<span class="description-source">Source: Polynomial-time tensor decompositions with sum-of-squares </span>

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