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Robust Sparse Coding and Compressed Sensing with the Difference Map

机译:具有差异图的强大稀疏编码和压缩感

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In compressed sensing, we wish to reconstruct a sparse signal x from observed data y. In sparse coding, on the other hand, we wish to find a representation of an observed signal y as a sparse linear combination, with coefficients x, of elements from an overcomplete dictionary. While many algorithms are competitive at both problems when x is very sparse, it can be challenging to recover x when it is less sparse. We present the Difference Map, which excels at sparse recovery when sparseness is lower. The Difference Map out-performs the state of the art with reconstruction from random measurements and natural image reconstruction via sparse coding.
机译:在压缩传感中,我们希望重建来自观察到的数据y的稀疏信号x。 另一方面,在稀疏编码中,我们希望找到观察到的信号y作为稀疏线性组合的表示,其中x的系数x从过度符合字典中的元素。 虽然许多算法在X非常稀疏时在这两个问题上都是竞争力,但在稀疏时恢复X可能会具有挑战性。 我们呈现差异图,当稀疏性较低时,差异恢复稀疏。 通过稀疏编码从随机测量和自然图像重建重建,差异图出现了现有技术。

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