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arxiv: 1404.2638 · v1 · pith:LHZODHDLnew · submitted 2014-04-09 · ❄️ cond-mat.stat-mech · cond-mat.dis-nn

Pattern recognition at different scales: a statistical perspective

classification ❄️ cond-mat.stat-mech cond-mat.dis-nn
keywords statisticalpatternrecognitionscalesalgorithmperformanceresolutionaffects
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In this paper we borrow concepts from Information Theory and Statistical Mechanics to perform a pattern recognition procedure on a set of x-ray hazelnut images. We identify two relevant statistical scales, whose ratio affects the performance of a machine learning algorithm based on statistical observables, and discuss the dependence of such scales on the image resolution. Finally, by averaging the performance of a Support Vector Machines algorithm over a set of training samples, we numerically verify the predicted onset of an optimal scale of resolution, at which the pattern recognition is favoured.

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