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Signal Clustering with Class-independent Segmentation

18 November 2019
Stefano Gasperini
Magdalini Paschali
Carsten Hopke
David Wittmann
Nassir Navab
ArXiv (abs)PDFHTML
Abstract

Radar signals have been dramatically increasing in complexity, limiting the source separation ability of traditional approaches. In this paper we propose a Deep Learning-based clustering method, which encodes concurrent signals into images, and, for the first time, tackles clustering with image segmentation. Novel loss functions are introduced to optimize a Neural Network to separate the input pulses into pure and non-fragmented clusters. Outperforming a variety of baselines, the proposed approach is capable of clustering inputs directly with a Neural Network, in an end-to-end fashion.

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