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Most Influential NEURIPS 2013 Paper · 2026-03 edition

Deep Neural Networks for Object Detection

Christian Szegedy; Alexander Toshev; Dumitru Erhan

Venue
NEURIPS 2013
Recognition
Most Influential NEURIPS 2013 Paper (Rank No. 7)
Edition
2026-03
Impact factor
9
Certificate ID
3f37b89690fe5a88

Abstract

Deep Neural Networks (DNNs) have recently shown outstanding performance on the task of whole image classification. In this paper we go one step further and address the problem of object detection -- not only classifying but also precisely localizing objects of various classes using DNNs. We present a simple and yet powerful formulation of object detection as a regression to object masks. We define a multi-scale inference procedure which is able to produce a high-resolution object detection at a low cost by a few network applications. The approach achieves state-of-the-art performance on Pascal 2007 VOC.

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