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      Object Detection in 20 Years: A Survey

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          Abstract

          Object detection, as of one the most fundamental and challenging problems in computer vision, has received great attention in recent years. Its development in the past two decades can be regarded as an epitome of computer vision history. If we think of today's object detection as a technical aesthetics under the power of deep learning, then turning back the clock 20 years we would witness the wisdom of cold weapon era. This paper extensively reviews 400+ papers of object detection in the light of its technical evolution, spanning over a quarter-century's time (from the 1990s to 2019). A number of topics have been covered in this paper, including the milestone detectors in history, detection datasets, metrics, fundamental building blocks of the detection system, speed up techniques, and the recent state of the art detection methods. This paper also reviews some important detection applications, such as pedestrian detection, face detection, text detection, etc, and makes an in-deep analysis of their challenges as well as technical improvements in recent years.

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          Most cited references35

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          Microsoft COCO: Common Objects in Context

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            Deep visual-semantic alignments for generating image descriptions

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              Joint Face Detection and Alignment Using Multitask Cascaded Convolutional Networks

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                Author and article information

                Journal
                13 May 2019
                Article
                1905.05055
                e92ab8fe-c171-4735-9c10-cbc6425ff3d5

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                This work has been submitted to the IEEE TPAMI for possible publication
                cs.CV

                Computer vision & Pattern recognition
                Computer vision & Pattern recognition

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