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Face R-CNN (1706.01061v1)

Published 4 Jun 2017 in cs.CV

Abstract: Faster R-CNN is one of the most representative and successful methods for object detection, and has been becoming increasingly popular in various objection detection applications. In this report, we propose a robust deep face detection approach based on Faster R-CNN. In our approach, we exploit several new techniques including new multi-task loss function design, online hard example mining, and multi-scale training strategy to improve Faster R-CNN in multiple aspects. The proposed approach is well suited for face detection, so we call it Face R-CNN. Extensive experiments are conducted on two most popular and challenging face detection benchmarks, FDDB and WIDER FACE, to demonstrate the superiority of the proposed approach over state-of-the-arts.

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Authors (4)
  1. Hao Wang (1120 papers)
  2. Zhifeng Li (74 papers)
  3. Xing Ji (30 papers)
  4. Yitong Wang (47 papers)
Citations (90)

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