静态图像中暴力检测的基线结果

Dong Wang, Z. Zhang, Wei Wang, Liang Wang, T. Tan
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引用次数: 20

摘要

随着互联网上图像和视频的快速增长,识别不良内容越来越受到人们的关注。虽然在暴力视频检测和色情信息过滤方面有一些研究,但现有的方法很少涉及静止图像中的暴力检测问题。然而,鉴于其在暴力网页过滤、在线舆情监测等方面的潜在用途,在静止图像中识别暴力值得深入研究。为此,我们首先建立了一个包含500张暴力图片和1500张非暴力图片的新数据库。并利用图像分类领域常用的词袋模型(BoW)对暴力图像和非暴力图像进行区分。在BoW框架内测试了四种不同特征表示的有效性。最后报告了在新建立的数据库上进行暴力图像检测的基线结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Baseline Results for Violence Detection in Still Images
Recognizing objectionable content draws more and more attention nowadays given the rapid proliferation of images and videos on the Internet. Although there are some investigations about violence video detection and pornographic information filtering, very few existing methods touch on the problem of violence detection in still images. However, given its potential use in violence webpage filtering, online public opinion monitoring and some other aspects, recognizing violence in still images is worth being deeply investigated. To this end, we first establish a new database containing 500 violence images and 1500 non-violence images. And we use the Bag-of-Words (BoW) model which is frequently adopted in image classification domain to discriminate violence images and non-violence images. The effectiveness of four different feature representations are tested within the BoW framework. Finally the baseline results for violence image detection on our newly built database are reported.
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