构建用于色情图像检测的SURF视觉词

Yizhi Liu, Hongtao Xie
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引用次数: 19

摘要

色情图像检测是我们过滤互联网上不良信息的必要手段。基于视觉词袋(BoVW)的色情图像检测方法具有弥补传统检测方法不足的优点。然而,有许多选择来构建视觉词,这对速度和性能之间的权衡至关重要。提出了一种在皮肤区域构造SURF(加速鲁棒特征)视觉词并将其与颜色矩相结合的新方法。结果表明,SURF视觉词的性能优于SIFT(尺度不变特征变换)视觉词,并且该方法比现有的许多方法更有效地检测色情图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constructing SURF visual-words for pornographic images detection
Pornographic images detection is necessary for us to filter out objectionable information on the Internet. Bag-of-visual-words (BoVW) based pornographic images detection is promising because it can compensate the defect of the traditional approach. However, there are many choices to construct visual-words which are crucial to the tradeoff between the speed and the performance. We propose a novel method of constructing SURF (speeded up robust features) visual-words in skin regions and combining it with color moments. The results show that the performance of SURF visual-words is better than that of SIFT (scale-invariant feature transform) visual-words and our method is more effective to detect pornographic images than many existing methods.
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