基于语义特征的成人图像语义检测

Jaehyun Jeon, Semin Kim, J. Choi, H. Min, Yong Man Ro
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引用次数: 4

摘要

近年来,在互联网和社交网络领域,裸照的分类和过滤问题备受关注。本文提出了一种新的裸照分类方法,可以有效地利用裸照的语义特征。此外,为了系统地分析语义特征对提高分类性能的影响,与依赖低级视觉特征的方法相比,提出了一种新的测量方法,称为累积距离比(ADR)。为了评估语义特征在裸图分类中的有效性,我们在真实和具有挑战性的数据集上进行了大量的实验。对于具有挑战性的数据集,使用语义特征的方法的实验结果显示,与使用低级视觉特征的方法相比,该方法的改进幅度高达14%。此外,所提出的ADR度量被证明是分析语义特征对裸图分类效果的有用度量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semantic Detection of Adult Image Using Semantic Features
Recently, in the fields of internet and social networking, the classification and filtering of naked images has been receiving a significant amount of attention. In this paper, we propose a novel naked image classification which can make effective use of semantic features of a naked image. In addition, a novel measurement, termed accumulated distance ratio (ADR), is proposed in order to systematically analyze the effect of semantic features on improving classification performance, compared to the approach relying on low-level visual features. Extensive experiments have been carried out to assess the effectiveness of semantic features in naked image classification with realistic and challenging data set. The experimental result of the proposed approach using semantic features, for challenging data set, shows improvement up to 14% than the approach using low-level visual feature. Further, the proposed ADR measure has proven to be useful measure for analyzing the effect of semantic features for naked image classification.
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