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Automatic nipple detection based on face detection and ideal proportion female using random forest

机译:基于面部检测和理想比例女性的随机乳头自动乳头检测

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摘要

Currently pornographic image on the online world, teenagers and kids can visit easily. Which stimulate sexual desire. Resulting behavior of sexual abuse, enticing a child under the age of 15 years increased, cause problems getting pregnant and sexually transmitted diseases. Pornographic detection is essential to prevent to access through analyzing image content. Many researchers are interested in pornographic detection of nipple using extended Haar-like for extracting the features, color, texture and shape that are used for classification using various algorithms cascaded AdaBoost. However, this disadvantage is the templates for nipple which require a lot of training set and it consumes the time to detect a multiple possible position similar to nipples such as eyes and navel. This research proposed the novel algorithm without using templates for detecting the nipple. Our proposed creates the novel model based on ideal proportion detection. The result of this algorithm shows the high accuracy and reducing the computational time when compares with the existing method.
机译:当前在线世界上的色情图片,青少年和孩子们可以轻松访问。刺激性欲。导致性虐待的行为诱使15岁以下的儿童增多,导致怀孕和性传播疾病。色情检测对于防止通过分析图像内容进行访问至关重要。许多研究人员对使用扩展的Haar-like进行乳头的色情检测感兴趣,以提取特征,颜色,纹理和形状,这些特征,颜色,纹理和形状用于使用各种AdaBoost级联算法进行分类。但是,这种缺点是乳头的模板需要大量的训练集,并且它花费时间来检测类似于乳头的多个可能位置,例如眼睛和肚脐。这项研究提出了不使用模板来检测乳头的新算法。我们的建议基于理想比例检测创建了新颖的模型。与现有方法相比,该算法的结果显示出较高的精度,减少了计算时间。

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