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Real-time face detection and lip feature extraction using field-programmable gate arrays

机译:使用现场可编程门阵列进行实时面部检测和嘴唇特征提取

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This paper proposes a new technique for face detection and lip feature extraction. A real-time field-programmable gate array (FPGA) implementation of the two proposed techniques is also presented. Face detection is based on a naive Bayes classifier that classifies an edge-extracted representation of an image. Using edge representation significantly reduces the model's size to only 5184 B, which is 2417 times smaller than a comparable statistical modeling technique, while achieving an 86.6% correct detection rate under various lighting conditions. Lip feature extraction uses the contrast around the lip contour to extract the height and width of the mouth, metrics that are useful for speech filtering. The proposed FPGA system occupies only 15 050 logic cells, or about six times less than a current comparable FPGA face detection system.
机译:本文提出了一种新的人脸检测和嘴唇特征提取技术。还介绍了两种所提出技术的实时现场可编程门阵列(FPGA)实现。人脸检测基于朴素的贝叶斯分类器,该分类器对图像的边缘提取表示进行分类。使用边缘表示可将模型的大小显着减小至仅5184 B,这是可比的统计建模技术的2417倍,同时在各种光照条件下均可以达到86.6%的正确检测率。嘴唇特征提取使用嘴唇轮廓周围的对比度来提取嘴巴的高度和宽度,这对于语音过滤很有用。拟议的FPGA系统仅占用15050个逻辑单元,约是当前同类FPGA人脸检测系统的六倍。

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