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REDUCING FALSE DETECTION RATE USING LOCAL PATTERN BASED POST-FILTER
REDUCING FALSE DETECTION RATE USING LOCAL PATTERN BASED POST-FILTER
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机译:使用基于本地模式的后置滤波器降低虚假检测率
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摘要
A training set for a post-filter classifier is created from the output of a face detector. The face detector can be a Viola Jones face detector. Face detectors produce false positives and true positives. The regions in the training set are labeled so that false positives are labeled negative and true positives are labeled positive. The labeled training set is used to train a post-filter classifier. The post-filter classifier can be an SVM (Support Vector Machine). The trained face detection classifier is placed at the end of a face detection pipeline comprising a face detector, one or more feature extractors and the trained post-filter classifier. The post-filter reduces the number of false positives in the face detector output while keeping the number of true positives almost unchanged using features different from the Haar features used by the face detector.
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