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Day and night pedestrian detection using cascade AdaBoost system

机译:使用级联AdaBoost系统进行昼夜行人检测

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This paper presents the results of an all-day-long pedestrian classification system based on an AdaBoost cascade meta-algorithm. The underlying idea is to use a Haar-features-based AdaBoost together with an ad-hoc-features-based AdaBoost system in order to reach a better pedestrian classification. A specific night-time pedestrian classification is developed in order to obtain a system that can be used also in poorly illuminated environments. These classifiers are joined together using a cascade AdaBoost system that uses the output of the previous classifiers to obtain a final classification for the area. In the paper the night time and the ad-hoc features systems are presented together with the cascade classification and quantitative results.
机译:本文介绍了基于Adaboost级联元算法的全天长的行人分类系统的结果。潜在的想法是将哈尔特征的adaboost与基于ad-hoc特征的adaboost系统一起使用,以达到更好的行人分类。开发了一个特定的夜间步行分类,以便获得可以在不明显的环境中使用的系统。这些分类器使用级联Adaboost系统连接在一起,该系统使用先前分类器的输出来获得该区域的最终分类。在纸质中,夜间和ad-hoc特征系统与级联分类和定量结果一起呈现。

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