Experimental Evaluation of Multi-cue Monocular Pedestrian Detection System Using Built-In Rear View Camera

D. Tsishkou, S. Bougnoux
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引用次数: 3

Abstract

Algorithms for pedestrian detection based on multi-cue computer vision systems have become increasingly sophisticated and have been shown capable of achieving high detection performance for moderate range of applications. In particular, it has been demonstrated that a key successes lies in the integration of both single frame and over time measured cues and via building up additional object categories consisting of vehicles and stationary background structures. However, most of extensive field tests were made with a use of high contrast, good resolution, large filed of view, distortion free mounted cameras. In this paper we use a standard vehicle with a built-in rear view camera for parking space detection that has moderate contrast, low resolution, limited field of view and large distortions. For the evaluation of multi-cue pedestrian recognition system, we used a database of more than 300 typical sequences from 30 seconds to 30 minutes of 30 km/h limited drive both in Europe and Japan. Using that database and semi-automatically collected ground truth, several experiments were carried out to determine how pedestrian detection performance evolves with respect to distance from vehicle to pedestrian, vehicle's speed and illumination conditions. The results and interpretation of these experiments will be described in this paper.
基于后视摄像头的多线索单目行人检测系统实验评估
基于多线索计算机视觉系统的行人检测算法已经变得越来越复杂,并且已经证明能够在中等范围的应用中实现高检测性能。特别是,它已经证明了一个关键的成功在于整合单帧和随时间测量的线索,并通过建立额外的对象类别,包括车辆和固定的背景结构。然而,大多数广泛的现场测试都是使用高对比度、高分辨率、大视场、无失真的安装相机进行的。在本文中,我们使用了一个标准的车辆,内置后视摄像头车位检测,具有中等对比度,低分辨率,有限的视野和大的畸变。为了评估多线索行人识别系统,我们使用了欧洲和日本的300多个典型序列数据库,这些序列从30秒到30分钟不等,限速为30公里/小时。利用该数据库和半自动收集的地面真相,进行了几次实验,以确定行人检测性能如何随着车辆与行人的距离、车辆速度和照明条件的变化而变化。本文将描述这些实验的结果和解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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