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Comparative analysis of vehicle detection in urban traffic environment using Haar cascaded classifiers and blob statistics

机译:使用Haar级联分类器和Blob统计量的城市交通环境中车辆检测的比较分析

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摘要

The applications of computer vision are widely used in traffic monitoring and surveillance. In traffic monitoring, detection of vehicles plays a significant role. Different attributes such as shape, color, size, pose, illumination, shadows, occlusion, background clutter, camera viewing angle, speed of vehicles and environmental conditions pose immense and varying challenges in the detection phase. The native urban datasets namely NIPA and TOLL PLAZA acquired in complex traffic environment are used for research analysis. The selected datasets include varying attributes highlighted above. The NIPA dataset has total of 1516 vehicles whereas the TOLL PLAZA dataset contains 376 vehicles in an entire video sequence. This paper provides comparative analysis and insight on performance of cascade of boosted classifier using Haar features versus statistical analysis using blobs. Haar features help effectively in extracting discernible regions of interest in complex traffic scenes and has minimum false detection rate as compared to blob analysis. The detection results obtained from the trained Haar cascade classifier for NIPA and TOLL PLAZA datasets have 83.7% and 88.3% accuracy respectively. In contrast blob analysis has detection accuracy of only 43.8% for NIPA and 65.7% for TOLL PLAZA datasets.
机译:计算机视觉的应用广泛用于交通监控。在交通监控中,车辆检测起着重要作用。在检测阶段,形状,颜色,大小,姿势,照明,阴影,遮挡,背景杂波,摄像机视角,车辆速度和环境条件等不同属性构成了巨大且变化多端的挑战。在复杂交通环境中获取的本地城市数据集(即NIPA和TOLL PLAZA)用于研究分析。所选数据集包括上面突出显示的各种属性。 NIPA数据集共有1516辆车,而TOLL PLAZA数据集在整个视频序列中包含376辆车。本文提供了比较分析和对使用Haar特征的增强分类器与使用斑点进行统计分析的级联性能的见解。 Haar功能有助于有效地提取复杂交通场景中可识别的感兴趣区域,并且与斑点分析相比,具有最低的误检率。从训练有素的Haar级联分类器获得的NIPA和TOLL PLAZA数据集的检测结果分别具有83.7%和88.3%的准确度。相比之下,斑点分析对NIPA的检测准确性仅为43.8%,对于TOLL PLAZA数据集的检测准确性仅为65.7%。

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