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首页> 外文期刊>Intelligent Transport Systems, IET >Night-time pedestrian classification with histograms of oriented gradients-local binary patterns vectors
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Night-time pedestrian classification with histograms of oriented gradients-local binary patterns vectors

机译:具有定向梯度直方图的夜间行人分类-局部二进制模式向量

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摘要

The use of night vision systems in vehicles is becoming increasingly common, not just in luxury cars but also in the more cost sensitive sectors. Numerous approaches using infrared sensors have been proposed in the literature to detect and classify pedestrians in low visibility situations. However, the performance of these systems is limited by the capability of the classifier. This paper presents a novel method of classifying pedestrians in far-infrared automotive imagery. Regions of interest are segmented from the infrared frame using seeded region growing. A novel method of filtering the region growing results based on the location and size of the bounding box within the frame is described. This results in a smaller number of regions of interest for classification, leading to a reduced false positive rate. Histograms of oriented gradient features and local binary pattern features are extracted from the regions of interest and concatenated to form a feature for classification. Pedestrians are tracked with a Kalman filter to increase detection rates and system robustness. Detection rates of 98%, and false positive rates of 1% have been achieved on a database of 2000 images and streams of video; this is a 3% improvement on previously reported detection rates.
机译:夜视系统在车辆中的使用正变得越来越普遍,不仅在豪华车中,而且在对成本敏感的行业中也是如此。在文献中已经提出了许多使用红外传感器的方法来检测和识别低能见度情况下的行人。但是,这些系统的性能受到分类器功能的限制。本文提出了一种在远红外汽车图像中对行人进行分类的新颖方法。使用种子区域生长从红外帧中分割出感兴趣的区域。描述了一种基于边框内边界框的位置和大小过滤区域增长结果的新颖方法。这导致分类的关注区域数量减少,从而导致假阳性率降低。从感兴趣区域提取定向梯度特征和局部二元图案特征的直方图,并将其连接起来以形成用于分类的特征。使用卡尔曼滤波器跟踪行人,以提高检测率和系统鲁棒性。在包含2000张图像和视频流的数据库中,检出率达到98%,假阳性率达到1%;与以前报告的检测率相比,提高了3%。

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