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L_1 norm based pedestrian detection using video analytics technique

机译:使用视频分析技术的基于L_1基于规范的行人检测

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摘要

Pedestrian detection from images of the visible spectrum is a high relevant area of research given its potential impact in the design of pedestrian protection systems. In general, detection is made with two different phases, feature extraction and classification. Also, features for detection of pedestrian are already are available such as optimal feature model. But still required is an improvement in detection by reducing the execution time and false positive. The proposed model has three different phases, that is, background subtraction, feature extraction, and classification. In spite of giving entire information into feature extraction, the system gives only a useful information (foreground image) by twin background model. Then the foreground image moves to the feature extraction and classifies the pedestrian. For feature extraction, histogram of orientation gradient (HOG) L-1 normalization has been used. This will increase the detection accuracy and reduce the computation time of a process. In addition, false positive rate has been minimized.
机译:可见光谱图像的行人检测是鉴于其在行人保护系统设计的潜在影响,是一种高相关的研究领域。通常,用两种不同的阶段进行检测,特征提取和分类。而且,用于检测行人的特征已经可用,例如最佳特征模型。但仍然需要是通过减少执行时间和假阳性来检测的改进。所提出的模型具有三个不同的阶段,即背景减法,特征提取和分类。尽管将整个信息赋予特征提取,但系统仅通过双背景模型提供有用的信息(前景图像)。然后前景图像移动到特征提取并对行人进行分类。对于特征提取,已经使用了取向梯度(HOG)L-1标准化的直方图。这将提高检测精度并降低过程的计算时间。此外,假阳性率已最大限度地减少。

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