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Fast human detection using Gaussian Particle Swarm Optimization

机译:使用高斯粒子群优化技术的快速人体检测

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Human detection is a challenging task in many fields because it is difficult to detect humans due to their varying appearance and posture. The evaluation speed of the method is important as well as its accuracy. In this paper, we propose a novel method using Gaussian Particle Swarm Optimization (Gaussian-PSO) for human detection with the Histograms of Oriented Gradients (HOG) feature to achieve a fast and accurate performance. Keeping the robustness of HOG feature on human detection, we raise the process speed in detection process so that it can be used for real-time applications. These advantages are given by a simple process which needs only one linear-SVM classifier with HOG features and Gaussian-PSO procedure.
机译:人类检测是许多领域的具有挑战性的任务,因为由于它们的外观和姿势不同,难以检测人类。该方法的评估速度和其准确性很重要。在本文中,我们提出了一种使用高斯粒子群优化(Gaussian-PSO)进行人类检测的新方法,以取向梯度(HOG)特征的直方图,实现快速准确的性能。保持Hog特征对人类检测的鲁棒性,我们在检测过程中提高了过程速度,以便它可用于实时应用。这些优点由简单的过程给出,该过程仅需要一个具有HOG特征和高斯-PSO过程的一个线性-SVM分类器。

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