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Real-time Detection of Vehicles Using the Haar-like Features and Artificial Neuron Networks

机译:使用类似Haar的特征和人工神经元网络实时检测车辆

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摘要

In this document, a vehicle detection system is presented. This system is based on two algorithms, a descriptor of the image type haar-like, and a classifier type artificial neuron networks. In order to ensure rapidity in the calculation extracts features by the descriptor the concept of the integral image is used for the representation of the image. The learning of the system is performed on a set of positive images (vehicles) and negative images (non-vehicle), and the test is done on another set of scenes (positive or negative). To address the performance of the proposed system by varying one element among the determining parameters which is the number of neurons in the hidden layer; the results obtained have shown that the proposed system is a fast and robust vehicle detector.
机译:在该文件中,提出了一种车辆检测系统。该系统基于两种算法,图像类型类似于haar的描述符,以及分类器类型的人工神经元网络。为了确保计算的快速性,描述符可以将特征提取出来,将积分图像的概念用于图像的表示。系统的学习是在一组正图像(车辆)和负图像(非车辆)上执行的,而测试是在另一组场景(正或负)上完成的。通过在确定参数中改变一个元素(即隐藏层中神经元的数量)来解决所提出系统的性能;获得的结果表明,所提出的系统是一种快速且坚固的车辆检测器。

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