Pengenalan Personal Menggunakan Citra Tampak Atas pada Lingkungan Cashierless Strore

B. Prastowo, Nur Achmad Sulistyo Putro, Oktaf Agni Dhewa, Achwan Yusuf
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引用次数: 1

Abstract

Personal recognition with image processing techniques from the side view has the disadvantage of being applied to the cashierless store environment, namely inaccurate recognition or identification when personal collisions occur. To overcome this, the image capture method is used from the top-view. Personal recognition method through the top-view image using the Haar Cascade Classifier method. 1420 positive images and 2170 negative images are used to find features that are considered suitable for recognizing objects using the Adaptive Boosting (Adaboost) method. Tests were carried out on 100 test data by varying the parameters of min_neighbors (3.4, and 5) and the size of the dataset window (25x25, 35x35, 45x45 pixels). Personal recognition testing gets the highest accuracy of 89.9% with the parameters used are min_neighbors 5 and the size of the 25x25 pixel dataset in the detection parameter size of min_size 140x140 pixels.
个人介绍使用无海岸社会的表象进行介绍
利用侧视图图像处理技术进行的个人识别,其缺点是适用于无收银人员的店铺环境,在发生人身碰撞时识别或识别不准确。为了克服这个问题,从俯视图使用图像捕获方法。个人识别方法通过俯视图图像采用Haar级联分类器方法。使用自适应增强(Adaboost)方法,使用1420张正图像和2170张负图像来寻找适合识别物体的特征。通过改变min_neighbors的参数(3.4和5)和数据集窗口的大小(25x25、35x35、45x45像素),对100个测试数据进行了测试。在检测参数大小为min_size 140x140像素的情况下,使用的参数为min_neighbors 5, 25x25像素数据集的大小,个人识别测试获得了89.9%的最高准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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