Features of Household Solid Waste Object Recognition on Garbage Collector Robot (GACOBOT)

A. P. Prasetyo, Rendyansyah Rendyansyah, Kemahyanto Exaudi, Abdurahman Abdurahman, T. W. Septian
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引用次数: 0

Abstract

Solid waste or garbage is one of the problems that must be faced by the world's population so that life becomes more harmonious. Through a series of studies, a Garbage Collector Robot (GACOBOT) was created which is expected to help humans overcome this problem in terms of garbage collection. By adding a feature in the form of object recognition, the waste can be sorted by type so that it can be grouped and processed further. In this research, using the Support Vector Machine (SVM) classification method based on the feature extraction of the Histogram of Oriented Gradients (HOG) as the main method. Researchers used 14 pieces of data as training data and 10 pieces of data as test data. From the results of the tests that have been carried out, it has been obtained a success rate of 100% that the system has succeeded in separating waste into 2 types, namely plastic bag waste and glass bottle waste.
基于GACOBOT的生活垃圾物体识别特征
固体废物或垃圾是世界人口必须面对的问题之一,以便生活变得更加和谐。通过一系列的研究,垃圾收集机器人(GACOBOT)被创造出来,有望帮助人类在垃圾收集方面克服这一问题。通过添加物体识别形式的特征,可以将废物按类型分类,以便进行分组和进一步处理。在本研究中,采用基于定向梯度直方图(HOG)特征提取的支持向量机(SVM)分类方法作为主要方法。研究人员使用了14条数据作为训练数据,10条数据作为测试数据。从已经进行的测试结果来看,该系统成功将垃圾分为塑料袋垃圾和玻璃瓶垃圾两类,成功率为100%。
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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