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Gray Level Aura Matrix: An image processing approach for waste bin level detection

机译:灰度光环矩阵:用于废物箱水平检测的图像处理方法

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An advanced image processing approach integrated with communication technologies and a camera for bin level detection has been presented. The proposed system is developed to overcome the environmental situation of bin and variety of waste being thrown inside it. Gray Level Aura Matrix (GLAM) approach is proposed to extract the bin image texture. The GLAM parameter such as neighboring system is investigated to determine the best parameters values. To evaluate the performance of the system, the extracted image is trained and tested using MLP and KNN classifiers. The results have shown that the bin level classification accuracies reach acceptable performance levels for class and grade classification with rate of 98.98% and 90.19% using MLP classifier and 96.91% and 89.14% using KNN classifier, respectively. The results demonstrated that the proposed system is a robust and can work with variety of waste and various bin situations.
机译:已经提出了一种与通信技术和用于箱级检测的照相机相集成的高级图像处理方法。开发提出的系统是为了克服垃圾箱的环境状况以及将各种废物扔进垃圾箱的情况。提出了灰度光环矩阵(GLAM)方法来提取bin图像纹理。研究GLAM参数(例如相邻系统)以确定最佳参数值。为了评估系统的性能,使用MLP和KNN分类器对提取的图像进行了训练和测试。结果表明,分类和等级分类的箱级分类精度达到了可接受的性能水平,使用MLP分类器分别达到98.98%和90.19%,使用KNN分类器分别达到96.91%和89.14%。结果表明,所提出的系统是鲁棒的,并且可以在各种废物和各种垃圾箱情况下工作。

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