Literature DB >> 22484654

Solid waste bin level detection using gray level co-occurrence matrix feature extraction approach.

Maher Arebey1, M A Hannan, R A Begum, Hassan Basri.   

Abstract

This paper presents solid waste bin level detection and classification using gray level co-occurrence matrix (GLCM) feature extraction methods. GLCM parameters, such as displacement, d, quantization, G, and the number of textural features, are investigated to determine the best parameter values of the bin images. The parameter values and number of texture features are used to form the GLCM database. The most appropriate features collected from the GLCM are then used as inputs to the multi-layer perceptron (MLP) and the K-nearest neighbor (KNN) classifiers for bin image classification and grading. The classification and grading performance for DB1, DB2 and DB3 features were selected with both MLP and KNN classifiers. The results demonstrated that the KNN classifier, at KNN = 3, d = 1 and maximum G values, performs better than using the MLP classifier with the same database. Based on the results, this method has the potential to be used in solid waste bin level classification and grading to provide a robust solution for solid waste bin level detection, monitoring and management.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22484654     DOI: 10.1016/j.jenvman.2012.03.035

Source DB:  PubMed          Journal:  J Environ Manage        ISSN: 0301-4797            Impact factor:   6.789


  5 in total

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Authors:  Hailin Wu; Fengming Tao; Qingqing Qiao; Mengjun Zhang
Journal:  Int J Environ Res Public Health       Date:  2020-01-10       Impact factor: 3.390

Review 3.  Application of machine learning algorithms in municipal solid waste management: A mini review.

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Journal:  Waste Manag Res       Date:  2021-07-16

4.  Radiomics based on multiparametric MRI for extrathyroidal extension feature prediction in papillary thyroid cancer.

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Journal:  BMC Med Imaging       Date:  2021-02-09       Impact factor: 1.930

5.  Multimodality MRI-based radiomics for aggressiveness prediction in papillary thyroid cancer.

Authors:  Zedong Dai; Ran Wei; Hao Wang; Wenjuan Hu; Xilin Sun; Jie Zhu; Hong Li; Yaqiong Ge; Bin Song
Journal:  BMC Med Imaging       Date:  2022-03-24       Impact factor: 1.930

  5 in total

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