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One-Shot learning based classification for segregation of plastic waste

2020-09-29 · Shivaank Agarwal, Ravindra Gudi, Paresh Saxena

The problem of segregating recyclable waste is fairly daunting for many countries. This article presents an approach for image based classification of plastic waste using one-shot learning techniques. The proposed approach exploits discriminative features generated via the siamese and triplet loss convolutional neural networks to help differentiate between 5 types of plastic waste based on their resin codes. The approach achieves an accuracy of 99.74% on the WaDaBa Database

📄 PDF Abstract BibTeX arXiv:2009.13953

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Tasks

General ClassificationOne-Shot LearningTriplet

Methods 이 논문이 사용한 방법론

Triplet Loss The goal of Triplet loss, in the context of Siamese Networks, is to maximize the joint probability among all score-pairs i.e. the product of all probabilities. By using its…

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