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A low power consumption mobile based IoT framework for real-time classification and segmentation for apple disease

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dc.contributor.author Raman, Sundaresan
dc.contributor.author Chamola, Vinay
dc.date.accessioned 2023-01-05T04:15:36Z
dc.date.available 2023-01-05T04:15:36Z
dc.date.issued 2022-10
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0141933122001909
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/xmlui/handle/123456789/8310
dc.description.abstract Untreated diseases in plants not only lead to monetary losses but can have adverse implications when consumed. Disease diagnosis requires early detection and analysis of the disease. Apple horticulture has been a significant agriculture industry around the world and is affected by three most prominent domains of disease in apple namely: Blotch, Scab and Rot. In this paper, we provide a real-time mechanism for simultaneous classification and segmentation of the disease which significantly improves the speed of prediction. We have introduced atrous skip connections with UNet (with ResNet as backbone) furthering the performance. Experimental results on our proposed framework, achieves an accuracy of 94.29% to classify the disease and a dice score of 90.01% for segmentation of the diseased part. We also have developed a mobile application to demonstrate the objectives and to facilitate a user-friendly interface for using the proposed framework. en_US
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.subject Computer Science en_US
dc.subject Real-time Classification en_US
dc.subject Semantic segmentation en_US
dc.subject Apple disease analysis en_US
dc.subject Deep Learning en_US
dc.title A low power consumption mobile based IoT framework for real-time classification and segmentation for apple disease en_US
dc.type Article en_US


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