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      A new Conv2D model with modified ReLU activation function for identification of disease type and severity in cucumber plant

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      Sustainable Computing: Informatics and Systems
      Elsevier BV

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          Rethinking the Inception Architecture for Computer Vision

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            Is Open Access

            Using Deep Learning for Image-Based Plant Disease Detection

            Crop diseases are a major threat to food security, but their rapid identification remains difficult in many parts of the world due to the lack of the necessary infrastructure. The combination of increasing global smartphone penetration and recent advances in computer vision made possible by deep learning has paved the way for smartphone-assisted disease diagnosis. Using a public dataset of 54,306 images of diseased and healthy plant leaves collected under controlled conditions, we train a deep convolutional neural network to identify 14 crop species and 26 diseases (or absence thereof). The trained model achieves an accuracy of 99.35% on a held-out test set, demonstrating the feasibility of this approach. Overall, the approach of training deep learning models on increasingly large and publicly available image datasets presents a clear path toward smartphone-assisted crop disease diagnosis on a massive global scale.
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              Deep learning models for plant disease detection and diagnosis

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                Author and article information

                Contributors
                Journal
                Sustainable Computing: Informatics and Systems
                Sustainable Computing: Informatics and Systems
                Elsevier BV
                22105379
                June 2021
                June 2021
                : 30
                : 100473
                Article
                10.1016/j.suscom.2020.100473
                e505c5f8-5eeb-4685-8b6d-d05f6a723484
                © 2021

                https://www.elsevier.com/tdm/userlicense/1.0/

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