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Hybrid Deep Learning Model for Wheat Yellow Rust Disease Detection

Hybrid Deep Learning Model for Wheat Yellow Rust Disease Detection

von Deepak Kumar und Vinay Kukreja
Softcover - 9786204210339
39,90 €
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Beschreibung

In many regions of the world, wheat quality and yield losses have been increased due to wheat rust diseases. The identification of yellow rust disease along with the percentage of tissues damaged by the rust disease in terms of severity levels is very important and usually it is achieved through experienced evaluators or computer vision techniques. With the help of computer vision techniques, the cost and time should be minimized. This study presents classification model for wheat yellow rust with different severity levels of disease. It is achieved through STARGAN and Convolutional neural network (CNN). The STARGAN is proposed in this study for data augmentation. After conducting several experiments with parameters such as different epochs, batch sizes, learning rate, and dropout rate this study achieves 94.07% classification accuracy to classify wheat yellow rust from the wheat normal plant. During severity measurement, CNN achieved 94.3% validation accuracy of wheat yellow rust at high severity level.

Detection of Wheat Yellow Rust Severity Levels using Deep Learning Model

Details

Verlag LAP LAMBERT Academic Publishing
Ersterscheinung 08. Oktober 2021
Maße 22 cm x 15 cm x 0.6 cm
Gewicht 143 Gramm
Format Softcover
ISBN-13 9786204210339
Seiten 84