Apple Scab Detection in the Early Stage of Disease Using a Convolutional Neural Network

Author:

Kodors Sergejs1,Lācis Gunārs2,Moročko-Bičevska Inga2,Zarembo Imants1,Sokolova Olga2,Bartulsons Toms2,Apeināns Ilmārs1,Žukovs Vitālijs1

Affiliation:

1. Institute of Engineering, Rēzekne Academy of Technologies , 115 Atbrīvošanas Alley, Rēzekne, LV-4601 , Latvia

2. Institute of Horticulture , 1 Graudu Str., Dobele, LV-3701 , Latvia

Abstract

Abstract Modern reviews of challenges related to deep learning application in agriculture mention restricted access to open datasets with high-resolution natural images taken in field conditions. Therefore, artificial intelligence solutions trained on these datasets containing low-resolution images and disease symptoms in the advanced stage are not suitable for early detection of plant diseases. The study aims to train a convolutional neural network for apple scab detection in an early stage of disease development. In this study a dataset was collected and used to develop a convolutional neural network based on the sliding-window method. The convolutional neural network was trained using the transfer-learning approach and MobileNetV2 architecture tuned on for embedded devices. The quality analysis in laboratory conditions showed the following accuracy results: F 1 score 0.96 and Cohen’s kappa 0.94; and the occlusion maps — correct classification features.

Publisher

Walter de Gruyter GmbH

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