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Article detail · 2023

Classification of Guava Leaf Disease using Deep Learning

World Scientific and Engineering Academy and Society (WSEAS)

YÖKSİS OpenAlex ISSN 1790-0832 DOI 10.37394/23209.2023.20.38 Citations 23 Open access · diamond SJR Q4

10.37394/23209.2023.20.38

YÖKSİS YÖKSİS article record

OpenAlex OpenAlex enrichment (abstract, citations, topics)

Abstract

OpenAlex record

English (OpenAlex)

A higher percentage of crops are affected by diseases, posing a challenge to agricultural production. It is possible to increase productivity by detecting and forecasting diseases early. Guava is a fruit grown in tropical and subtropical countries such as Chad, Pakistan, India, and South American nations. Guava trees can suffer from a variety of ailments, including Canker, Dot, Mummification, and Rust. A diagnosis based only on visual observation is unreliable and time-consuming. To help farmers identify plant diseases in their early stages, an automated diagnosis and prediction system is necessary. Therefore, we developed a deep learning method for classifying and forecasting guava leaf diseases. We investigated a dataset composed of 1834 leaf examples, separated into five categories. We trained the dataset using four different and generally preferred pre-trained CNN architectures. The EfficinetNet-B3 architecture outperformed the other three architectures, achieving 94.93% accuracy on the test data. The results ensure that deep learning methods are more successful and reliable than traditional methods.

OpenAlex enrichment

Topics

  • Smart Agriculture and AI
  • Banana Cultivation and Research
  • Date Palm Research Studies

Type: article Smart Agriculture and AI

Index information

WoS (JCR) and Scopus (SJR) quartiles by ISSN and publication year. · 2023

Scopus (SJR) / WoS (JCR)

WSEAS Transactions on Information Science and Applications

Scopus (SJR) Q4 0,126 Year 2023

Universities

  • ANKARA ÜNİVERSİTESİ

Authors

  1. ASSAD S. DOUTOUM
  2. RECEP ERYİĞİT ANKARA ÜNİVERSİTESİ
  3. BÜLENT TUĞRUL ANKARA ÜNİVERSİTESİ