Artificial Intelligence Plant Doctor: Plant Disease Diagnosis Using GPT4-vision

Author:

Hue Yoeguang,Kim Jea Hyeoung,Lee Gang,Choi Byungheon,Sim Hyun,Jeon Jongbum,Ahn Mun-Il,Han Yong Kyu,Kim Ki-TaeORCID

Abstract

Integrated pest management is essential for controlling plant diseases that reduce crop yields. Rapid diagnosis is crucial for effective management in the event of an outbreak to identify the cause and minimize damage. Diagnosis methods range from indirect visual observation, which can be subjective and inaccurate, to machine learning and deep learning predictions that may suffer from biased data. Direct molecular-based methods, while accurate, are complex and time-consuming. However, the development of large multimodal models, like GPT-4, combines image recognition with natural language processing for more accurate diagnostic information. This study introduces GPT-4-based system for diagnosing plant diseases utilizing a detailed knowledge base with 1,420 host plants, 2,462 pathogens, and 37,467 pesticide instances from the official plant disease and pesticide registries of Korea. The AI plant doctor offers interactive advice on diagnosis, control methods, and pesticide use for diseases in Korea and is accessible at https://pdoc.scnu.ac.kr/.

Funder

Ministry of Science and ICT

Institute of Information & Communications Technology Planning & Evaluation

Publisher

Korean Society of Plant Pathology

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