Academic Journal
Using artificial intelligence (AI) for grapevine disease detection based on images
العنوان: | Using artificial intelligence (AI) for grapevine disease detection based on images |
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المؤلفون: | Poblete-Echeverría Carlos, Hernández Inés, Gutiérrez Salvador, Iñiguez Rubén, Barrio Ignacio, Tardaguila Javier |
المصدر: | BIO Web of Conferences, Vol 68, p 01021 (2023) |
بيانات النشر: | EDP Sciences |
سنة النشر: | 2023 |
المجموعة: | Directory of Open Access Journals: DOAJ Articles |
مصطلحات موضوعية: | Microbiology, QR1-502, Physiology, QP1-981, Zoology, QL1-991 |
الوصف: | Nowadays, diseases are one of the major threats to sustainable viticulture. Manual detection through visual surveys, usually done by agronomists, relies on symptom identification and requires an enormous amount of time. Detection in field conditions remains difficult due to the lack of infrastructure to perform detailed and rapid field scouting covering the whole vineyard. In general, symptoms of grapevine diseases can be seen as spots and patterns on leaves. In this sense, computer vision technologies and artificial intelligence (AI) provide an excellent alternative to improve the current disease detection and quantification techniques using images of leaves and canopy. These novel methods can minimize the time spent on symptom detection, which helps in the control and quantification of the disease severity. In this article, we present some results of deep learning-based approaches used for detecting automatically leaves with downy mildew symptoms from RGB images acquired under laboratory and field conditions. The results obtained so far with AI approaches for detecting leaves with downy mildew symptoms are promising, and they put in evidence of the huge potential of these techniques for practical applications in the context of modern and sustainable viticulture. |
نوع الوثيقة: | article in journal/newspaper |
اللغة: | English French |
تدمد: | 2117-4458 |
Relation: | https://www.bio-conferences.org/articles/bioconf/full_html/2023/13/bioconf_oiv2023_01021/bioconf_oiv2023_01021.html; https://doaj.org/toc/2117-4458; https://doaj.org/article/21df5196d34f4245a7f7206ca3f0d3d7 |
DOI: | 10.1051/bioconf/20236801021 |
الاتاحة: | https://doi.org/10.1051/bioconf/20236801021 https://doaj.org/article/21df5196d34f4245a7f7206ca3f0d3d7 |
رقم الانضمام: | edsbas.4F6FD0AB |
قاعدة البيانات: | BASE |
تدمد: | 21174458 |
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DOI: | 10.1051/bioconf/20236801021 |