Coffee Leaf Disease Detection Using Transfer Learning

Publication typeBook Chapter
Publication date2023-03-21
scimago Q4
SJR0.182
CiteScore1.1
Impact factor
ISSN18650929, 18650937
Abstract
Recognizing disease in coffee leaves is an important aspect of providing a better quality of coffee across the world. Economies of many countries in the world depend upon the export of coffee and if we fail to recognize the disease in the coffee plant it will have a negative impact on them. The objective of this paper is to propose models for recognizing disease in coffee leaf plants. For achieving our objective we used various pre-trained models. We used transfer learning approach to identify coffee leaf detection. There were several models that achieved great results on both training and testing data. However, the best-achieving model was VGG19 due to less memory utilized and less time required for execution.
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GOST Copy
Sharma A., Azeem N. A., Sharma S. Coffee Leaf Disease Detection Using Transfer Learning // Communications in Computer and Information Science. 2023. pp. 227-238.
GOST all authors (up to 50) Copy
Sharma A., Azeem N. A., Sharma S. Coffee Leaf Disease Detection Using Transfer Learning // Communications in Computer and Information Science. 2023. pp. 227-238.
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RIS Copy
TY - GENERIC
DO - 10.1007/978-3-031-28183-9_16
UR - https://doi.org/10.1007/978-3-031-28183-9_16
TI - Coffee Leaf Disease Detection Using Transfer Learning
T2 - Communications in Computer and Information Science
AU - Sharma, Anshuman
AU - Azeem, Noamaan Abdul
AU - Sharma, Sanjeev
PY - 2023
DA - 2023/03/21
PB - Springer Nature
SP - 227-238
SN - 1865-0929
SN - 1865-0937
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@incollection{2023_Sharma,
author = {Anshuman Sharma and Noamaan Abdul Azeem and Sanjeev Sharma},
title = {Coffee Leaf Disease Detection Using Transfer Learning},
publisher = {Springer Nature},
year = {2023},
pages = {227--238},
month = {mar}
}