Open Access
Maturity status classification of papaya fruits based on machine learning and transfer learning approach
Publication type: Journal Article
Publication date: 2021-06-01
scimago Q1
wos Q1
SJR: 1.188
CiteScore: 20.4
Impact factor: 7.4
ISSN: 22143173
Computer Science Applications
Agronomy and Crop Science
Animal Science and Zoology
Aquatic Science
Forestry
Abstract
Papaya (Carica papaya) is a tropical fruit having commercial importance because of its high nutritive and medicinal value. The packaging of papaya fruit as per its maturity status is an essential task in the fruit industry. The manual grading of papaya fruit based on human visual perception is time-consuming and destructive. The objective of this paper is to suggest a novel non-destructive maturity status classification of papaya fruits. The paper suggested two approaches based on machine learning and transfer learning for classification of papaya maturity status. Also, a comparative analysis is carried out with different methods of machine learning and transfer learning. The experimentation is carried out with 300 papaya fruit sample images which includes 100 of each three maturity stages. The machine learning approach includes three sets of features and three classifiers with their different kernel functions. The features and classifiers used in machine learning approaches are local binary pattern (LBP), histogram of oriented gradients (HOG), Gray Level Co-occurrence Matrix (GLCM) and k-nearest neighbour (KNN), support vector machine (SVM), Naive Bayes respectively. The transfer learning approach includes seven pre-trained models such as ResNet101, ResNet50, ResNet18, VGG19, VGG16, GoogleNet and AlexNet. The weighted KNN with HOG feature outperforms other machine learning-based classification model with 100% of accuracy and 0.099 5 s training time. Again, among the transfer learning approach based classification model VGG19 performs better with 100% accuracy and 1 min 52 s training time with consideration of early stop training. The proposed classification method for maturity classification of papaya fruits, i.e. VGG19 based on transfer learning approach achieved 100% accuracy which is 6% more than the existing method.
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108
Total citations:
108
Citations from 2024:
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(43.52%)
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Behera S., Mishra B. K., Sethy P. K. Maturity status classification of papaya fruits based on machine learning and transfer learning approach // Information Processing in Agriculture. 2021. Vol. 8. No. 2. pp. 244-250.
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Behera S., Mishra B. K., Sethy P. K. Maturity status classification of papaya fruits based on machine learning and transfer learning approach // Information Processing in Agriculture. 2021. Vol. 8. No. 2. pp. 244-250.
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TY - JOUR
DO - 10.1016/j.inpa.2020.05.003
UR - https://doi.org/10.1016/j.inpa.2020.05.003
TI - Maturity status classification of papaya fruits based on machine learning and transfer learning approach
T2 - Information Processing in Agriculture
AU - Behera, Santi
AU - Mishra, Bikram Keshari
AU - Sethy, Prabira Kumar
PY - 2021
DA - 2021/06/01
PB - Elsevier
SP - 244-250
IS - 2
VL - 8
SN - 2214-3173
ER -
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BibTex (up to 50 authors)
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@article{2021_Behera,
author = {Santi Behera and Bikram Keshari Mishra and Prabira Kumar Sethy},
title = {Maturity status classification of papaya fruits based on machine learning and transfer learning approach},
journal = {Information Processing in Agriculture},
year = {2021},
volume = {8},
publisher = {Elsevier},
month = {jun},
url = {https://doi.org/10.1016/j.inpa.2020.05.003},
number = {2},
pages = {244--250},
doi = {10.1016/j.inpa.2020.05.003}
}
Cite this
MLA
Copy
Behera, Santi, et al. “Maturity status classification of papaya fruits based on machine learning and transfer learning approach.” Information Processing in Agriculture, vol. 8, no. 2, Jun. 2021, pp. 244-250. https://doi.org/10.1016/j.inpa.2020.05.003.