Class-specific Data Augmentation for Plant Stress Classification

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Saleem, Nasla, Balu, Aditya, Jubery, Talukder Zaki, Singh, Arti, Singh, Asheesh K., Sarkar, Soumik, Ganapathysubramanian, Baskar
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866907948923486208
author Saleem, Nasla
Balu, Aditya
Jubery, Talukder Zaki
Singh, Arti
Singh, Asheesh K.
Sarkar, Soumik
Ganapathysubramanian, Baskar
author_facet Saleem, Nasla
Balu, Aditya
Jubery, Talukder Zaki
Singh, Arti
Singh, Asheesh K.
Sarkar, Soumik
Ganapathysubramanian, Baskar
contents Data augmentation is a powerful tool for improving deep learning-based image classifiers for plant stress identification and classification. However, selecting an effective set of augmentations from a large pool of candidates remains a key challenge, particularly in imbalanced and confounding datasets. We propose an approach for automated class-specific data augmentation using a genetic algorithm. We demonstrate the utility of our approach on soybean [Glycine max (L.) Merr] stress classification where symptoms are observed on leaves; a particularly challenging problem due to confounding classes in the dataset. Our approach yields substantial performance, achieving a mean-per-class accuracy of 97.61% and an overall accuracy of 98% on the soybean leaf stress dataset. Our method significantly improves the accuracy of the most challenging classes, with notable enhancements from 83.01% to 88.89% and from 85.71% to 94.05%, respectively. A key observation we make in this study is that high-performing augmentation strategies can be identified in a computationally efficient manner. We fine-tune only the linear layer of the baseline model with different augmentations, thereby reducing the computational burden associated with training classifiers from scratch for each augmentation policy while achieving exceptional performance. This research represents an advancement in automated data augmentation strategies for plant stress classification, particularly in the context of confounding datasets. Our findings contribute to the growing body of research in tailored augmentation techniques and their potential impact on disease management strategies, crop yields, and global food security. The proposed approach holds the potential to enhance the accuracy and efficiency of deep learning-based tools for managing plant stresses in agriculture.
format Preprint
id arxiv_https___arxiv_org_abs_2406_13081
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Class-specific Data Augmentation for Plant Stress Classification
Saleem, Nasla
Balu, Aditya
Jubery, Talukder Zaki
Singh, Arti
Singh, Asheesh K.
Sarkar, Soumik
Ganapathysubramanian, Baskar
Computer Vision and Pattern Recognition
Data augmentation is a powerful tool for improving deep learning-based image classifiers for plant stress identification and classification. However, selecting an effective set of augmentations from a large pool of candidates remains a key challenge, particularly in imbalanced and confounding datasets. We propose an approach for automated class-specific data augmentation using a genetic algorithm. We demonstrate the utility of our approach on soybean [Glycine max (L.) Merr] stress classification where symptoms are observed on leaves; a particularly challenging problem due to confounding classes in the dataset. Our approach yields substantial performance, achieving a mean-per-class accuracy of 97.61% and an overall accuracy of 98% on the soybean leaf stress dataset. Our method significantly improves the accuracy of the most challenging classes, with notable enhancements from 83.01% to 88.89% and from 85.71% to 94.05%, respectively. A key observation we make in this study is that high-performing augmentation strategies can be identified in a computationally efficient manner. We fine-tune only the linear layer of the baseline model with different augmentations, thereby reducing the computational burden associated with training classifiers from scratch for each augmentation policy while achieving exceptional performance. This research represents an advancement in automated data augmentation strategies for plant stress classification, particularly in the context of confounding datasets. Our findings contribute to the growing body of research in tailored augmentation techniques and their potential impact on disease management strategies, crop yields, and global food security. The proposed approach holds the potential to enhance the accuracy and efficiency of deep learning-based tools for managing plant stresses in agriculture.
title Class-specific Data Augmentation for Plant Stress Classification
topic Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2406.13081