Papers › Fruit Maturity Recognition from Agricultural, Market and Automation Perspectives

Fruit Maturity Recognition from Agricultural, Market and Automation Perspectives

10 Nov 2021Annual Conference of the IEEE Industrial Electronics Society (IECON) 2021 11archive 2025-07-28

Koteswar Rao Jerripothula, Sarvesh Kumar Shukla, Samyak Jain, Shudhanshu Singh

Motivated by the potential reduction in the required manual efforts in the fruit industry, this paper attempts to automate fruit maturity recognition. We study the problem from the agricultural, market, and automation perspectives, often taken at different points in the supply chain. Since different maturity states have different visual characteristics, an image classification technology can certainly help here. To develop fruit image classifiers, we need a feature extraction method and a learning algorithm. We use different pre-trained neural networks for effective feature extraction and employ different machine learning algorithms while carrying out bias/variance analysis of the learned models. The analysis helps us select the best ones for each perspective under consideration. We achieve 96%, 94%, and 86% accuracies on our novel dataset named RipeRaw from the agricultural, market, and automation perspectives, respectively.

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Tasks

Fruit-type + Maturity-state Prediction (Multi-label Classification)Raw vs Ripe (Generic)image-classification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Fruit-type + Maturity-state Prediction (Multi-label Classification) RawRipe Dataset VGG16 + Logistic Regression Classification Accuracy 0.862 #1 of 1 Archive leaderboard report
Raw vs Ripe (Generic) RawRipe Dataset VGG16 + Logistic Regression Classification Accuracy 0.944 #1 of 1 Archive leaderboard report

Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.

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