AI Article Synopsis

  • - The study focuses on improving jasmine tea quality by accurately harvesting jasmine flowers at the right growth stage, using the YOLOv7 algorithm to classify flower types based on their visual characteristics.
  • - The YOLOv7 model achieved a mean average precision of 0.948, with high detection accuracy for various flower openness levels ranging from small buds to wilted flowers.
  • - Findings suggest that deep learning can effectively distinguish between jasmine flowers at different stages, potentially aiding in better production practices and smarter flower-picking methods to minimize waste and costs.

Article Abstract

Background: To produce jasmine tea of excellent quality, it is crucial to select jasmine flowers at their optimal growth stage during harvesting. However, achieving this goal remains a challenge due to environmental and manual factors. This study addresses this issue by classifying different jasmine flowers based on visual attributes using the YOLOv7 algorithm, one of the most advanced algorithms in convolutional neural networks.

Results: The mean average precision (mAP value) for detecting jasmine flowers using this model is 0.948, and the accuracy for five different degrees of openness of jasmine flowers, namely small buds, buds, half-open, full-open and wiltered, is 87.7%, 90.3%, 89%, 93.9% and 86.4%, respectively. Meanwhile, other ways of processing the images in the dataset, such as blurring and changing the brightness, also increased the credibility of the algorithm.

Conclusion: This study shows that it is feasible to use deep learning algorithms for distinguishing jasmine flowers at different growth stages. This study can provide a reference for jasmine production estimation and for the development of intelligent and precise flower-picking applications to reduce flower waste and production costs. © 2024 Society of Chemical Industry.

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Source
http://dx.doi.org/10.1002/jsfa.13752DOI Listing

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