New-generation rice seed germination assessment: high efficiency and flexibility via SeedRuler web-based platform
Zeyu Hou, Jinfeng Zhao, Sheng Dai, Jiawen Yang, Yan Ma, Ming Gong

TL;DR
SeedRuler is a web-based platform that improves rice seed germination analysis using image processing and deep learning, offering faster and more accurate results.
Contribution
SeedRuler introduces a flexible, web-based platform combining traditional and deep learning methods for efficient rice seed germination assessment.
Findings
SeedRuler-YOLO achieved a mean average precision (mAP) of 0.955 and a mean absolute error (MAE) of 0.110.
The platform supports interactive germination standard customization and automated seed size measurement.
Analysis results are delivered in under 30 seconds per image.
Abstract
The germination rate of rice seed is a critical indicator in agricultural research and production, directly influencing crop yield and quality. Traditional assessment methods based on manual visual inspection are often time-consuming, labor-intensive, and prone to subjectivity. Existing automated approaches, while helpful, typically suffer from limitations such as rigid germination standards, strict imaging requirements, and difficulties in handling the small size, dense arrangement, and variable radicle lengths of rice seeds. To address these challenges, we present SeedRuler, a versatile, web-based application designed to improve the accuracy, efficiency, and usability of rice seed germination analysis. SeedRuler integrates three core components: SeedRuler-IP, a traditional image processing-based module; SeedRuler-YOLO, a deep learning model built on YOLOv5 for high-precision object…
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Taxonomy
TopicsRice Cultivation and Yield Improvement · Plant responses to water stress · Soybean genetics and cultivation
