To solve the problem of accurate recognition and picking of tea by tea picking robot, this study proposes a S-YOLOv10-SIC algorithm that integrates slice-assisted hyper-inference algorithm. This algorithm enhances the YOLOv10 network by introducing Space-to-Depth Convolution, asymptotic feature pyramid network, and Inner-IoU. These improvements reduce the loss of detailed information in long-distance and low-resolution images, improve key layer saliency, optimize non-adjacent layer fusion, enhance model convergence speed, and increase model universality.

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[1] Wang Baijuan, Zhang Shihao, "Anji White Tea", IEEE Dataport, 2024. [Online]. Available: http://dx.doi.org/10.21227/eefx-a805. Accessed: Dec. 08, 2024.
@data{eefx-a805-24,
doi = {10.21227/eefx-a805},
url = {http://dx.doi.org/10.21227/eefx-a805},
author = {Wang Baijuan; Zhang Shihao },
publisher = {IEEE Dataport},
title = {Anji White Tea},
year = {2024} }
TY - DATA
T1 - Anji White Tea
AU - Wang Baijuan; Zhang Shihao
PY - 2024
PB - IEEE Dataport
UR - 10.21227/eefx-a805
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Wang Baijuan, Zhang Shihao. (2024). Anji White Tea. IEEE Dataport. http://dx.doi.org/10.21227/eefx-a805
Wang Baijuan, Zhang Shihao, 2024. Anji White Tea. Available at: http://dx.doi.org/10.21227/eefx-a805.
Wang Baijuan, Zhang Shihao. (2024). "Anji White Tea." Web.
1. Wang Baijuan, Zhang Shihao. Anji White Tea [Internet]. IEEE Dataport; 2024. Available from : http://dx.doi.org/10.21227/eefx-a805
Wang Baijuan, Zhang Shihao. "Anji White Tea." doi: 10.21227/eefx-a805