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Multi-Scale Mixed Attention Tea Shoot Instance Segmentation Model
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作者 Dongmei chen Peipei Cao +5 位作者 Lijie Yan huidong chen Jia Lin Xin Li Lin Yuan Kaihua Wu 《Phyton-International Journal of Experimental Botany》 SCIE 2024年第2期261-275,共15页
Tea leaf picking is a crucial stage in tea production that directly influences the quality and value of the tea.Traditional tea-picking machines may compromise the quality of the tea leaves.High-quality teas are often... Tea leaf picking is a crucial stage in tea production that directly influences the quality and value of the tea.Traditional tea-picking machines may compromise the quality of the tea leaves.High-quality teas are often handpicked and need more delicate operations in intelligent picking machines.Compared with traditional image processing techniques,deep learning models have stronger feature extraction capabilities,and better generalization and are more suitable for practical tea shoot harvesting.However,current research mostly focuses on shoot detection and cannot directly accomplish end-to-end shoot segmentation tasks.We propose a tea shoot instance segmentation model based on multi-scale mixed attention(Mask2FusionNet)using a dataset from the tea garden in Hangzhou.We further analyzed the characteristics of the tea shoot dataset,where the proportion of small to medium-sized targets is 89.9%.Our algorithm is compared with several mainstream object segmentation algorithms,and the results demonstrate that our model achieves an accuracy of 82%in recognizing the tea shoots,showing a better performance compared to other models.Through ablation experiments,we found that ResNet50,PointRend strategy,and the Feature Pyramid Network(FPN)architecture can improve performance by 1.6%,1.4%,and 2.4%,respectively.These experiments demonstrated that our proposed multi-scale and point selection strategy optimizes the feature extraction capability for overlapping small targets.The results indicate that the proposed Mask2FusionNet model can perform the shoot segmentation in unstructured environments,realizing the individual distinction of tea shoots,and complete extraction of the shoot edge contours with a segmentation accuracy of 82.0%.The research results can provide algorithmic support for the segmentation and intelligent harvesting of premium tea shoots at different scales. 展开更多
关键词 Tea shoots attention mechanism multi-scale feature extraction instance segmentation deep learning
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Prevention of nosocomial COVID-19 infections in otorhinolaryngology-head and neck surgery
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作者 Jie Ren Xilin Yang +10 位作者 Zhen Xu Weiwei Lei Kun Yang Yonggang Kong Jining Qu Hua Liao Yi He huidong chen Yan Wang Feng Zeng Qingquan Hua 《World Journal of Otorhinolaryngology-Head and Neck Surgery》 2020年第S01期S6-S10,共5页
Coronavirus disease 2019(COVID-19)has rapidly evolved into a pandemic,causing a global public health crisis.Many frontline healthcare workers providing ear,nose and throat services have been reported to contract COVID... Coronavirus disease 2019(COVID-19)has rapidly evolved into a pandemic,causing a global public health crisis.Many frontline healthcare workers providing ear,nose and throat services have been reported to contract COVID-19 at work.Early during the COVID-19 outbreak,several medical professionals in Otolaryngology-Head and Neck Surgery were in-fected in Wuhan,China.A series of measures were then taken immediately,which successfully halted the spread of the disease.Here we would like to share the lessons we have learned,and our experience to protect our health care workers during the COVID-19 pandemic. 展开更多
关键词 COVID-19 Nosocomial infection PREVENTION
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