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揿针压埋彭氏眼穴联合运动疗法在缺血性脑卒中偏瘫患者中的应用效果 被引量:2
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作者 张胜男 许萍 +3 位作者 毕军 宋琪 吴龙海 赵莹莹 《中国当代医药》 2019年第34期140-142,146,共4页
目的探讨揿针压埋彭氏眼穴联合运动疗法在缺血性脑卒中偏瘫患者中的应用效果。方法选取2016年9月~2018年5月我院收治的60例缺血性脑卒中偏瘫患者作为研究对象,采用随机数字表法分为对照组和观察组,每组各30例。两组均采取常规基础治疗,... 目的探讨揿针压埋彭氏眼穴联合运动疗法在缺血性脑卒中偏瘫患者中的应用效果。方法选取2016年9月~2018年5月我院收治的60例缺血性脑卒中偏瘫患者作为研究对象,采用随机数字表法分为对照组和观察组,每组各30例。两组均采取常规基础治疗,对照组采用运动疗法,观察组采用运动疗法联合揿针压埋彭氏眼穴。比较两组患者的简化Fugl-Meyer运动功能评分、日常生活能力(ADL)评分和临床治疗效果。结果观察组治疗后的简化Fugl-Meyer运动功能、ADL评分高于对照组,差异均有统计学意义(P<0.05);观察组患者的治疗总有效率为93.3%,高于对照组的73.3%,差异有统计学意义(P<0.05)。结论揿针压埋彭氏眼穴联合运动疗法能有效治疗缺血性脑卒中偏瘫患者的肢体功能障碍,改善患者的日常生活能力,提高治疗效果,值得临床推广应用。 展开更多
关键词 揿针 彭氏眼穴 缺血性脑卒中 运动疗法 偏瘫
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Recognition of field roads based on improved U-Net++Network
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作者 Lili Yang Yuanbo Li +4 位作者 Mengshuai Chang Yuanyuan Xu Bingbing Hu Xinxin Wang Caicong Wu 《International Journal of Agricultural and Biological Engineering》 SCIE 2023年第2期171-178,共8页
Unmanned driving of agricultural machinery has garnered significant attention in recent years,especially with the development of precision farming and sensor technologies.To achieve high performance and low cost,perce... Unmanned driving of agricultural machinery has garnered significant attention in recent years,especially with the development of precision farming and sensor technologies.To achieve high performance and low cost,perception tasks are of great importance.In this study,a low-cost and high-safety method was proposed for field road recognition in unmanned agricultural machinery.The approach of this study utilized point clouds,with low-resolution Lidar point clouds as inputs,generating high-resolution point clouds and Bird's Eye View(BEV)images that were encoded with several basic statistics.Using a BEV representation,road detection was reduced to a single-scale problem that could be addressed with an improved U-Net++neural network.Three enhancements were proposed for U-Net++:1)replacing the convolutional kernel in the original U-Net++ with an Asymmetric Convolution Block(ACBlock);2)adding a multi-branch Asymmetric Dilated Convolutional Block(MADC)in the highest semantic information layer;3)adding an Attention Gate(AG)model to the long-skip-connection in the decoding stage.The results of experiments of this study showed that our algorithm achieved a Mean Intersection Over Union of 96.54% on the 16-channel point clouds,which was 7.35 percentage points higher than U-Net++.Furthermore,the average processing time of the model was about 70 ms,meeting the time requirements of unmanned driving in agricultural machinery.The proposed method of this study can be applied to enhance the perception ability of unmanned agricultural machinery thereby increasing the safety of field road driving. 展开更多
关键词 image segmentation unmanned agricultural machinery field roads point cloud super-resolution point cloud bird’s eye view
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