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Automated body composition analysis system based on chest CT for evaluating content of muscle and adipose 被引量:2
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作者 YANG Jie LIU Yanli +2 位作者 CHEN Xiaoyan CHEN Tianle LIU Qi 《中国医学影像技术》 CSCD 北大核心 2024年第8期1242-1248,共7页
Objective To establish a body composition analysis system based on chest CT,and to observe its value for evaluating content of chest muscle and adipose.Methods T7—T8 layer CT images of 108 pneumonia patients were col... Objective To establish a body composition analysis system based on chest CT,and to observe its value for evaluating content of chest muscle and adipose.Methods T7—T8 layer CT images of 108 pneumonia patients were collected(segmented dataset),and chest CT data of 984 patients were screened from the COVID 19-CT dataset(10 cases were randomly selected as whole test dataset,the remaining 974 cases were selected as layer selection dataset).T7—T8 layer was classified based on convolutional neural network(CNN)derived networks,including ResNet,ResNeXt,MobileNet,ShuffleNet,DenseNet,EfficientNet and ConvNeXt,then the accuracy,precision,recall and specificity were used to evaluate the performance of layer selection dataset.The skeletal muscle(SM),subcutaneous adipose tissue(SAT),intermuscular adipose tissue(IMAT)and visceral adipose tissue(VAT)were segmented using classical fully CNN(FCN)derived network,including FCN,SegNet,UNet,Attention UNet,UNET++,nnUNet,UNeXt and CMUNeXt,then Dice similarity coefficient(DSC),intersection over union(IoU)and 95 Hausdorff distance(HD)were used to evaluate the performance of segmented dataset.The automatic body composition analysis system was constructed based on optimal layer selection network and segmentation network,the mean absolute error(MAE),root mean squared error(RMSE)and standard deviation(SD)of MAE were used to evaluate the performance of automatic system for testing the whole test dataset.Results The accuracy,precision,recall and specificity of DenseNet network for automatically classifying T7—T8 layer from chest CT images was 95.06%,84.83%,92.27%and 95.78%,respectively,which were all higher than those of the other layer selection networks.In segmentation of SM,SAT,IMAT and overall,DSC and IoU of UNet++network were all higher,while 95HD of UNet++network were all lower than those of the other segmentation networks.Using DenseNet as the layer selection network and UNet++as the segmentation network,MAE of the automatic body composition analysis system for predicting SM,SAT,IMAT,VAT and MAE was 27.09,6.95,6.65 and 3.35 cm 2,respectively.Conclusion The body composition analysis system based on chest CT could be used to assess content of chest muscle and adipose.Among them,the UNet++network had better segmentation performance in adipose tissue than SM. 展开更多
关键词 body composition THORAX muscle skeletal adipose tissue deep learning tomography X-ray computed
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涂层改性策略在血液接触材料研究中的应用与展望
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作者 任星蓉 余涛 王云兵 《表面技术》 EI CAS CSCD 北大核心 2024年第23期46-60,共15页
从生物学角度出发,分析探讨了导致血液接触材料失效的凝血与炎症机制,着重介绍了生物惰性涂层、生物活性涂层和仿生内皮化涂层的研究策略,并探讨了其临床应用前景。研究表明,生物惰性涂层可以通过抑制蛋白吸附和减少免疫排斥反应来延长... 从生物学角度出发,分析探讨了导致血液接触材料失效的凝血与炎症机制,着重介绍了生物惰性涂层、生物活性涂层和仿生内皮化涂层的研究策略,并探讨了其临床应用前景。研究表明,生物惰性涂层可以通过抑制蛋白吸附和减少免疫排斥反应来延长材料的使用寿命;生物活性涂层则通过引入抗凝、抗炎及促内皮化等活性分子提升血液相容性;仿生内皮化涂层能够模仿天然内皮细胞及细胞微环境功能,促进材料表面内皮化并减少血栓形成。尽管这些涂层策略已取得显著进展,但涂层的稳定性及功能持久性仍存在挑战。未来的研究需进一步优化涂层设计方案,以实现多功能涂层在临床中的应用,特别是在心血管疾病治疗领域。 展开更多
关键词 血液接触材料 表面改性涂层 凝血 炎症 仿生内皮化 血液相容性
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基于射频通信的实验大鼠生理参数监测系统 被引量:1
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作者 孔嘉铭 张晗 +2 位作者 马坤龙 张本金 杨刚 《传感器与微系统》 CSCD 北大核心 2023年第3期103-107,共5页
为了解决生物医学研究中实验大鼠无创生理参数监测的问题,设计了一种实验大鼠可穿戴生理监测系统。系统选择STM32作为主控芯片实现光电容积脉搏波(PPG)、心电图(ECG)的采集,并利用无线射频(RF)通信将生理信号传输到上位机。最后SD大鼠... 为了解决生物医学研究中实验大鼠无创生理参数监测的问题,设计了一种实验大鼠可穿戴生理监测系统。系统选择STM32作为主控芯片实现光电容积脉搏波(PPG)、心电图(ECG)的采集,并利用无线射频(RF)通信将生理信号传输到上位机。最后SD大鼠活体实验表明:系统采集的ECG波形特征与标准ECG仪采集的信号一致,在95%置信区间(±1.96 SD)内,该系统心率(HR)均值误差为-0.5 bpm;系统采集的大鼠腹部、耳朵和尾部PPG峰度较高。因此,该系统可以无创、实时地监测自由活动大鼠的ECG、HR和PPG等生理指标。 展开更多
关键词 SD大鼠 可穿戴 生理参数 无创 无线射频通信
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