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Artificial intelligence models based on non-contrast chest CT for measuring bone mineral density 被引量:1
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作者 DUAN Wei YANG Guoqing +6 位作者 LI Yang SHI Feng YANG Lian XIONG Xin CHEN Bei LI Yong FU Quanshui 《中国医学影像技术》 CSCD 北大核心 2024年第8期1231-1235,共5页
Objective To observe the value of artificial intelligence(AI)models based on non-contrast chest CT for measuring bone mineral density(BMD).Methods Totally 380 subjects who underwent both non-contrast chest CT and quan... Objective To observe the value of artificial intelligence(AI)models based on non-contrast chest CT for measuring bone mineral density(BMD).Methods Totally 380 subjects who underwent both non-contrast chest CT and quantitative CT(QCT)BMD examination were retrospectively enrolled and divided into training set(n=304)and test set(n=76)at a ratio of 8∶2.The mean BMD of L1—L3 vertebrae were measured based on QCT.Spongy bones of T5—T10 vertebrae were segmented as ROI,radiomics(Rad)features were extracted,and machine learning(ML),Rad and deep learning(DL)models were constructed for classification of osteoporosis(OP)and evaluating BMD,respectively.Receiver operating characteristic curves were drawn,and area under the curves(AUC)were calculated to evaluate the efficacy of each model for classification of OP.Bland-Altman analysis and Pearson correlation analysis were performed to explore the consistency and correlation of each model with QCT for measuring BMD.Results Among ML and Rad models,ML Bagging-OP and Rad Bagging-OP had the best performances for classification of OP.In test set,AUC of ML Bagging-OP,Rad Bagging-OP and DL OP for classification of OP was 0.943,0.944 and 0.947,respectively,with no significant difference(all P>0.05).BMD obtained with all the above models had good consistency with those measured with QCT(most of the differences were within the range of Ax-G±1.96 s),which were highly positively correlated(r=0.910—0.974,all P<0.001).Conclusion AI models based on non-contrast chest CT had high efficacy for classification of OP,and good consistency of BMD measurements were found between AI models and QCT. 展开更多
关键词 OSTEOPOROSIS bone density tomography X-ray computed artificial intelligence
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洪春英·作品选
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作者 洪春英 《当代文坛》 CSSCI 北大核心 2019年第6期I0001-I0001,共1页
作品说明:从材料的物理特性角度挖掘视觉形态特色,从材料的文化内涵展现情感语义。《疏影》和《繁绘》两个主题作品,应用纺织纤维材料,通过造型、色彩、质感的构成设计,突破装饰品传统和单调的平面形式,体现出现代和立体的创意效果。
关键词 作品选 纤维材料 视觉形态 物理特性 文化内涵 《疏影》 构成设计 装饰品
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“记取愁人闽海边”——清代女诗人许琛论
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作者 郑珊珊 《南昌大学学报(人文社会科学版)》 CSSCI 北大核心 2016年第4期119-124,共6页
许琛是清代乾隆朝著名的女诗人,她幼承家学,早有诗名,工书善画,才情出众,著有《疏影楼稿》。她与同时代许多女诗人文学往来频繁,并与亲友在福州结诗社"光禄派",时常联吟唱和。许琛一生际遇坎坷,长年孤苦,但她常以诗画寄托怀... 许琛是清代乾隆朝著名的女诗人,她幼承家学,早有诗名,工书善画,才情出众,著有《疏影楼稿》。她与同时代许多女诗人文学往来频繁,并与亲友在福州结诗社"光禄派",时常联吟唱和。许琛一生际遇坎坷,长年孤苦,但她常以诗画寄托怀抱。其诗记录了许琛的人生经历与心路历程,在一定程度上反映了女性主体意识与文学自觉;她与同时代许多女诗人间频繁的文学往来见证了清代女性文学的繁荣;她对文学的不懈追求体现了她对自我身份空间的积极拓展。许琛是女性文学史上不容忽视的一位女诗人。 展开更多
关键词 许琛 女诗人 《疏影楼稿》 光禄派 清代
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