Hollow Gradient-Structured Iron-Anchored Carbon Nanospheres for Enhanced Electromagnetic Wave Absorption.

Hollow Gradient-Structured Iron-Anchored Carbon Nanospheres for Enhanced Electromagnetic Wave Absorption.
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用于增强电磁波吸收的空心梯度结构铁锚碳纳米球。

DOI:
10.1007/978-3-319-52718-5_7
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发表时间:
2022
期刊:
影响因子:
26.6
通讯作者:
Wu C
Wu C
中科院分区:
材料科学1区
文献类型:
--
作者:
Wu C

文献摘要

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心脏运动固有地与心脏的疾病状态相关联,并且因此可以用于识别不同心脏病理的存在和程度。异常心脏运动可以表现在心肌的不同空间尺度上,这取决于存在的疾病。空间尺度在心脏运动分析中的重要性以前没有被明确研究过。在本文中,提出了一种新的方法来分析心肌应变在不同的空间尺度使用心脏运动图谱,以找到最佳的尺度(1)预测响应心脏起搏治疗和(2)确定存在严格的左冠状支阻滞的患者队列中的34。最佳的空间尺度为两个应用程序被发现是和左心室容积的准确度分别为和,使用重复的,分层交叉验证。
Cardiac motion is inherently tied to the disease state of the heart, and as such can be used to identify the presence and extent of different cardiac pathologies. Abnormal cardiac motion can manifest at different spatial scales of the myocardium depending on the disease present. The importance of spatial scale in the analysis of cardiac motion has not previously been explicitly investigated. In this paper, a novel approach is presented for analysing myocardial strains at different spatial scales using a cardiac motion atlas to find the optimal scales for (1) predicting response to cardiac resynchronisation therapy and (2) identifying the presence of strict left bundle-branch block in a patient cohort of 34. Optimal spatial scales for the two applications were found to beandof left ventricular volume with accuracies ofand, respectively, using a repeated, stratified cross-validation.