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An Automated Method to Detect Interstitial Adipose Tissue in Thigh Muscles for Patients with Osteoarthritis

机译:一种自动化方法,用于检测大腿肌腱中患者骨关节炎患者的脂肪脂肪组织

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In this paper we explore a method of segmentation of muscle interstitial adipose tissue (IAT) in MR images of the thigh. The objective is to apply the method towards research into biomarkers of osteoarthritis (OA). T1-weighted images of the thigh are intensity standardized through bias field correction and intensity normalization. IAT within the thigh muscles is then segmented using a threshold combined with morphological constraints applied on connected regions in the thresholded image. The morphological constraints can be adjusted to allow for highly sensitive or highly specific IAT segmentation. The use of the morphological constraints improved the specificity of IAT segmentation over a threshold segmentation method from 0.54 to 0.67, while retaining a nearly equivalent sensitivity of 0.82 compared to 0.84. We then present a preliminary statistical analysis to demonstrate the application of the automated IAT segmentation. Finally, we specify a protocol for further exploration of IAT by leveraging the massive imaging dataset of the Osteoarthritis Initiative (OAI).
机译:在本文中,我们探讨了大腿MR图像中肌肉间质脂肪组织(IAT)的分割方法。目的是将该方法应用于骨关节炎(OA)的生物标志物。大腿的T1加权图像是通过偏置场校正和强度归一化标准化的强度。然后使用阈值与在阈值图像中的连接区域上施加的形态约束结合进行大腿肌内的IAT。可以调整形态约束以允许高度敏感或高度的IAT分割。形态学约束的使用改善了从0.54至0.67的阈值分段方法改善了IAT分割的特异性,同时保持与0.84相比的几乎等效的敏感性0.82。然后,我们提出了初步统计分析,以证明自动化IAT分割的应用。最后,我们通过利用骨关节炎倡议(OAI)的巨大成像数据集来指定进一步探索IAT的协议。

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