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Differentiation of Fat, Muscle, and Edema in Thigh MRIs Using Random Forest Classification

机译:使用随机林分类,在大腿MRIS中的脂肪,肌肉和水肿的分化

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There are many diseases that affect the distribution of muscles, including Duchenne and fascioscapulohumeral dystrophy among other myopathies. In these disease cases, it is important to quantify both the muscle and fat volumes to track the disease progression. There has also been evidence that abnormal signal intensity on the MR images, which often is an indication of edema or inflammation can be a good predictor for muscle deterioration. We present a fully-automated method that examines magnetic resonance (MR) images of the thigh and identifies the fat, muscle, and edema using a random forest classifier. First the thigh regions are automatically segmented using the T1 sequence. Then, inhomogeneity artifacts were corrected using the N3 technique. The Tl and STIR (short tau inverse recovery) images are then aligned using landmark based registration with the bone marrow. The normalized Tl and STIR intensity values are used to train the random forest. Once trained, the random forest can accurately classify the aforementioned classes. This method was evaluated on MR images of 9 patients. The precision values are 0.91±0.06, 0.98±0.01 and 0.50±0.29 for muscle, fat, and edema, respectively. The recall values are 0.95±0.02, 0.96±0.03 and 0.43±0.09 for muscle, fat, and edema, respectively. This demonstrates the feasibility of utilizing information from multiple MR sequences for the accurate quantification of fat, muscle and edema.
机译:存在许多影响肌肉分布的疾病,包括Duchenne和诱惑诱惑植物营养不良的患者。在这些病例中,重要的是量化肌肉和脂肪量以跟踪疾病进展。还有证据表明MR图像上的信号强度异常是水肿或炎症的指示可以是肌肉劣化的良好预测因子。我们介绍了一种全自动方法,用于检查大腿的磁共振(MR)图像,并使用随机林分类器识别脂肪,肌肉和水肿。首先,大腿区域使用T1序列自动分段。然后,使用N3技术校正不均匀性伪影。然后使用基于骨髓的基于地标配准对准T1和搅拌(短TAU逆恢复)图像。标准化的TL和搅拌强度值用于培训随机林。曾经接受过培训,随机森林可以准确地分类上述课程。在9例患者的MR图像上评估该方法。肌肉,脂肪和水肿的精度值分别为0.91±0.06,0.98±0.01和0.50±0.29。对于肌肉,脂肪和水肿,召回值分别为0.95±0.02,0.95±0.02,0.96±0.03和0.43±0.09。这证明了利用来自多个MR序列信息的可行性,以准确定量脂肪,肌肉和水肿。

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