Joint space narrowing progression quantification with joint angle correction in rheumatoid arthritis

Yafei Ou, P. Ambalathankandy, Ryunosuke Furuya, Seiya Kawada, Tamotsu Kamishima, M. Ikebe
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引用次数: 1

Abstract

Rheumatoid arthritis is a form of autoimmune disease characterized by synovitis that can ultimately cause joint deformities and impaired functioning. The cartilage destruction is one of the most important indicators for diagnosis and treatment of Rheumatoid arthritis, and it is radiographically manifested as joint space narrowing. In this study, we propose a joint location detection method and a sub-pixel accurate method for quantifying joint space narrowing progression with a joint angle correction. The proposed joint location detection method can detect the location of 14 joints from a given hand radiographic image, the error of 89.13% joints is less than 3 pixels (spatial resolution: 0.175 mm/pixel). In our previous works, we measured joint space narrowing progression between a baseline and its follow-up finger joint images by using partial image phase only correlation. We found that the inconsistency of joint angles may lead to characteristic mismatch and thus affect the accuracy of joint space narrowing quantification. In this work, we introduce rotation invariant phase only correlation in joint space narrowing quantification for joint angle correction. In our experiment, the improved quantification method can effectively manage the mismatch due to the inconsistency of joint angles.
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类风湿关节炎关节间隙狭窄进展量化与关节角度矫正
类风湿性关节炎是一种以滑膜炎为特征的自身免疫性疾病,最终可导致关节畸形和功能受损。软骨破坏是类风湿关节炎诊断和治疗的重要指标之一,影像学表现为关节间隙狭窄。在本研究中,我们提出了一种关节位置检测方法和一种亚像素精度的方法,用于量化关节角度校正的关节空间缩小进程。所提出的关节位置检测方法可以从给定的手部放射图像中检测出14个关节的位置,关节的误差为89.13%,误差小于3个像素(空间分辨率:0.175 mm/像素)。在我们之前的工作中,我们通过使用部分图像相位仅相关来测量基线和后续手指关节图像之间的关节间隙缩小进展。研究发现,关节角度的不一致可能导致特征失配,从而影响关节空间缩小量化的准确性。本文在关节空间缩小量化中引入旋转不变相位相关,用于关节角度校正。在我们的实验中,改进的量化方法可以有效地管理由于关节角度不一致而导致的失配。
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