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Computer-aided detection of focal bone metastases from whole-body multi-modal MRI

机译:全身多模式MRI的计算机辅助检测局灶性骨转移

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The confident, detection and monitoring of met astatic bone disease remains one of the major unfulfilled needs in oncology. Whole-body MRI offers excellent resolution and sensitivity for the detection of neoplastic cells within the bone marrow using so-called anatomical sequences. In combination with whole-body diffusion-weighted functional sequences, it has shown a great potential in the assessment of patient tumor involvement. However, metastatic bone disease can lead to a large amount of bone lesions spread across the skeleton, making it impractical and labor demanding to manually delineate by a radiologist. Computer-aided detection could alleviate the workflow, enabling automatic, accurate and reproducible study of the patient tumor load. In this paper, we propose a fully automated computer-aided detection system for bone metastases composed of two steps. First, whole-body multi-modal MR image preprocessing is performed consisting of intra- and inter-modality image spatial registration, intensity standardization and atlas-based segmentation of the skeleton. The second stage detects the metastases candidates using random forest voxel classification algorithm. The system is evaluated on the dataset of 6 male advanced prostate cancer patients with metastases to the bone using a leave-one-patient-out cross-validation with manual segmentation of the metastases as the reference standard. The proposed system showed metastases detection sensitivity of 0.74 with a median false positive rate of 9.67. In clinical workflow the system could potentially be used as the initial screening and treatment response assessment tool for whole-body multi-modal MRI of any advanced cancer with metastases to the bone.
机译:相识的患者骨病的自信,检测和监测仍然是肿瘤学中的主要需求之一。使用所谓的解剖序列,全身MRI提供优异的分辨率和敏感性,用于检测骨髓内骨髓内的肿瘤细胞。结合全身扩散加权官能序列,它在评估患者肿瘤受累时显示出巨大的潜力。然而,转移性骨病可导致大量的骨骼病变遍布骨架,使放射科医师手动描绘的不切实际和劳动力。计算机辅助检测可以缓解工作流程,从而实现对患者肿瘤载荷的自动,准确和可重复的研究。在本文中,我们提出了一种用于骨转移的全自动计算机辅助检测系统,其由两个步骤组成。首先,通过骨架的模态图像空间登记,强度标准化和阿特拉斯的基于骨架的分割组成,组成全身多模态MR图像预处理。第二阶段使用随机林体素分类算法检测转移候选者。该系统在6名男性晚期前列腺癌患者的数据集中,使用休假患者的交叉验证与转移的手动分割作为参考标准,在骨骼转移到骨骼的转移。所提出的系统显示出转移检测灵敏度为0.74,中值误率为9.67。在临床工作流程中,系统可以用作任何晚期癌症的全身多型MRI的初始筛选和治疗响应评估工具,其转移到骨骼的转移。

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