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Statistically optimized biopsy strategy for the diagnosis of prostate cancer

机译:统计上优化的前列腺癌诊断活检策略

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This paper presents a method for optimizing prostate needle biopsy, by creating a statistical atlas of the spatial distribution of prostate cancer from a large patient cohort. In order to remove inter-individual morphological variability and to determine the true variability in the spatial distribution of cancer within the prostate, an adaptive-focus deformable model (AFDM) is first used to register and normalize the prostate samples. A probabilistic method is then developed to select the prostate-biopsy strategy that the greatest chance of detecting prostate cancer. For a test set of data from 20 prostate subjects, five needle locations are adequate to detect the tumor 100% of the time. Furthermore, the results on the accuracy of deformable registration and the predictive power of our statistically optimized biopsy strategy are presented in this paper.
机译:本文介绍了一种优化前列腺针活检的方法,通过创建来自大型患者队列的前列腺癌的空间分布的统计阿特拉斯。为了消除个体间形态变异并确定前列腺内癌症的空间分布的真正变异,首先使用自适应聚焦可变形模型(AFDM)来注册和归一化前列腺样品。然后开发了一种概率的方法来选择前列腺活检策略,即检测前列腺癌的最大机会。对于来自20个前列腺受试者的测试集,五个针位置足以100%的时间检测肿瘤。此外,本文介绍了可变形登记的准确性的结果和我们统计上优化的活检策略的预测力。

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