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Optimization in Prostate Cancer Detection

机译:前列腺癌检测的优化

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摘要

Clinical diagnosis of prostate cancer is most often done by transrectal ultrasound-guided needle biopsy. Because of the low resolution of ultrasound, however, the urologist cannot usually distinguish between cancerous and healthy tissue. Therefore, most biopsies follow standard protocols based on long-term physician experience. Recent studies indicate that these protocols may have a significant rate of false negative diagnoses. This research develops optimized biopsy protocols. We use real prostate specimens removed by prostatectomy to develop a 3D distribution map of cancer in the prostate. We develop also a probability model of the needle insertion procedure. Using this model, the tumor map, and the geometry of the biopsy needle, we obtain estimates for the probability of obtaining a positive biopsy in various zones of prostates with cancer. We develop a nonlinear optimization problem that determines the protocols that maximize the probability of cancer detection for a given number of needles, and present new optimized protocols.
机译:前列腺癌的临床诊断通常是通过直肠超声引导下的穿刺活检来完成的。但是,由于超声的分辨率低,泌尿科医师通常无法区分癌性组织和健康组织。因此,大多数活检都遵循基于长期医师经验的标准方案。最近的研究表明,这些协议可能有很大的假阴性诊断率。这项研究开发了优化的活检方案。我们使用经前列腺切除术切除的真实前列腺标本来制定前列腺癌的3D分布图。我们还开发了针头插入过程的概率模型。使用该模型,肿瘤图和活检针的几何形状,我们获得了在患有癌症的前列腺各个区域中获得阳性活检的可能性的估计。我们开发了一个非线性优化问题,该问题确定了可以针对给定数量的针头最大化癌症检测概率的方案,并提出了新的优化方案。

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