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Early-stage tumor detection using photoacoustic microscopy: A pattern recognition approach

机译:使用光声显微镜进行早期肿瘤检测:一种模式识别方法

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We report photoacoustic microscopy (PAM) of arteriovenous (AV) shunts in early stage tumors in vivo, and develop a pattern recognition framework for computerized tumor detection. Here, using a high-resolution photoacoustic microscope, we implement a new blood oxygenation (s02)-based disease marker induced by the AV shunt effect in tumor angiogenesis. We discovered a striking biological phenomenon: There can be two dramatically different sO_2 values in bloodstreams flowing side-by-side in a single vessel. By tracing abnormal sO_2 values in the blood vessels, we can identify a tumor region at an early stage. To further automate tumor detection based on our findings, we adopt widely used pattern recognition methods and develop an efficient computerized classification framework. The test result shows over 80% averaged detection accuracy with false positive contributing 18.52% of error test samples on a 50 PAM image dataset.
机译:我们报告体内早期肿瘤中动静脉(AV)分流器的光声显微镜(PAM),并为计算机化的肿瘤检测开发模式识别框架。在这里,使用高分辨率的光声显微镜,我们实现了一种新的基于血液氧合(s02)的疾病标记物,该疾病标记物是由AV分流效应在肿瘤血管生成中诱导的。我们发现了一个惊人的生物学现象:在单个血管中并排流动的血流中可能存在两个截然不同的sO_2值。通过追踪血管中异常的sO_2值,我们可以在早期识别出肿瘤区域。为了进一步根据我们的发现自动进行肿瘤检测,我们采用了广泛使用的模式识别方法,并开发了有效的计算机分类框架。测试结果显示,在50个PAM图像数据集上,平均检测准确率超过80%,假阳性占误差测试样本的18.52%。

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