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Synthesizing whole slide images

机译:合成整个幻灯片图像

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The increasing availability of digital whole slide images opens new perspectives for computer-assisted image analysis complementing modern histopathology, assuming we can implement reliable and efficient image analysis algorithms to extract the biologically relevant information. Both validation and supervised learning techniques typically rely on ground truths manually made by human experts. However, this task is difficult, subjective and usually not exhaustive. This is a well-known issue in the field of biomedical imaging, and a common solution is the use of artificial “phantoms”. Following this trend, we study the feasibility of synthesizing artificial histological images to create perfect ground truths. In this paper, we show that it is possible to generate a synthetic whole slide image with reasonable computing resources, and we propose a way to evaluate its quality.
机译:越来越多的数字整体幻灯片图像可为计算机辅助图像分析提供新的透视,其补充现代组织病理学,假设我们可以实现可靠且有效的图像分析算法来提取生物学相关信息。验证和监督学习技术通常依赖于人类专家手动制造的地面真理。但是,这项任务很困难,主观和通常不尽。这是生物医学成像领域的众所周知的问题,并且常见的解决方案是使用人工“幻影”。在这一趋势之后,我们研究了合成人工组织学图像的可行性,以创造完美的地面真理。在本文中,我们表明,可以使用合理的计算资源生成合成的整体幻灯片图像,并提出一种评估其质量的方法。

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