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Toward Automatic Behavioral Screen: A Computational Model for Analyzing Caenorhabditis elegans Locomotion

机译:朝向自动行为屏幕:分析CaenorhabditisEgeliss Locomotion的计算模型

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Genetic screen has been facilitating molecular geneticists to analyze mutants that produce certain phenotypes. However traditional methods for behavioral phenotype screen of mutant Caenorhabditis elegans rely on human observers and therefore are subjective and imprecise. This work dedicates a model to quantify and analyze the worm behavior using automatically-tracking and time-coded images. We have delved into the following questions: (1) how to achieve simplified worm-shape representation, (2) how to describe worm locomotion, (3) how to obtain frequent locomotion patterns and then representative behavioral patterns, and (4) how to discover interesting behaviorial actions within a representative behavioral pattern. Since the methodologies focus on rigorous image-based behavioral screening and phenotyping, the proposed methods should be trustworthy for behavior analysis of tiny organisms based on their microscopic video frames.
机译:遗传筛网一直促进分子遗传学分子分析产生某些表型的突变体。然而,突变体Caenorhabdise秀丽隐杆线虫的行为表型筛选的传统方法依赖于人类观察者,因此是主观和不精确的。这项工作致力于使用自动跟踪和时间编码图像来定量和分析蠕虫行为的模型。我们已经阐述了以下问题:(1)如何实现简化的蠕虫形状,(2)如何描述蠕虫运动,(3)如何获得频繁的运动模式,然后是代表性行为模式,以及(4)如何发现代表性行为模式中有趣的行为行为。由于该方法专注于基于图像的性行为的行为筛查和表型,因此所提出的方法应该是基于微观视频帧的微小生物的行为分析。

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