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Searching for motifs in the behaviour of larval Drosophila melanogaster and Caenorhabditis elegans reveals continuity between behavioural states

机译:在幼虫果蝇和秀丽隐杆线虫的行为中寻找基序可以揭示行为状态之间的连续性

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摘要

We present a novel method for the unsupervised discovery of behavioural motifs in larval Drosophila melanogaster and Caenorhabditis elegans. A motif is defined as a particular sequence of postures that recurs frequently. The animal's changing posture is represented by an eigenshape time series, and we look for motifs in this time series. To find motifs, the eigenshape time series is segmented, and the segments clustered using spline regression. Unlike previous approaches, our method can classify sequences of unequal duration as the same motif. The behavioural motifs are used as the basis of a probabilistic behavioural annotator, the eigenshape annotator (ESA). Probabilistic annotation avoids rigid threshold values and allows classification uncertainty to be quantified. We apply eigenshape annotation to both larval Drosophila and C. elegans and produce a good match to hand annotation of behavioural states. However, we find many behavioural events cannot be unambiguously classified. By comparing the results with ESA of an artificial agent's behaviour, we argue that the ambiguity is due to greater continuity between behavioural states than is generally assumed for these organisms.
机译:我们目前为幼虫果蝇和秀丽隐杆线虫行为图案的无监督发现的一种新方法。图案被定义为经常重复出现的特定姿势顺序。动物的姿势变化由特征形状时间序列表示,我们在该时间序列中寻找图案。为了找到图案,对本征形状时间序列进行了分段,并使用样条回归对这些分段进行了聚类。与以前的方法不同,我们的方法可以将持续时间不等的序列分类为同一主题。行为主题用作概率行为注释器(本征形状注释器,ESA)的基础。概率注释避免了严格的阈值,并允许对分类不确定性进行量化。我们对幼虫果蝇和秀丽隐杆线虫都应用了特征形状注解,并为行为状态的手注产生了很好的匹配。但是,我们发现许多行为事件无法明确分类。通过将结果与人工制剂行为的ESA进行比较,我们认为歧义性是由于行为状态之间的连续性比这些生物通常所假定的更大。

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