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A male-specific QTL for social interaction behavior in mice mapped with automated pattern detection by a hidden Markov model incorporated into newly developed freeware

机译:通过结合到新开发的免费软件中的隐马尔可夫模型进行自动模式检测的小鼠社交互动行为的男性特异性QTL

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Background: Owing to their complex nature, social interaction tests normally require the observation of video data by a human researcher, and thus are difficult to use in large-scale studies. We previously established a statistical method, a hidden Markov model (HMM), which enables the differentiation of two social states ("interaction" and "indifference"), and three social states ("sniffing", "following", and "indifference"), automatically in silico. New method: Here, we developed freeware called DuoMouse for the rapid evaluation of social interaction behavior. This software incorporates five steps: (1) settings, (2) video recording, (3) tracking from the video data, (4) HMM analysis, and (5) visualization of the results.
机译:背景:由于社交互动测试的复杂性,通常需要人类研究人员观察视频数据,因此难以在大规模研究中使用。我们之前建立了一种统计方法,即隐马尔可夫模型(HMM),它可以区分两种社会状态(“互动”和“区别”)和三种社交状态(“嗅探”,“跟随”和“区别”) ),会自动进行计算机模拟。新方法:在这里,我们开发了名为DuoMouse的免费软件,用于快速评估社交互动行为。该软件包含五个步骤:(1)设置,(2)视频记录,(3)从视频数据跟踪,(4)HMM分析和(5)结果的可视化。

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