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Supervised and Unsupervised Learning Technology in the Study of Rodent Behavior

机译:啮齿动物行为研究中的有监督和无监督学习技术

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摘要

Quantifying behavior is a challenge for scientists studying neuroscience, ethology, psychology, pathology, etc. Until now, behavior was mostly considered as qualitative descriptions of postures or labor intensive counting of bouts of individual movements. Many prominent behavioral scientists conducted studies describing postures of mice and rats, depicting step by step eating, grooming, courting, and other behaviors. Automated video assessment technologies permit scientists to quantify daily behavioral patterns/routines, social interactions, and postural changes in an unbiased manner. Here, we extensively reviewed published research on the topic of the structural blocks of behavior and proposed a structure of behavior based on the latest publications. We discuss the importance of defining a clear structure of behavior to allow professionals to write viable algorithms. We presented a discussion of technologies that are used in automated video assessment of behavior in mice and rats. We considered advantages and limitations of supervised and unsupervised learning. We presented the latest scientific discoveries that were made using automated video assessment. In conclusion, we proposed that the automated quantitative approach to evaluating animal behavior is the future of understanding the effect of brain signaling, pathologies, genetic content, and environment on behavior.
机译:量化行为是研究神经科学,人类学,心理学,病理学等问题的科学家所面临的挑战。直到现在,行为大多被视为对姿势的定性描述或对单个动作的努力进行劳动密集型计数。许多杰出的行为科学家进行了研究,描述了老鼠和大鼠的姿势,并逐步描述了饮食,修饰,求爱和其他行为。自动化的视频评估技术使科学家能够以无偏见的方式量化日常行为模式/例程,社交互动和姿势变化。在这里,我们广泛地回顾了有关行为结构块的主题的已发表研究,并根据最新出版物提出了一种行为结构。我们讨论定义行为的清晰结构以使专业人员编写可行的算法的重要性。我们提出了对在小鼠和大鼠行为的自动视频评估中使用的技术的讨论。我们考虑了有监督和无监督学习的优点和局限性。我们介绍了使用自动视频评估获得的最新科学发现。总之,我们认为评估动物行为的自动定量方法是了解脑信号,病理,遗传含量和环境对行为的影响的未来。

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