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Application of machine learning techniques in investigating the relationship between neuroimaging dataset measured by functional near infra-red spectroscopy and behavioral dataset in a moral judgment task

机译:机器学习技术在道德判决任务中靠近红外光谱和行为数据集测量的神经影像数据集之间的应用

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Coupling behavioral information with functional neuroimaging data sets promises to provide comprehensive insightinto many medical data analyses. Analyzing the relationship of data sets of such diverse natures across multiplesubjects requires special considerations. This enables a much more robust characterization of different data sets. Here,we investigate the relation between psychopathic traits quantified by the Psychopathic Personality Inventory-Revised[PPI-R]; (behavioral data set) and brain functional activities captured by functional near infra-red spectroscopy(fNIRS; neuroimaging data set). Particularly, we wanted to determine the psychopathic core traits most correlatedwith brain functional activation in personal (emotionally salient) and impersonal (more logical than emotional) moraljudgment (MJ) decision-making. Our aim was to fill the gap in neuroimaging research between psychopathic traitsand neuroimaging data during moral decision making using fNIRS. Applying Canonical Correlation Analysis (CCA)on brain functional activity recording from 30 healthy subjects and their psychopathic traits revealed coldheartednessand carefree non-planfulness to be highly correlated with prefrontal activation during personal (emotionally salient)MJ, while Machiavellian egocentricity, rebellious nonconformity, coldheartedness, and carefree non-planfulness werethe core traits that exhibited the same dynamics as prefrontal activity during impersonal (more logical) MJ.Furthermore, ventromedial prefrontal cortex (vmPFC) and left lateral prefrontal cortex (PFC) were the prefrontalregions most positively correlated with psychopathic traits during personal MJ, and the right vmPFC and right lateralPFC were most correlated with impersonal MJ decision-making.
机译:具有功能性神经影像数据集的耦合行为信息,承诺提供全面的洞察力进入许多医疗数据分析。分析多个不同自然的数据集关系受试者需要特殊考虑因素。这使得能够更强大的不同数据集的特征。这里,我们调查精神病人格库存修订的精神病特征之间的关系[ppi-r]; (行为数据集)和脑功能活动在红外光谱附近捕获的功能(FNIRS;神经影像数据集)。特别是,我们想确定最相关的精神病核心特征随着脑功能激活的个人(情绪突出)和非特性(比情绪更逻辑)的道德判决(MJ)决策。我们的目标是填补精神疗法特征之间的神经影像学研究中的差距使用FNIR的道德决策过程中的神经影像数据。应用规范相关分析(CCA)从30个健康受试者的脑功能活动记录和它们的精神疗法表现出感冒并且无忧无虑的非平面与个人(情绪突出)的前额叶激活高度相关MJ,而Machiavellian Egentricity,叛逆的不合格,冷酷无情和无忧无虑的非平面是在非个人(更逻辑)MJ期间表现出与前额叶活动相同动态的核心特征。此外,介口前额叶皮质(VMPFC)和左侧前额叶皮质(PFC)是前额框在个人MJ期间,与精神疗化性状最正常相关的地区,右翼vmpfc和右侧右侧PFC与非人际的MJ决策最相关。

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