An efficient emotion recognition system from multimodal signals with cognitive based personality trait mapping using machine learning techniques
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Abstract
Emotions and Personality Traits are two inseparable cognitive
newlineprocesses in human existence, which have both become integral parts of
newlinemodern culture as a response to several reasons. Emotions have a critical role
newlinein human behaviour, influence systems such as observation, cognition,
newlinedecision-making process, education, and intelligence. This has created an
newlineoverriding need to provide an efficient means to handle the Emotion
newlineRecognition methodologies from various bio-signal such as EEG signal,
newlinePeripheral signal, physiological signal and video for effective understanding of
newlinehuman behaviour, cognition, and ability. Humans frequently transmit emotions
newlineand their present tailored to meet the needs state through extraneous physical
newlineexpressions such as a grin or more physiological responses such as increased
newlineirregular heartbeat (HR).
newlineAutomatic recognition of human emotion is a challenging job due to
newlinefluctuations in the human brain signals at different levels of recognition
newlineprocess. In this context, recognition of all five primary human emotions (happy,
newlinesad, calm, fear, and angry) from the various modalities of recorded incomplete
newlinesignal is an important research problem and receives a growing attention.
newlineThe methods and techniques developed so far for emotion
newlinerecognition system cannot be applied directly because the collected
newlinecomplete/incomplete signal from the stimuli responses are more complex.
newlineEmotion recognition mapping to personality trait is complex due to the absence
newlineof pure EEG signals along with the minimum number of channels required to
newlineidentify the emotion.
newline