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  • Bentham Science Publishers Ltd.  (2)
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  • Bentham Science Publishers Ltd.  (2)
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  • 1
    Online Resource
    Online Resource
    Bentham Science Publishers Ltd. ; 2022
    In:  Recent Patents on Engineering Vol. 17, No. 4 ( 2022-07)
    In: Recent Patents on Engineering, Bentham Science Publishers Ltd., Vol. 17, No. 4 ( 2022-07)
    Abstract: The primary use of human computer interaction is in smart home as well as in industry 4.0. Communication between computer and human can be benefitted by a spontaneous interchange of emotions. The objective of the work is to provide an idea regarding the process of identifying various emotions using facial electromyography signals through electrode placement method. Here one contemplated the facial electromyography on masticatory function assessment and emotional articulation monitoring. Furthermore, we have also presented the measurement of facial electromyography including selection of electrode, location of electrode and reduction of noise. Facial emotions have significant effect on cognitive process of the human brain such as doubt perception, ability to solve problems, learning capabilities, emotional interactions and memory which is beneficial while interacting with patients suffering from depression and stress. The patients are guided through their rehabilitation process by rehabilitation application while accustoming itself to patient’s emotional state or wellbeing, which results in high motivation as well as in a quicker. This review paper will motivate and inspire researchers and engineers for finding more suitable system for various applications.
    Type of Medium: Online Resource
    ISSN: 1872-2121
    Language: English
    Publisher: Bentham Science Publishers Ltd.
    Publication Date: 2022
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  • 2
    Online Resource
    Online Resource
    Bentham Science Publishers Ltd. ; 2024
    In:  International Journal of Sensors, Wireless Communications and Control Vol. 14 ( 2024-01-05)
    In: International Journal of Sensors, Wireless Communications and Control, Bentham Science Publishers Ltd., Vol. 14 ( 2024-01-05)
    Abstract: Facial electromyography (fEMG) records muscular activities from the facial muscles, which provides details regarding facial muscle stimulation patterns in experimentation. Objectives: The Principal Component Analysis (PCA) is mostly implemented, whereas the actual or unprocessed initial fEMG data are rendered into low-spatial units with minimizing the level of data repetition. Methods: Facial EMG signal was acquired by using the instrument BIOPAC MP150. Four electrodes were fixed on the face of each participant for capturing the four different emotions like happiness, anger, sad and fear. Two electrodes were placed on arm for grounding purposes. Results: The aim of this research paper is to propagate the functioning of PCA in synchrony with the subjective fEMG analysis and to give a thorough apprehension of the advanced PCA in the areas of machine learning. It describes its arithmetical characteristics, while PCA is estimated by implying the covariance matrix. Datasets which are larger in size are progressively universal and their interpretation often becomes complex or tough. So, it is necessary to minimize the number of variables and elucidate linear compositions of the data to explicate it on a huge number of variables with a relevant approach. Therefore, Principal Component Analysis (PCA) is applied because it is an unsupervised training method that utilizes advanced statistical concept to minimize the dimensionality of huge datasets. Conclusion: This work is furthermore inclined toward the analysis of fEMG signals acquired for four different facial expressions using Analysis of Variance (ANOVA) to provide clarity on the variation of features.
    Type of Medium: Online Resource
    ISSN: 2210-3279
    Language: English
    Publisher: Bentham Science Publishers Ltd.
    Publication Date: 2024
    Library Location Call Number Volume/Issue/Year Availability
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