Articulation imagery, a form of mental imagery, refers to the activity of imagining or speaking to oneself mentally without an articulation movement. It is an effective domain of research in speech impaired neural disorders, as speech imagination has high similarity to real voice communication. This work employs electroencephalography (EEG) signals acquired from articulation and articulation imagery in identifying the vowel being imagined during different tasks. EEG signals from chosen electrodes are decomposed using the empirical mode decomposition (EMD) method into a series of intrinsic mode functions. Brain connectivity estimators and entropy measures have been computed to analyze the functional cooperation and causal dependence between different cortical regions as well as the regularity in the signals. Using machine learning techniques such as multiclass support vector machine (MSVM) and random forest (RF), the vowels have been classified. Three different training and testing protocols (Articulation-AR, Articulation imagery-AI and Articulation vs Articulation imagery-AR vs AI) were employed for identifying the vowel being imagined of articulating. An overall classification accuracy of 80% was obtained for articulation imagery protocol which was found to be higher than the other two protocols. Also, MSVM techniques outperformed the RF technique in terms of the classification accuracy. The effect of brain connectivity estimators and machine learning techniques seems to be reliable in identifying the vowel from the subjects' thought and thereby assisting the people with speech impairment.
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http://dx.doi.org/10.1007/s10339-022-01103-3 | DOI Listing |
IEEE J Transl Eng Health Med
October 2024
Industrial Design Institute, Zhejiang University of Technology Hangzhou 310023 China.
Rehabilitation devices, such as traditional rigid exoskeletons or exosuits, have been widely used to rehabilitate upper limb function post-stroke. In this paper, we have developed an exosuit with four degrees of freedom to enable users to involve more joints in the rehabilitation process. Additionally, a hybrid electroencephalogram-based (EEG-based) control approach has been developed to promote active user engagement and provide more control commands.
View Article and Find Full Text PDFPLoS One
October 2024
Department of Rehabilitation, Graduate School of Health Sciences, Saitama Prefectural University, Saitama, Japan.
Musculoskelet Sci Pract
November 2024
Department of Recovery and Functional Reeducation, La Colletta Hospital, Local Healthcare Unit 3, Arenzano, GE, Italy.
Background: Post-traumatic elbow stiffness is a common consequence following trauma or surgery, resulting in significant limb disability, with a negative impact on daily life. Although conservative treatment is the first-line approach, it is not yet known which is most suitable and effective.
Objective: To investigate the effectiveness of conservative treatments in patients with post-traumatic elbow stiffness.
PLoS One
September 2024
Department of Cognitive and Behavioral Sciences and Technology in Sport, Shahid Beheshti University, Tehran, Iran.
This study aimed to examine the impact of internal and external audiovisual imagery on the learning of the badminton long serve skill. A lot of 42 right-handed novice women were selected using availability sampling. Participants were categorized into four groups based on their scores from the visual imagery ability questionnaire and Bucknell auditory questionnaire: Visual-Internal imagery, Visual-External imagery, AudioVisual-Internal imagery and AudioVisual-External imagery groups.
View Article and Find Full Text PDFMaterials (Basel)
June 2024
School of Mechanical Science and Engineering, Northeast Petroleum University, Daqing 163318, China.
Metallic joints within tokamak devices necessitate high interface hardness and superior bonding properties. However, conventional manufacturing techniques, specifically the hot isostatic pressing (HIP) diffusion joining process, encounter challenges, including the degradation of the SS316L/CuCrZr interface and CuCrZr hardness. To address this, we explore the potential of laser powder bed fusion (LPBF) technology.
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