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AuthorAl-Ali, Afnan
AuthorAl-Maadeed, Somaya
AuthorSaleh, Moutaz
AuthorNaidu, Rani Chinnappa
AuthorAlex, Zachariah C.
AuthorRamachandran, Prakash
AuthorKhoodeeram, Rajeev
AuthorRajesh Kumar, M.
Available date2024-10-13T09:32:24Z
Publication Date2024-01-01
Publication NameIEEE Access
Identifierhttp://dx.doi.org/10.1109/ACCESS.2024.3382574
CitationAl-Ali, A., Al-Maadeed, S., Saleh, M., Naidu, R. C., Alex, Z. C., Ramachandran, P., ... & Kumar, R. (2024). The Detection of Dysarthria Severity Levels Using AI Models: A Review. IEEE Access.‏
URIhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85189154038&origin=inward
URIhttp://hdl.handle.net/10576/60074
AbstractDysarthria, a speech disorder stemming from neurological conditions, affects communication and life quality. Precise classification and severity assessment are pivotal for therapy but are often subjective in traditional speech-language pathologist evaluations. Machine learning models offer objective assessment potential, enhancing diagnostic precision. This systematic review aims to comprehensively analyze current methodologies for classifying dysarthria based on severity levels, highlighting effective features for automatic classification and optimal AI techniques. We systematically reviewed the literature on the automatic classification of dysarthria severity levels. Sources of information will include electronic databases and grey literature. Selection criteria will be established based on relevance to the research questions. The findings of this systematic review will contribute to the current understanding of dysarthria classification, inform future research, and support the development of improved diagnostic tools. The implications of these findings could be significant in advancing patient care and improving therapeutic outcomes for individuals affected by dysarthria.
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
Subjectartificial intelligence (AI)-based models
classification
Dysarthria
intelligibility
severity levels
TitleThe Detection of Dysarthria Severity Levels Using AI Models: A Review
TypeArticle
Volume Number12
dc.accessType Open Access


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