Natural language processing utilization in healthcare
The significance of consolidating Natural Language Processing (NLP) techniques in clinical informatics research has been progressively perceived over the previous years, and has prompted transformative advances. Ordinarily, clinical NLP frameworks are created and assessed on word, sentence, or recor...
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my.uniten.dspace-129062020-07-07T04:19:07Z Natural language processing utilization in healthcare Hudaa, S. Setiyadi, D.B.P. Laxmi Lydia, E. Shankar, K. Nguyen, P.T. Hashim, W. Maseleno, A. The significance of consolidating Natural Language Processing (NLP) techniques in clinical informatics research has been progressively perceived over the previous years, and has prompted transformative advances. Ordinarily, clinical NLP frameworks are created and assessed on word, sentence, or record level explanations that model explicit traits and highlights, for example, archive content (e.g., persistent status, or report type), record segment types (e.g., current meds, past restorative history, or release synopsis), named substances and ideas (e.g., analyses, side effects, or medicines) or semantic qualities (e.g., nullification, seriousness, or fleetingness). While some NLP undertakings consider expectations at the individual or gathering client level, these assignments still establish a minority. Here we give an expansive synopsis and layout of the difficult issues engaged with characterizing suitable natural and outward assessment strategies for NLP look into that will be utilized for clinical results research, and the other way around. A specific spotlight is set on psychological wellness investigate, a zone still generally understudied by the clinical NLP look into network, however where NLP techniques are of prominent importance. Ongoing advances in clinical NLP strategy improvement have been huge, yet we propose more accentuation should be put on thorough assessment for the field to progress further. To empower this, we give noteworthy recommendations, including an insignificant convention that could be utilized when announcing clinical NLP strategy improvement and its assessment. © BEIESP. 2020-02-03T03:27:43Z 2020-02-03T03:27:43Z 2019 Article 10.35940/ijeat.F1305.0886S219 en |
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The significance of consolidating Natural Language Processing (NLP) techniques in clinical informatics research has been progressively perceived over the previous years, and has prompted transformative advances. Ordinarily, clinical NLP frameworks are created and assessed on word, sentence, or record level explanations that model explicit traits and highlights, for example, archive content (e.g., persistent status, or report type), record segment types (e.g., current meds, past restorative history, or release synopsis), named substances and ideas (e.g., analyses, side effects, or medicines) or semantic qualities (e.g., nullification, seriousness, or fleetingness). While some NLP undertakings consider expectations at the individual or gathering client level, these assignments still establish a minority. Here we give an expansive synopsis and layout of the difficult issues engaged with characterizing suitable natural and outward assessment strategies for NLP look into that will be utilized for clinical results research, and the other way around. A specific spotlight is set on psychological wellness investigate, a zone still generally understudied by the clinical NLP look into network, however where NLP techniques are of prominent importance. Ongoing advances in clinical NLP strategy improvement have been huge, yet we propose more accentuation should be put on thorough assessment for the field to progress further. To empower this, we give noteworthy recommendations, including an insignificant convention that could be utilized when announcing clinical NLP strategy improvement and its assessment. © BEIESP. |
format |
Article |
author |
Hudaa, S. Setiyadi, D.B.P. Laxmi Lydia, E. Shankar, K. Nguyen, P.T. Hashim, W. Maseleno, A. |
spellingShingle |
Hudaa, S. Setiyadi, D.B.P. Laxmi Lydia, E. Shankar, K. Nguyen, P.T. Hashim, W. Maseleno, A. Natural language processing utilization in healthcare |
author_facet |
Hudaa, S. Setiyadi, D.B.P. Laxmi Lydia, E. Shankar, K. Nguyen, P.T. Hashim, W. Maseleno, A. |
author_sort |
Hudaa, S. |
title |
Natural language processing utilization in healthcare |
title_short |
Natural language processing utilization in healthcare |
title_full |
Natural language processing utilization in healthcare |
title_fullStr |
Natural language processing utilization in healthcare |
title_full_unstemmed |
Natural language processing utilization in healthcare |
title_sort |
natural language processing utilization in healthcare |
publishDate |
2020 |
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1672614189327187968 |
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13.214268 |