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Project-Based Learning Guidelines for Health Sciences Students: An Analysis with Data Mining and Qualitative Techniques
Published on: December 9, 2022
Textual Analysis and Data Mining: An Interpreting Research on Nursing.
W De Caro1, L Mitello1, A R Marucci1
1Roma/IT, University of Rome sapienza.
Web data analysis reveals insights into nursing care. Text mining tools extract information on public perception, scientific activity, and visibility within healthcare discussions.
Area of Science:
- Digital Health
- Health Informatics
- Social Sciences
Background:
- The digital age presents a massive volume of textual data, offering unprecedented opportunities for social and healthcare analysis.
- Understanding societal phenomena, particularly in nursing and healthcare, can be enhanced through the statistical analysis of this information.
Purpose of the Study:
- To outline a strategic approach for textual statistical analysis of web and journal data.
- To extract valuable information concerning nursing care, sentiment, perception, scientific activities, and visibility.
Main Methods:
- Utilizing web-based Text Mining applications (e.g., DTM, Wordle, Voyant Tools, Taltac 2.10, Treecloud).
- Analyzing textual data from a major Italian newspaper ('Repubblica') and an Italian scientific nursing journal (2012-2014).
Main Results:
- Demonstrated the potential of Text Mining tools for information extraction from large textual datasets.
- Extracted data on sentiment, perception, scientific activities, and visibility related to nursing care.
Conclusions:
- Textual statistical analysis offers a powerful method for understanding healthcare and nursing.
- Web 2.0 tools facilitate the extraction of meaningful insights from diverse information sources.

