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Prediction of Emergency Admissions in Health Centres using Data Mining
In recent days, Emergency Department in healing centre is crowded, which causes negative consequences for patients. The internet is a crucial bridge for connecting patients with medical services. The data of the patients in healing centre contain data like physician note, x-ray radiology, discharge...
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Published in: | International journal of innovative technology and exploring engineering 2020-06, Vol.9 (8), p.664-667 |
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container_title | International journal of innovative technology and exploring engineering |
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creator | Abarna, A. Amuthavani, B. Varshini, V. Chidambaram, Dr. S. |
description | In recent days, Emergency Department in healing centre is crowded, which causes negative consequences for patients. The internet is a crucial bridge for connecting patients with medical services. The data of the patients in healing centre contain data like physician note, x-ray radiology, discharge rundowns which are unstructured. In the predictive inspection, the free text is an essential part of patient records and it is necessary. To avoid this situation, the patient data should be analyzed, and the prediction should be made. Such a pathway can be created utilizing data mining procedures, which involves inspection and observing data to obtain vital data and knowledge through which decisions can be taken. Here the understanding focuses of intrigued are entered through a webpage that's put absent inside the database. Then administrative data from three different healing centre is applied to algorithms like Logistic Regression, CART decision tree for prediction, and its accuracy score is compared. |
doi_str_mv | 10.35940/ijitee.H6486.069820 |
format | article |
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Then administrative data from three different healing centre is applied to algorithms like Logistic Regression, CART decision tree for prediction, and its accuracy score is compared.</abstract><doi>10.35940/ijitee.H6486.069820</doi><tpages>4</tpages><oa>free_for_read</oa></addata></record> |
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title | Prediction of Emergency Admissions in Health Centres using Data Mining |
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