Liver Disease Detection
Author:
Affiliation:
1. Indian Institute of Management, Bodh Gaya, India
2. The Heritage Academy, Kolkata, India
3. Ernst and Young, India
Abstract
Intelligent predictive systems are showing a greater level of accuracy and effectiveness in early detection of critical diseases like cancer and liver and lung disease.Predictive models assist medical practitioners in identifying the diseases based on symptoms and health indicators like hormone,enzymes,age,bloodcounts,etc.This study proposes a framework to use classification models to accurately detect chronic liver disease by enhancing the prediction accuracy through cutting-edge analytics techniques.The article proposes an enhanced framework on the original study by Ramana et al. (2011).It uses evaluation measures like Precision and Balanced Accuracy to choose the most efficient classification algorithm in INDIA and USA patient datasets using various factors like enzymes,age,etc.Using Youden’s Index, individual thresholds for each model were identified to increase the power of sensitivity and specificity.A framework is proposed for highly accurate automated disease detection in the medical industry,and it helps in strategizing preventive measures for patients with liver diseases.
Publisher
IGI Global
Subject
Information Systems and Management,Information Systems,Medicine (miscellaneous)
Reference57 articles.
1. Knowledge Inferencing Using Artificial Bee Colony and Rough Set for Diagnosis of Hepatitis Disease
2. Data Mining Techniques for Optimization of Liver Disease Classification
3. Liver Disease Detection Due to Excessive Alcoholism Using Data Mining Techniques
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5. A Secure IoT-Fog Enabled Smart Decision Making system using Machine Learning for Intensive Care unit
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3. Liver Disease Prediction Using Different Machine Learning Algorithms;2023 International Conference on Advanced & Global Engineering Challenges (AGEC);2023-06-23
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