A Mobile Computer-Aided Diagnosis of Neonatal Hyperbilirubinemia using Digital Image Processing and Machine Learning Techniques

Author:

Dissaneevate Supaporn,Wongsirichot Thakerng,Siriwat Pittaya,Jintanapanya Nutchaya,Boonyakarn Uakarn,Janjindamai Waricha,Thatrimontrichai Anucha,Maneenil Gunlawadee

Abstract

Neonatal Hyperbilirubinemia, or jaundice, is a harmful disease found in newborns, a symptom of which is the yellowish discoloration of the skin. Visual examination is most frequently used for screening of Hyperbilirubinemia in neonates, however, blood specimen collection is the gold standard to identify the disease and its severity. We propose a Mobile Computer-Aided Diagnosis (mCADx) tool to identify the Neonatal Hyperbilirubinemia symptom using advanced digital image processing and data mining techniques. The mCADx was developed in a cross-platform environment. The mCADx works with smart devices run on either iOS or Android operating systems. With ethical committee approval, we collected and studied image data of 178 infant subjects with different jaundice severity levels. The severity of the disease was examined from blood test results, which were annotated by medical specialists. Data mining techniques included Decision Trees, k Nearest Neighbor, and the Conventional Neural Network was investigated in the dataset. An in-depth comparison between techniques was performed and discussed. The classification results in CNN gained the highest accuracy at 0.8099, 0.9251, 0.8086. This novel work can assist in identifying Neonatal Hyperbilirubinemia in newborns after discharging from the hospital. Reoccurring Neonatal Hyperbilirubinemia can be found with minimum awareness of parents. Limitations and future works were discussed in this work.

Publisher

International Journal of Innovative Research and Scientific Studies

Subject

Multidisciplinary

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Comparative Analysis of Classification of Neonatal Bilirubin by Using Various Machine Learning Approaches;Cureus;2024-06-09

2. Image Recognition and Intelligent Management of Accounting Bills Based on Image Processing Technology;2024 5th International Conference on Computer Vision, Image and Deep Learning (CVIDL);2024-04-19

3. The Intelligent Investigating K-Nearest Neighbors for Image Segmentation;2023 IEEE International Conference on Paradigm Shift in Information Technologies with Innovative Applications in Global Scenario (ICPSITIAGS);2023-12-28

4. Non-Invasive Transcutaneous Bilirubinometer Using STM32 - A Review;2023 International Conference on Next Generation Electronics (NEleX);2023-12-14

5. Classification for Jaundice Symptoms Using Improved Dragonfly with XGBoost Model;2023 International Conference on Data Science and Network Security (ICDSNS);2023-07-28

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