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Journal : Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, and Control

Leveraging Text-Mining Techniques On Electronic Medical Records to Analyze National Drug-insured Medication Use Wibawa, Adhi Dharma; Ramadhani, Prio Adi; Buntoro, Ghulam Asrofi; Hariadi, Ridho Rahman; Siswanto, Putri Alief; Sabilla, Shoffi Izza
Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, and Control Vol. 8, No. 2, May 2023
Publisher : Universitas Muhammadiyah Malang

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.22219/kinetik.v8i2.1695

Abstract

Processing electronic medical record (EMR) data has become a common practice among scientists for extracting valuable insights and studying diseases. Given the large volumes of text data in EMRs, efficient computerized text-mining techniques are necessary. As academics, we recognize that drug-used analysis from EMR data in Indonesia is currently limited. This study focuses on obtaining meaningful insights from EMR data to make positive recommendations for hospitals. The proposed method uses pattern-based Regular Expressions (regex) to extract drug names and a Levenshtein distance algorithm to check their compatibility. We developed the pattern based on analyzing Indonesia EMR data. The extracted drug names were compared to a list of selected drugs (National Drug-Insured/Fornas) that are required and must be provided at healthcare facilities in Indonesia. The Levenshtein distance threshold was set to two to decide whether the extracted drug names belonged to nationally drug-insured or not. Only about 11.09 – 16.11% of medications given by doctors are listed in the Fornas drug list. Between 2019 and 2021, there was an inaccuracy in the writing of prescriptions for Fornas drugs, with as many as 57.53% to 63.21% of drug names being written incorrectly. The results of this study indicate that the Levenshtein distance algorithm has promising potential for implementation in the Ministry of Health of Indonesia, with a precision rate of 97.07%.
Co-Authors Adhi Dharma Wibawa, Adhi Dharma Agung Mulyono Agung Teguh Setyadi Agus Budi Raharjo Aini, Fika Nur Akbar, Rizky Januar Alqis Rausanfita Andhik Ampuh Yunanto annisaa sri indrawanti annisaa sri indrawanti Anny Yuniarti Ardhana Praharsana Aunurohim Aunurohim Bilqis Amaliah Ciptaningtyas, Henning Darlis Heru Mukti Darlis Herumurti Didit Prasetyo Dwi Sunaryono Fatmala Ulfa Nurliyana Fauzi, Haffif Rasya Fiandra Fatharany Fikri Haykal Firdausi, Hafara Fraditya, Awang Ghulam Asrofi Buntoro Ginardi, R.V. Hari Ginardi, Raden Venantius Hari Hadziq Fabroyir Hanoraga, Tony Henning Titi Ciptaningtyas Herdianto Naufal Farras Hertiari Idajati, Hertiari Hisyam, Achmad Aushaf Amrega I Gede Arimbawa Teja Putra Wardana Imam Kuswardayan Indranto, Dionisius Marcell Putra Irin, Tio Axellino Irooyan Alfi T.Z Irooyan Alfi T.Z, Irooyan Irzal Ahmad Sabilla Iska Desmawati Isye Arieshanti Isye Arieshanti Juniarun Fathurrohman Khakim Ghozali Luffi Aditya Sandy Mandyartha, Eka Prakarsa Muchammad Husni Muchammad Husni Muchammad Husni Muchammad Husni Nasution, Hazwan Adhikara Pasya, Muhammad Naufal Putri Alief Siswanto Raden Venantius Hari Ginardi Ramadhani, Prio Adi Rizka Wakhidatus Sholikah Rizka Wakhidatus Sholikah, Rizka Wakhidatus Rosyadi, Fuad Dary Sabilla, Irzal Ahmad Sabilla, Shoffi Izza Salsabilla, Rehana Putri Santoso, Bagus Jati Saptarini, Dian Siska Arifiani Siti Rochimah Soca Gumilar Ramadhan Sri Indrawanti, Annisaa Sutryotrisongko, Hatma Syafa, Ilhan Ahmad Syahputra, Muhammad Harvian Dito Wicaksono, M. Januar Eko Wijayanti Nurul Khotimah