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Integrating Rule-Based eGFR Labels with Expert GP Annotations: A Multi-method Framework for CKD Classification
Lecture Notes in Computer Science, Volume: 16039, Pages: 17 - 30
Swansea University Authors:
Ali Guran, Avishek Siris, Gary Tam , Xianghua Xie
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PDF | Accepted Manuscript
Author accepted manuscript document released under the terms of a Creative Commons CC-BY licence using the Swansea University Research Publications Policy (rights retention).
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DOI (Published version): 10.1007/978-3-032-00656-1_2
Abstract
Integrating Rule-Based eGFR Labels with Expert GP Annotations: A Multi-method Framework for CKD Classification
| Published in: | Lecture Notes in Computer Science |
|---|---|
| ISBN: | 9783032006554 9783032006561 |
| ISSN: | 0302-9743 1611-3349 |
| Published: |
Cham
Springer Nature Switzerland
2026
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| Online Access: |
Check full text
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| URI: | https://cronfa.swan.ac.uk/Record/cronfa69645 |
| Keywords: |
Chronic kidney disease; Classification |
|---|---|
| College: |
Faculty of Science and Engineering |
| Funders: |
Ali Guran was funded by the Turkish Ministry of National Education through the Postgraduate Study Abroad Program. Gary Tam received support from the CHERISH-DE Centre via the International Mobil-
ity Award [62] and the Collaboration and Knowledge Exchange Support [92S] (EP/M022722/1). This work was also partially supported by the EPSRC National Edge AI Hub (EP/Y007697/1). This study makes use of anonymised data held in the Secure Anonymised Information Linkage (SAIL) Databank. We would like to acknowledge all the data providers who make anonymised data available for research. The responsibility for the interpretation of the information we supplied is the authors’ alone. All research conducted has been completed under the permission and approval of the SAIL independent Information Governance Review Panel (IGRP) project number 1220. For Open Access, the author has
applied a CC BY license to any Author Accepted Manuscript resulting from this submission. |
| Start Page: |
17 |
| End Page: |
30 |

