Kristijan Cincar ORCID iD West University of Timișoara;
Faculty of Computers and Applied Informatics, Tibiscus University Romania
West University of Timișoara and Tibiscus University of Timișoara, Romania
Faculty of Computers and Applied Informatics, Tibiscus University of Timișoara, Romania.
kristijan.cincar@e-uvt.ro, k.cincar@tibiscus.ro,
https://orcid.org/0000-0002-5740-6680
Victoria Iordan
Faculty of Computers and Applied Informatics, Tibiscus University Romania
Faculty of Computers and Applied Informatics, Tibiscus University of Timișoara, Romania.
Florentina Anica Pintea ORCID iD Faculty of Computers and Applied Informatics, Tibiscus University of Timișoara;
Center for Multidisciplinary Informatics Research (CCIM), Tibiscus University of Timișoara Romania
Faculty of Computers and Applied Informatics, Tibiscus University of Timișoara, Romania
Center for Multidisciplinary Informatics Research (CCIM), Tibiscus University of Timișoara, Romania.
https://orcid.org/0009-0002-1214-3570
User
p-ISSN: 2068 - 0473 e-ISSN: 2067 - 3957
DOI:
10.18662/brain
DOI prefix: 10.70594/brain (currently edited by EduSoft) | 10.18662/brain (when was edited by Lumen)
Frequency:
4 issues/year (occasional additional issues)
Abstracting & Indexing
Web of Science (ESCI, IF 0.6), EBSCO, Google Scholar etc.
Kristijan Cincar -
West University of Timișoara;
Faculty of Computers and Applied Informatics, Tibiscus University (RO),
Victoria Iordan -
Faculty of Computers and Applied Informatics, Tibiscus University (RO),
Florentina Anica Pintea -
Faculty of Computers and Applied Informatics, Tibiscus University of Timișoara;
Center for Multidisciplinary Informatics Research (CCIM), Tibiscus University of Timișoara (RO),
Abstract
Dynamic surgical scheduling must accommodate uncertain procedure durations, emergency arrivals, resource outages, and competing access and workload objectives. This paper presents NeuroCare Grid, a multi-agent scheduling architecture coordinated through an interpretable, multi-channel stigmergic field, and evaluates NeuroCare-H, its deterministic heuristic implementation. In a disclosed 30-day discrete-event simulation involving 500 synthetic admissions and an emergency share of 15.2%, NeuroCare-H achieved a scheduling rate of 92.47% ± 1.92%, an emergency waiting time of 0.01 ± 0.01 days, and operating-room utilization of 98.18% ± 1.20%. The corresponding FCFS results were 87.68% ± 1.02%, 0.40 ± 0.11 days, and 94.65% ± 1.96%, respectively. All three comparisons were based on 30 paired seeds and remained significant after Holm correction, with p < 0.00001. The scheduling advantage over FCFS persisted when the workload was increased to two and three times the baseline level. However, urgency-based scheduling produced a less equal distribution of waiting times, with a Gini coefficient of 0.63 for NeuroCare-H compared with 0.36 for FCFS. Removing the field slightly increased the scheduling rate from 92.47% to 92.81%, but worsened the Gini coefficient from 0.63 to 0.70. Replacing the multi-channel field with a pooled scalar produced no detectable difference. In a separate bootstrap experiment based on 37 surgical admissions from the open MIMIC-III Demo, the emergency share increased to 78.4%, and the scheduling-rate difference between NeuroCare-H and FCFS was no longer statistically significant (p = 0.13). These results establish a reproducible heuristic benchmark within the stated simulator and support the need for external operational validation before clinical use.
Academic discipline and sub-disciplines:
Artificial Intelligence; Healthcare Informatics; Computer Science