Automating the pre-submission review of academic reports via the integration of formal rules and large language models

dc.contributor.authorParfonov Yu. E.
dc.description.abstractThe article examines the challenges of delivering high-quality feedback on structured academic reports in higher education. It considers the problems with manual pre-submission reviews and the limitations of existing automated writing evaluation tools in performing semantic analysis. During the research, a Human-Aligned Rubric and Review System (HARRS) with a hybrid architecture combining rule-based logic with constrained generative AI was developed. The impact of anchoring LLMs within human-defined rubrics to mitigate scoring bias and inconsistency is discussed. The practical aspects of implementing the HARRS pipeline and its performance relative to expert human judgment are described. The study shows that this hybrid approach maintains disciplinary standards while providing a reliable mechanism for enhancing student self-regulation.
dc.identifier.citationParfonov Yu. E. Automating the pre-submission review of academic reports via the integration of formal rules and large language models / Yu. E. Parfonov // Наука і техніка сьогодні (Серія «Педагогіка», Серія «Право», Серія «Економіка», Серія «Фізико-математичні науки», Серія «Техніка»)»: журнал. - Київ: Видавнича група «Наукові перспективи», 2026 – Випуск 1 (55). - С. 1929 — 1945.
dc.identifier.urihttps://repository.hneu.edu.ua/handle/123456789/38829
dc.language.isoen
dc.subjectacademic report
dc.subjectpre-submission review
dc.subjectunified rubric
dc.subjectsemantic feedback
dc.subjecthybrid architecture
dc.subjectrule-based layer
dc.subjectLLM semantic layer
dc.titleAutomating the pre-submission review of academic reports via the integration of formal rules and large language models
dc.typeArticle

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