Avrmitra Journal of Engineering, Technology and Applied Sciences
An international, multidisciplinary, peer-reviewed academic journal dedicated to rapid, rigorous dissemination of impactful research in engineering disciplines, computing technologies, and applied sciences.
Official Manuscript Formatting Templates
All submissions must strictly adhere to the official AJETAS formatting standard. Download the pre-styled Microsoft Word template and pre-submission compliance checklist below.
MS Word Template
Pre-configured 2-column layout with embedded styles for titles, headings, and IEEE citation.
Author Checklist
Essential 10-point pre-submission checklist covering originality, COI disclosures, and formatting.
COI & Copyright
Official declaration form for financial disclosures, institutional consent, and CC BY 4.0 authorization.
Inaugural Issue: Advances in Engineering & Computational Sciences
EA-PRF: An Explainable AI and Human-in-the-Loop Framework for Scholarly Peer Review
ABSTRACT Scholarly peer review is under increasing strain: submission volumes are rising faster than the pool of qualified reviewers, turnaround times are lengthening, and inter-reviewer agreement on acceptance decisions remains low across many disciplines. This paper presents the Explainable AI-Assisted Peer Review Framework (EA-PRF), a system that pairs large language models (LLMs) with a dedicated explainability layer and a human-in-the-loop (HITL) validation stage so that automated review support augments, rather than replaces, editorial judgment. EA-PRF decomposes a submitted manuscript into five review dimensions — novelty, methodological soundness, clarity, significance, and coverage of related work — and generates a calibrated recommendation, a confidence score, and a natural-language rationale grounded in specific manuscript spans for each dimension. Human reviewers inspect, edit, or override every AI-generated judgment through a dedicated interface, and their actions are logged to an active-learning store that periodically recalibrates the underlying models. We evaluate EA-PRF on a corpus of 1,240 manuscripts spanning engineering, computer science, and applied sciences, comparing it against a human-only baseline and an LLM-only baseline without explainability or human oversight. EA-PRF improves F1-score for acceptance-decision prediction from 0.72 (LLM-only) to 0.84, raises explanation-agreement scores from 0.58 to 0.79, and reduces mean reviewer time per manuscript by 65% relative to unaided human review, while preserving inter-rater agreement (Cohen's κ = 0.68) close to that of experienced human reviewer pairs (κ = 0.71). These results suggest that explainable, human-supervised LLM assistance can meaningfully reduce reviewer burden without sacrificing decision quality or accountability.
Core Subject Disciplines
Computer Science & Software
Distributed systems, network architectures, and cloud computing algorithms.
Artificial Intelligence & ML
Deep learning, neural models, NLP, and intelligent autonomous systems.
Data Engineering & Analytics
Big data structures, predictive modeling, data mining, and visualizations.
Cybersecurity & Cryptography
Security protocols, hardware security modules, and threat mitigation.
Electrical & Power Systems
Smart microgrids, power electronics, and renewable energy integration.
Electronics & VLSI
Microcontrollers, sensor systems, embedded IoT nodes, and circuits.
Mechanical & Automation
Robotics mechanisms, computational fluids, thermal dynamics, and materials.
Civil & Structural Engineering
Structural health tracking, concrete modeling, and smart infrastructure.
Applied Sciences & Physics
Mathematical modeling, computational physics, and applied analytics.
Step-by-Step Editorial & Review Workflow
Manuscript Submission
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Editorial Screening
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Double-Blind Review
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Author Revision
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