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Physics-Based Benchmarking Metrics for Multimodal Synthetic Images (2511.15204v1)

Published 19 Nov 2025 in cs.CV and cs.AI

Abstract: Current state of the art measures like BLEU, CIDEr, VQA score, SigLIP-2 and CLIPScore are often unable to capture semantic or structural accuracy, especially for domain-specific or context-dependent scenarios. For this, this paper proposes a Physics-Constrained Multimodal Data Evaluation (PCMDE) metric combining LLMs with reasoning, knowledge based mapping and vision-LLMs to overcome these limitations. The architecture is comprised of three main stages: (1) feature extraction of spatial and semantic information with multimodal features through object detection and VLMs; (2) Confidence-Weighted Component Fusion for adaptive component-level validation; and (3) physics-guided reasoning using LLMs for structural and relational constraints (e.g., alignment, position, consistency) enforcement.

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