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Quantifying Modality Contributions via Disentangling Multimodal Representations

Padegal Amit et al · LibraryPress@UF · 2026

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Quantifying modality contributions in Vision-Language Models (VLMs) remains challenging. Existing approaches rely on perturbation or gradient-based methods, which conflate inherent modality informativeness with model-specific biases and fail to capture complex cross-modal interactions. We address this gap by introducing an information-theoretic framework based on Partial Information Decomposition (PID) that decomposes internal representations into unique, redundant, and synergistic components. Our method operates directly on internal embeddings and derives an inference-only modality contribution metric from unique information scores. Applying our framework to six modern VLMs across six benchmarks, we uncover a persistent imbalance in modality contributions driven by low cross-modal synergy. Analysis reveals that fusion architecture significantly impacts the distribution of unique, redundant, and synergistic information. Our framework provides a scalable diagnostic tool for understanding and improving multimodal integration in vision-language systems.

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APA 7

al, P. A. E. (2026). Quantifying Modality Contributions via Disentangling Multimodal Representations. https://journals.flvc.org/FLAIRS/article/view/141869

MLA

al, Padegal Amit et. "Quantifying Modality Contributions via Disentangling Multimodal Representations." 2026. https://journals.flvc.org/FLAIRS/article/view/141869.

Chicago

al, Padegal Amit et. 2026. "Quantifying Modality Contributions via Disentangling Multimodal Representations.". https://journals.flvc.org/FLAIRS/article/view/141869.

Harvard

al, P. A. E. 2026, Quantifying Modality Contributions via Disentangling Multimodal Representations, LibraryPress@UF, available at: https://journals.flvc.org/FLAIRS/article/view/141869 [Accessed 8 Aug. 2026].

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Title
Quantifying Modality Contributions via Disentangling Multimodal Representations
Author / contributors
Padegal Amit et al
Publisher
LibraryPress@UF
Publication year
2026
ISSN
2334-0754
ISSN
2334-0754
Language
English
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