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Information Density as a Quantitative Measure for AI-Enabled Virtual Sensing: Feasibility and Limits

  • Telecom Sudparis

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Résumé

Modern IoT and sensor networks generate vast amounts of data, posing significant challenges for storage, transmission, and real-time processing. Traditional approaches, such as compressive sensing and machine learning-based compression, often suffer from computational inefficiencies and irreversible data loss. This paper introduces Information Density as a quantitative metric to support sensor deployment and enable AI-driven virtual sensing. We propose a framework that leverages spatial, temporal and inter-modal correlations among sensor signals to perform sensing tasks even in the absence of physical sensors. Two complementary measures: (i) Phase in Eigen Space and (ii) Mutual Information, are developed to quantify and assess information density, enabling the selection of optimal sensor configurations across both intra-modality and cross-modality scenarios. Validated using real-world data from Madrid's smart city infrastructure, this framework demonstrates the feasibility of replacing physical sensors with virtual ones under bounded error conditions (e.g., achieving <3.21% mean error with a single sensor). The results highlight the potential for scalable and energy-efficient sensing systems in smart environments.

langue originaleAnglais
Pages (de - à)316-329
Nombre de pages14
journalIEEE Transactions on Sustainable Computing
Volume11
Numéro de publication3
Les DOIs
étatPublié - 1 mai 2026

SDG des Nations Unies

Ce résultat contribue à ou aux Objectifs de développement durable suivants

  1. SDG 7 - Énergie abordable et propre
    SDG 7 Énergie abordable et propre
  2. SDG 11 - Villes et communautés durables
    SDG 11 Villes et communautés durables

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