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Transformers for Green Semantic Communication: Less Energy, More Semantics

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arxiv 2310.07592 v2 pith:DNE4BEG2 submitted 2023-10-11 cs.LG cs.NI

Transformers for Green Semantic Communication: Less Energy, More Semantics

classification cs.LG cs.NI
keywords semanticcommunicationenergylossinformationconsumptionselectionusage
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Semantic communication aims to transmit meaningful and effective information, rather than focusing on individual symbols or bits. This results in benefits like reduced latency, bandwidth usage, and higher throughput compared with traditional communication. However, semantic communication poses significant challenges due to the need for universal metrics to benchmark the joint effects of semantic information loss and practical energy consumption. This research presents a novel multi-objective loss function named "Energy-Optimized Semantic Loss" (EOSL), addressing the challenge of balancing semantic information loss and energy consumption. Through comprehensive experiments on transformer models, including CPU and GPU energy usage, it is demonstrated that EOSL-based encoder model selection can save up to 90% of energy while achieving a 44% improvement in semantic similarity performance during inference in this experiment. This work paves the way for energy-efficient neural network selection and the development of greener semantic communication architectures.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. The Price of Meaning: Quantifying Semantic Communication Overheads in Practice

    cs.NI 2026-07 conditional novelty 6.0

    SemCom is spectrally and energetically worthwhile only above closed-form payload break-even thresholds that amortize protocol, sync, and compute overheads, with multi-user downlink the most favorable case.

  2. When Robots Exchange Meaning: A Demo of Goal-Oriented Semantic Communications for Collaborative Robotics

    cs.RO 2026-07 conditional novelty 3.5

    A robot-edge demo encodes 320×240 RGB into 5400-byte VQ-VAE tokens (42.67× smaller), reconstructs them for RTAB-Map semantic mapping, and exposes object-level mission control.