Dynamic Quality-Latency Aware Routing for LLM Inference in Wireless Edge-Device Networks

August 15, 2025 Β· Declared Dead Β· πŸ› 2025 IEEE/CIC International Conference on Communications in China (ICCC Workshops)

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Authors Rui Bao, Nan Xue, Yaping Sun, Zhiyong Chen arXiv ID 2508.11291 Category cs.IT: Information Theory Cross-listed cs.AI, cs.LG Citations 1 Venue 2025 IEEE/CIC International Conference on Communications in China (ICCC Workshops) Last Checked 4 months ago
Abstract
The integration of wireless communications and Large Language Models (LLMs) is poised to unlock ubiquitous intelligent services, yet deploying them in wireless edge-device collaborative environments presents a critical trade-off between inference quality and end-to-end latency. A fundamental mismatch exists between task complexity and resource allocation: offloading simple queries invites prohibitive latency, while on-device models lack the capacity for demanding computations. To address this challenge, we propose a dynamic, quality-latency aware routing framework that orchestrates inference between a lightweight model on the mobile device and a powerful model on the edge server. Our framework employs two distinct cost models: for single-turn queries, it fuses a BERT-predicted semantic score with communication and computation overheads; for multi-turn dialogues, it further quantifies context-aware costs arising from model switching and KV-cache management. While maintaining full inference quality, extensive experiments demonstrate that our framework cuts average response latency by 5-15% and reduces large model invocations by 10-20% against competitive baselines on MMLU, GSM8K, and MT-Bench-101 benchmarks.
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