arXiv:2503.06027cs.AIcs.LG2025-03中稿 · ACM Computing Surv…综述被引 249

全面梳理终端AI模型的技术现状与未来方向

Empowering Edge Intelligence: A Comprehensive Survey on On-Device AI Models

  • 系统梳理终端AI的定义、应用场景与核心挑战
  • 涵盖模型压缩、硬件加速等关键技术策略
  • 适合关注边缘智能与AI落地的研究者与开发者

人工智能技术的快速发展推动了AI模型在边缘和终端设备上的广泛应用,这得益于物联网的普及以及对实时数据处理的需求。本综述全面探讨了终端AI模型的当前状态、技术挑战与未来趋势。我们将终端AI模型定义为旨在执行本地数据处理与推理的模型,强调其实时性、资源受限及增强数据隐私等特性。综述围绕核心主题展开,包括AI模型的基本概念、跨领域的应用情景,以及边缘环境中的技术挑战。同时讨论了优化与实现策略,如数据预处理、模型压缩与硬件加速,这些是有效部署的关键。此外,还分析了边缘计算和基础模型等新兴技术对终端AI模型演进的影响。通过提供对挑战、解决方案与未来方向的结构化概述,本综述旨在促进终端AI的进一步研究与应用,最终助力日常生活中智能系统的进步。

原文摘要 · Abstract (English)

The rapid advancement of artificial intelligence (AI) technologies has led to an increasing deployment of AI models on edge and terminal devices, driven by the proliferation of the Internet of Things (IoT) and the need for real-time data processing. This survey comprehensively explores the current state, technical challenges, and future trends of on-device AI models. We define on-device AI models as those designed to perform local data processing and inference, emphasizing their characteristics such as real-time performance, resource constraints, and enhanced data privacy. The survey is structured around key themes, including the fundamental concepts of AI models, application scenarios across various domains, and the technical challenges faced in edge environments. We also discuss optimization and implementation strategies, such as data preprocessing, model compression, and hardware acceleration, which are essential for effective deployment. Furthermore, we examine the impact of emerging technologies, including edge computing and foundation models, on the evolution of on-device AI models. By providing a structured overview of the challenges, solutions, and future directions, this survey aims to facilitate further research and application of on-device AI, ultimately contributing to the advancement of intelligent systems in everyday life.

边缘智能终端AI模型压缩物联网

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