AI Flow: Perspectives, Scenarios, and Approaches
Hongjun An, Wenhan Hu, Sida Huang, Siqi Huang, Ruanjun Li, Yuanzhi Liang, Jiawei Shao, Yiliang Song, Zihan Wang, Cheng Yuan, Chi Zhang, Hongyuan Zhang, Wenhao Zhuang, Xuelong Li

TL;DR
AI Flow is a multidisciplinary framework that integrates device-edge-cloud architecture, familial models, and connectivity-based intelligence to improve scalability, efficiency, and emergent capabilities of AI systems across diverse scenarios.
Contribution
It introduces a novel AI framework combining communication networks and hierarchical models to address resource and scalability challenges in ubiquitous AI deployment.
Findings
Enhanced AI service accessibility and responsiveness.
Effective collaboration among heterogeneous AI models.
Emergent intelligence surpassing individual model capabilities.
Abstract
Pioneered by the foundational information theory by Claude Shannon and the visionary framework of machine intelligence by Alan Turing, the convergent evolution of information and communication technologies (IT/CT) has created an unbroken wave of connectivity and computation. This synergy has sparked a technological revolution, now reaching its peak with large artificial intelligence (AI) models that are reshaping industries and redefining human-machine collaboration. However, the realization of ubiquitous intelligence faces considerable challenges due to substantial resource consumption in large models and high communication bandwidth demands. To address these challenges, AI Flow has been introduced as a multidisciplinary framework that integrates cutting-edge IT and CT advancements, with a particular emphasis on the following three key points. First, device-edge-cloud framework serves…
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Taxonomy
TopicsExplainable Artificial Intelligence (XAI) · Ethics and Social Impacts of AI · Human-Automation Interaction and Safety
