A Flexible Framework for Communication-Efficient Machine Learning
Sarit Khirirat, Sindri Magnússon, Arda Aytekin, Mikael Johansson
Abstract
With the increasing scale of machine learning tasks, it has become essential to reduce the communication between computing nodes. Early work on gradient compression focused on the bottleneck between CPUs and GPUs, but communication-efficiency is now needed in a variety of different system architectures, from high-performance clusters to energy-constrained IoT devices. In the current practice, compression levels are typically chosen before training and settings that work well for one task may be vastly suboptimal for another dataset on another architecture. In this paper, we propose a flexible framework which adapts the compression level to the true gradient at each iteration, maximizing the improvement in the objective function that is achieved per communicated bit. Our framework is easy to adapt from one technology to the next by modeling how the communication cost depends on the compression level for the specific technology. Theoretical results and practical experiments indicate that the automatic tuning strategies significantly increase communication efficiency on several state-of-the-art compression schemes.
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Install the CLIlune papers fulltext 8964e7bb-90fe-4e9c-be84-15bccb5ae3c7Cited by top-tier papers2
- Distributed Extra-gradient with Optimal Complexity and Communication GuaranteesAli Ramezani-Kebrya, Kimon Antonakopoulos, Igor Krawczuk, Justin Deschenaux et al.ICLR 2023
- LEGACY: A Lightweight Dynamic Gradient Compression Strategy for Distributed Deep LearningMostapha Essoullami, El Houcine Bergou, Aritra DuttaICLR 2026
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