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Synchronised, Energy-Aware and Causality-Guided Orchestration for Sustainable AI Serving

Project
SYNAPSE-AI aims to develop new strategies for the sustainable and energy-efficient management of computing infrastructures dedicated to Artificial Intelligence, with particular reference to HPC systems and the serving of large-scale linguistic models (LLMs). The project combines load and power forecasting techniques, causal inference, dynamic KV-cache management, and GPU resource control, with the goal of reducing energy consumption while maintaining high levels of performance and quality of service. Another innovative element is the use of time synchronization between workload data, GPU telemetry, and electrical measurements, thus improving the reliability of energy analyses and orchestration decisions.
  • Overview
  • Research

Overview

Contributor

RINALDI Stefano   Scientific Manager  

Leading department

Department of Information Engineering   Principale  

Term type

Horizon Europe - Marie Skłodowska-Curie actions - PostDoctoral Fellowships (PF)

Financier

UNIONE EUROPEA

Partner

Università degli Studi di BRESCIA

Research

Concepts (4)


PE6_6 - Algorithms and complexity, distributed, parallel and network algorithms, algorithmic game theory - (2024)

Goal 11: Sustainable cities and communities

Goal 9: Industry, Innovation, and Infrastructure

Settore IMIS-01/B - Misure elettriche ed elettroniche
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