Job Scheduling Strategies for Parallel Processing

...


anglais | 21-12-2024 | 212 pages

9783031744297

Livre de poche


61,78€

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Couverture / Jaquette

This book constitutes the refereed proceedings of the 27th International Workshop on Job Scheduling Strategies for Parallel Processing, JSSPP 2024, held in San Francisco, CA, USA, on May 31, 2024.The 10 full papers included in this book were carefully reviewed and selected from 15 submissions. The JSSPP 2024 covers several interesting problems within the resource management and scheduling domains.

Table des matières

.- Technical papers.
.- Real-life HPC Workload Trace Featuring Refined Job Runtime Estimates.
.- An Empirical Study of Machine Learning-based Synthetic Job Trace Generation Methods.
.- Clustering Based Job Runtime Prediction for Backfilling Using Classification.
.- Launchpad: Learning to Schedule Using Offline and Online RL Methods.
.- Radical-Cylon: A Heterogeneous Data Pipeline for Scientific Computing.
.- Evaluation of Heuristic Task-to-Thread Mapping Using Static and Dynamic Approaches.
.- Challenges in parallel matrix chain multiplication.
.- A node selection method for on-demand job execution with considering deadline constraints.
.- Maximizing Energy Budget Utilization Using Dynamic Power Cap Control.
.- Run your HPC jobs in Eco-Mode: revealing the potential of user-assisted power capping in supercomputing systems.

Détails

Code EAN :9783031744297
Auteur(trice): 
Editeur :Springer Nature Switzerland-Springer Nature Switzerland-Springer International Publishing
Date de publication :  21-12-2024
Format :Livre de poche
Langue(s) : anglais
Hauteur :235 mm
Largeur :155 mm
Epaisseur :12 mm
Poids :330 gr
Stock :Impression à la demande (POD)
Nombre de pages :212
Mots clés :  Cloud Computing; GPU; Grid Computing; HPC computing; Job Scheduling; Parallel Computing; Parallel Processing; Simulation; System Evaluation; VM scheduling; Workflow; Workload Modeling; cluster computing; distributed systems; performance evaluation; performance optimization; resource isolation; scheduling; system modeling; workload evaluation