학술논문

Closed-loop load balancing: comparison of a discrete event simulation with experiments
Document Type
Conference
Source
Proceedings of the 2005, American Control Conference, 2005. American Control Conference American Control Conference, 2005. Proceedings of the 2005. :2721-2726 vol. 4 2005
Subject
Robotics and Control Systems
Computing and Processing
Components, Circuits, Devices and Systems
Load management
Discrete event simulation
Bandwidth
Computational modeling
Concurrent computing
Computer networks
Distributed computing
Chaotic communication
Size control
Iterative methods
Language
ISSN
0743-1619
2378-5861
Abstract
Load balancing for parallel computations is modeled as a deterministic dynamic nonlinear time-delay system. This model accounts for the trade-off between using processor time/network bandwidth and the advantage of distributing the load evenly between the nodes to reduce overall processing time. A distributed closed-loop controller is presented to balance load dynamically at each node by using not only the local estimate of the queue size of other nodes, but also estimates of the number of tasks in transit. A discrete event simulation using OPNET Modeler is presented and compared with experimental data, and results indicate good agreement between the nonlinear time-delay model and the behaviors observed on a parallel computer network. Moreover, both simulations and experiments show a dramatic increase in performance obtained using the proposed closed-loop controller.