Title :
Maximizing Workflow Throughput for Streaming Applications in Distributed Environments
Author :
Gu, Yi ; Wu, Qishi
Author_Institution :
Dept. of Comput. Sci., Univ. of Memphis, Memphis, TN, USA
Abstract :
Large-scale computation-intensive applications in various science fields feature complex DAG-structured workflows comprised of distributed computing modules with intricate intermodule dependencies. Mapping such workflows in heterogeneous network environments and maximizing their throughput are crucial to the success of large-scale scientific applications that process streaming datasets. We construct analytical cost models and formulate workflow mapping as an optimization problem for maximum frame rate. The difficulty of this problem essentially arises from the topological matching nature in the spatial domain, which is further compounded by the resource sharing complicacy in the temporal dimension if multiple modules are deployed on the same node. We conduct a rigorous workflow stability analysis and design a workflow mapping scheme based on a topological layer-oriented dynamic programming solution to identify and minimize the global bottleneck. The performance superiority of the proposed mapping scheme is illustrated by extensive simulation-based comparisons with existing algorithms.
Keywords :
distributed processing; dynamic programming; distributed computing; distributed environments; global bottleneck; heterogeneous network; large-scale computation-intensive applications; maximizing workflow; multiple modules; optimization problem; resource sharing; streaming applications; topological layer-oriented dynamic programming; workflow mapping; Algorithm design and analysis; Complexity theory; Computational modeling; Computer networks; Network topology; Stability analysis; Steady-state;
Conference_Titel :
Computer Communications and Networks (ICCCN), 2010 Proceedings of 19th International Conference on
Conference_Location :
Zurich
Print_ISBN :
978-1-4244-7114-0
DOI :
10.1109/ICCCN.2010.5560146