DocumentCode
2998943
Title
On-line Batch Scheduling in Distributed Optical Networks
Author
Wang, Yang ; Cao, Xiaojun ; Caciula, Adrian ; Hu, Qian
Author_Institution
Dept. of Comput. Sci., Georgia State Univ. Atlanta, Atlanta, GA, USA
fYear
2012
fDate
21-25 May 2012
Firstpage
886
Lastpage
893
Abstract
Batch scheduling accommodates a group of tasks with the start/end time constraints to maximize the revenue from scheduling tasks over a number of servers, which has been extensively studied in the context of Job-machine scheduling. In optical networks, batch scheduling refers to the process of scheduling a group of data units (i.e., the jobs) that competing for the same set of wavelength channels (i.e., the machines). Classical Job-machine scheduling studies considered both the case of a pure-loss system, and the case with waiting rooms (i.e., buffers), which are generally in the form of Random Access Memory (RAM). In optical networks, the buffering is achieved by feeding the optical signal into a fixed length of fiber, namely Fiber Delay Lines, since optical RAM is not yet available. The unique feature of the discrete and predefined buffering time in fact instantiates a new type of problem, namely Job-machine scheduling with Discrete-time Buffers. In this work, we comprehensively study batch scheduling in optical networks. We show that batch scheduling with and without FDLs corresponds to two different instances of Job-machine scheduling problem. While proving their NP-Completeness, we mathematically model both cases using Integer Linear Programming formulations to provide an optimal scheduling. Given the timeliness request for on-line batch scheduling and the dramatic problem size in optical networks, we also propose polynomial-time heuristic algorithms, which are shown to be near-optimal in our simulations.
Keywords
computational complexity; distributed processing; integer programming; linear programming; optical fibre networks; random-access storage; scheduling; telecommunication computing; NP-completeness; RAM; discrete-time buffers; distributed optical networks; fiber delay lines; integer linear programming formulations; job-machine scheduling; online batch scheduling; polynomial-time heuristic algorithms; pure-loss system; random access memory; revenue maximization; start-end time constraints; wavelength channels; Optical buffering; Optical fibers; Optical network units; Optical packet switching; Optimal scheduling; Scheduling; batch scheduling; optical FDL;
fLanguage
English
Publisher
ieee
Conference_Titel
Parallel and Distributed Processing Symposium Workshops & PhD Forum (IPDPSW), 2012 IEEE 26th International
Conference_Location
Shanghai
Print_ISBN
978-1-4673-0974-5
Type
conf
DOI
10.1109/IPDPSW.2012.109
Filename
6270732
Link To Document