A Utility Accrual Scheduling Algorithm for Real-Time Activities With Mutual Exclusion Resource Constraints

Abstract

This paper presents a uni-processor real-time scheduling algorithm called the Generic Utility Scheduling algorithm (which we will refer to simply as GUS). GUS solves an open real-time scheduling problem scheduling application activities that have time constraints specified using arbitrarily shaped time/utility functions, and have mutual exclusion resource constraints. A time/utility function is a time constraint specification that describes an activity s utility to the system as a function of that activity's completion time. Given such time and resource constraints, we consider the scheduling objective of maximizing the total utility that is accrued by the completion of all activities. Since this problem is NP-hard, GUS heuristically computes schedules with a polynomial-time cost of O(n exp 3)) at each scheduling event, where n is the number of activities in the ready queue. We evaluate the performance of GUS through simulation and by an actual implementation on a real-time POSIX operating system. Our simulation studies and implementation measurements reveal that GUS performs close to, if not better than, the existing algorithms for the cases that they apply. Furthermore, we analytically establish several timeliness and non-timeliness properties of GUS.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2006
Accession Number
ADA456339

Entities

People

  • Binoy Ravindran
  • E. D. Jensen
  • Haisang Wu
  • Peng Li

Organizations

  • MITRE Corporation

Tags

Communities of Interest

  • Space
  • Weapons Technologies

DTIC Thesaurus Topics

  • Air Defense
  • Airborne Warning And Control System
  • Algorithms
  • Cancellation
  • Computational Complexity
  • Control Systems
  • Corporations
  • Defense Systems
  • Engineering
  • Kernels (Operating System)
  • Normal Distribution
  • Operating Systems
  • Scheduling (Production)
  • Simulations
  • System Software
  • Time Intervals
  • Workload

Fields of Study

  • Computer science

Readers

  • Clinical Trial Research.
  • Operations Research
  • Parallel and Distributed Computing.