DocumentCode
2909613
Title
On the Feasibility of Linear Discrete-Time Systems of the Green Scheduling Problem
Author
Li, Zheng ; Huang, Pei-Chi ; Mok, Aloysius K. ; Nghiem, Truong ; Behl, Madhur ; Pappas, George ; Mangharam, Rahul
Author_Institution
Dept. of Comput. Sci., Univ. of Texas at Austin, Austin, TX, USA
fYear
2011
fDate
Nov. 29 2011-Dec. 2 2011
Firstpage
295
Lastpage
304
Abstract
Peak power consumption of buildings in large facilities like hospitals and universities becomes a big issue because peak prices are much higher than normal rates. During a power demand surge an automated power controller of a building may need to schedule ON and OFF different environment actuators such as heaters and air quality control while maintaining the state variables such as temperature or air quality of any room within comfortable ranges. The green scheduling problem asks whether a scheduling policy is possible for a system and what is the necessary and sufficient condition for systems to be feasible. In this paper we study the feasibility of the green scheduling problem for HVAC(Heating, Ventilating, and Air Conditioning) systems which are approximated by a discrete-time model with constant increasing and decreasing rates of the state variables. We first investigate the systems consisting of two tasks and find the analytical form of the necessary and sufficient conditions for such systems to be feasible under certain assumptions. Then we present our algorithmic solution for general systems of more than 2 tasks. Given the increasing and decreasing rates of the tasks, our algorithm returns a subset of the state space such that the system is feasible if and only if the initial state is in this subset. With the knowledge of that subset, a scheduling policy can be computed on the fly as the system runs, with the flexibility to add power-saving, priority-based or fair sub-policies.
Keywords
discrete time systems; scheduling; automated power controller; discrete time model; green scheduling problem; linear discrete time systems; power consumption; scheduling policy; Buildings; Green products; Heating; Processor scheduling; Safety; Scheduling; feasibility; green scheduling;
fLanguage
English
Publisher
ieee
Conference_Titel
Real-Time Systems Symposium (RTSS), 2011 IEEE 32nd
Conference_Location
Vienna
ISSN
1052-8725
Print_ISBN
978-1-4577-2000-0
Type
conf
DOI
10.1109/RTSS.2011.34
Filename
6121447
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