Power-saving scheduling for weakly dynamic voltage scaling devices

被引:0
作者
Chen, JJ [1 ]
Ku, TW
Lu, HI
机构
[1] Natl Taiwan Univ, Dept Comp Sci & Informat Engn, Taipei, Taiwan
[2] Natl Taiwan Univ, Grad Inst Networking & Multimedia, Dept Comp Sci & Informat Engn, Taipei, Taiwan
来源
ALGORITHMS AND DATA STRUCTURES, PROCEEDINGS | 2005年 / 3608卷
关键词
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
We study the problem of non-preemptive scheduling to minimize energy consumption for devices that allow dynamic voltage scaling. Specifically, consider a device that can process jobs in a non-preemptive manner. The input consists of (i) the set R of available speeds of the device, (ii) a set J of jobs, and (iii) a precedence constraint Pi among J. Each job j in J, defined by its arrival time a(j), deadline d(j), and amount of computation c(j), is supposed to be processed by the device at a speed in R. Under the assumption that a higher speed means higher energy consumption, the power-saving scheduling problem is to compute a feasible schedule with speed assignment for the jobs in J such that the required energy consumption is minimized. This paper focuses on the setting of weakly dynamic voltage scaling, i.e., speed change is not allowed in the middle of processing a job. To demonstrate that this restriction on many portable power-aware devices introduces hardness to the power-saving scheduling problem, we prove that the problem is NP-hard even if a(j) = a(j') and d(j) = d(j') hold for all j,j' is an element of J and \R\ = 2. If \R\ < infinity, we also give fully polynomial-time approximation schemes for two cases of the general NP-hard problem: (a) all jobs share a common arrival time, and (b) Pi = 0 and for any j, j' is an element of J, a(j) <= a(j') implies d(j) <= d(j'). To the best of our knowledge, there is no previously known approximation algorithm for any special case of the NP-hard problem.
引用
收藏
页码:338 / 349
页数:12
相关论文
共 50 条
  • [41] Optimal Test Scheduling Formulation under Power Constraints with Dynamic Voltage and Frequency Scaling
    Millican, Spencer K.
    Saluja, Kewal K.
    JOURNAL OF ELECTRONIC TESTING-THEORY AND APPLICATIONS, 2014, 30 (05): : 569 - 580
  • [42] Feedback EDF scheduling exploiting dynamic voltage scaling
    Zhu, YF
    Mueller, F
    RTAS 2004: 10TH IEEE REAL-TIME AND EMBEDDED TECHNOLOGY AND APPLICATIONS SYMPOSIUM, PROCEEDINGS, 2004, : 84 - 93
  • [43] Content-based Power-saving Design for Augmented Reality Applications on Mobile Devices
    Chou, Ping-Han
    Wei, Shih-En
    Lin, Chun-Han
    PROCEEDINGS OF THE 29TH ACM/IEEE INTERNATIONAL SYMPOSIUM ON LOW POWER ELECTRONICS AND DESIGN, ISLPED 2024, 2024,
  • [44] Power-saving, switched-mode power supply
    Vanthomme, R
    ELECTRONICS WORLD, 1999, 105 (1763): : 908 - 908
  • [45] Policy of power-saving in the aspects of compensation of reactive power
    Romanov, A.N.
    Promyshlennaya Energetika, 1992, (11):
  • [46] A promising power-saving technique: Approximate computing
    Huang, Junqi
    Kumar, T. Nandha
    Abbas, Haider
    2018 IEEE SYMPOSIUM ON COMPUTER APPLICATIONS & INDUSTRIAL ELECTRONICS (ISCAIE 2018), 2018, : 285 - 290
  • [47] Power-saving Control for adverse Operating Conditions
    不详
    ATP EDITION, 2009, (09): : 56 - 56
  • [48] Production of Ceramic Pigments by Power-Saving Technology
    V. A. Goremykin
    S. Yu. Panov
    M. K. Al'-Kudakh
    Yu. V. Krasovitskii
    Glass and Ceramics, 2001, 58 : 135 - 137
  • [49] Efficiency of Power-Saving Fluorescent Lamps.
    Litvinov, V.S.
    Fam Tkhe Vin'
    Mun'os, V.S.
    1600,
  • [50] Optimality of Frame Aggregation-Based Power-Saving Scheduling Algorithm for Broadband Wireless Networks
    Liu, Wen-Jiunn
    Feng, Kai-Ten
    Tseng, Po-Hsuan
    IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2014, 13 (02) : 577 - 591