Model continuity in the design of dynamic distributed real-time systems

被引:21
|
作者
Hu, XL [1 ]
Zeigler, BP
机构
[1] Georgia State Univ, Dept Comp Sci, Atlanta, GA 30303 USA
[2] Univ Arizona, Arizona Ctr Integrat Modeling & Simulat, Elect & Comp Engn Dept, Tucson, AZ 85721 USA
基金
美国国家科学基金会;
关键词
discrete event system specification (DEVS); distributed real-time systems; dynamic reconfiguration; model continuity; modeling and simulation; robotic team formation;
D O I
10.1109/TSMCA.2005.851283
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Model continuity refers to the ability to transition as much as possible a model specification through the stages of a development process. In this paper, the authors show how a modeling and simulation environment, based on the discrete event system specification formalism, can support model continuity in the design of dynamic distributed real-time systems. In designing such systems, the authors restrict such continuity to the models that implement the system's real-time control and dynamic reconfiguration. The proposed methodology supports systematic modeling of dynamic systems and adopts simulation-based tests for distributed real-time software. Model continuity is emphasized during the entire process of software development-the control models of a dynamic distributed real-time system can be designed, analyzed, and tested by simulation methods, and then smoothly transitioned from simulation to distributed execution. A dynamic team formation distributed robotic system is presented as an example to show how model continuity methodology effectively manages the complexity of developing and testing the control software for this system.
引用
收藏
页码:867 / 878
页数:12
相关论文
共 50 条
  • [1] Real-time performance estimation for dynamic, distributed real-time systems
    Huh, EN
    Welch, LR
    Mun, Y
    COMPUTATIONAL SCIENCE-ICCS 2002, PT III, PROCEEDINGS, 2002, 2331 : 1071 - 1079
  • [2] On the design of a dynamic distributed real-time environment
    Streich, H
    Gergeleit, M
    PROCEEDINGS OF THE JOINT WORKSHOP ON PARALLEL AND DISTRIBUTED REAL-TIME SYSTEMS: FIFTH INTERNATIONAL WORKSHOP ON PARALLEL AND DISTRIBUTED REAL-TIME SYSTEMS (WPDRTS) AND THE THIRD WORKSHOP ON OBJECT-ORIENTED REAL-TIME SYSTEMS (OORTS), 1997, : 251 - 256
  • [3] Scheduling of Dynamic Participants in Real-Time Distributed Systems
    Sin, Mong Leng
    Bouroche, Melanie
    Cahill, Vinny
    2011 30TH IEEE INTERNATIONAL SYMPOSIUM ON RELIABLE DISTRIBUTED SYSTEMS (SRDS), 2011, : 245 - 254
  • [4] Preserving real-time behavior in dynamic distributed systems
    Nett, E
    Gergeleit, M
    INTELLIGENT INFORMATION SYSTEMS, (IIS'97) PROCEEDINGS, 1997, : 535 - 539
  • [5] Specification and modeling of dynamic, distributed real-time systems
    Welch, LR
    Ravindran, B
    Shirazi, BA
    Bruggeman, C
    19TH IEEE REAL-TIME SYSTEMS SYMPOSIUM, PROCEEDINGS, 1998, : 72 - 81
  • [6] Design and Dynamic Update of Real-Time Systems
    Yi, Wang
    2019 IEEE 40TH REAL-TIME SYSTEMS SYMPOSIUM (RTSS 2019), 2019, : 1 - 3
  • [7] Hybrid agent model to design real-time distributed supervising and control systems
    Hu, Xiao-Hui
    Dang, Jian-Wu
    2006 9TH INTERNATIONAL CONFERENCE ON CONTROL, AUTOMATION, ROBOTICS AND VISION, VOLS 1- 5, 2006, : 142 - +
  • [8] Hierarchical design method for real-time distributed systems
    Yamane, S
    FIFTH INTERNATIONAL CONFERENCE ON REAL-TIME COMPUTING SYSTEMS AND APPLICATIONS, PROCEEDINGS, 1998, : 189 - 192
  • [9] Network conscious design of distributed real-time systems
    Park, JW
    Kim, YS
    Hong, SS
    Saksena, M
    Noh, SH
    Kwon, WH
    JOURNAL OF SYSTEMS ARCHITECTURE, 1998, 45 (02) : 131 - 156
  • [10] Transformational approach to the design of distributed real-time systems
    Tu, M.H.
    Yu, H.Q.
    Huadong Ligong Daxue Xuebao /Journal of East China University of Science and Technology, 2001, 27 (05):