4.6 Article

An Efficient Method of Deadlock Detection and Recovery for Flexible Manufacturing Systems by Resource Flow Graphs

期刊

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TASE.2021.3114498

关键词

System recovery; Petri nets; Frequency modulation; Explosions; Iterative methods; Flow graphs; Directed graphs; Deadlock detection and recovery; flexible manufacturing system (FMS); liveness; Petri net

资金

  1. National Natural Science Foundation of China [61673309, 61374068]
  2. Fundamental Research Funds for the Central Universities [JB210402]
  3. Science and Technology Development Fund
  4. MSAR [011/2017/A, 0012/2019/A1]

向作者/读者索取更多资源

Deadlocks in flexible manufacturing systems can be detected and resolved using a resource flow graph of a Petri net and a set of recovery transitions designed for loop graphs. This approach avoids generating a complete reachability graph of the Petri net and ensures that the resulting net is deadlock-free with all reachable markings.
Deadlocks are a highly undesirable situation in flexible manufacturing systems (FMSs). This article presents a direct and novel method to detect such markings by constructing the resource flow graph of a Petri net that models an FMS and to recover such markings by adding a set of recovery transitions. First, an algorithm is developed to build a new kind of directed graph called the resource flow graph of a Petri net. Resource flow graphs can well represent the competition for shared resources by different processes. Second, based on the resource flow graph, loop graphs can be found. Furthermore, partial deadlock markings can be easily detected due to their relationship with loop graphs. Then, we propose an algorithm to design a set of recovery transitions for loop graphs that are enabled at partial deadlock markings. The proposed approach can detect partial deadlock markings without generating a complete reachability graph of a Petri net and the resulting net is deadlock-free with all reachable markings by adding the obtained recovery transitions. Finally, some widely used examples are provided to demonstrate the proposed approach.

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