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GAPN-LA: A framework for solving graph problems using Petri nets and learning automata
- Source :
- Engineering Applications of Artificial Intelligence. 77:255-267
- Publication Year :
- 2019
- Publisher :
- Elsevier BV, 2019.
-
Abstract
- A fusion of learning automata and Petri nets, referred to as APN-LA, has been recently introduced in the literature for achieving adaptive Petri nets. A number of extensions to this adaptive Petri net have also been introduced; together we name them the APN-LA family. Members of this family can be utilized for solving problems in the domain of graph problems; each member is suitable for a specific category within this domain. In this paper, we aim at generalizing this family into a single framework, called generalized APN-LA (GAPN-LA), which can be considered as a framework for solving graph-based problems. This framework is an adaptive Petri net, organized into a graph structure. Each place or transition in the underlying Petri net is mapped into exactly one vertex of the graph, and each vertex of the graph represents a part of the underlying Petri net. A vertex in GAPN-LA can be considered as a module, which, in cooperation with other modules in the framework, helps in solving the problem at hand. To elaborate the problem-solving capability of the GAPN-LA, several graph-based problems have been solved in this paper using the proposed framework.
- Subjects :
- Vertex (graph theory)
Structure (mathematical logic)
0209 industrial biotechnology
Theoretical computer science
Learning automata
Computer science
02 engineering and technology
Petri net
Graph
Domain (software engineering)
020901 industrial engineering & automation
Artificial Intelligence
Control and Systems Engineering
0202 electrical engineering, electronic engineering, information engineering
Graph (abstract data type)
020201 artificial intelligence & image processing
Electrical and Electronic Engineering
Subjects
Details
- ISSN :
- 09521976
- Volume :
- 77
- Database :
- OpenAIRE
- Journal :
- Engineering Applications of Artificial Intelligence
- Accession number :
- edsair.doi...........58c0094046d93ff5832a1f4c5dd7e90f