2006Unpublished venueRequires access

An Efficient Fault-Tolerant Scheme for Mobile Agent Execution

Xuejun Meng, Huanguo Zhang

Open publisher page 4 citations

Abstract

Fault-tolerance is one of the main problems that must be resolved to improve the adoption of the agent's computing paradigm. In this paper, we develop a pragmatic framework for agent systems fault-tolerance. The developed framework deploys an independent checkpointing strategy with cooperating agent and passive replication to offer a low-cost, application-transparent model for reliable agent-based computing that covers all possible faults that might invalidate reliable agent execution, migration and communication and maintains the exactly-once and non-blocking properties. At the end, we will present some performance results that show the effectiveness of the proposed fault-tolerance scheme.

About this research paper

What this paper is about

Fault-tolerance is one of the main problems that must be resolved to improve the adoption of the agent's computing paradigm. In this paper, we develop a pragmatic framework for agent systems fault-tolerance. The developed framework deploys an independent checkpointing strategy with cooperating agent and passive replication to offer a low-cost, application-transparent model for reliable agent-based computing that covers all possible faults that might invalidate reliable agent execution, migration and communication and maintains the exactly-once and non-blocking properties. At the end, we will present some performance results that show the effectiveness of the proposed fault-tolerance scheme.

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OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

Fault-tolerance is one of the main problems that must be resolved to improve the adoption of the agent's computing paradigm. In this paper, we develop a pragmatic framework for agent systems fault-tolerance. The developed framework deploys an independent checkpointing strategy with cooperating agent and passive replication to offer a low-cost, application-transparent model for reliable agent-based computing that covers all possible faults that might invalidate reliable agent execution, migration and communication and maintains the exactly-once and non-blocking properties. At the end, we will present some performance results that show the effectiveness of the proposed fault-tolerance scheme.

Key concepts: Fault tolerance, Computer science, Distributed computing, Scheme (mathematics), Replication (statistics), Blocking (statistics), Software fault tolerance, Mobile agent

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