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Modelling the impact of ambidextrous learning on team performance using agent-based simulation

Modelling the impact of ambidextrous learning on team performance using agent-based simulation
Modelling the impact of ambidextrous learning on team performance using agent-based simulation

In an increasingly competitive environment, organizations need to continuously innovate (explorative learning) while making steady improvements to their existing operations (exploitative learning). The capacity to pursue both exploratory and exploitative learning simultaneously is called ambidexterity. Therefore, ambidexterity has become one of the important research topics in the field of organizational study. This paper focuses on ambidexterity learning at the team level. The objective is to propose a generic agent-based simulation model that can be used to examine how ambidextrous learning affect team performance under different levels of task complexity, communication intensity and communication cost. The experiment shows that the model can reproduce what have been reported in the team performance literature.

Agent-Based Simulation, Ambidextrous Learning, Knowledge Exchange, Team Performance
75-85
Operational Research Society
Yan, Yongxing
d3f06f35-8f93-426c-99dc-e143de3886d8
Onggo, Stephan
8e9a2ea5-140a-44c0-9c17-e9cf93662f80
Currie, Christine
Rhodes-Leader, Luke
Yan, Yongxing
d3f06f35-8f93-426c-99dc-e143de3886d8
Onggo, Stephan
8e9a2ea5-140a-44c0-9c17-e9cf93662f80
Currie, Christine
Rhodes-Leader, Luke

Yan, Yongxing and Onggo, Stephan (2023) Modelling the impact of ambidextrous learning on team performance using agent-based simulation. Currie, Christine and Rhodes-Leader, Luke (eds.) In Proceedings of the Operational Research Society Simulation Workshop 2023 (SW23). Operational Research Society. pp. 75-85 . (doi:10.36819/SW23.009).

Record type: Conference or Workshop Item (Paper)

Abstract

In an increasingly competitive environment, organizations need to continuously innovate (explorative learning) while making steady improvements to their existing operations (exploitative learning). The capacity to pursue both exploratory and exploitative learning simultaneously is called ambidexterity. Therefore, ambidexterity has become one of the important research topics in the field of organizational study. This paper focuses on ambidexterity learning at the team level. The objective is to propose a generic agent-based simulation model that can be used to examine how ambidextrous learning affect team performance under different levels of task complexity, communication intensity and communication cost. The experiment shows that the model can reproduce what have been reported in the team performance literature.

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More information

Accepted/In Press date: 16 January 2023
Published date: 2023
Venue - Dates: 11th Simulation Workshop, National Oceanography Centre, Southampton, United Kingdom, 2023-03-27 - 2023-03-29
Keywords: Agent-Based Simulation, Ambidextrous Learning, Knowledge Exchange, Team Performance

Identifiers

Local EPrints ID: 478506
URI: http://eprints.soton.ac.uk/id/eprint/478506
PURE UUID: 043f4066-6266-4b21-923c-b0db258577fd
ORCID for Stephan Onggo: ORCID iD orcid.org/0000-0001-5899-304X

Catalogue record

Date deposited: 04 Jul 2023 17:41
Last modified: 17 Mar 2024 03:54

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Contributors

Author: Yongxing Yan
Author: Stephan Onggo ORCID iD
Editor: Christine Currie
Editor: Luke Rhodes-Leader

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