Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach

Evolutionary game theory (EGT) provides a powerful tool with which to unpack the interactive strategies of polluting enterprises (PEs), local government regulators (LG), and central government planners (CG) in China. Here, the prevailing institutional system of fiscal decentralization sees regulator...

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Main Authors: JIANG, Ke, YOU, Daming, MERRILL, Ryan Knowles, LI, Zhendong
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Language:English
Published: Institutional Knowledge at Singapore Management University 2019
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Online Access:https://ink.library.smu.edu.sg/lkcsb_research/6582
https://ink.library.smu.edu.sg/context/lkcsb_research/article/7581/viewcontent/Implementation_multi_agent_environ_av.pdf
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spelling sg-smu-ink.lkcsb_research-75812020-07-09T04:04:36Z Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach JIANG, Ke YOU, Daming MERRILL, Ryan Knowles LI, Zhendong Evolutionary game theory (EGT) provides a powerful tool with which to unpack the interactive strategies of polluting enterprises (PEs), local government regulators (LG), and central government planners (CG) in China. Here, the prevailing institutional system of fiscal decentralization sees regulatory mandates set by the CG and enforced at the LG level. This delegation shapes managers' incentives when deciding the degree to which firms will incur costs to reduce pollution and comply with state directives. Manager's choice sets draw shape from decisions at the LG level, where regulators balance the pursuit of environmental quality with the economic payoffs of tacit collusion with industry. LG and PEs incentives reciprocally shape and draw shape from outcomes at the CG level, where policymakers decide the degree to which they will support and supervise the behavior of LGs. By exploring the evolution of different participants' behavior and their evolutionary stable strategy (ESS) in line with the duplication of dynamic equations, EGT enables a robust, quantitative analysis of this iterative, interactive, three-player game, A numerical example serves to verify the theoretical results and support four key insights. First, the selection of environmental strategies manifest in a dynamic process of constant adjustment and optimization. Second, LGs outperform by integrating decisions from both CG and PEs in weighing alternative environmental strategies. Third, reducing regulatory costs at the CG level cascades to strengthen penalties for local violations and improve mitigation incentives in ways that aid an evolutionary game to converge on an ideal decision state. Fourth, a stable equilibrium cannot persist to allow LGs to sustain behaviors towards a "race to the bottom", even in the total absence of central regulation or high levels of dominance of polluting firms of LG regulators. EGT thus not only outcomes shed light on the full variation set of game outcomes, it also reveals the consequences of variable levels of collusion between LGs and PEs and options for the redesign of incentive mechanisms to reform the regulatory regime and improve market outcomes in China. (C) 2018 Elsevier Ltd. All rights reserved. 2019-03-01T08:00:00Z text application/pdf https://ink.library.smu.edu.sg/lkcsb_research/6582 info:doi/10.1016/j.jclepro.2018.12.252 https://ink.library.smu.edu.sg/context/lkcsb_research/article/7581/viewcontent/Implementation_multi_agent_environ_av.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection Lee Kong Chian School Of Business eng Institutional Knowledge at Singapore Management University Fiscal decentralization Environmental regulation strategy Evolutionary game theory Evolutionary stable strategy Multi-agent Numerical simulation Asian Studies Environmental Policy Environmental Sciences Strategic Management Policy
institution Singapore Management University
building SMU Libraries
continent Asia
country Singapore
Singapore
content_provider SMU Libraries
collection InK@SMU
language English
topic Fiscal decentralization
Environmental regulation strategy
Evolutionary game theory
Evolutionary stable strategy
Multi-agent
Numerical simulation
Asian Studies
Environmental Policy
Environmental Sciences
Strategic Management Policy
spellingShingle Fiscal decentralization
Environmental regulation strategy
Evolutionary game theory
Evolutionary stable strategy
Multi-agent
Numerical simulation
Asian Studies
Environmental Policy
Environmental Sciences
Strategic Management Policy
JIANG, Ke
YOU, Daming
MERRILL, Ryan Knowles
LI, Zhendong
Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
description Evolutionary game theory (EGT) provides a powerful tool with which to unpack the interactive strategies of polluting enterprises (PEs), local government regulators (LG), and central government planners (CG) in China. Here, the prevailing institutional system of fiscal decentralization sees regulatory mandates set by the CG and enforced at the LG level. This delegation shapes managers' incentives when deciding the degree to which firms will incur costs to reduce pollution and comply with state directives. Manager's choice sets draw shape from decisions at the LG level, where regulators balance the pursuit of environmental quality with the economic payoffs of tacit collusion with industry. LG and PEs incentives reciprocally shape and draw shape from outcomes at the CG level, where policymakers decide the degree to which they will support and supervise the behavior of LGs. By exploring the evolution of different participants' behavior and their evolutionary stable strategy (ESS) in line with the duplication of dynamic equations, EGT enables a robust, quantitative analysis of this iterative, interactive, three-player game, A numerical example serves to verify the theoretical results and support four key insights. First, the selection of environmental strategies manifest in a dynamic process of constant adjustment and optimization. Second, LGs outperform by integrating decisions from both CG and PEs in weighing alternative environmental strategies. Third, reducing regulatory costs at the CG level cascades to strengthen penalties for local violations and improve mitigation incentives in ways that aid an evolutionary game to converge on an ideal decision state. Fourth, a stable equilibrium cannot persist to allow LGs to sustain behaviors towards a "race to the bottom", even in the total absence of central regulation or high levels of dominance of polluting firms of LG regulators. EGT thus not only outcomes shed light on the full variation set of game outcomes, it also reveals the consequences of variable levels of collusion between LGs and PEs and options for the redesign of incentive mechanisms to reform the regulatory regime and improve market outcomes in China. (C) 2018 Elsevier Ltd. All rights reserved.
format text
author JIANG, Ke
YOU, Daming
MERRILL, Ryan Knowles
LI, Zhendong
author_facet JIANG, Ke
YOU, Daming
MERRILL, Ryan Knowles
LI, Zhendong
author_sort JIANG, Ke
title Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
title_short Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
title_full Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
title_fullStr Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
title_full_unstemmed Implementation of a multi-agent environmental regulation strategy under Chinese fiscal decentralization: An evolutionary game theoretical approach
title_sort implementation of a multi-agent environmental regulation strategy under chinese fiscal decentralization: an evolutionary game theoretical approach
publisher Institutional Knowledge at Singapore Management University
publishDate 2019
url https://ink.library.smu.edu.sg/lkcsb_research/6582
https://ink.library.smu.edu.sg/context/lkcsb_research/article/7581/viewcontent/Implementation_multi_agent_environ_av.pdf
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