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Multiregional Invasive Species Management: Theory and an Application to Florida's Exotic Plants

Published online by Cambridge University Press:  28 April 2015

C.S. Kim
Affiliation:
Economic Research Service, U.S. Department of Agriculture
Donna Lee
Affiliation:
Food & Resource Economics Department, University of Florida, Gainesville, FL
Glenn Schaible
Affiliation:
Economic Research Service, U.S. Department of Agriculture
Utpal Vasavada
Affiliation:
Production Economics & Technology Branch, Economic Research Service, U.S. Department of Agriculture, Washington, D.C

Abstract

This research develops a multiregional optimal control model that incorporates regional allocation of a public budget for controlling invasive plants when regionally differential recreation demand functions and species control costs are present. Our equimarginal condition for optimal budget allocation equates the relative marginal economic benefits per dollar spent across regions. The model was applied to Florida Public Conservation Land regions, and results indicate that the magnitude of an annual management budget affects its distribution among species management regions, but the size of the intrinsic growth rate does not affect the pattern of budget allocation among regions.

Type
Articles
Copyright
Copyright © Southern Agricultural Economics Association 2007

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References

Burnett, K.M., and Kaiser, B.A.. “Models of Spatial and Intertemporal Invasive Species Management.” Valuation for Environmental Policy: Ecological Benefits. Arlington, YA: Conference sponsored by Environmental Protection Agency, the National Center for Environmental Economics, and the National Center for Environmental Research, April 23-24, 2007.Google Scholar
Eiswerth, M.E., and Johnson, W.S.. “Managing Nonindigenous Invasive Species: Insights from Dynamic Analysis.” Environmental and Resource Economics 23(3)(2002):319342.CrossRefGoogle Scholar
Eiswerth, M.E., and van Kooten, G.C.. “Uncertainty, Economics, and the Spread of an Invasive Plant Species.” American Journal of Agricultural Economics 84(December 2002): 13171322.CrossRefGoogle Scholar
Florida Department of Environmental Protection (DEP). Upland Invasive Exotic Plant Management Program. Tallahassee, FL: Bureau of Invasive Plant Management, DEP, 2003.Google Scholar
Harding, D., and Thomas, M.. The Economics of Selected Florida Wildlife Management Areas. Tallahassee, FL: Florida Fish and Wildlife Conservation Commision, 2003.Google Scholar
Huffaker, R., and Cooper, K.. “Plant Succession as a Natural Range Restoration Factor in Private Livestock Enterprise.” American Journal of Agricultural Economics 77(November 1995): 901913.CrossRefGoogle Scholar
Kim, C.S., Lubowski, R., Lewandrowski, J., and Eiswerth, M.. “Prevention or Control: Optimal Government Policies for Invasive Species Management.” Agricultural and Resource Economics Review 35(1)(2006):2940.CrossRefGoogle ScholarPubMed
Kim, C.S., Moore, M.R., Hanchar, J.J., and Nieswiadomy, M.. “A Dynamic Model of Adaptation to Resource Depletion: Theory and an Application to Groundwater Mining.” Journal of Environmental Economics and Management 17(1)(1989):6682.CrossRefGoogle Scholar
Kim, K.S., Wang, T.C., and Yang, X.B.. “Simulation of Apparent Infection Rate to Predict Severity of Soybean Rust Using a Fuzzy Logic System.” Phytopathology 95(2005):11221131.CrossRefGoogle ScholarPubMed
Koundouri, P., and Christou, C.. “Dynamic Adaptation to Resource Scarcity and Backstop Availability: Theory and Application to Groundwater.” The Australian Journal of Agricultural and Resource Economics 50(2006):227245.CrossRefGoogle Scholar
National Invasive Species Information Center. Chinese Tallow. Internet site: http://www.invasivespeciesinfo.gov/plants/chintallow.shtml (Last modified on April 19, 2007).Google Scholar
Odom, D.I.S., Cacho, S.J., Sinden, J.A., and Griffith, G.R.. “Policies for the Management of Weeds in Natural Ecosystems: The Case of Scotch Broom (Cytisus scoparius, L.) in an Australian National Park.” Ecological Economics 44(2003):119135.CrossRefGoogle Scholar
Olson, L.J.The Economics of Terrestrial Invasive Species: A Review of the Literature.” Agricultural and Resource Economics Review 35(2006): 178194.CrossRefGoogle Scholar
Settle, C., and Shogren, J.F.. “Modeling Native-Exotic Species Within Yellowstone Lake.” American Journal of Agricultural Economics 84(2002): 13231328.CrossRefGoogle Scholar
Taylor, C.M., and Hastings, A.. “Finding Optimal Control Strategies for Invasive Species: A Density-Structured Model for Spartina alterni-flora.” Journal of Applied Ecology 41(2004): 10491057.CrossRefGoogle Scholar
Voronov, D.A.Calculating the Intrinsic Growth Rate: Comparison of Definition and Model.” Zhurnal Obshchei Biologii 66(2005):425430 (in Russian).Google ScholarPubMed
Wikipedia—Brazilian Pepper. Brazilian Pepper. Internet site: http://en.wikipedia.org/wiki/Brazilian_pepper (Accessed June 21, 2007).Google Scholar
Wikipedia—Casuarina. Casuarina. Internet site: http://en.wikipedia.org/wiki/Casuarina (Accessed June 21, 2007).Google Scholar