globalchange  > 过去全球变化的重建
DOI: 10.1371/journal.pone.0132590
论文题名:
Estimating the Impacts of Local Policy Innovation: The Synthetic Control Method Applied to Tropical Deforestation
作者: Erin O. Sills; Diego Herrera; A. Justin Kirkpatrick; Amintas Brandão Jr.; Rebecca Dickson; Simon Hall; Subhrendu Pattanayak; David Shoch; Mariana Vedoveto; Luisa Young; Alexander Pfaff
刊名: PLOS ONE
ISSN: 1932-6203
出版年: 2015
发表日期: 2015-7-14
卷: 10, 期:7
语种: 英语
英文关键词: Population density ; Urban economics ; Climate change ; Confidence intervals ; Analysts ; Clouds ; Conservation science ; Optimization
英文摘要: Quasi-experimental methods increasingly are used to evaluate the impacts of conservation interventions by generating credible estimates of counterfactual baselines. These methods generally require large samples for statistical comparisons, presenting a challenge for evaluating innovative policies implemented within a few pioneering jurisdictions. Single jurisdictions often are studied using comparative methods, which rely on analysts’ selection of best case comparisons. The synthetic control method (SCM) offers one systematic and transparent way to select cases for comparison, from a sizeable pool, by focusing upon similarity in outcomes before the intervention. We explain SCM, then apply it to one local initiative to limit deforestation in the Brazilian Amazon. The municipality of Paragominas launched a multi-pronged local initiative in 2008 to maintain low deforestation while restoring economic production. This was a response to having been placed, due to high deforestation, on a federal “blacklist” that increased enforcement of forest regulations and restricted access to credit and output markets. The local initiative included mapping and monitoring of rural land plus promotion of economic alternatives compatible with low deforestation. The key motivation for the program may have been to reduce the costs of blacklisting. However its stated purpose was to limit deforestation, and thus we apply SCM to estimate what deforestation would have been in a (counterfactual) scenario of no local initiative. We obtain a plausible estimate, in that deforestation patterns before the intervention were similar in Paragominas and the synthetic control, which suggests that after several years, the initiative did lower deforestation (significantly below the synthetic control in 2012). This demonstrates that SCM can yield helpful land-use counterfactuals for single units, with opportunities to integrate local and expert knowledge and to test innovations and permutations on policies that are implemented in just a few locations.
URL: http://journals.plos.org/plosone/article/file?id=10.1371/journal.pone.0132590&type=printable
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/20688
Appears in Collections:过去全球变化的重建
影响、适应和脆弱性
科学计划与规划
气候变化与战略
全球变化的国际研究计划
气候减缓与适应
气候变化事实与影响

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作者单位: Department of Forestry and Environmental Resources, North Carolina State University, Raleigh, NC, United States of America;IMAZON, Amazon Institute of People and the Environment, Belém, Brazil;Sanford School of Public Policy, Duke University, Durham, NC, United States of America;Sanford School of Public Policy, Duke University, Durham, NC, United States of America;IMAZON, Amazon Institute of People and the Environment, Belém, Brazil;TerraCarbon LLC., Charlottesville, VA, United States of America;National Wildlife Federation, Washington, D.C., United States of America;Sanford School of Public Policy, Duke University, Durham, NC, United States of America;TerraCarbon LLC., Charlottesville, VA, United States of America;School of Forestry and Environmental Studies, Yale University, New Haven, CT, United States of America;Geography Department, Clark University, Worcester, MA, United States of America;Sanford School of Public Policy, Duke University, Durham, NC, United States of America

Recommended Citation:
Erin O. Sills,Diego Herrera,A. Justin Kirkpatrick,et al. Estimating the Impacts of Local Policy Innovation: The Synthetic Control Method Applied to Tropical Deforestation[J]. PLOS ONE,2015-01-01,10(7)
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