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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/6248
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dc.contributor.advisor陳釗而(Jau-Er Chen)
dc.contributor.authorChih-Han Chenen
dc.contributor.author陳之翰zh_TW
dc.date.accessioned2021-05-16T16:24:05Z-
dc.date.available2013-07-05
dc.date.available2021-05-16T16:24:05Z-
dc.date.copyright2013-07-05
dc.date.issued2013
dc.date.submitted2013-07-03
dc.identifier.citationAbadie, A., A. Diamond, and J. Hainmueller, (2010), “Synthetic Control Methods for Comparative Case Studies: Estimating the Effect of California’s Tobacco Control Program,” Journal of the American Statistical Association, 105(490), 493-505.
Abadie, A., and J. Gardeazabal, (2003), “The Economic Costs of Conflict: A Case Study of the Basque Country,” American Economic Review, 93(1), 112-132.
Ashenfelter, O., (1978), “Estimating the Effect of Training Programs on Earnings,” Review of Economics and Statistics, 60(1), 47-57.
Ashenfelter, O., and D. Card, (1985), “Using the Longitudinal Structure of Earnings to Estimate the Effect of Training Programs,” Review of Economics and Statistics, 67(4), 648-660.
Card, D., (1990), “The Impact of the Mariel Boatlift on the Miami Labor Market,” Industrial and Labor Relations Review, 43, 245-257.
Card, D., and A. Krueger, (1994), “Minimum Wages and Employment: A Case Study of the Fast-food Industry in New Jersey and Pennsylvania,” American Economic Review, 84 (4), 772-784.
Card, D., and D. Sullivan, (1988), “Measuring the Effect of Subsidized Training Programs on Movements In and Out of Employment,” Econometrica, 56(3), 497-530.
Fichtenberg, C. M., and S. A. Glantz, (2000), “Association of the California Tobacco Control Program with Declines in Cigarette Consumption and Mortality from Heart Disease,” New England Journal of Medicine, 343(24), 1772-1777.
Fraker, T., and R. Maynard, (1987), “The Adequacy of Comparison Group Designs for Evaluations of Employment-Related Programs,” Journal of Human Resources, 22(2), 194-227.
Heckman, J. J., and R. Robb, (1985), “Alternative Methods for Evaluating the Impact of Interventions: An Overview,” Journal of Econometrics, 30(1), 239-267.
Holland, P., (1986), “Statistics and Causal Inference,” Journal of the American Statistical Association, 81(396), 945-960.
Hsiao, C., H. S. Ching, and S. K. Wan, (2012), “A Panel Data Approach for Program Evaluation: Measuring the Benefits of Political and Economic Integration of Hong Kong with Mainland China,” Journal of Applied Econometrics, 27(5), 705-740.
Imbens, G. W., and J. M. Wooldridge, (2009), “Recent Developments in the Econometrics of Program Evaluation,” Journal of Economic Literature, 47(1), 5-86.
Lalonde, R. J., (1986), “Evaluating the Econometric Evaluations of Training Programs with Experimental Data,” American Economic Review, 76(4), 604-620.
Manski, C. F., (1990), “Nonparametric Bounds on Treatment Effects,” American Economic Review, 80(2), 319-323.
Metropolis, N., and S. Ulam, (1949), 'The Monte Carlo Method,' Journal of the American Statistical Association, 44(247), 335-341.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/6248-
dc.description.abstract本研究透過蒙地卡羅法之模擬以評量Hsiao et al. (2012) 提出的縱橫資料反事實法(Panel-Data Counterfactual Method)與 Abadie et al. (2010) 提出的合成對照組法(Synthetic Control Method)之人工對照組估計之準確度。在使用主體之選擇由資料產生,與具單位處理效果(Treatment effect)之估計方法中,何者對隨時間變動之處理效果估計較佳為本研究之目標。將此二法,應用於多個實例資料,進行模擬及交叉比對,以評估其可用性。結果顯示當共同因素在時間中的變動與因素負荷在地區間的變動均小時,此二法之估計均良好。但以均方差衡量對人工對照的估計時,縱橫資料反事實法在大多數情況下, 比合成對照組法準確。儘管此二法均需謹慎使用,由蒙地卡羅模擬之結果顯示,縱橫資料反事實法明顯較佳。zh_TW
dc.description.abstractThe accuracy of the artificial control estimation using the panel-data counterfactual method proposed by Hsiao et al. (2012) and the synthetic control method proposed by Abadie et al. (2010) were evaluated using the Monte Carlo simulations. The aim was to determine which of the methods is superior in studies with time-variant treatment effect, individual treatment effect and data-driven subject selection process. A cross checking process and simulations conducted under various model settings provide guidance on the applicability of these two methods. Both methods perform satisfactory when the variation of common factors in time and factor-loadings across regions are small. In most cases the panel-data counterfactual method is more accurate in artificial control estimation in term of mean-square-deviation criteria than the synthetic control method. Though both methods must be used with caution, the panel-data counterfactual method is clearly the better method suggested by the Monte Carlo results.en
dc.description.provenanceMade available in DSpace on 2021-05-16T16:24:05Z (GMT). No. of bitstreams: 1
ntu-102-R99323024-1.pdf: 567173 bytes, checksum: da40100cabbe894b24d69f41a993f201 (MD5)
Previous issue date: 2013
en
dc.description.tableofcontentsContent
Authorization of Oral Examination Commitee i
Chinese Abstract ii
English Abstract iii
List of Figures v
List of Tables vi
1. Introduction 1
2. Literature Review 5
3. Methods 8
3-1. Synthetic Control Method 8
3-2. Panel-Data Counterfactual Method 12
4. Data Generation and Analysis 16
4-1. Monte Carlo Method and Data Generation 16
4-2. Data Processing Programs and Cross Checking 19
5. Results and Discussions 23
6. Conclusion 27
Reference 28
dc.language.isoen
dc.title以蒙地卡羅法探討人工對照組之適用性zh_TW
dc.titleArtificial Control Methods: A Monte Carlo Studyen
dc.typeThesis
dc.date.schoolyear101-2
dc.description.degree碩士
dc.contributor.oralexamcommittee林惠玲(Hui-Lin Lin),王泓仁(Hung-Jen Wang)
dc.subject.keyword人工對照組估計,模式模擬,縱橫資料反事實法,合成對照組法,蒙地卡羅法,zh_TW
dc.subject.keywordArtificial control estimation,model simulation,panel-data counterfactual method,synthetic control method,Monte Carlo method,en
dc.relation.page49
dc.rights.note同意授權(全球公開)
dc.date.accepted2013-07-03
dc.contributor.author-college社會科學院zh_TW
dc.contributor.author-dept經濟學研究所zh_TW
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