References
- 기상청 홈페이지 www.kma.go.kr.
- 김진관, 김민석, 양동윤, 임규호 (2007) 한국에서의 최근 태풍피해에 따른 태풍의 이동경로 및 강우분포에 대한 연구, 한국지형학회지, 한국지형학회, 제14권, 제1호, pp. 77-85.
- 건설교통부 (2000) 1999년도 수자원관리기법개발연구조사 보고서.
- 박종길, 김병수, 정우식, 김은별, 이대근 (2006) 한반도에 영향을 주는 태풍의 통계적 특성 변화, 한국기상학회 논문집, 한국기상학회, 제16권, 제1호, pp. 1-17.
- 박창용, 문자연, 차은정, 윤원태, 최영은 (2008) 최근 한반도 여름철 강수특성의 변화, 대한지리학회, 제43권, 제3호, pp. 324-336.
- 이동규, 장동언, 위태권 (1992) 한반도에 접근하는 태풍, 1960 - 1989 제1부 : 통계와 종관 개요, 한국기상학회 논문집, 한국 기상학회, 제28권, 제2호, pp. 133-147.
- 유철상, 박창열 (2010) 호우사상의 대표 이동방향 결정, 한국방재학회 논문집, 한국방재학회, 제10권, 제2호, pp. 91-102.
- 윤강훈, 서봉철, 신현석 (2004) 크리깅 기법을 이용한 낙동강 유역 홍수강우의 공간해석 연구, 한국수자원학회 논문집, 한국수자원학회, 제37권, 제2호, pp. 233-240.
- 전일권 (2001) 강우 관측 자료를 이용한 대청댐 유역의 호우 추 적, 대한토목학회 논문집, 대한토목학회, 제21권, 제6-B호, pp.589-598.
- 최계운, 이희승, 안상진 (1993) 분포형 모델을 이용한 유역내 이동강우의 유출해석(2) - 모델의 적용, 한국수자원학회 논문집, 한국수자원학회, 제26권, 제1호, pp. 81-91.
- 최계운, 강희경, 박용섭 (2000). GIS를 활용한 유역내 이동강우에 의한 유출특성 연구, 한국수자원학회 논문집, 한국수자원학회, 제33권, 제6호, pp. 793-804.
- 한건연, 전민우, 최규현 (2004) 이동강우에 의한 유출영향분석, 한국수자원학회 논문집, 한국수자원학회, 제37권, 제10호, pp. 823-836.
- 한건연, 전민우, 최규현 (2006) 유역형상에 따르는 이동강우의 유 출영향분석 (I) - 대칭유역형상, 대한토목학회 논문집, 대한토 목학회, 제26권, 제1B호, pp. 15-25.
- Anderson, H.S., Jacobsen, P., and Harrmoës, P. (1991) The effect of rainfall movement on peak flow in sewers. Atmospheric Research, Vol. 27, pp. 129-135. https://doi.org/10.1016/0169-8095(91)90013-M
- Chang, C.L. (2007) Influence of moving rainstorms on watershed responses. Environmental Engineering Science, Vol. 27, No. 10, pp. 1353-1360.
- Choi, K.S., and Kim, B.J. (2007) Climatological characteristics of tropical cyclones making landfall over the Korean peninsula. Journal of the Korean Meteorological Society, Vol. 43, No. 2, pp. 97-109.
- Fisher, N.I. (1993) Statistical Analysis of Circular Data. Cambridge University Press.
- Fisher, N.I., and Hall, P.G. (1989) Bootstrap confidence regions for directional data. Journal of American Statistical Association, Vol. 84, pp. 996-1002. https://doi.org/10.2307/2290075
- Fisher, N.I., and Hall, P.G. (1990) New statistical methods for directional data I. Bootstrap comparison of mean directions and the fold test in palaeomagnetism. International Journal of Geophysics, Vol. 101, pp. 305-313. https://doi.org/10.1111/j.1365-246X.1990.tb06570.x
- Huff, F.A. (1967) Time distribution of rainfall in heavy storm. Water Resources Research, Vol. 3, No. 4, pp. 1007-1019. https://doi.org/10.1029/WR003i004p01007
- Jensen, M. (1984) Runoff pattern and peak flows from moving block rains based on linear time-area curve. Nordic Hydrology, Vol. 15, No. 3, pp. 155-168.
- Johnson, E.R., and Bras, R.L.. (1979) Real-time estimation of velocity and covariance structure of rainfall events using telemetered raingage data - A comparison of methods. Journal of Hydrology, Vol. 44, pp. 97-123. https://doi.org/10.1016/0022-1694(79)90149-5
- Lima, J.L.M.P.D., and Singh, V.P. (2002) The influence of storm movement on overland flow. Advanced Water Resources, Vol. 25, No. 7, pp. 817-828. https://doi.org/10.1016/S0309-1708(02)00067-2
- Lima, J.L.M.P.D., and Singh, V.P. (2003) Laboratory experiments on the influence of storm movement on overland flow. Physics and Chemistry of the Earth, Vol. 28, pp. 277-282. https://doi.org/10.1016/S1474-7065(03)00038-X
- Lima, J.L.M.P.D., Singh, V.P., and Lima, M.I.P.D. (2003) The influence of storm movement on water erosion: Storm direction and velocity effects. Catena, Vol. 52, No. 1, pp. 39-56. https://doi.org/10.1016/S0341-8162(02)00149-2
- Marshall, R.J. (1980) The estimation and distribution of storm movement and storm structure using a correlation analysis technique and raingauge data. Journal of Hydrology, Vol. 48, pp. 19-39. https://doi.org/10.1016/0022-1694(80)90063-3
- Niemczynowicz, J. (1984) Investigation of the influence of rainfall movement on runoff hydrograph. Part I - Simulation on conceptual catchment. Nordic Hydrology, Vol. 15, pp. 57-70.
- Niemczynowicz, J. (1987) Storm tracking using rain gauge data. Journal of Hydrology, Vol. 93, pp. 135-152. https://doi.org/10.1016/0022-1694(87)90199-5
- Niemczynowicz, J. (1988) The rainfall movement - A valuable complement to short-term rainfall data. Journal of Hydrology, Vol. 104, pp. 311-326. https://doi.org/10.1016/0022-1694(88)90172-2
- Niemczynowicz, J., and Jönsson, O. (1981) Extreme rainfall in Lund 1979-1980. Nordic Hydrology, Vol. 12, pp. 129-142.
- Niemczynowicz, J., and Dahlblom, P. (1984) Dynamic properties of rainfall in Lund. Nordic Hydrology, Vol. 15, pp. 9-24.
- Pilgrim, D.H., and Cordery, I. (1975) Rainfall temporal patterns for design floods. Journal of the Hydraulics Division, ASCE, Vol. 101, No. HY1, pp. 81-95.
- Singh, V.P. (1998) Effect of the direction of storm movement on planar flow. Hydrological Processes, Vol. 12, No. 1, pp. 147-170. https://doi.org/10.1002/(SICI)1099-1085(199801)12:1<147::AID-HYP568>3.0.CO;2-K
- Singh, V.P. (2002) The influence of the pattern of moving rainstorms on overland flow. Water Resources Research, Vol. 25, No. 7, pp. 817-828. https://doi.org/10.1016/S0309-1708(02)00067-2
- Takeuchi, K. (1985) An automatic storm tracking method used to analyze travelling characteristics of heavy rain areas. Natural Disaster Science, Vol. 7, No. 1, pp. 13-24.
- Townson, J.M., and Ong, H.S. (1974) A laboratory study of runoff caused by line storm moving over a conceptual catchment. Water Services, August, USA.
- Upton, G.J.G. (2002) A correlation-regression method for tracking rainstorms using rain-gauge data. Journal of Hydrology, Vol. 261, pp. 60-73. https://doi.org/10.1016/S0022-1694(01)00618-7
- Yen, B.C., and Chow, V.T. (1969) A laboratory study of surface runoff due to moving rainstorms. Water Resources Research, Vol. 5, No. 5, pp. 989-1006. https://doi.org/10.1029/WR005i005p00989
- Zawadzki, I.I. (1973) Statistical properties of precipitation patterns. Journal of Applied Meteorology, Vol. 12, pp. 459-472. https://doi.org/10.1175/1520-0450(1973)012<0459:SPOPP>2.0.CO;2