Time–frequency characterization of sub-divisional scale seasonal rainfall in India using the Hilbert–Huang transform
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  • 作者:M. Janga Reddy ; S. Adarsh
  • 关键词:Rainfall ; Spectral analysis ; Multiscale decomposition ; Time frequency characterization ; Hilbert–Huang transform
  • 刊名:Stochastic Environmental Research and Risk Assessment (SERRA)
  • 出版年:2016
  • 出版时间:April 2016
  • 年:2016
  • 卷:30
  • 期:4
  • 页码:1063-1085
  • 全文大小:1,540 KB
  • 参考文献:Adarsh S, Janga Reddy M (2015a) Trend analysis of rainfall in four meteorological subdivisions in southern India using non parametric methods and discrete wavelet transforms. Int J Climatol 35(6):1107–1124CrossRef
    Adarsh S, Janga Reddy M (2015b) Multiscale analysis of suspended sediment concentration data from natural channels using the Hilbert–Huang transform. Aquatic Procedia 4:780–788CrossRef
    Anctil F, Coulibaly P (2004) Wavelet analysis of the inter-annual variability in southern Québec streamflow. J Clim 17:163–173CrossRef
    Antico A, Schlotthauer G, Torres ME (2014) Analysis of hydro-climatic variability and trends using a novel empirical mode decomposition: application to Parana river basin. J Geophys Res 119(3):1218–1233
    Azad S (2011) Extreme Indian Monsoon rainfall years and the sunspot cycle. Adv Sci Lett 4(11–12):3765–3769CrossRef
    Azad S, Narasimha R, Sett SK (2008) A wavelet based significance test for periodicities in Indian Monsoon Rainfall. Int J Wavelets, Multi-Resolut Inf Process 6(2):291–304CrossRef
    Azad S, Vignesh TS, Narasimha R (2010) Periodicities in Indian monsoon rainfall over spectrally homogeneous regions. Int J Climatol 30(15):2289–2298CrossRef
    Barnhart BL, Eichinger WE (2011) Empirical mode decomposition applied to solar irradiance, global temperature, sunspot number and CO2 concentration data. J Atmos Solar Terr Phys 73:1771–1779CrossRef
    Bedrosian E (1963) A product theorem for Hilbert transforms. Proc IEEE Trans 51:868–869
    Bhalme HN, Jadhav SK (1984) The double (Hale) sunspot cycle and floods and droughts in India. Weather 39:112–116CrossRef
    Bhattacharya S, Narasimha R (2007) Regional differentiation in multi-decadal connections between Indian monsoon rainfall and solar activity. J Geophys Res 112:D24103. doi:10.​1029/​D008353 CrossRef
    Campbell WH, Blechman JB, Bryson RA (1983) Long period tidal forcing of Indian monsoon rainfall: a hypothesis. J Climate Appl Meteorol 22:287–296CrossRef
    Chellali F, Khellaf A, Belouchrani A (2010) Application of time–frequency representation in the study of the cyclical behavior of wind speed in Algeria: wavelet transform. Stoch Env Res Risk Assess 24(8):1233–1239CrossRef
    Chen X, Wu Z, Huang NE (2010) The time–dependent intrinsic correlation based on the empirical mode decomposition. Adv Adaptive Data Anal 2:233–265CrossRef
    Claud C, Pascal T (2007) Revisiting the possible links between the Quasi–Biennial Oscillation and the Indian summer monsoon using NCEP R-2 and CMAP fields. J Clim 20:773–787CrossRef
    Feng S, Hu Q (2008) How the North Atlantic multi-decadal oscillation may have influenced the Indian summer monsoon during the past two millennia. Geophys Res Lett 35:L01707. doi:10.​1029/​2007GL032484 CrossRef
    Franceschini S, Tsai C (2010) Application of Hilbert-Huang transform method for analyzing toxic concentrations in the Niagara river. J Hydrol Eng 15(2):90–96CrossRef
    Gadgil S, Vinayachandran PN, Francis PA, Gadgil S (2004) Extremes of the Indian summer monsoon rainfall, ENSO and equatorial Indian Ocean oscillation. Geophys Res Lett 31:L12213. doi:10.​1029/​2004GL019733 CrossRef
    Goswami BN, Madhusoodanan MS, Neema CP, Sengupta D (2006) A physical mechanism for North Atlantic SST influence on the Indian summer monsoon. Geophys Res Lett 33:L02706. doi:10.​1029/​2005GL024803
    Huang NE, Wu Z (2008) A review on Hilbert Huang Transform: method and its applications to geophysical studies. Rev Geophys 46(2):1–23. doi:10.​1029/​2007RG000228 CrossRef
    Huang NE, Shen Z, Long SR, Wu MC, Shih HH, Zheng Q, Yen NC, Tung CC, Liu HH (1998) The empirical mode decomposition and the Hilbert spectrum for nonlinear and non-stationary time series analysis. Proc R Soc A 454:903–995CrossRef
    Huang Y, Schmitt FG, Lu Z, Liu Y (2009a) Analysis of daily river flow fluctuations using empirical mode decomposition and arbitrary order Hilbert spectral analysis. J Hydrol 454:103–111CrossRef
    Huang NE, Wu Z, Long SR, Arnold KC, Blank K, Liu TW (2009b) On instantaneous frequency. Adv Adapt Data Anal 1(2):177–229CrossRef
    Iyengar RN, Raghu Kanth TSG (2005) Intrinsic mode functions and a strategy for forecasting Indian monsoon rainfall. Meteorol Atmos Phys 90:17–36CrossRef
    Iyengar RN, Raghu Kanth TSG (2006) Forecasting of seasonal monsoon rainfall at subdivisional level. Curr Sci 91(3):350–356
    Jain SK, Kumar V, Saharia M (2013) Analysis of rainfall and temperature trends in north-east India. Int J Climatol 33(4):968–978CrossRef
    Karthikeyan L, Nagesh Kumar D (2013) Predictability of non-stationary time series using wavelet and EMD based ARMA Models. J Hydrol 502:103–119CrossRef
    Kashid SS, Maity R (2012) Prediction of monthly rainfall on homogeneous monsoon regions of India based on large scale circulation patterns using genetic programming. J Hydrol 454–455(2012):26–41CrossRef
    Klionski DM, Oreshko NI, Geppener VV, Vasiljev AV (2008) Applications of empirical mode decomposition for processing non-stationary signals. Pattern Recognit Image Anal 18(3):390–399CrossRef
    Kripalani RH, Kulkarni A (1997) Rainfall variability over south East Asia-connections with Indian Monsoon and ENSO extremes: new perspectives. Int J Climatol 17:1155–1168CrossRef
    Krishnakumar K, Rajagopalan B, Cane MA (1999) On the weakening relationship between the Indian monsoon and ENSO. Science 284:2156–2159CrossRef
    Krishnakumar KN, Rao GSLHVP, Gopakumar CS (2009) Rainfall trends in twentieth century over Kerala, India. Atmos Environ 43:1940–1944CrossRef
    Kumar V, Jain SK, Singh Y (2010) Analysis of long-term rainfall trends in India. Hydrol Sci J 55(4):484–496CrossRef
    Kumar KN, Rajeevan M, Pai DS, Srivastava AK, Preethi B (2013) On the observed variability of monsoon droughts over India. Weather Climate Extrem 1:42–50CrossRef
    Lee T, Ouarda TBMJ (2011) Prediction of climate non-stationary oscillation processes with empirical mode decomposition. J Geophys Res. doi:10.​1029/​2010JD015142
    Lee T, Ouarda TBMJ (2012) Stochastic simulation of non-stationary oscillation hydroclimatic processes using empirical mode decomposition. Water Resour Res 48:W02514. doi:10.​1029/​2011WR010660
    Lu R, Dong B, Ding H (2006) Impact of the atlantic multidecadal oscillation on the Asian summer monsoon. Geophys Res Lett 33:L24701. doi:10.​1029/​2006GL027655 CrossRef
    Maity R, Nagesh Kumar D (2006a) Hydroclimatic association of monthly summer monsoon rainfall over India with large-scale atmospheric circulation from tropical Pacific ocean and Indian ocean region. Atmos Sci Lett 7(4):101–107CrossRef
    Maity R, Nagesh Kumar D (2006b) Bayesian dynamic modeling for monthly Indian summer monsoon rainfall using El Niño-Southern Oscillation (ENSO) and Equatorial Indian Ocean Oscillation (EQUINOO). J Geophys Res. doi:10.​1029/​2005JD006539
    Massei N, Fournier M (2012) Assessing the expression of large scale climatic fluctuations in the hydrologic variability of daily Seine river flow (France) between 1950 and 2008 using Hilbert Huang Transform. J Hydrol 448–449(2012):119–128CrossRef
    Massei N, Durand A, Deloffre J, Dupont J, Valdes D, Laignel B (2007) Investigating possible links between the North Atlantic Oscillation and rainfall variability in north western France over the past 35 years. J Geophys Res. doi:10.​1029/​2005JD007000
    Mirza MMQ (2003) Climate change and extreme weather events: can developing countries adapt? Clim Policy 3(2003):233–248CrossRef
    Mohapatra M, Mohanty UC, Behera S (2003) Spatial variability of daily rainfall over Orissa, India, during the southwest summer monsoon season. Int J Climatol 23:1867–1887CrossRef
    Molla MKI, Rahman MS, Sumi A, Banik P (2006) Empirical mode decomposition analysis of climate changes with special reference to rainfall data. Discr Dyn Nat Soc 45348:1–17. doi:10.​1155/​DDNS/​2006/​45348 CrossRef
    Mooley DA, Parthasarathy B (1983) Indian summer monsoon and El Nino. Pageoph 121:339–352CrossRef
    Nagesh Kumar D, Janga Reddy M, Maity R (2007) Regional rainfall forecasting using large scale climate teleconnections and artificial intelligence techniques. J Intell Syst 16(4):307–332
    Narasimha R, Bhattacharyya S (2010) A wavelet cross-spectral analysis of Solar-ENSO-rainfall connections in the Indian Monsoons. Appl Comput Harmonic Anal 28:285–295CrossRef
    Narasimha R, Kailas SV (2001) A wavelet map of monsoon variability. Proc Indian Natl Sci Acad 67(3):327–341
    Niu J (2013) Precipitation in the Pearl River basin, South China: scaling, regional patterns, and influence of large-scale climate anomalies. Stoch Env Res Risk Assess 27(5):1253–1268CrossRef
    Nuttall AH (1966) On the quadrature approximation to the Hilbert transform of modulated signals. Proc IEEE 54:1458–1459CrossRef
    Panda DK, Kumar A, Singandhupe RB, Sahoo N (2013) Hydroclimatic changes in a climate-sensitive tropical region. Int J Climatol 33(7):1633–1645CrossRef
    Rao RKS, Lakhole NJ (1978) Quasi-biennial oscillation and summer southwest monsoon. Indian J Meteorol Hydrol Geophys 29:403–411
    Rudi J, Pabel R, Jager G, Koch R, Kunoth A, Bogena H (2010) Multiscale analysis of hydrologic time series data using the Hilbert Huang transform. Vadose Zone J 9:925–942CrossRef
    Shukla J, Paolino DA (1983) The southern oscillation and long-range forecasting of the summer monsoon rainfall over India. Monsoon Weather Rev 111:1830–1837CrossRef
    Torrence C, Webster PJ (1999) Inter-decadal changes in the ENSO–monsoon system. J Clim 12:2679–2690CrossRef
    Torres ME, Colominas MA, Schlotthauer G, Fladrin P (2011) A complete ensemble empirical mode decomposition with adaptive noise. IEEE Int conf Acoustic Speech Signal Process, Prague, pp 4144–4147
    Vijayakumar R, Kulkarni R (1995) The variability of the inter-annual oscillations of the Indian summer monsoon rainfall. Advn Atmos Sci 12(1):95–102CrossRef
    Walker GT (1933) Seasonal weather and its prediction. Nature 132:805–808CrossRef
    Wu Z, Huang NE (2004) A study on the characteristics of white noise using the empirical mode decomposition method. Proc R Soc A 460:1597–1611CrossRef
    Wu Z, Huang NE (2005a) Ensemble empirical mode decomposition: a noise-assisted data analysis method. Centre for Ocean-Land-Atmospheric Studies Technical Report. 193, Centre for Ocean-Land-Atmos. Stud., Calverton. (ftp://​grads.​iges.​org/​pub/​ctr/​ctr_​193.​pdf )
    Wu Z, Huang NE (2005b) Statistical significance Test of Intrinsic mode functions. In: Norden E Huang (ed.). Hilbert Huang transform and its applications. (NASA Goddard Space Flight Center, USA), Samuel S P Shen (University of Alberta, Canada). World Scientific Publishing Singapore
    Yu SP, Yang JS, Liu GM, Yao RJ, Wang XP (2012) Multiple time scale characteristics of rainfall and its impact on soil salinization in the typical easily salinized area in Huang–Huai–Hai Plain, China. Stoch Env Res Risk Assess 26(7):983–992CrossRef
    Zhang R, Delworth TL (2006) Impact of Atlantic multidecadal oscillations on India/Sahel rainfall and Atlantic hurricanes. Geophys Res Lett 33:L17712. doi:10.​1029/​2006GL02626 CrossRef
  • 作者单位:M. Janga Reddy (1)
    S. Adarsh (1)

    1. Department of Civil Engineering, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:Environment
    Mathematical Applications in Environmental Science
    Mathematical Applications in Geosciences
    Probability Theory and Stochastic Processes
    Statistics for Engineering, Physics, Computer Science, Chemistry and Geosciences
    Numerical and Computational Methods in Engineering
    Waste Water Technology, Water Pollution Control, Water Management and Aquatic Pollution
  • 出版者:Springer Berlin / Heidelberg
  • ISSN:1436-3259
文摘
Time–frequency characterization is useful in understanding the nonlinear and non-stationary signals of the hydro-climatic time series. The traditional Fourier transform, and wavelet transform approaches have certain limitations in analyzing non-linear and non-stationary hydro-climatic series. This paper presents an effective approach based on the Hilbert–Huang transform to investigate time–frequency characteristics, and the changing patterns of sub-divisional rainfall series in India, and explored the possible association of monsoon seasonal rainfall with different global climate oscillations. The proposed approach integrates the complete ensemble empirical mode decomposition with adaptive noise algorithm and normalized Hilbert transform method for analyzing the spectral characteristics of two principal seasonal rainfall series over four meteorological subdivisions namely Assam-Meghalaya, Kerala, Orissa and Telangana subdivisions in India. The Hilbert spectral analysis revealed the dynamic nature of dominant time scales for two principal seasonal rainfall time series. From the trend analysis of instantaneous amplitudes of multiscale components called intrinsic mode functions (IMFs), it is found that both intra and inter decadal modes are responsible for the changes in seasonal rainfall series of different subdivisions and significant changes are noticed in the amplitudes of inter decadal modes of two seasonal rainfalls in the four subdivisions since 1970s. Further, the study investigated the links between monsoon rainfall with the global climate oscillations such as Quasi Bienniel Oscillation (QBO), El Nino Southern Oscillation (ENSO), Sunspot Number (SN), Atlantic Multidecadal Oscillation (AMO) etc. The study noticed that the multiscale components of rainfall series IMF1, IMF2, IMF3, IMF4 and IMF5 have similar periodic structure of QBO, ENSO, SN, tidal forcing and AMO respectively. As per the seasonal rainfall patterns is concerned, the results of the study indicated that for Assam-Meghalaya subdivision, there is a likelihood of extreme rare events at ~0.2 cycles per year, and both monsoon and pre-monsoon rainfall series have decreasing trends; for Kerala subdivision, extreme events can be expected during monsoon season with shorter periodicity (~2.5 years), and monsoon rainfall has statistically significant decreasing trend and post-monsoon rainfall has a statistically significant increasing trend; and for Orissa subdivision, there are chances of extremes rainfall events in monsoon season and a relatively stable rainfall pattern during post-monsoon period, but both monsoon and post-monsoon rainfall series showed an overall decreasing trend; for Telangana subdivision, there is a likelihood of extreme events during monsoon season with a periodicity of ~4 years, but both monsoon and post-monsoon rainfall series showed increasing trends. The results of correlation analysis of IMF components of monsoon rainfall and five climate indices indicated that the association is expressed well only for low frequency modes with similar evolution of trend components.

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