DEVELOPMENT OF SCS-CN METHOD AND AUTOREGRESSIVE TIME SERIES MODEL FOR THE ESTIMATION OF RUNOFF OF UPPER SEWANI WATERSHED OF DAMODAR CATCHMENT, JHARKHAND, INDIA

Journal Title: International Journal of Agriculture Sciences - Year 2016, Vol 8, Issue 32

Abstract

The present experiment was conducted the prime objective, to generate and estimate the curve number for runoff and also to develop autoregressive (AR), for the prediction of rainfall, from the study area and estimate the parameters of runoff. Autoregressive (AR) models of orders 0, 1 and 2 were tried for annual stream flow series. Parameters were estimated by the general recursive formula proposed by [24]. The adequacy of models and goodness of fit were tested by Box-Pierce Portmanteau test, Akaike Information Criterion (AIC) and by comparison of historical and predicted correlogram. The AIC value for AR (1) model (141.855) was lying between AR (0) (142.764) and AR (2) (152.749) which is satisfying the selection criteria. The mean forecast error was also very less. On the basis of the statistical test, Akaike Information Criterion, AIC the AR (1) model with estimate model parameters, estimated for the best future predictions in Upper Sewani watershed. This is graphical representation between historical and generated correlogram, where in runoff there was a very close agreement. The performance comparison of both the models was made with the coefficient of determination (R2) which was 0.988 in case of SCS- Curve Number and 0.946 in case of Autoregressive Time Series Model. On further comparison it shows that autoregressive is giving much better results than the Curve Number method, so it can be more trust worthy.

Authors and Affiliations

SANDEEP KUMAR PANDEY

Keywords

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  • EP ID EP170566
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How To Cite

SANDEEP KUMAR PANDEY (2016). DEVELOPMENT OF SCS-CN METHOD AND AUTOREGRESSIVE TIME SERIES MODEL FOR THE ESTIMATION OF RUNOFF OF UPPER SEWANI WATERSHED OF DAMODAR CATCHMENT, JHARKHAND, INDIA. International Journal of Agriculture Sciences, 8(32), 1668-1672. https://europub.co.uk./articles/-A-170566