Assessment of the ungauge rainfall forecasting using SDSM-GIS

An accuracy in the hydrological modelling will be effected when having limited data sources especially at ungauged areas. Due to this matter, it will not receiving any significant attention especially on the potential hydrologic extremes. Three of rainfall stations Pam Paya Pinang station, Paya Besa...

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Main Author: Nur Awatif, Ahmad Shukri
Format: Undergraduates Project Papers
Language:English
Published: 2019
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/29320/
http://umpir.ump.edu.my/id/eprint/29320/1/15.Assessment%20of%20the%20ungauge%20rainfall%20forecasting%20using%20SDSM-GIS.pdf
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author Nur Awatif, Ahmad Shukri
author_facet Nur Awatif, Ahmad Shukri
author_sort Nur Awatif, Ahmad Shukri
building UMP Institutional Repository
collection Online Access
description An accuracy in the hydrological modelling will be effected when having limited data sources especially at ungauged areas. Due to this matter, it will not receiving any significant attention especially on the potential hydrologic extremes. Three of rainfall stations Pam Paya Pinang station, Paya Besar station and Kg. Sg. Soi acr oss Kuantan river were considered in this research. Thus, the objective was to analyses the accuracy of the long-term projected rainfall at ungauged rainfall station using integrated SDSM GIS model. The SDSM was used as a climate agent to predict the changes of the climate trend in ∆ 2030s by gauged stations. Five predictors were selected to form the local climate at the region which provided by NCEP (validated) and CanESM2-RCP4.5 (projected). According to the statistical analyses, the SDSM was successfully to produced reliable validated results with lesser % MAE (<23%) and higher R (1.0). The projected rainfall was suspected to decrease 14% in ∆2030s. These findings then used to compare the accuracy of monthly rainfall at ungauged station (Stn 2). The GIS-Kriging method being as an interpolation agent to treat Stn 2. Meanwhile, the next objective was to estimate the accuracy of the forecasted monthly rainfall using Kriging-GIS interpolation. Comparing between ungauged and gauged stations, the small %MAE in the projected monthly results between gauged and ungauged stations as a proved the integrated SDSMGIS model can producing a reliable long-term rainfall generation at ungauged station(station 2). Based on the performance GIS interpolation, for the result its historical rainfall (JPS) and projected rainfall between gauged and ungauged stations can be accepted because the difference in percentage error of MAE is less than 30%. In July was recorded value with higher error in MAE with 26.6% for historical rainfall. While the higher error for projected rainfall is 25.81% which happened in December.
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format Undergraduates Project Papers
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institution Universiti Malaysia Pahang
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language English
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publishDate 2019
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spelling ump-293202023-04-27T04:15:06Z http://umpir.ump.edu.my/id/eprint/29320/ Assessment of the ungauge rainfall forecasting using SDSM-GIS Nur Awatif, Ahmad Shukri TC Hydraulic engineering. Ocean engineering An accuracy in the hydrological modelling will be effected when having limited data sources especially at ungauged areas. Due to this matter, it will not receiving any significant attention especially on the potential hydrologic extremes. Three of rainfall stations Pam Paya Pinang station, Paya Besar station and Kg. Sg. Soi acr oss Kuantan river were considered in this research. Thus, the objective was to analyses the accuracy of the long-term projected rainfall at ungauged rainfall station using integrated SDSM GIS model. The SDSM was used as a climate agent to predict the changes of the climate trend in ∆ 2030s by gauged stations. Five predictors were selected to form the local climate at the region which provided by NCEP (validated) and CanESM2-RCP4.5 (projected). According to the statistical analyses, the SDSM was successfully to produced reliable validated results with lesser % MAE (<23%) and higher R (1.0). The projected rainfall was suspected to decrease 14% in ∆2030s. These findings then used to compare the accuracy of monthly rainfall at ungauged station (Stn 2). The GIS-Kriging method being as an interpolation agent to treat Stn 2. Meanwhile, the next objective was to estimate the accuracy of the forecasted monthly rainfall using Kriging-GIS interpolation. Comparing between ungauged and gauged stations, the small %MAE in the projected monthly results between gauged and ungauged stations as a proved the integrated SDSMGIS model can producing a reliable long-term rainfall generation at ungauged station(station 2). Based on the performance GIS interpolation, for the result its historical rainfall (JPS) and projected rainfall between gauged and ungauged stations can be accepted because the difference in percentage error of MAE is less than 30%. In July was recorded value with higher error in MAE with 26.6% for historical rainfall. While the higher error for projected rainfall is 25.81% which happened in December. 2019-01 Undergraduates Project Papers NonPeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/29320/1/15.Assessment%20of%20the%20ungauge%20rainfall%20forecasting%20using%20SDSM-GIS.pdf Nur Awatif, Ahmad Shukri (2019) Assessment of the ungauge rainfall forecasting using SDSM-GIS. Faculty of Civil Engineering and Earth Resources, Universiti Malaysia Pahang.
spellingShingle TC Hydraulic engineering. Ocean engineering
Nur Awatif, Ahmad Shukri
Assessment of the ungauge rainfall forecasting using SDSM-GIS
title Assessment of the ungauge rainfall forecasting using SDSM-GIS
title_full Assessment of the ungauge rainfall forecasting using SDSM-GIS
title_fullStr Assessment of the ungauge rainfall forecasting using SDSM-GIS
title_full_unstemmed Assessment of the ungauge rainfall forecasting using SDSM-GIS
title_short Assessment of the ungauge rainfall forecasting using SDSM-GIS
title_sort assessment of the ungauge rainfall forecasting using sdsm-gis
topic TC Hydraulic engineering. Ocean engineering
url http://umpir.ump.edu.my/id/eprint/29320/
http://umpir.ump.edu.my/id/eprint/29320/1/15.Assessment%20of%20the%20ungauge%20rainfall%20forecasting%20using%20SDSM-GIS.pdf