• 제목/요약/키워드: Real-time flood forecasting

검색결과 88건 처리시간 0.027초

Real Time Error Correction of Hydrologic Model Using Kalman Filter

  • Wang, Qiong;An, Shanfu;Chen, Guoxin;Jee, Hong-Kee
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2007년도 학술발표회 논문집
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    • pp.1592-1596
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    • 2007
  • Accuracy of flood forecasting is an important non-structural measure on the flood control and mitigation. Hence, combination of horologic model with real time error correction became an important issue. It is one of the efficient ways to improve the forecasting precision. In this work, an approach based on Kalman Filter (KF) is proposed to continuously revise state estimates to promote the accuracy of flood forecasting results. The case study refers to the Wi River in Korea, with the flood forecasting results of Xinanjiang model. Compared to the results, the corrected results based on the Kalman filter are more accurate. It proved that this method can take good effect on hydrologic forecasting of Wi River, Korea, although there are also flood peak discharge and flood reach time biases. The average determined coefficient and the peak discharge are quite improved, with the determined coefficient exceeding 0.95 for every year.

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신경망을 이용한 낙동강 유역 하도유출 예측 및 홍수예경보 이용 (Real-Time Forecasting of Flood Runoff Based on Neural Networks in Nakdong River Basin & Application to Flood Warning System)

  • 윤강훈;서봉철;신현석
    • 한국수자원학회논문집
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    • 제37권2호
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    • pp.145-154
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    • 2004
  • 본 연구는 비선형성이 강한 강우-유출의 특성을 고려하여 홍수시 하도의 유출을 예측하고 하천유역의 홍수예경보에 이용하기 위하여 신경망 시스템의 모형화 가능성을 검증하였다. 신경망을 이용한 실시간 하도홍수 예측모형(Neural River Discharge-Stage Forecasting Mudel; NRDFM)은 낙동강 유역의 왜관 및 진동 지점의 홍수량 예측에 적용하였다. NRDFM에 의한 하도홍수량의 왜관 및 진동 지점 예측결과를 실측치와 비교$\cdot$검토한 결과 제시한 세 가지 모형 중 NRDFM-II의 예측성능이 가장 우수하였으며, NRDFM-I 및 NRDFM-II도 충분한 예측가능성을 보여주었다. 따라서, 본 연구에서 제시한 모형은 실시간 홍수예경보로의 적용이 가능하며, 이를 통하여 효율적으로 홍수를 통제 및 관리할 수 있을 것이다.

Accuracy analysis of flood forecasting of a coupled hydrological and NWP (Numerical Weather Prediction) model

  • Nguyen, Hoang Minh;Bae, Deg-Hyo
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2017년도 학술발표회
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    • pp.194-194
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    • 2017
  • Flooding is one of the most serious and frequently occurred natural disaster at many regions around the world. Especially, under the climate change impact, it is more and more increasingly trend. To reduce the flood damage, flood forecast and its accuracy analysis are required. This study is conducted to analyze the accuracy of the real-time flood forecasting of a coupled meteo-hydrological model for the Han River basin, South Korea. The LDAPS (Local Data Assimilation and Prediction System) products with the spatial resolution of 1.5km and lead time of 36 hours are extracted and used as inputs for the SURR (Sejong University Rainfall-Runoff) model. Three statistical criteria consisting of CC (Corelation Coefficient), RMSE (Root Mean Square Error) and ME (Model Efficiency) are used to evaluate the performance of this couple. The results are expected that the accuracy of the flood forecasting reduces following the increase of lead time corresponding to the accuracy reduction of LDAPS rainfall. Further study is planed to improve the accuracy of the real-time flood forecasting.

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DEVELOPMENT OF A REAL-TIME FLOOD FORECASTING SYSTEM BY HYDRAULIC FLOOD ROUTING

  • Lee, Joo-Heon;Lee, Do-Hun;Jeong, Sang-Man;Lee, Eun-Tae
    • Water Engineering Research
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    • 제2권2호
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    • pp.113-121
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    • 2001
  • The objective of this study is to develop a prediction mode for a flood forecasting system in the downstream of the Nakdong river basin. Ranging from the gauging station at Jindong to the Nakdong estuary barrage, the hydraulic flood routing model(DWOPER) based on the Saint Venant equation was calibrated by comparing the calculated river stage with the observed river stages using four different flood events recorded. The upstream boundary condition was specified by the measured river stage data at Jindong station and the downstream boundary condition was given according to the tide level data observed at he Nakdong estuary barrage. The lateral inflow from tributaries were estimated by the rainfall-runoff model. In the calibration process, the optimum roughness coefficients for proper functions of channel reach and discharge were determined by minimizing the sum of the differences between the observed and the computed stage. In addition, the forecasting lead time on the basis of each gauging station was determined by a numerical simulation technique. Also, we suggested a model structure for a real-time flood forecasting system and tested it on the basis of past flood events. The testing results of the developed system showed close agreement between the forecasted and observed stages. Therefore, it is expected that the flood forecasting system we developed can improve the accuracy of flood forecasting on the Nakdong river.

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관개저수지의 홍수유입량 예측 (Forecasting the Flood Inflow into Irrigation Reservoir)

  • 문종필;엄민용;박철동;김태얼
    • 한국농공학회:학술대회논문집
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    • 한국농공학회 1999년도 Proceedings of the 1999 Annual Conference The Korean Society of Agricutural Engineers
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    • pp.512-518
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    • 1999
  • Recently rainfall and water evel are monitored via on -line system in real-time bases. We applied the on-line system to get the rainfall and waterlevel data for the development of the real-time flood forecasting model based on SCS method in hourly bases. Main parameters for the model calibration are concentration time of flood and soil moisture condition in the watershed. Other parameters of the model are based on SCS TR-%% and DAWAST model. Simplex method is used for promoting the accuracy of parameter estimation. The basic concept of the model is minimizing the error range between forcasted flood inflow and actual flood inflow, and accurately forecasting the flood discharge some hours in advance depending on the concentration time. The flood forecasting model developed was applied to the Yedang and Topjung reservoir.

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신경망을 이용한 낙동강 유역 홍수기 댐유입량 예측 (Dam Inflow Forecasting for Short Term Flood Based on Neural Networks in Nakdong River Basin)

  • 윤강훈;서봉철;신현석
    • 한국수자원학회논문집
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    • 제37권1호
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    • pp.67-75
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    • 2004
  • 본 연구에서는 홍수시 다목적댐의 효율적 운영을 위하여 상류로부터 유입되는 홍수유입량을 실시간으로 예측하기 위해 역전파 신경망 모형을 사용하여 댐유입량 예측모형(Neural Dam Inflow Forecasting Model; NDIFM)을 개발하였다. NDIFM은 다목적댐에 의한 하류의 홍수조절 비중이 큰 낙동강의 남강댐 유역에 적용하였으며, 입력자료로는 댐유역 평균강우량, 실측 댐유입량, 예측 댐유입량 통을 사용하여 실시간 댐유입량 예측의 가능성을 검토하였다. 실측치와 예측치를 비교ㆍ검토한 결과 제시한 세 가지 모형 중 NDIFM-I이 가장 우수한 결과를 나타내었으며, NDIFM-II 및 NDIFM-III 또한 다양한 예측가능성을 보여주었다. 따라서, 강우-유출의 비선형시스템 모의를 위하여 물리적 매개변수가 복잡한 개념적 모형보다는 양질의 수문관측 자료만 축적된다면 블랙박스 모형인 신경망 모형이 실시간 홍수예측에 효율적으로 활용될 수 있을 것이다.

최적화기법을 이용한 관개저수지의 실시간 홍수예측모형(수공) (Real-time Flood Forecasting Model for Irrigation Reservoir Using Simplex Method)

  • 문종필;김태철
    • 한국농공학회:학술대회논문집
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    • 한국농공학회 2000년도 학술발표회 발표논문집
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    • pp.390-396
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    • 2000
  • The basic concept of the model is minimizing the error range between forecasted flood inflow and actual flood inflow, and accurately forecasting the flood discharge some hours in advance depending on the concentration time(Tc) and soil moisture retention storage(Sa). Simplex method that is a multi-level optimization technique was used to search for the determination of the best parameters of RETFLO (REal-Time FLOod forecasting)model. The flood forecasting model developed was applied to several strom events of Yedang reservoir during past 10 years. Model perfomance was very good with relative errors of 10% for comparison of total runoff volume and with one hour delayed peak time.

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자료기반 실시간 홍수예측 모형의 비교·검토 (Comparison of Data-based Real-Time Flood Forecasting Model)

  • 최현구;한건연;노홍식;박세진
    • 대한토목학회논문집
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    • 제33권5호
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    • pp.1809-1827
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    • 2013
  • 기후변화로 인해 발생하는 이상홍수에 대비하기 위해서는 다양한 대책을 강구할 필요가 있다. 그 중 비구조적 대책으로 홍수예경보시스템을 구축하여 홍수에 대비할 수 있도록 하는 것이 중요하다. 본 연구의 목적은 실시간 홍수예측 시스템을 구축하기 위해 뉴로-퍼지 모형과 다중선형회귀 모형을 비교하여 우수한 실시간 홍수예측 모형을 개발하는데 있다. 이를 위해 같은 입력자료를 사용하여 뉴로-퍼지 모형과 다중선형회귀 모형을 구축하고 낙동강 유역의 다양한 홍수사상에 대해 적용하였다. 모의결과 뉴로-퍼지 모형이 다중선형회귀 모형보다 좀 더 나은 예측 결과를 나타내는 것을 확인할 수 있었다. 본 연구는 향후 낙동강 유역의 충분한 선행시간을 확보한 정확도 높은 홍수정보시스템의 구축에 활용할 수 있을 것으로 판단된다.

Ubiquitous 환경의 U-City 홍수예측시스템 개발 (A Development of Real-time Flood Forecasting System for U-City)

  • 김형우
    • 한국정보통신설비학회:학술대회논문집
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    • 한국정보통신설비학회 2007년도 학술대회
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    • pp.181-184
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    • 2007
  • Up to now, a lot of houses, roads and other urban facilities have been damaged by natural disasters such as flash floods and landslides. It is reported that the size and frequency of disasters are growing greatly due to global warming. In order to mitigate such disaster, flood forecasting and alerting systems have been developed for the Han river, Geum river, Nak-dong river and Young-san river. These systems, however, do not help small municipal departments cope with the threat of flood. In this study, a real-time urban flood forecasting service (U-FFS) is developed for ubiquitous computing city which includes small river basins. A test bed is deployed at Tan-cheon in Gyeonggido to verify U-FFS. Wireless sensors such as rainfall gauge and water lever gauge are installed to develop hydrologic forecasting model and CCTV camera systems are also incorporated to capture high definition images of river basins. U-FFS is based on the ANFIS (Adaptive Neuro-Fuzzy Inference System) that is data-driven model and is characterized by its accuracy and adaptability. It is found that U-FFS can forecast the water level of outlet of river basin and provide real-time data through internet during heavy rain. It is revealed that U-FFS can predict the water level of 30 minutes and 1 hour later very accurately. Unlike other hydrologic forecasting model, this newly developed U-FFS has advantages such as its applicability and feasibility. Furthermore, it is expected that U-FFS presented in this study can be applied to ubiquitous computing city (U-City) and/or other cities which have suffered from flood damage for a long time.

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금강하구둑 홍수예경보 시스템 개발(I) -시스템의 구성- (Real-Time Flood Forecasting System For the Keum River Estuary Dam(I) -System Development-)

  • 정하우;이남호;김현영;김성준
    • 한국농공학회지
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    • 제36권2호
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    • pp.79-87
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    • 1994
  • A real-time flood forecasting system(FLOFS) was developed for the real-time and predictive determination of flood discharges and stages, and to aid in flood management decisions in the Keum River Estuary Dam. The system consists of three subsystems : data subsystem, model subsystem, and user subsystem. The data subsystem controls and manages data transmitted from telemetering systems and simulated by models. The model subsystem combines various techniques for rainfall-runoff modeling, tidal-level forecasting modeling, one-dimensional unsteady flood routing, Kalman filtering, and autoregressivemovingaverage(ARMA) modeling. The user subsystem in a menu-driven and man-machine interface system.

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