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Article detail · 2023

Investigation of Impact of Vapor Pressure on Hybrid Streamflow Prediction Modeling

Journal

KSCE Journal of Civil Engineering

ISSN 1226-7988

YÖKSİS OpenAlex Open access · hybrid SJR Q2 JCR Q2 Citations 4 Percentile 47.1% FWCI 0.3
Year
2023
Type
article

Data source split

  • YÖKSİS YÖKSİS article record
  • YÖKSİS venue KSCE Journal of Civil Engineering
  • Catalog match (ISSN) KSCE Journal of Civil Engineering
  • OpenAlex OpenAlex enrichment (abstract, citations, topics)

Abstract

OpenAlex · English

In this study, daily streamflow prediction models have been developed for Aksu Stream, in the Eastern Black Sea Basin of Turkey. To reach at this aim, hybrid artificial intelligence models have been developed, by using a new parameter, vapor pressure. Vapor pressure efficiency has been investigated for hybrid streamflow prediction models. Streamflow prediction models have been developed by using Artificial Neural Network (ANN), Multivariate Adaptive Regression Splines (MARS), and their hybrid models. Hybridization of streamflow prediction models has been made with Wavelet Transform (WT). 10 yearly daily hydrological (discharge (m 3 /s)), meteorological (precipitation (mm), vapor pressure (hPA)) data, and seasonality coefficient have been used as input data of streamflow prediction models. In the selection of the best streamflow prediction model, 14 different day-delayed input combinations have been established by using 10 yearly data. As a result of the study, the highest flow forecast performance model has been determined as Wavelet Artificial Neural Network (WANN) in the study area. In the WANN model, the vapor pressure parameter was found to reduce the error by about 18.5% and improve the forecast performance. This study has concluded that, vapor pressure may be used in the future studies as a new parameter for streamflow prediction models.

Topics

Citations

OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.

4 citations

OpenAlex cited_by_count (cache / database)

Authors

  1. HASAN TÖREHAN BABACAN
  2. ÖMER YÜKSEK
  3. FATİH SAKA KARABÜK ÜNİVERSİTESİ