Matches in SemOpenAlex for { <https://semopenalex.org/work/W1994385465> ?p ?o ?g. }
- W1994385465 endingPage "31" @default.
- W1994385465 startingPage "24" @default.
- W1994385465 abstract "Discharge estimation via depth/stage measurement alone in a channel reach with unknown roughness coefficient seems to be important, since it can replace the rating curve development process with all its impediments in practice. Many attempts have been made in this regard especially in the last decade which led to the development of methodologies based on hydraulic or hydrologic routing approaches. Although flow regime is considered to be transient in the literature associated to this subject, it seems that the flow under steady state condition is ignored. In this study the system identification (roughness coefficient determination) and subsequent discharge estimation is carried out for the steady state gradually varied flow condition in two cases: the first case is a wide rectangular channel with constant primarily unknown Chezy's roughness coefficient and the second one is a nonprismatic trapezoidal channel with constant primarily unknown Manning's roughness coefficient. In this regard, it was assumed that there exists a number of depth/stage observations along the reach and it was attempted to find an appropriate pair of roughness coefficient and discharge which produces a longitudinal steady state gradually varied flow profile similar to the one observed. It is shown that the problem can be treated as an optimization problem in which the sum of the squared deviations of calculated flow profile depths from the observed one is considered as the objective function. In order to choose an appropriate optimum search technique, the objective function contour map is drawn which demonstrates that the objective function surface is flat and highly near optimum in a wide range of roughness coefficient and discharge pairs. Hence, the derivative-based optimization approaches were rejected. Since the genetic algorithm is a derivative free adaptive exploratory optimum search technique parallel processing capability on a set of candidates, this method is utilized in this study to solve the corresponding optimization problem. The standard genetic algorithm is modified in order to prevent getting trapped in local optima. This modification guarantees the achievement of the global optimum solution. This GA-based optimization technique for system identification and subsequent discharge estimation in channel with depth/stage observations alone in steady state gradually varied flow condition leads to the desired performance through which the objective pair of roughness coefficient and discharge can be obtained in both wide rectangular and nonprismatic trapezoidal geometric conditions." @default.
- W1994385465 created "2016-06-24" @default.
- W1994385465 creator A5057544187 @default.
- W1994385465 creator A5077657494 @default.
- W1994385465 date "2014-04-01" @default.
- W1994385465 modified "2023-10-16" @default.
- W1994385465 title "System identification and subsequent discharge estimation based on level data alone—Gradually varied flow condition" @default.
- W1994385465 cites W1513267478 @default.
- W1994385465 cites W1605455012 @default.
- W1994385465 cites W1979472746 @default.
- W1994385465 cites W1980322553 @default.
- W1994385465 cites W1990786790 @default.
- W1994385465 cites W1993844193 @default.
- W1994385465 cites W1995101459 @default.
- W1994385465 cites W1997738271 @default.
- W1994385465 cites W2009536103 @default.
- W1994385465 cites W2009701943 @default.
- W1994385465 cites W2018346046 @default.
- W1994385465 cites W2025808263 @default.
- W1994385465 cites W2030635131 @default.
- W1994385465 cites W2049390710 @default.
- W1994385465 cites W2057557818 @default.
- W1994385465 cites W2063976864 @default.
- W1994385465 cites W2064081403 @default.
- W1994385465 cites W2085443293 @default.
- W1994385465 cites W2087263640 @default.
- W1994385465 cites W2087916953 @default.
- W1994385465 cites W2090893726 @default.
- W1994385465 cites W2093160377 @default.
- W1994385465 cites W2098944150 @default.
- W1994385465 cites W2110326361 @default.
- W1994385465 cites W2127741041 @default.
- W1994385465 cites W2141180769 @default.
- W1994385465 cites W2142687701 @default.
- W1994385465 doi "https://doi.org/10.1016/j.flowmeasinst.2014.01.002" @default.
- W1994385465 hasPublicationYear "2014" @default.
- W1994385465 type Work @default.
- W1994385465 sameAs 1994385465 @default.
- W1994385465 citedByCount "9" @default.
- W1994385465 countsByYear W19943854652016 @default.
- W1994385465 countsByYear W19943854652017 @default.
- W1994385465 countsByYear W19943854652018 @default.
- W1994385465 countsByYear W19943854652019 @default.
- W1994385465 countsByYear W19943854652021 @default.
- W1994385465 crossrefType "journal-article" @default.
- W1994385465 hasAuthorship W1994385465A5057544187 @default.
- W1994385465 hasAuthorship W1994385465A5077657494 @default.
- W1994385465 hasConcept C107365816 @default.
- W1994385465 hasConcept C121332964 @default.
- W1994385465 hasConcept C127162648 @default.
- W1994385465 hasConcept C127313418 @default.
- W1994385465 hasConcept C14036430 @default.
- W1994385465 hasConcept C146357865 @default.
- W1994385465 hasConcept C147789679 @default.
- W1994385465 hasConcept C151730666 @default.
- W1994385465 hasConcept C159985019 @default.
- W1994385465 hasConcept C170028559 @default.
- W1994385465 hasConcept C180925781 @default.
- W1994385465 hasConcept C185592680 @default.
- W1994385465 hasConcept C192562407 @default.
- W1994385465 hasConcept C199322603 @default.
- W1994385465 hasConcept C199360897 @default.
- W1994385465 hasConcept C2777027219 @default.
- W1994385465 hasConcept C31258907 @default.
- W1994385465 hasConcept C33923547 @default.
- W1994385465 hasConcept C38349280 @default.
- W1994385465 hasConcept C41008148 @default.
- W1994385465 hasConcept C56200935 @default.
- W1994385465 hasConcept C57879066 @default.
- W1994385465 hasConcept C71039073 @default.
- W1994385465 hasConcept C78458016 @default.
- W1994385465 hasConcept C8171440 @default.
- W1994385465 hasConcept C86803240 @default.
- W1994385465 hasConcept C97355855 @default.
- W1994385465 hasConceptScore W1994385465C107365816 @default.
- W1994385465 hasConceptScore W1994385465C121332964 @default.
- W1994385465 hasConceptScore W1994385465C127162648 @default.
- W1994385465 hasConceptScore W1994385465C127313418 @default.
- W1994385465 hasConceptScore W1994385465C14036430 @default.
- W1994385465 hasConceptScore W1994385465C146357865 @default.
- W1994385465 hasConceptScore W1994385465C147789679 @default.
- W1994385465 hasConceptScore W1994385465C151730666 @default.
- W1994385465 hasConceptScore W1994385465C159985019 @default.
- W1994385465 hasConceptScore W1994385465C170028559 @default.
- W1994385465 hasConceptScore W1994385465C180925781 @default.
- W1994385465 hasConceptScore W1994385465C185592680 @default.
- W1994385465 hasConceptScore W1994385465C192562407 @default.
- W1994385465 hasConceptScore W1994385465C199322603 @default.
- W1994385465 hasConceptScore W1994385465C199360897 @default.
- W1994385465 hasConceptScore W1994385465C2777027219 @default.
- W1994385465 hasConceptScore W1994385465C31258907 @default.
- W1994385465 hasConceptScore W1994385465C33923547 @default.
- W1994385465 hasConceptScore W1994385465C38349280 @default.
- W1994385465 hasConceptScore W1994385465C41008148 @default.
- W1994385465 hasConceptScore W1994385465C56200935 @default.
- W1994385465 hasConceptScore W1994385465C57879066 @default.
- W1994385465 hasConceptScore W1994385465C71039073 @default.
- W1994385465 hasConceptScore W1994385465C78458016 @default.