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      Application of cascade forward neural network and group method of data handling to modeling crude oil pyrolysis during thermal enhanced oil recovery

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          Bayesian Interpolation

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            Training feedforward networks with the Marquardt algorithm.

            The Marquardt algorithm for nonlinear least squares is presented and is incorporated into the backpropagation algorithm for training feedforward neural networks. The algorithm is tested on several function approximation problems, and is compared with a conjugate gradient algorithm and a variable learning rate algorithm. It is found that the Marquardt algorithm is much more efficient than either of the other techniques when the network contains no more than a few hundred weights.
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              A general regression neural network.

              A memory-based network that provides estimates of continuous variables and converges to the underlying (linear or nonlinear) regression surface is described. The general regression neural network (GRNN) is a one-pass learning algorithm with a highly parallel structure. It is shown that, even with sparse data in a multidimensional measurement space, the algorithm provides smooth transitions from one observed value to another. The algorithmic form can be used for any regression problem in which an assumption of linearity is not justified.
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                Author and article information

                Contributors
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                Journal
                Journal of Petroleum Science and Engineering
                Journal of Petroleum Science and Engineering
                Elsevier BV
                09204105
                October 2021
                October 2021
                : 205
                : 108836
                Article
                10.1016/j.petrol.2021.108836
                800ec023-f0ed-449d-a3a6-e71abb20994d
                © 2021

                https://www.elsevier.com/tdm/userlicense/1.0/

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