Neural Networks Assessment of Beam-to-Column Joints

نویسندگان

  • L. R. O. de Lima
  • P. C. G. da S. Vellasco
  • S. A. L. de Andrade
  • S. da Silva
  • M. M. B. R. Vellasco
چکیده

This paper proposes the use of artificial neural networks to predict the flexural resistance and initial stiffness of beam-to-column steel joints using the back propagation supervised learning algorithm. Three types of steel beam-to-column joints were investigated: welded, endplate and bolted with top, seat and double web angles, respectively. The neural networks results proved to be consistent with experimental and design code reference values.

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تاریخ انتشار 2005