Encoding of sequential translators in discrete-time recurrent neural nets

نویسندگان

  • Ramón P. Ñeco
  • Mikel L. Forcada
  • Rafael C. Carrasco
  • M. Ángeles Valdés-Muñoz
چکیده

In recent years, there has been a lot of interest in the use of discrete-time recurrent neural nets (DTRNN) to learn nite-state tasks, and in the computational power of DTRNN, particularly in connection with nite-state computation. This paper describes a simple strategy to devise stable encodings of sequential nite-state translators (SFST) in a second-order DTRNN with units having bounded, strictly growing, continuous sigmoid activation functions. The strategy relies on bounding criteria based on a study of the conditions under which the DTRNN is actually behaving as a SFST.

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تاریخ انتشار 1999