International Journal of Mathematics and Mathematical Sciences (Jan 1993)

Theta function identities from optical neural network transformations

  • E. Elizalde,
  • A. Romeo

DOI
https://doi.org/10.1155/S0161171293001000
Journal volume & issue
Vol. 16, no. 4
pp. 805 – 810

Abstract

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We take a new approach to the generation of Jacobi theta function identities. It is complementary to the procedure which makes use of the evaluation of Parseval-like identities for elementary cylindrically-symmetric functions on computer holograms. Our method is more simple and explicit than this one, which was an outcome of the construction of neurocomputer architectures through the Heisenberg model.

Keywords