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Extrapolation of Periodic Functions Using Binary Encoding of Continuous Numerical Values

Brian P. Powell
Jordan A. Caraballo-Vega
Mark L. Carroll
Thomas Maxwell
Andrew Ptak
Greg Olmschenk
Jorge Martinez-Palomera
Main:14 Pages
16 Figures
Bibliography:3 Pages
1 Tables
Appendix:13 Pages
Abstract

We report the discovery that binary encoding allows neural networks to extrapolate periodic functions beyond their training bounds. We introduce Normalized Base-2 Encoding (NB2E) as a method for encoding continuous numerical values and demonstrate that, using this input encoding, vanilla multi-layer perceptrons (MLP) successfully extrapolate diverse periodic signals without prior knowledge of their functional form. Internal activation analysis reveals that NB2E induces bit-phase representations, enabling MLPs to learn and extrapolate signal structure independently of position.

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