unfold: Mapping Hidden Geometry into Future Sequences
A variational mapping approach that reveals and expands future temporal dynamics from folded high-dimensional geometric distance spaces, unfold turns a set of time series into a 4D block of pairwise distances between reframed windows, learns a variational mapper that maps those distances to the next reframed window, and produces horizon-wise predictive functions for each input series. In short: it unfolds the future path of each series from a folded geometric distance representation.
| Version: | 
1.0.0 | 
| Depends: | 
R (≥ 4.1.0) | 
| Imports: | 
torch (≥ 0.11.0), purrr (≥ 1.0.1), imputeTS (≥ 3.3), lubridate (≥ 1.9.2), ggplot2 (≥ 3.5.1), scales (≥ 1.3.0), abind (≥ 1.4-5), coro (≥ 1.1.0) | 
| Suggests: | 
knitr, testthat (≥ 3.0.0) | 
| Published: | 
2025-08-26 | 
| DOI: | 
10.32614/CRAN.package.unfold | 
| Author: | 
Giancarlo Vercellino [aut, cre, cph] | 
| Maintainer: | 
Giancarlo Vercellino  <giancarlo.vercellino at gmail.com> | 
| License: | 
GPL-3 | 
| URL: | 
https://rpubs.com/giancarlo_vercellino/unfold | 
| NeedsCompilation: | 
no | 
| Materials: | 
NEWS  | 
| CRAN checks: | 
unfold results | 
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