gnu: Add r-rsvd.

* gnu/packages/cran.scm (r-rsvd): New variable.
master
Ricardo Wurmus 2019-02-15 15:42:48 +01:00 committed by Ricardo Wurmus
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commit 867e2b1bb3
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@ -10618,3 +10618,35 @@ the local machine to, say, distributed processing on a remote compute cluster.")
can be resolved using any future-supported backend, e.g. parallel on the local
machine or distributed on a compute cluster.")
(license license:gpl2+)))
(define-public r-rsvd
(package
(name "r-rsvd")
(version "1.0.0")
(source
(origin
(method url-fetch)
(uri (cran-uri "rsvd" version))
(sha256
(base32
"0vjhrvnkl9rmvl8sv2kac5sd10z3fgxymb676ynxzc2pmhydy3an"))))
(build-system r-build-system)
(propagated-inputs
`(("r-matrix" ,r-matrix)))
(home-page "https://github.com/erichson/rSVD")
(synopsis "Randomized singular value decomposition")
(description
"Low-rank matrix decompositions are fundamental tools and widely used for
data analysis, dimension reduction, and data compression. Classically, highly
accurate deterministic matrix algorithms are used for this task. However, the
emergence of large-scale data has severely challenged our computational
ability to analyze big data. The concept of randomness has been demonstrated
as an effective strategy to quickly produce approximate answers to familiar
problems such as the @dfn{singular value decomposition} (SVD). This package
provides several randomized matrix algorithms such as the randomized singular
value decomposition (@code{rsvd}), randomized principal component
analysis (@code{rpca}), randomized robust principal component
analysis (@code{rrpca}), randomized interpolative decomposition (@code{rid}),
and the randomized CUR decomposition (@code{rcur}). In addition several plot
functions are provided.")
(license license:gpl3+)))