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author | Aniket Patil <aniket112.patil@gmail.com> | 2020-12-14 21:57:33 -0500 |
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committer | Leo Famulari <leo@famulari.name> | 2020-12-15 00:33:24 -0500 |
commit | 795f654b2a0593d2a09273fc7e39d7258c87d548 (patch) | |
tree | 6c1a3e275f96d76daf28abb31e86dea919bfb010 | |
parent | bd740f77ffa0511aded249f4ed32c48f682f3852 (diff) | |
download | guix-795f654b2a0593d2a09273fc7e39d7258c87d548.tar.gz |
gnu: Add r-decon.
* gnu/packages/cran.scm (r-decon): New variable. Signed-off-by: Leo Famulari <leo@famulari.name>
-rw-r--r-- | gnu/packages/cran.scm | 38 |
1 files changed, 38 insertions, 0 deletions
diff --git a/gnu/packages/cran.scm b/gnu/packages/cran.scm index 45703792ed..157ac82fd0 100644 --- a/gnu/packages/cran.scm +++ b/gnu/packages/cran.scm @@ -32,6 +32,7 @@ ;;; Copyright © 2020 Arun Isaac <arunisaac@systemreboot.net> ;;; Copyright © 2020 Magali Lemes <magalilemes00@gmail.com> ;;; Copyright © 2020 Simon Tournier <zimon.toutoune@gmail.com> +;;; Copyright © 2020 Aniket Patil <aniket112.patil@gmail.com> ;;; ;;; This file is part of GNU Guix. ;;; @@ -25174,6 +25175,43 @@ orthogonal coordinate systems: cartesian, polar, spherical, cylindrical, parabolic or user defined by custom scale factors.") (license license:gpl3))) +(define-public r-decon + (package + (name "r-decon") + (version "1.2-4") + (source + (origin + (method url-fetch) + (uri (cran-uri "decon" version)) + (sha256 + (base32 + "1v4l0xq29rm8mks354g40g9jxn0didzlxg3g7z08m0gvj29zdj7s")))) + (properties `((upstream-name . "decon"))) + (build-system r-build-system) + (native-inputs + `(("gfortran" ,gfortran))) + (home-page + "https://cran.r-project.org/web/packages/decon/") + (synopsis "Deconvolution Estimation in Measurement Error Models") + (description + "This package contains a collection of functions to deal with +nonparametric measurement error problems using deconvolution +kernel methods. We focus two measurement error models in the +package: (1) an additive measurement error model, where the +goal is to estimate the density or distribution function from +contaminated data; (2) nonparametric regression model with +errors-in-variables. The R functions allow the measurement errors +to be either homoscedastic or heteroscedastic. To make the +deconvolution estimators computationally more efficient in R, +we adapt the \"Fast Fourier Transform\" (FFT) algorithm for +density estimation with error-free data to the deconvolution +kernel estimation. Several methods for the selection of the +data-driven smoothing parameter are also provided in the package. +See details in: Wang, X.F. and Wang, B. (2011). Deconvolution +estimation in measurement error models: The R package decon. +Journal of Statistical Software, 39(10), 1-24.") + (license license:gpl3+))) + (define-public r-aws-signature (package (name "r-aws-signature") |