ks: Kernel Smoothing
Kernel smoothers for univariate and multivariate data, including densities, density derivatives, cumulative distributions, clustering, classification, density ridges, significant modal regions, and two-sample hypothesis tests. Duong (2017) <doi:10.18637/jss.v021.i07>.
| Version: |
1.11.3 |
| Depends: |
R (≥ 2.10.0) |
| Imports: |
FNN (≥ 1.1), kernlab, KernSmooth (≥ 2.22), Matrix, mclust, mgcv, multicool, mvtnorm (≥ 1.0-0) |
| Suggests: |
maps, MASS, misc3d (≥ 0.4-0), OceanView, oz, rgl (≥ 0.66) |
| Published: |
2018-07-25 |
| Author: |
Tarn Duong |
| Maintainer: |
Tarn Duong <tarn.duong at gmail.com> |
| License: |
GPL-2 | GPL-3 |
| URL: |
http://www.mvstat.net/mvksa |
| NeedsCompilation: |
yes |
| Materials: |
ChangeLog |
| In views: |
Multivariate |
| CRAN checks: |
ks results |
Downloads:
Reverse dependencies:
| Reverse depends: |
Kernelheaping, npphen, TPD |
| Reverse imports: |
birdring, cdcsis, curvHDR, feature, GPareto, hdrcde, highriskzone, hypervolume, lg, logcondens, lsbs, MaskJointDensity, multimode, rainbow, raptr, rugarch, semiArtificial, simIReff, simukde, smoothROCtime, sNPLS, Surrogate, tseriesEntropy |
| Reverse suggests: |
broom, fdapace, httk, kernelboot, sensitivity, transport |
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