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EESPCA

Eigenvectors from Eigenvalues Sparse Principal Component Analysis (EESPCA)

v0.8.0 · Jul 21, 2025 · GPL (>= 2)

Description

Contains logic for computing sparse principal components via the EESPCA method, which is based on an approximation of the eigenvector/eigenvalue identity. Includes logic to support execution of the TPower and rifle sparse PCA methods, as well as logic to estimate the sparsity parameters used by EESPCA, TPower and rifle via cross-validation to minimize the out-of-sample reconstruction error. H. Robert Frost (2021) <doi:10.1080/10618600.2021.1987254>.

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CRAN Check Status

14 OK
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r-devel-linux-x86_64-debian-clang OK
r-devel-linux-x86_64-debian-gcc OK
r-devel-linux-x86_64-fedora-clang OK
r-devel-linux-x86_64-fedora-gcc OK
r-devel-macos-arm64 OK
r-devel-windows-x86_64 OK
r-oldrel-macos-arm64 OK
r-oldrel-macos-x86_64 OK
r-oldrel-windows-x86_64 OK
r-patched-linux-x86_64 OK
r-release-linux-x86_64 OK
r-release-macos-arm64 OK
r-release-macos-x86_64 OK
r-release-windows-x86_64 OK

Check History

OK 14 OK · 0 NOTE · 0 WARNING · 0 ERROR · 0 FAILURE Mar 10, 2026

Dependency Network

Dependencies Reverse dependencies rifle MASS PMA EESPCA

Version History

new 0.8.0 Mar 10, 2026
updated 0.8.0 ← 0.7.0 diff Jul 20, 2025
updated 0.7.0 ← 0.6.0 diff Jun 14, 2022
updated 0.6.0 ← 0.5.0 diff May 15, 2022
updated 0.5.0 ← 0.4.0 diff Oct 13, 2021
updated 0.4.0 ← 0.3.0 diff Oct 5, 2021
new 0.3.0 Jul 15, 2021