Result for 12550065A8978CED82612D852D40A2B74096045D

Query result

Key Value
FileName./usr/lib/R/site-library/rms/DESCRIPTION
FileSize1567
MD5DDECD01704B6C920A2B5FEB830FAF808
SHA-112550065A8978CED82612D852D40A2B74096045D
SHA-2569D2C58C89828826D7CEB12465E8AF193E8888726CFA42BD54256460A51A8D328
SSDEEP24:iKB2iRgAoxkHGVbYtqgcZTFTO0qOV+2TcwxuWnLh8FXESSgZkq2tl41SrY6Q7Ioc:FebYFgDqOE2A1yLh9cHQ4Z6Noc
TLSHT18B317342662026309F5F409BBFF637828B25428A7A66DDB55CC3B04C1B4261D53A6BEC
hashlookup:parent-total1
hashlookup:trust55

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Parents (Total: 1)

The searched file hash is included in 1 parent files which include package known and seen by metalookup. A sample is included below:

Key Value
FileSize1055030
MD561227B01B32A129EA3BAF9E55E817B93
PackageDescriptionGNU R regression modeling strategies by Frank Harrell Regression modeling, testing, estimation, validation, graphics, prediction, and typesetting by storing enhanced model design attributes in the fit. rms is a collection of 229 functions that assist with and streamline modeling. It also contains functions for binary and ordinal logistic regression models and the Buckley-James multiple regression model for right-censored responses, and implements penalized maximum likelihood estimation for logistic and ordinary linear models. rms works with almost any regression model, but it was especially written to work with binary or ordinal logistic regression, Cox regression, accelerated failure time models, ordinary linear models, the Buckley-James model, generalized least squares for serially or spatially correlated observations, generalized linear models, and quantile regression. . See Frank Harrell (2001), Regression Modeling Strategies, Springer Series in Statistics, as well as http://biostat.mc.vanderbilt.edu/Rrms.
PackageMaintainerUbuntu Developers <ubuntu-devel-discuss@lists.ubuntu.com>
PackageNamer-cran-rms
PackageSectiongnu-r
PackageVersion4.4-1-1
SHA-1506684892502CE637BC3FC3BF1770E28FB306ADF
SHA-25694DBD0E96EB246F5B853281ECE7368490EBEFC566AF884B228C5B5FEA57F344A