Result for 282FBB22B08D80AC43AC837E7386601CD3C8181A

Query result

Key Value
FileName./usr/lib/R/library/rms/R/rms.rdx
FileSize3191
MD5A7073A14C79386C76308ABAD90975C46
SHA-1282FBB22B08D80AC43AC837E7386601CD3C8181A
SHA-2567AE57D7A86060D7F41612477E1E6E0970BE67F5696FF7A4CC6A356DE5BD5FBC2
SSDEEP48:XMOj/WBTwZIy3I0xRqhLZs1K8QOGRQ/x8lk/zjjQULryn+f3SUcMEnBGiFtwA3+q:8g/WixK9mQOGRCx+QjfylUcMEnIWw5BE
TLSHT1BC615CB007FC4DA1DE90D2B6A95712EAC66874113D62179C3B94200F09CBED99714EC7
hashlookup:parent-total2
hashlookup:trust60

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Parents (Total: 2)

The searched file hash is included in 2 parent files which include package known and seen by metalookup. A sample is included below:

Key Value
MD5D363C8DD28B0936DBC691029E46DDB84
PackageArchi586
PackageDescriptionRegression modeling, testing, estimation, validation, graphics, prediction, and typesetting by storing enhanced model design attributes in the fit. rms is a collection of functions that assist with and streamline modeling. It also contains functions for binary and ordinal logistic regression models, ordinal models for continuous Y with a variety of distribution families, 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 regression models, 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.
PackageNameR-rms
PackageRelease3.242
PackageVersion4.2_0
SHA-1268A63771B47BCBCCC107C890AC589B4A05B904B
SHA-2568BA5AD16752BE5175949E6B3BB3DBB4701D58B012476EC321F58BFDE5BF189DD
Key Value
MD572A6FED894B1680E2077EA3771A66F6A
PackageArchi586
PackageDescriptionRegression modeling, testing, estimation, validation, graphics, prediction, and typesetting by storing enhanced model design attributes in the fit. rms is a collection of functions that assist with and streamline modeling. It also contains functions for binary and ordinal logistic regression models, ordinal models for continuous Y with a variety of distribution families, 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 regression models, 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.
PackageNameR-rms
PackageRelease3.242
PackageVersion4.2_0
SHA-1AF227D7D12AFC0B8272BA51F2A579D3BB283F9F3
SHA-2561DB15A78096D933E3F4566952AB495975D525134E1E8EF8219403188ED865CB5