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r-causalmodels 0.2.0
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/ander428/CausalModels
Licenses: GPL 3
Synopsis: Causal Inference Modeling for Estimation of Causal Effects
Description:

This package provides an array of statistical models common in causal inference such as standardization, IP weighting, propensity matching, outcome regression, and doubly-robust estimators. Estimates of the average treatment effects from each model are given with the standard error and a 95% Wald confidence interval (Hernan, Robins (2020) <https://www.hsph.harvard.edu/miguel-hernan/causal-inference-book/>).

r-cartographer 0.2.1
Propagated dependencies: r-sf@1.0-19 r-rlang@1.1.4 r-dplyr@1.1.4 r-cli@3.6.3
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/cidm-ph/cartographer
Licenses: Expat
Synopsis: Turn Place Names into Map Data
Description:

This package provides a tool for easily matching spatial data when you have a list of place/region names. You might have a data frame that came from a spreadsheet tracking some data by suburb or state. This package can convert it into a spatial data frame ready for plotting. The actual map data is provided by other packages (or your own code).

r-causalweight 1.1.3
Propagated dependencies: r-xgboost@1.7.8.1 r-superlearner@2.0-29 r-sandwich@3.1-1 r-ranger@0.17.0 r-np@0.60-17 r-mvtnorm@1.3-2 r-larf@1.4 r-hdm@0.3.2 r-grf@2.4.0 r-glmnet@4.1-8 r-fastdummies@1.7.4 r-e1071@1.7-16 r-checkmate@2.3.2
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=causalweight
Licenses: Expat
Synopsis: Estimation Methods for Causal Inference Based on Inverse Probability Weighting and Doubly Robust Estimation
Description:

Various estimators of causal effects based on inverse probability weighting, doubly robust estimation, and double machine learning. Specifically, the package includes methods for estimating average treatment effects, direct and indirect effects in causal mediation analysis, and dynamic treatment effects. The models refer to studies of Froelich (2007) <doi:10.1016/j.jeconom.2006.06.004>, Huber (2012) <doi:10.3102/1076998611411917>, Huber (2014) <doi:10.1080/07474938.2013.806197>, Huber (2014) <doi:10.1002/jae.2341>, Froelich and Huber (2017) <doi:10.1111/rssb.12232>, Hsu, Huber, Lee, and Lettry (2020) <doi:10.1002/jae.2765>, and others.

r-cardiocurver 1.0.0
Propagated dependencies: r-signal@1.8-1 r-gridextra@2.3 r-ggplot2@3.5.1 r-data-table@1.16.2
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/matcasti/CardioCurveR
Licenses: Expat
Synopsis: Nonlinear Modeling of R-R Interval Dynamics
Description:

Automated and robust framework for analyzing R-R interval (RRi) signals using advanced nonlinear modeling and preprocessing techniques. The package implements a dual-logistic model to capture the rapid drop and subsequent recovery of RRi during exercise, as described by Castillo-Aguilar et al. (2025) <doi:10.1038/s41598-025-93654-6>. In addition, CardioCurveR includes tools for filtering RRi signals using zero-phase Butterworth low-pass filtering and for cleaning ectopic beats via adaptive outlier replacement using local regression and robust statistics. These integrated methods preserve the dynamic features of RRi signals and facilitate accurate cardiovascular monitoring and clinical research.

r-causaleffect 1.3.15
Propagated dependencies: r-igraph@2.1.1
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/santikka/causaleffect/
Licenses: GPL 2+
Synopsis: Deriving Expressions of Joint Interventional Distributions and Transport Formulas in Causal Models
Description:

This package provides functions for identification and transportation of causal effects. Provides a conditional causal effect identification algorithm (IDC) by Shpitser, I. and Pearl, J. (2006) <http://ftp.cs.ucla.edu/pub/stat_ser/r329-uai.pdf>, an algorithm for transportability from multiple domains with limited experiments by Bareinboim, E. and Pearl, J. (2014) <http://ftp.cs.ucla.edu/pub/stat_ser/r443.pdf>, and a selection bias recovery algorithm by Bareinboim, E. and Tian, J. (2015) <http://ftp.cs.ucla.edu/pub/stat_ser/r445.pdf>. All of the previously mentioned algorithms are based on a causal effect identification algorithm by Tian , J. (2002) <http://ftp.cs.ucla.edu/pub/stat_ser/r309.pdf>.

r-calibratessb 1.3.0
Propagated dependencies: r-survey@4.4-2
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/statisticsnorway/CalibrateSSB
Licenses: GPL 2
Synopsis: Weighting and Estimation for Panel Data with Non-Response
Description:

This package provides functions to calculate weights, estimates of changes and corresponding variance estimates for panel data with non-response. Partially overlapping samples are handled. Initially, weights are calculated by linear calibration. By default, the survey package is used for this purpose. It is also possible to use ReGenesees, which can be installed from <https://github.com/DiegoZardetto/ReGenesees>. Variances of linear combinations (changes and averages) and ratios are calculated from a covariance matrix based on residuals according to the calibration model. The methodology was presented at the conference, The Use of R in Official Statistics, and is described in Langsrud (2016) <http://www.revistadestatistica.ro/wp-content/uploads/2016/06/RRS2_2016_A021.pdf>.

r-caesar-suite 0.2.2
Propagated dependencies: r-seurat@5.1.0 r-scater@1.34.0 r-rcpparmadillo@14.0.2-1 r-rcpp@1.0.13-1 r-progress@1.2.3 r-profast@1.6 r-pbapply@1.7-2 r-matrix@1.7-1 r-irlba@2.3.5.1 r-ggrepel@0.9.6 r-ggplot2@3.5.1 r-future@1.34.0 r-furrr@0.3.1 r-desctools@0.99.58 r-ade4@1.7-22
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/XiaoZhangryy/CAESAR.Suite
Licenses: GPL 2+
Synopsis: CAESAR: a Cross-Technology and Cross-Resolution Framework for Spatial Omics Annotation
Description:

Biotechnology in spatial omics has advanced rapidly over the past few years, enhancing both throughput and resolution. However, existing annotation pipelines in spatial omics predominantly rely on clustering methods, lacking the flexibility to integrate extensive annotated information from single-cell RNA sequencing (scRNA-seq) due to discrepancies in spatial resolutions, species, or modalities. Here we introduce the CAESAR suite, an open-source software package that provides image-based spatial co-embedding of locations and genomic features. It uniquely transfers labels from scRNA-seq reference, enabling the annotation of spatial omics datasets across different technologies, resolutions, species, and modalities, based on the conserved relationship between signature genes and cells/locations at an appropriate level of granularity. Notably, CAESAR enriches location-level pathways, allowing for the detection of gradual biological pathway activation within spatially defined domain types. More details on the methods related to our paper currently under submission. A full reference to the paper will be provided in future versions once the paper is published.

r-carletonstats 2.2
Propagated dependencies: r-scales@1.3.0 r-patchwork@1.3.0 r-ggplot2@3.5.1
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/aloy/CarletonStats
Licenses: GPL 2
Synopsis: Functions for Statistics Classes at Carleton College
Description:

Includes commands for bootstrapping and permutation tests, a command for created grouped bar plots, and a demo of the quantile-normal plot for data drawn from different distributions.

r-cascadeselect 1.1.0
Propagated dependencies: r-shiny@1.8.1 r-reactr@0.6.1 r-htmltools@0.5.8.1 r-fontawesome@0.5.2
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/stla/cascadeSelect
Licenses: GPL 3
Synopsis: Cascade Select Input for 'Shiny'
Description:

This package provides a cascade select widget for usage in Shiny applications. This is useful for selection of hierarchical choices (e.g. continent, country, city). It is taken from the JavaScript library PrimeReact'.

r-caretforecast 0.1.1
Propagated dependencies: r-magrittr@2.0.3 r-generics@0.1.3 r-forecast@8.23.0 r-dplyr@1.1.4 r-caret@6.0-94
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/Akai01/caretForecast
Licenses: GPL 3+
Synopsis: Conformal Time Series Forecasting Using State of Art Machine Learning Algorithms
Description:

Conformal time series forecasting using the caret infrastructure. It provides access to state-of-the-art machine learning models for forecasting applications. The hyperparameter of each model is selected based on time series cross-validation, and forecasting is done recursively.

r-causalqueries 1.3.3
Propagated dependencies: r-stringr@1.5.1 r-stanheaders@2.32.10 r-rstantools@2.4.0 r-rstan@2.32.6 r-rlang@1.1.4 r-rcppeigen@0.3.4.0.2 r-rcpparmadillo@14.0.2-1 r-rcpp@1.0.13-1 r-lifecycle@1.0.4 r-latex2exp@0.9.6 r-knitr@1.49 r-ggraph@2.2.1 r-ggplot2@3.5.1 r-dplyr@1.1.4 r-dirmult@0.1.3-5 r-bh@1.84.0-0
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://integrated-inferences.github.io/CausalQueries/
Licenses: Expat
Synopsis: Make, Update, and Query Binary Causal Models
Description:

Users can declare causal models over binary nodes, update beliefs about causal types given data, and calculate arbitrary queries. Updating is implemented in stan'. See Humphreys and Jacobs, 2023, Integrated Inferences (<DOI: 10.1017/9781316718636>) and Pearl, 2009 Causality (<DOI:10.1017/CBO9780511803161>).

r-caop-raa-2024 0.0.5
Propagated dependencies: r-tibble@3.2.1 r-stringi@1.8.4 r-sf@1.0-19 r-readr@2.1.5 r-glue@1.8.0 r-dplyr@1.1.4
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/patterninstitute/CAOP.RAA.2024
Licenses: Expat
Synopsis: Official Administrative Map of the Azores (CAOP 2024)
Description:

This package provides the official administrative boundaries of the Azores (Região Autónoma dos Açores (RAA)) as defined in the 2024 edition of the Carta Administrativa Oficial de Portugal (CAOP), published by the Direção-Geral do Território (DGT). The package includes convenience functions to import these boundaries as sf objects for spatial analysis in R. Source: <https://geo2.dgterritorio.gov.pt/caop/CAOP_RAA_2024-gpkg.zip>.

r-causal-decomp 0.1.0
Propagated dependencies: r-suppdists@1.1-9.8 r-spelling@2.3.1 r-psweight@2.1.1 r-nnet@7.3-19 r-mass@7.3-61 r-cbps@0.23
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=causal.decomp
Licenses: GPL 2
Synopsis: Causal Decomposition Analysis
Description:

We implement causal decomposition analysis using the methods proposed by Park, Lee, and Qin (2020) and Park, Kang, and Lee (2021+) <arXiv:2109.06940>. This package allows researchers to use the multiple-mediator-imputation, single-mediator-imputation, and product-of-coefficients regression methods to estimate the initial disparity, disparity reduction, and disparity remaining. It also allows to make the inference conditional on baseline covariates. We also implement sensitivity analysis for the causal decomposition analysis using R-squared values as sensitivity parameters (Park, Kang, Lee, and Ma, 2023).

r-cadd-v1-6-hg19 3.18.1
Propagated dependencies: r-genomicscores@2.18.0 r-annotationhub@3.14.0
Channel: guix-bioc
Location: guix-bioc/packages/c.scm (guix-bioc packages c)
Home page: https://bioconductor.org/packages/cadd.v1.6.hg19
Licenses: Artistic License 2.0
Synopsis: CADD v1.6 Pathogenicity Scores AnnotationHub Resource Metadata for hg19
Description:

Store University of Washington CADD v1.6 hg19 pathogenicity scores AnnotationHub Resource Metadata. Provide provenance and citation information for University of Washington CADD v1.6 hg19 pathogenicity score AnnotationHub resources. Illustrate in a vignette how to access those resources.

r-cadd-v1-6-hg38 3.18.1
Propagated dependencies: r-genomicscores@2.18.0 r-annotationhub@3.14.0
Channel: guix-bioc
Location: guix-bioc/packages/c.scm (guix-bioc packages c)
Home page: https://bioconductor.org/packages/cadd.v1.6.hg38
Licenses: Artistic License 2.0
Synopsis: CADD v1.6 Pathogenicity Scores AnnotationHub Resource Metadata for hg38
Description:

Store University of Washington CADD v1.6 hg38 pathogenicity scores AnnotationHub Resource Metadata. Provide provenance and citation information for University of Washington CADD v1.6 hg38 pathogenicity score AnnotationHub resources. Illustrate in a vignette how to access those resources.

r-cainterprtools 1.1.0
Propagated dependencies: r-reshape2@1.4.4 r-rcmdrmisc@2.9-1 r-hmisc@5.2-0 r-ggrepel@0.9.6 r-ggplot2@3.5.1 r-factominer@2.11 r-cluster@2.1.6 r-classint@0.4-10 r-ca@0.71.1
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=CAinterprTools
Licenses: GPL 2+ GPL 3+
Synopsis: Graphical Aid in Correspondence Analysis Interpretation and Significance Testings
Description:

Allows to plot a number of information related to the interpretation of Correspondence Analysis results. It provides the facility to plot the contribution of rows and columns categories to the principal dimensions, the quality of points display on selected dimensions, the correlation of row and column categories to selected dimensions, etc. It also allows to assess which dimension(s) is important for the data structure interpretation by means of different statistics and tests. The package also offers the facility to plot the permuted distribution of the table total inertia as well as of the inertia accounted for by pairs of selected dimensions. Different facilities are also provided that aim to produce interpretation-oriented scatterplots. Reference: Alberti 2015 <doi:10.1016/j.softx.2015.07.001>.

r-campaignmanager 0.1.0
Propagated dependencies: r-jsonlite@1.8.9
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://windsor.ai/
Licenses: GPL 3
Synopsis: Connect to Campaign Manager via the 'Windsor.ai' API
Description:

Collect marketing data from Campaign Manager using the Windsor.ai API <https://windsor.ai/api-fields/>.

r-cancerscreening 1.1.1
Propagated dependencies: r-withr@3.0.2 r-tidyr@1.3.1 r-stringr@1.5.1 r-rlang@1.1.4 r-magrittr@2.0.3 r-lubridate@1.9.3 r-khisr@1.0.6 r-dplyr@1.1.4 r-cli@3.6.3
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cancerscreening.damurka.com
Licenses: Expat
Synopsis: Streamline Access to Cancer Screening Data
Description:

Retrieve cancer screening data for cervical, breast and colorectal cancers from the Kenya Health Information System <https://hiskenya.org> in a consistent way.

r-calibratebinary 0.1
Propagated dependencies: r-randtoolbox@2.0.5 r-kernlab@0.9-33 r-gpfit@1.0-8 r-gelnet@1.2.1
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=calibrateBinary
Licenses: GPL 2 GPL 3
Synopsis: Calibration for Computer Experiments with Binary Responses
Description:

This package performs the calibration procedure proposed by Sung et al. (2018+) <arXiv:1806.01453>. This calibration method is particularly useful when the outputs of both computer and physical experiments are binary and the estimation for the calibration parameters is of interest.

r-categorycompare 1.50.0
Propagated dependencies: r-rcy3@2.26.0 r-hwriter@1.3.2.1 r-gseabase@1.68.0 r-graph@1.84.0 r-gostats@2.72.0 r-colorspace@2.1-1 r-category@2.72.0 r-biocgenerics@0.52.0 r-biobase@2.66.0 r-annotationdbi@1.68.0 r-annotate@1.84.0
Channel: guix-bioc
Location: guix-bioc/packages/c.scm (guix-bioc packages c)
Home page: https://github.com/rmflight/categoryCompare
Licenses: GPL 2
Synopsis: Meta-analysis of high-throughput experiments using feature annotations
Description:

Calculates significant annotations (categories) in each of two (or more) feature (i.e. gene) lists, determines the overlap between the annotations, and returns graphical and tabular data about the significant annotations and which combinations of feature lists the annotations were found to be significant. Interactive exploration is facilitated through the use of RCytoscape (heavily suggested).

r-catdataanalysis 0.1-5
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/cjgeyer/CatDataAnalysis
Licenses: GPL 2+
Synopsis: Datasets for Categorical Data Analysis by Agresti
Description:

Datasets used in the book "Categorical Data Analysis" by Agresti (2012, ISBN:978-0-470-46363-5) but not printed in the book. Datasets and help pages were automatically produced from the source <https://users.stat.ufl.edu/~aa/cda/data.html> by the R script foo.R, which can be found in the GitHub repository.

r-calcthemall-prm 1.1.1
Propagated dependencies: r-zoo@1.8-12 r-vgam@1.1-12 r-plotly@4.10.4 r-mass@7.3-61 r-magrittr@2.0.3 r-lubridate@1.9.3 r-dt@0.33 r-dplyr@1.1.4
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=CalcThemAll.PRM
Licenses: GPL 3+
Synopsis: Calculate Pesticide Risk Metric (PRM) Values from Multiple Pesticides...Calc Them All
Description:

This package contains functions which can be used to calculate Pesticide Risk Metric values in aquatic environments from concentrations of multiple pesticides with known species sensitive distributions (SSDs). Pesticides provided by this package have all be validated however if the user has their own pesticides with SSD values they can append them to the pesticide_info table to include them in estimates.

r-calibrationband 0.2.1
Propagated dependencies: r-tidyselect@1.2.1 r-tidyr@1.3.1 r-tibble@3.2.1 r-sp@2.1-4 r-rlang@1.1.4 r-rcpp@1.0.13-1 r-magrittr@2.0.3 r-ggplot2@3.5.1 r-dplyr@1.1.4
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://github.com/marius-cp/calibrationband
Licenses: GPL 3
Synopsis: Calibration Bands
Description:

Package to assess the calibration of probabilistic classifiers using confidence bands for monotonic functions. Besides testing the classical goodness-of-fit null hypothesis of perfect calibration, the confidence bands calculated within that package facilitate inverted goodness-of-fit tests whose rejection allows for a sought-after conclusion of a sufficiently well-calibrated model. The package creates flexible graphical tools to perform these tests. For construction details see also Dimitriadis, Dümbgen, Henzi, Puke, Ziegel (2022) <arXiv:2203.04065>.

r-causalhypergraph 0.1.0
Propagated dependencies: r-useful@1.2.6.1 r-stringr@1.5.1 r-diagrammersvg@0.1 r-diagrammer@1.0.11 r-cna@4.0.0
Channel: guix-cran
Location: guix-cran/packages/c.scm (guix-cran packages c)
Home page: https://cran.r-project.org/package=causalHyperGraph
Licenses: GPL 2+
Synopsis: Drawing Causal Hypergraphs
Description:

Draws causal hypergraph plots from models output by configurational comparative methods such as Coincidence Analysis (CNA) or Qualitative Comparative Analysis (QCA).

Total results: 225