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EGAnet (version 2.0.3)

Exploratory Graph Analysis – a Framework for Estimating the Number of Dimensions in Multivariate Data using Network Psychometrics

Description

Implements the Exploratory Graph Analysis (EGA) framework for dimensionality and psychometric assessment. EGA estimates the number of dimensions in psychological data using network estimation methods and community detection algorithms. A bootstrap method is provided to assess the stability of dimensions and items. Fit is evaluated using the Entropy Fit family of indices. Unique Variable Analysis evaluates the extent to which items are locally dependent (or redundant). Network loadings provide similar information to factor loadings and can be used to compute network scores. A bootstrap and permutation approach are available to assess configural and metric invariance. Hierarchical structures can be detected using Hierarchical EGA. Time series and intensive longitudinal data can be analyzed using Dynamic EGA, supporting individual, group, and population level assessments.

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Version

Install

install.packages('EGAnet')

Monthly Downloads

2,956

Version

2.0.3

License

GPL (>= 3.0)

Maintainer

Hudson Golino

Last Published

November 17th, 2023

Functions in EGAnet (2.0.3)

community.homogenize

Homogenize Community Memberships
community.unidimensional

Approaches to Detect Unidimensional Communities
bootEGA

Bootstrap Exploratory Graph Analysis
color_palette_EGA

EGA Color Palettes
UVA

Unique Variable Analysis
community.consensus

Applies the Consensus Clustering Method (Louvain only)
boot.ergoInfo

Bootstrap Test for the Ergodicity Information Index
community.detection

Apply a Community Detection Algorithm
boot.wmt

bootEGA Results of wmt2Data
auto.correlate

Automatic correlations
convert2tidygraph

Convert networks to tidygraph
dnn.weights

Loadings Comparison Test Deep Learning Neural Network Weights
compare.EGA.plots

Visually Compare Two or More EGAnet plots
dimensionStability

Dimension Stability Statistics from bootEGA
convert2igraph

Convert networks to igraph
dynEGA

Dynamic Exploratory Graph Analysis
dynEGA.ind.pop

Intra- and Inter-individual dynEGA
entropyFit

Entropy Fit Index
ega.wmt

EGA Network of wmt2Data
depression

Depression Data
igraph2matrix

Convert igraph network to matrix
glla

Generalized Local Linear Approximation
infoCluster

Information Theoretic Mixture Clustering for dynEGA
intelligenceBattery

Intelligence Data
ergoInfo

Ergodicity Information Index
hierEGA

Hierarchical EGA
genTEFI

Generalized Total Entropy Fit Index using Von Neumman's entropy (Quantum Information Theory) for correlation matrices
invariance

Measurement Invariance of EGA Structure
itemStability

Item Stability Statistics from bootEGA
jsd

Jensen-Shannon Distance
simDFM

Simulate data following a Dynamic Factor Model
network.estimation

Apply a Network Estimation Method
polychoric.matrix

Computes Polychoric Correlations
net.loads

Network Loadings
net.scores

Network Scores
riEGA

Random-Intercept EGA
modularity

Computes the (Signed) Modularity Statistic
prime.num

Prime Numbers through 100,000
sim.dynEGA

sim.dynEGA Data
tefi

Total Entropy Fit Index using Von Neumman's entropy (Quantum Information Theory) for correlation matrices
wto

Weighted Topological Overlap
totalCor

Total Correlation
wmt2

WMT-2 Data
optimism

Optimism Data
vn.entropy

Entropy Fit Index using Von Neumman's entropy (Quantum Information Theory) for correlation matrices
totalCorMat

Total Correlation Matrix
EGA

Exploratory Graph Analysis
EGAnet-plot

S3 Plot Methods for EGAnet
TMFG

Triangulated Maximally Filtered Graph
EGA.fit

EGA Optimal Model Fit using the Total Entropy Fit Index (tefi)
LCT

Loadings Comparison Test
CFA

CFA Fit of EGA or hierEGA Structure
EGA.estimate

Estimates EGA for Multidimensional Structures
Embed

Time-delay Embedding
EGAnet-package

EGAnet-package
EBICglasso.qgraph

EBICglasso from qgraph 1.4.4