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r-sesem

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Structural equation modeling is a powerful statistical approach for the testing of networks of direct and indirect theoretical causal relationships in complex data sets with inter-correlated dependent and independent variables. Here we implement a simple method for spatially explicit structural equation modeling based on the analysis of variance co-variance matrices calculated across a range of lag distances. This method provides readily interpreted plots of the change in path coefficients across scale.

Installation

To install this package, run one of the following:

Conda
$conda install r_test::r-sesem

Usage Tracking

1.0.2
1 / 8 versions selected
Total downloads: 0

About

Summary

Structural equation modeling is a powerful statistical approach for the testing of networks of direct and indirect theoretical causal relationships in complex data sets with inter-correlated dependent and independent variables. Here we implement a simple method for spatially explicit structural equation modeling based on the analysis of variance co-variance matrices calculated across a range of lag distances. This method provides readily interpreted plots of the change in path coefficients across scale.

Information Last Updated

Apr 22, 2025 at 15:32

License

GPL-2

Total Downloads

1

Platforms

noarch Version: 1.0.2