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<pkgmetadata>
	<longdescription>
		Sparse Varying Coefficient BART with Global-Local Priors" // Fits
		sparse linear varying coefficient models (VCMs), which assert a
		linear relationship between an outcome and several covariates
		that is allowed to change as functions of additional variables
		known as effect modifiers. Designed for high-dimensional
		settings where the number of covariates (i.e., number of
		slopes) is comparable to or larger than the number of
		observations. Approximates the coefficient functions using a
		version of Bayesian Additive Regression Trees that can perform
		global-local shrinkage. For more details see Ghosh, Bhogale,
		and Deshpande (2026+) doi:10.48550/arXiv.2510.08204.
	</longdescription>
</pkgmetadata>
