# NOT RUN {
library(Matrix)
set.seed(123)
n.obs <- 200
n.vars <- 50
true.beta.mat <- array(NA, dim = c(3, n.vars))
true.beta.mat[1,] <- c(-0.5, -1, 0, 0, 2, rep(0, n.vars - 5))
true.beta.mat[2,] <- c(0.5, 0.5, -0.5, -0.5, 1, -1, rep(0, n.vars - 6))
true.beta.mat[3,] <- c(0, 0, 1, 1, -1, rep(0, n.vars - 5))
rownames(true.beta.mat) <- c("1,0", "1,1", "0,1")
true.beta <- as.vector(t(true.beta.mat))
x.sub1 <- matrix(rnorm(n.obs * n.vars), n.obs, n.vars)
x.sub2 <- matrix(rnorm(n.obs * n.vars), n.obs, n.vars)
x.sub3 <- matrix(rnorm(n.obs * n.vars), n.obs, n.vars)
x <- as.matrix(rbind(x.sub1, x.sub2, x.sub3))
conditions <- as.matrix(cbind(c(rep(1, 2 * n.obs), rep(0, n.obs)),
c(rep(0, n.obs), rep(1, 2 * n.obs))))
y <- rnorm(n.obs * 3, sd = 3) + drop(as.matrix(bdiag(x.sub1, x.sub2, x.sub3)) %*% true.beta)
fit <- vennLasso(x = x, y = y, groups = conditions)
vennobj <- plotVenn(conditions)
# }
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