Created
October 7, 2013 15:10
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Polygenic model with known lambda = sigma2e / sigma2a
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n <- 1000 | |
m <- 200 | |
X <- matrix(rbinom(m*n, 2, 0.5), n) | |
p <- apply(X, 2, mean)/2 | |
pv <- apply(X, 2, sd) | |
Xp <- t((t(X) - 2*p) / pv) | |
A <- Xp %*% t(Xp) / m | |
A[1:10,1:10] | |
lambda <- 0.8/0.2 | |
eff <- rnorm(m) | |
y <- drop(X %*% eff) | |
y <- (y - mean(y)) / sd(y) * sqrt(0.2) + rnorm(n, sd=sqrt(0.8)) | |
mean(y) | |
sd(y) | |
var(y) | |
eigenA <- eigen(A) | |
eig.vec <- eigenA$vectors | |
eig.val <- eigenA$values | |
M <- diag(1/sqrt(eig.val*lambda+1)) %*% t(eig.vec) | |
Y <- M %*% y | |
X.Data <- data.frame(M %*% X) | |
lm1 <- lm(Y~.-1,data=X.Data) | |
anova(lm1) |
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