Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm stuck at the following code:

y = c(2.5, 6.0, 6.0, 7.5, 8.0, 8.0, 16.0, 6.0, 5.0, 6.0, 28.0, 5.0, 9.5, 
      6.0, 4.5, 10.0, 14.0, 3.0, 4.5, 5.5, 3.0, 3.5, 6.0, 2.0, 3.0, 4.0, 
      6.0, 5.0, 6.5, 5.0, 10.0, 6.0, 18.0, 4.5, 20.0) 

x2 = c(650, 2500, 900, 800, 3070, 2866, 7500, 800, 800, 650, 2100, 2000, 
       2200, 500, 1500, 3000, 2200, 350, 1000, 600, 300, 1500, 2200, 900, 
       600, 2000, 800, 950, 1750, 500, 4400, 600, 5200, 850, 5000) 

x1 = c(16.083, 48.350, 33.650, 45.600, 62.267, 73.2170, 204.617, 36.367, 
       29.750, 39.7500, 192.667, 43.050, 65.000, 44.133, 26.933, 72.250, 
       98.417, 78.650, 17.417, 32.567, 15.950, 27.900, 47.633, 17.933, 
       18.683, 26.217, 34.433, 28.567, 50.500, 20.950, 85.583, 32.3830, 
       170.250, 28.1000, 159.8330)

library(MASS) 
n = length(y) 
X = matrix(nrow = n, ncol = 2) 
for (i in 1:n) {
    X[i,1] = x1[i]
}

for (i in 1:n) {
    X[i,2] = x2[i]
} 
gibbs = function(data, m01 = 0, m02 = 0, k01 = 0.1, k02 = 0.1, 
                     a0 = 0.1, L0 = 0.1, nburn = 0, ndraw = 5000) {
    m0      = c(m01,m02) 
    C0      = matrix(nrow=2,ncol=2) 
    C0[1,1] = 1/k01 
    C0[1,2] = 0 
    C0[2,1] = 0 
    C0[2,2] = 1/k02 
    beta    = mvrnorm(1,m0,C0) 
    omega   = rgamma(1,a0,1)/L0 
    draws   = matrix(ncol=3,nrow=ndraw) 
    it      = -nburn 

    while (it < ndraw) {
        it    = it + 1 
        C1    = solve(solve(C0)+omega*t(X)%*%X) 
        m1    = C1%*%(solve(C0)%*%m0+omega*t(X)%*%y) 
        beta  = mvrnorm(1,m1,C1) 
        a1    = a0 + n/2 
        L1    = L0 + t(y-X%*%beta)%*%(y-X%*%beta) / 2 
        omega = rgamma(1, a1, 1) / L1 
        if (it > 0) { 
            draws[it,1] = beta[1]
            draws[it,2] = beta[2]
            draws[it,3] = omega
        }
    }
    return(draws)
}

When I run it I get :

Error in omega * t(X) %*% X : non-conformable arrays 

But when I check omega * t(X) %*% X outside the function I get a result which means that the arrays are conformable,and I have no idea why I'm getting this error. Any help would be much appreciated.

share|improve this question

migrated from programmers.stackexchange.com Feb 9 '13 at 20:45

This question came from our site for professional programmers interested in conceptual questions about software development.

1  
What call to the gibbs function do you make exactly ? gibbs(X) ? –  juba Feb 9 '13 at 20:55

1 Answer 1

up vote 4 down vote accepted

The problem is that omega in your case is matrix of dimensions 1 * 1. You should convert it to a vector if you wish to multiply t(X) %*% X by a scalar (that is omega)

In particular, you'll have to replace this line:

omega   = rgamma(1,a0,1) / L0

with:

omega   = as.vector(rgamma(1,a0,1) / L0)

everywhere in your code. It happens in two places (once inside the loop and once outside). You can substitute as.vector(.) or c(t(.)). Both are equivalent.

Here's the modified code that should work:

gibbs = function(data, m01 = 0, m02 = 0, k01 = 0.1, k02 = 0.1, 
                     a0 = 0.1, L0 = 0.1, nburn = 0, ndraw = 5000) {
    m0      = c(m01, m02) 
    C0      = matrix(nrow = 2, ncol = 2) 
    C0[1,1] = 1 / k01 
    C0[1,2] = 0 
    C0[2,1] = 0 
    C0[2,2] = 1 / k02 
    beta    = mvrnorm(1,m0,C0) 
    omega   = as.vector(rgamma(1,a0,1) / L0)
    draws   = matrix(ncol = 3,nrow = ndraw) 
    it      = -nburn 

    while (it < ndraw) {
        it    = it + 1 
        C1    = solve(solve(C0) + omega * t(X) %*% X) 
        m1    = C1 %*% (solve(C0) %*% m0 + omega * t(X) %*% y)
        beta  = mvrnorm(1, m1, C1) 
        a1    = a0 + n / 2 
        L1    = L0 + t(y - X %*% beta) %*% (y - X %*% beta) / 2 
        omega = as.vector(rgamma(1, a1, 1) / L1)
        if (it > 0) { 
            draws[it,1] = beta[1]
            draws[it,2] = beta[2]
            draws[it,3] = omega
        }
    }
    return(draws)
}
share|improve this answer
1  
Thank you very much I was stuck for 5-6 hours –  user21983 Feb 9 '13 at 21:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.