1

I have an all zero sparse matrix K1 with the dimensions (9x3). I wanted to replace certain values of this matrix with an another matrix. Also, instead of numerical indexing, I have used variable indexing to make it more dynamic. The codes are as follows -

n <- 3 
library(Matrix)
K1 <- Matrix(0, n*n, n*(n-1)/2, sparse = TRUE)
for (i in 1:(n - 1)) {
  K1[2 + (i - 1)*(n + 1):i*n, 
     1 + (i - 1)*(n - i/2):i*(n - i)*(i + 1)/2] <- diag(n - i)
}

However, it shows the error -

Error in replCmat4(x, i1 = if (iMi) 0:(di[1] - 1L) else .ind.prep2(i,  : 
  too many replacement values

Sometimes this error as well -

Error in intI(i, n = di[margin], dn = dn[[margin]], give.dn = FALSE) : 
  index larger than maximal 9

But, when I run the Similar code in MATLAB, it runs perfectly. MATLAB code -

n = 3 
K1 = sparse(n*n,n*(n-1)/2);
for i = 1:n-1
    K1(2+(i-1)*(n+1):i*n,1+(i-1)*(n-i/2):i*n-i*(i+1)/2) = eye(n-i);
end

And the output which MATLAB gives is -

K1 =

   (2,1)             1.00
   (3,2)             1.00
   (6,3)             1.00

Thus, above is my desired output as well.

Can someone tell what is going wrong when I am trying to execute the same in R.

I appreciate the help. Thanks.

3
  • Does indexing in matlab start with 0, or 1 as in R? Looks like you attempt to index column 4 which in R actually should be 3.
    – jay.sf
    Sep 19 at 6:29
  • 1
    Indexing in Matlab starts with 1 as in R.
    – Shrey_var
    Sep 19 at 6:33
  • Ok, anyway for i=2 your column index 1 + (i - 1)*(n - i/2):i*(n - i)*(i + 1)/2 gives 4, but you have just 3 columns.
    – jay.sf
    Sep 19 at 6:37
1

Please put the index in a pair of braket, otherwise they may be explained differently in R and Matlab.

K1[(2+(i-1)*(n+1)):(i*n), (1+(i-1)*(n-i/2)):(i*(n-i)*(i+1)/2)]
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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