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Im looking to create a matrix of rank k. The dimension of the matrix is m x n. The input k satisfies that condition that k < min(m,n).

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up vote 3 down vote accepted

Well, a trivial method is to produce a matrix that looks like:

1 0 0 0 0
0 1 0 0 0
0 0 1 1 1
0 0 0 0 0

i.e. k columns of the identity matrix, then repeat the last column n-k times (or m-k times, depending on orientation).

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It's not really so clear what you are aiming for.

But in order to create a matrix B with specific rank k, from a matrix A (with rank at least k), you may like to utilize svd and proceed like:

>>> A= rand(7, 5);
>>> rank(A)
ans =  5
>>> [U, S, V]= svd(A);
>>> k= 3;
>>> B= U(:, 1: k)* S(1: k, 1: k)* V(:, 1: k)';
>>> rank(B)
ans =  3
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A matrix of rank 1 can be created by the outer product of two vectors, for example:

A = randn(10,1) * randn(1,10);

Add together k of these and you will have a matrix of rank k. Like this:

>> A = zeros(10);
>> for i = 1:4, A = A + randn(10,1) * randn(1,10); end
>> rank(A)

ans =  4
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1  
to be precise, your method produces a matrix of rank <= k. It might be the case where two random vectors would be linearly dependent (not very likely, but possible, especially if k is close to m or n) – Shai Dec 16 '12 at 16:22
    
while you're at it, it can be done without the loop A = rand(m, k)*rand(k,n); rank(A) – Shai Dec 16 '12 at 17:05

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