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Given a vector t. How can I fill a matrix like

t[1] t[1] t[1] ... t[1]  
t[1] t[2] t[2] ... t[2]  
t[1] t[2] t[3] ... t[3]  
...  ...  ...  ...  ...  
t[1] t[2] t[3] ... t[n]

that corresponds to a covariance matrix for Brownian motion at times t?

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2 Answers 2

up vote 3 down vote accepted

Here's one way.

t <- 11:15
m <- vapply(seq_along(t), function(i) c(t[seq_len(i)], rep(t[i], length(t)-i)), numeric(length(t)))
m
#     [,1] [,2] [,3] [,4] [,5]
#[1,]   11   11   11   11   11
#[2,]   11   12   12   12   12
#[3,]   11   12   13   13   13
#[4,]   11   12   13   14   14
#[5,]   11   12   13   14   15

You could use sapply too - a bit shorter but also a bit slower (you don't specify what the function returns):

m <- sapply(seq_along(t), function(i) c(t[seq_len(i)], rep(t[i], length(t)-i)))
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The value of the (i,j) coefficient is min(i,j):

m <- matrix( NA, nr=5, nc=5 ) # Empty matrix with the right size
m <- pmin( col(m), row(m) )
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Looks like this solution is a bit faster than @Tommy's. –  Roman Luštrik Feb 11 '12 at 13:20
    
@Vincent I tried to generalize your answer to general vector t, as follows m <- pmin(t[col(m)], t[row(m)]) but this give me a vector of size nc*nr, so I applied the matrix command again –  jmbarrios Feb 13 '12 at 18:39
1  
That should be pmin(col(t), row(t)), if your matrix is really called t. I changed the name of the matrix from t to m because t is already the transpose function. –  Vincent Zoonekynd Feb 13 '12 at 22:40

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