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It is inefficient in R to expand a data structure in a loop. How do I preallocate a list of a certain size? matrix makes this easy via the ncol and nrow arguments. How does one do this in lists? For example:

x <- list()
for (i in 1:10) {
    x[[i]] <- i
}

I presume this is inefficient. What is a better way to do this?

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up vote 28 down vote accepted

vector can create empty vector of the desired mode and length.

x <- vector(mode = "list", length = 10)
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thanks for the quick response. i will accept as soon as the time limit allows. – Alex Sep 17 '12 at 17:41

To expand on what @Jilber said, lapply is specially built for this type of operation.

instead of the for loop, you could use:

x <- lapply(1:10, function(i) i)

You can extend this to more complicated examples. Often, what is in the body of the for loop can be directly translated to a function which accepts a single row that looks like a row from each iteration of the loop.

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That's what I meant. +1 – Jilber Sep 17 '12 at 18:10
    
thanks, great point! – Alex Sep 17 '12 at 18:13

Something like this:

   x <- vector('list', 10)

But using lapply is the best choice

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thank you for the help! – Alex Sep 17 '12 at 17:45

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