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taking an example from An Introduction to R

xc <- split(x, ind)
yc <- split(y, ind)
for (i in 1:length(yc)) {
    plot(xc[[i]], yc[[i]])
    abline(lsfit(xc[[i]], yc[[i]]))
}

It seems that for(i in 1:length(yc)) { ... is an idiom for iterating over a list or vector in the case where you need a handle on the current index. This however breaks in the case of an empty list since 1:0 is not an empty vector. What is the idiom I should use for iterating over list/vector indices when you aren't guaranteed a non-empty list? I'm thinking if(length(yc)) for(i in 1:length(yc)) { ... but is there a nicer way?

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up vote 11 down vote accepted

You're looking for seq_along.

> seq_along(as.list(1:2))
[1] 1 2
> seq_along(list())
integer(0)
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exactly what I was looking for – Keith Sep 1 '11 at 19:22
2  
...and use seq_len when you have the length already... – Tommy Sep 1 '11 at 20:50

You can use seq_along:

for(i in seq_along(yc)) {...}

I'm pretty sure this bypasses the problem and should be a tiny bit faster.

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thanks Nick (I got two good answers at almost the same time) – Keith Sep 1 '11 at 19:23

This question is covered on page 75 of 'The R Inferno': http://www.burns-stat.com/pages/Tutor/R_inferno.pdf

It tells you a few other ways to get your loop wrong as well.

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Welcome to StackOverflow! You'll find the R inferno is held in high regard here. It's a great resource, thanks! – Aaron Sep 2 '11 at 12:49

For anyone who happens to stumble upon this -- if you want an index vector based on possibly zero length, rather than another vector, you can safely use seq(1, length.out = L), where L can be any non-negative integer. That will give you integer(0) if L == 0, and 1:L otherwise.

Of course the other solutions given here are more concise if L == length(something), but I had a problem where that wasn't the case, so I thought I'd write it down for progeny.

Also seq(1, length.out = L) can be abbreviated as seq_len(L), which according to ?seq is faster.

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