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If I want to number all elements in two vectors, vector 1 gets all odd bumbers and vector 2 gets all even numbers, I can do this assuming the vectors are of length 10.

seq(1, 10, by=2)
[1] 1 3 5 7 9

seq(2, 11, by=2)
[1]  2  4  6  8 10

but if my vector has only one element I will run into problems:

 seq(2)
[1] 1 2

so I use:

seq_along(2)
[1] 1

BUT I cant use by= in seq_long(). How do i get the reliability of seq_along with the functionality of seq()?


This example might clear things.

Imagine I ahve two lists:

list1 <- list(4)
list2 <- list(4)

list1 must get even names along the element of the list. list2 must get odd names along the element of the list.

I dont know how long the list elements will be.

seq_along(list1[[1]]) # this will know to only give one name but I cant make it even

seq(list2[[1]]) # this know to give 1 name
#and
seq(2, list1[[1]], by=2) # this gives me even but too nay names
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What are you actually trying to do? You aren't passing a vector in any of these statements. –  Matthew Lundberg Jan 30 '13 at 14:32
    
The example has actually confused me more than the original question. Are you aware that list1 <- list(4) only contains a single value? Perhaps you meant to use something like list1 <- integer(4)? And lists don't get names, so I'm now confused. –  Dinre Jan 30 '13 at 14:55

5 Answers 5

up vote 3 down vote accepted

Here's a function that adds a 'by' argument to seq_along:

seq_along_by = function(x, by=1L, from = 1L) (seq_along(x) - 1L) * by + from

and some test cases

> seq_along_by(integer(), 2L)
integer(0)
> seq_along_by(1, 2L)
[1] 1
> seq_along_by(1:4, 2L)
[1] 1 3 5 7
> seq_along_by(1:4, 2.2)
[1] 1.0 3.2 5.4 7.6
> seq_along_by(1:4, -2.2)
[1]  1.0 -1.2 -3.4 -5.6
share|improve this answer
    
+1 looks good . –  user1317221_G Jan 30 '13 at 16:32

If I understand correctly, what you really want is a to get the 'seq' function to return only odd or oven numbers 1..max or 2..max, respectively. You would write that like so:

seq(1, max, by=2) # Odd numbers
seq(2, max, by=2) # Even numbers

Where max is the top number in your series. The only time this will break is if max is less than 2.

Update 1: There seems to be a bit of discussion about what the OP is requesting. If we assume there are two existing vectors to be numbered, we can obtain the total number of vector items using max <- length(c(vector1, vector2)) to obtain the maximum number being used. Then, the indices would be assigned like so:

vector1 <- seq(1, max, by=2)
vector2 <- seq(2, max, by=2)

And this will work for any set EXCEPT when one vector does not have any elements at all.

Update 2: There is one final approach, which you can take if your vectors do not represent all values between 1 and max. This is how it would work:

vector1 <- seq(1, length(vector1) * 2, by=2)
vector2 <- seq(1, length(vector2) * 2, by=2)

This independently assigns the values of vector1 and vector2 according to their own lengths.

share|improve this answer
    
if there is one element in the vector that gets even names. This does not work seq(2, 1, by=2) –  user1322296 Jan 30 '13 at 14:33
    
The max in the answer is only set once for both vectors, so length=1 vectors will still work, because max = 2 in that case. –  Dinre Jan 30 '13 at 14:43

I'm adding another answer to address what may be your intent of the question rather than the question as you've stated it.

Let's assume you have a couple arrays, A1 and A2, with values, and you want to link an index to those values, so you can say index[n] and get a corresponding value from A1[n/2 + 1] if n is odd and A2[n/2] if n is even.

We would build a new vector, index, like so:

# Sample arrays
A1 <- sample(LETTERS, 5, rep=TRUE)
A2 <- sample(LETTERS, 5, rep=TRUE)

n_Max <- length(c(A1,A2))
index <- integer(n_Max)
index[seq(1,n_Max,by=2)] <- A1
index[seq(2,n_Max,by=2)] <- A2

Now, index[n] returns A1 values when n is odd, and returns A2 values when n is even. This breaks if length(A2) is not equal to or one less than length(A1).

share|improve this answer

I'm not sure what you are trying to do, but if you want to split odd and even elements in a vector, you can do just that:

x <- 1:19
split(x,x%%2)
$`0`
[1]  2  4  6  8 10 12 14 16 18

$`1`
 [1]  1  3  5  7  9 11 13 15 17 19

To extract the odd and even numbered elements, use lapply on this list using seq_along to enumerate the element numbers:

x <- rep(c("odd","even"),times=4)
lapply(split(seq_along(x),seq_along(x)%%2),function(y) "["(x,y))
$`0`
[1] "even" "even" "even" "even"

$`1`
[1] "odd" "odd" "odd" "odd"

This can of course be made into a function:

split_oe <- function(x) lapply(split(seq_along(x),seq_along(x)%%2),function(y) "["(x,y))
split_oe(1:10)
$`0`
[1]  2  4  6  8 10

$`1`
[1] 1 3 5 7 9

> split_oe(2)
$`1`
[1] 2
share|improve this answer
    
(+1) I like this one. –  Arun Jan 30 '13 at 14:43

one way i just found is:

  y <- seq_along(1:20)
  y[y %% 2 == 0 ]
  [1]  2  4  6  8 10 12 14 16 18 20
  y[ !y %% 2 == 0 ]
  [1]  1  3  5  7  9 11 13 15 17 19    

But this will only work when my vectors are even. Must be able to do better.

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