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Populate NAs in a vector using prior non-NA values?

I've been trying to figure this out for a while, but I can't seem to find a resolution to this coding issue. I like to create a column vector that would repeat the same value until the next non NA column appears in another column. So here is a table to illustrate what I like to achieve (column 2).

         [,1] [,2]
    [1,] A     a1
    [2,] NA    a1
    [3,] NA    a1
    [4,] B     a2
    [5,] NA    a2
    [6,] A     a3

Sorry about the confusion. I must have been really stressed out when writing my post earlier. I've made correction to the column 2 (please see above). After reading your posts, here are the code that I've come up with, although it is not efficient nor elegant:

     d <- paste("a", 1:sum(!is.na(column1)), sep="")  # get a1, a2, a3  
     column2 <- rep(NA, length(column1)  #create empty vector w/ column1 length
     column2[!is.na(colum1)] <- d #when col1 has a value, populate col2 with a1   
     e  <- na.locf.default(column2) #fill NAs in col2 with previous value
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So, here the output you desire is A,A,A,B,B,A? –  Arun Dec 29 '12 at 20:23
    
You have a constant second column... –  Matthew Lundberg Dec 29 '12 at 20:29
    
or do you want a1,a1,a1,a2,a2,a3 in the second column ?? –  Ben Bolker Dec 29 '12 at 20:43
    
Or maybe even a1, a1, a1, a4, a4, a6. –  Matthew Lundberg Dec 29 '12 at 20:47
    
I think your question is not actually a duplicate of the one specified here, but it's very hard to tell. If you can clarify that it's different (and what you mean/what your desired output is), I would vote to re-open. –  Ben Bolker Dec 30 '12 at 3:42
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marked as duplicate by flodel, rcs, BondedDust, Ben Bolker, mnel Dec 30 '12 at 2:59

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers

Given x:

x <- c('A', NA, NA, 'B', NA, 'A')

For what you want, according to the latest edit of your question:

y <- x
y[!is.na(x)] <- seq(sum(!is.na(x)))

paste0('a', na.locf(y))
[1] "a1" "a1" "a1" "a2" "a2" "a3"

As @flodel observed, I'm counting the non-NA characters in the string. This does that directly:

> cumsum(!is.na(x))
[1] 1 1 1 2 2 3

> paste0('a', cumsum(!is.na(x)))
[1] "a1" "a1" "a1" "a2" "a2" "a3"

This result a1, a1, a1, a4, a4, a6 would seem logical in its own way, showing which value was repeated, but it isn't what you want:

y <- x
y[!is.na(x)] <- seq_along(x)[!is.na(x)]

paste0('a', na.locf(y))
[1] "a1" "a1" "a1" "a4" "a4" "a6"

For what @Arun's comment indicates (the duplicate question), here is a method:

library(zoo)
na.locf(x)
[1] "A" "A" "A" "B" "B" "A"
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1  
or simply paste0("a", cumsum(!is.na(x))) –  flodel Dec 30 '12 at 8:06
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You may run into difficulties if the character value is "NA", i.e. an abbreviation for North America, instead of NA_character_ which somewhat confusingly also gets printed as NA:

 c("NA", NA_character_, NA)
#[1] "NA" NA   NA 
is.na(c("NA", NA_character_, NA))
#[1] FALSE  TRUE  TRUE

.... but assuming that is not the problem then do as Matthew suggested:

require(zoo)
filled <- na.locf(vec)
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You could also do this pretty succinctly without the zoo package using the rle function:

x <- c('A', NA, NA, 'B', NA, 'A')
x.rle <- rle(replace(x, which(is.na(x)), na.str <- '.'))
x[is.na(x)] <- with(x.rle, rep(values[which(values == na.str) - 1], 
                               lengths[values == na.str]))

# [1] "A" "A" "A" "B" "B" "A"
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