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Every week I a incomplete dataset for a analysis. That looks like:

df1 <- data.frame(var1 = c("a","","","b",""), 
             var2 = c("x","y","z","x","z"))

Some var1 values are missing. The dataset should end up looking like this:

df2 <- data.frame(var1 = c("a","a","a","b","b"), 
             var2 = c("x","y","z","x","z"))

Currently I use an Excel macro to do this. But this makes it harder to automate the analysis. From now on I would like to do this in R. But I have no idea how to do this.

Thanks for your help.

QUESTION UPDATE AFTER COMMENT

var2 is not relevant for my question. The only thing I am trying to is. Get from df1 to df2.

df1 <- data.frame(var1 = c("a","","","b",""))
df2 <- data.frame(var1 = c("a","a","a","b","b"))
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I don't understand the pattern you are using to replace missing values with. Do you want to replace the first set of blanks with 'a' until 'b' then replace blanks with 'b' until 'c' and so on... –  John Mar 1 '12 at 10:59
    
Sorry for the confusion. var2 isn't relevant for question at all. I will update my question. –  jeroen81 Mar 1 '12 at 11:03
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3 Answers

up vote 8 down vote accepted

Here is one way of doing it by making use of run-length encoding (rle) and its inverse rle.inverse:

fillTheBlanks <- function(x, missing=""){
  rle <- rle(as.character(x))
  empty <- which(rle$value==missing)
  rle$values[empty] <- rle$value[empty-1] 
  inverse.rle(rle)
}

df1$var1 <- fillTheBlanks(df1$var1)

The results:

df1

  var1 var2
1    a    x
2    a    y
3    a    z
4    b    x
5    b    z
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Thanks, this is the answer I was looking for. –  jeroen81 Mar 1 '12 at 11:08
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Here is a simpler way:

library(zoo)
df1$var1[df1$var1 == ""] <- NA
df1$var1 <- na.locf(df1$var1)
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+1 Must. Get. Familiar. With. Zoo. –  Andrie Mar 1 '12 at 17:48
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Here is another way which is slightly shorter and doesn't coerce to character:

Fill <- function(x,missing="")
{
  Log <- x != missing
  y <- x[Log]
  y[cumsum(Log)]
}

Results:

# For factor:
Fill(df1$var1)
[1] a a a b b
Levels:  a b

# For character:
Fill(as.character(df1$var1))
[1] "a" "a" "a" "b" "b"
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+1 Nice one.... –  Andrie Mar 1 '12 at 17:49
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