1

I want to merge two data frame, but there are some row names repeated. If the numbers of row name in two data frame are different, I hope the it can show "NA" in the less one column.

My example:

test1 <- data.frame(name = c("A", "B", "C", "C", "C", "D"), n1 = c("15", "14", "13", "12", "11", "10"))
test2 <- data.frame(name = c("A", "B", "B", "C", "C", "D"), n1 = c("30", "31", "33", "39", "38", "40")) 

Then I merge by name, I got

name n1.x n1.y

A   15   30 
B   14   31
B   14   33
C   13   39
C   13   38
C   12   39
C   12   38
C   11   39
C   11   38
D   10   40

It will repeating What I want to is

name n1.x n1.y

A   15   30 
B   14   31
B   NA   33
C   13   39
C   12   38
C   11   NA
D   10   40

What Command should I use? Thank you very much!

  • Very unexected behaviour, can you explain exactly why your desired output contains only two "B" lines and three "C" lines? What are the processing/thinking steps? I guess that what you want is so unusual that you will have to postprocess the output of a regular merge(test1,test2,by="name")... – jaybee Aug 11 '14 at 11:07
  • @jaybee, this situation happen in my experiment, more than 1 observations in same situation. Of course it is unusual, but I have to keep them. – user3929098 Aug 12 '14 at 1:35
2

Try:

test1$indx <- with(test1, ave(1:nrow(test1), name, FUN=seq_along))
test2$indx <- with(test2, ave(1:nrow(test2), name, FUN=seq_along))
merge(test1, test2, by=c("name","indx"),all=T)[,-2]
 #   name n1.x n1.y
# 1    A   15   30
# 2    B   14   31
# 3    B <NA>   33
# 4    C   13   39
# 5    C   12   38
# 6    C   11 <NA>
# 7    D   10   40
  • Nice trick, I must remember it. n1.x and n1.y are factors - is there a way to handle this in your method some other way other than as.numeric(as.character())? – Roman Luštrik Aug 11 '14 at 11:18
  • @Roman Lustrik, thanks. n1 in test1 and test2 are both factors. I don't know why it should be changed to numeric if they both start as factors. To change it to numeric, as.numeric(as.character()) would be the route to go. – akrun Aug 11 '14 at 11:20
  • Nicely done. No need for by.x and by.y though. Just by once will work as you have the same variable names repeated. – thelatemail Aug 11 '14 at 12:49
  • @thelatemail. Thanks for the comment. I updated the code. – akrun Aug 11 '14 at 12:57
  • Thanks you guys! Really helpful. – user3929098 Aug 12 '14 at 1:38
0

I will post this before data.table.people come in with a slick, scalable and quicl solution.

Be warned, that this works for provided data set. You should examine the results of your production code carefully.

What the below code does is sticks together values for a common level. The rest is just bookkeeping.

ml <- vector("list", length(unique(test1$name)))
names(ml) <- unique(test1$name)

for (i in unique(test1$name)) {
  o1 <- test1[test1$name %in% i, , drop = FALSE]
  o2 <- test2[test2$name %in% i, , drop = FALSE]
  o.max <- max(c(nrow(o1), nrow(o2)))
  nc <- ifelse(o.max == 1, 2, o.max*2)
  out <- matrix(rep(NA, times = nc), nrow = nc/2)
  out[1:nrow(o1), 1] <- as.numeric(as.character(o1$n1))
  out[1:nrow(o2), 2] <- as.numeric(as.character(o2$n1))

  ml[[i]] <- out
}

count.each <- sapply(ml, nrow)
result <- do.call("rbind", ml)
colnames(result) <- c("n1.x", "n1.y")
data.frame(name = rep(names(ml), count.each), result)

  name n1.x n1.y
1    A   15   30
2    B   14   31
3    B   NA   33
4    C   13   39
5    C   12   38
6    C   11   NA
7    D   10   40

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