7

This may be a very basic question but I could't find it. Let's say I have a data frame d with row numbers in disorder like this:

    Signal
4   9998
3   549
1   18
5   2.342
2   0.043

How can I sort this by increasing row index numbers to obtain the following?

    Signal
1   18
2   0.043
3   549
4   9998
5   2.342
9
d <- read.table(text=readClipboard(), header=TRUE)    
d$index <- as.numeric(row.names(d))
d[order(d$index), ]
  • For some reason, the order of the rows ends up really weird: 1 10 100 1000 10000 10001 10002 10003... 10009 1001 10010 10011... – biohazard Mar 18 '14 at 8:50
  • Better to use order. There could easily be a rowname that is out of bounds. Also, rownames are characters, so they should use as.numeric first. – Roland Mar 18 '14 at 8:51
  • Thank you! It's working now with as.numeric(row.names(d)) and order(). If @Paulo Cardoso edits his solution or if @Roland posts an answer I will pick either one as the chosen answer. – biohazard Mar 18 '14 at 8:53
  • @Roland May I add your suggestion or you'll post it as an answer? – Paulo E. Cardoso Mar 18 '14 at 8:54
  • I just figured out you can edit other people's answers and edited Paulo's one; sorry for the confusion – biohazard Mar 18 '14 at 8:55
7

you can also use this :

 d[order(as.numeric(rownames(d))),,drop=FALSE]

drop is useful only if your data.frame has one column otherwise remove it

  • May I suggest the use of as.numeric() as proposed by @Roland in the other answer? – biohazard Mar 18 '14 at 9:01
0
rownames(d) <- 1 : length(rownames(d))

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