2

Say I have a data frame with two factors in there and I want to sort the levels of one factor grouped by the second category.

name <- letters[1:8]
category <- factor(sample(1:2, 8, replace=T), labels=c("A", "B"))
my.df <- data.frame(name=name, category=category)

So the data frame looks similar to:

  name category
1    a        A
2    b        A
3    c        B
4    d        B
5    e        B
6    f        A
7    g        A
8    h        A

and the output of levels(my.df$name) is:

[1] "a" "b" "c" "d" "e" "f" "g" "h"

Assuming that a level in name always corresponds to the same level in category in my data, how can I sort the levels of name accordingly?

  • I found an answer myself using the interaction function to sort by but I can't post that for another 8 h. The code is levels(df.test$name)[with(df.test, interaction(name, category, drop=T))]. In the meanwhile are there any other sleek answers? – Midnighter Oct 16 '11 at 20:59
4

Is this what you want?

> levels(my.df$name) <- as.character(unique(my.df[order(my.df$category),]$name))
> levels(my.df$name)
[1] "b" "c" "e" "f" "a" "d" "g" "h"
  • 1
    I'd rearrange the levels of the factor and not replace them but that is basically what I'm looking for. my.df$name <- factor(my.df$name, levels=as.character(unique(my.df[order(my.df$category),]$name))) – Midnighter Oct 16 '11 at 21:08
3

I think this might be cleaner than either of the solutions so far:

    my.df <-
structure(list(name = structure(1:8, .Label = c("a", "b", "c", 
"d", "e", "f", "g", "h"), class = "factor"), category = structure(c(1L, 
1L, 2L, 2L, 2L, 1L, 1L, 1L), .Label = c("A", "B"), class = "factor")), .Names = c("name", 
"category"), class = "data.frame", row.names = c("1", "2", "3", 
"4", "5", "6", "7", "8"))

 with(my.df, name[order(category)] )
[1] b d e h a c f g
Levels: a b c d e f g h

If you wanted to relevel the factor, that could be done as well, but it wasn't clear that you wanted that change to be permanent.

  • That is more clean but the unique call is essential for anything other than this simple data. Maybe I should have been more explicit about multiple entries in name as well. I apologize. – Midnighter Oct 17 '11 at 8:57

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