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I have a data frame, which looks like that:

    P1  P2  P3  T1  T2  T3  I1  I2
1   2   3   5   52  43  61  6   "b"
2   6   4   3   72  NA  59  1   "a"
3   1   5   6   55  48  60  6   "f"
4   2   4   4   65  64  58  2   "b"

I want to sort it by I1 in descending order, and rows with the same value in I1 by I2 in ascending order, getting the rows in the order 1 3 4 2. But the order function seems to only take one decreasing argument, which is then TRUE or FALSE for all ordering vectors at once. How do I get my sort correct?

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10 Answers 10

up vote 14 down vote accepted

I used this code to produce your desired output. Is this what you were after?

rum <- read.table(textConnection("P1  P2  P3  T1  T2  T3  I1  I2
2   3   5   52  43  61  6   b
6   4   3   72  NA  59  1   a
1   5   6   55  48  60  6   f
2   4   4   65  64  58  2   b"), header = TRUE)
rum$I2 <- as.character(rum$I2)
rum[order(rum$I1, rev(rum$I2), decreasing = TRUE), ]

  P1 P2 P3 T1 T2 T3 I1 I2
1  2  3  5 52 43 61  6  b
3  1  5  6 55 48 60  6  f
4  2  4  4 65 64 58  2  b
2  6  4  3 72 NA 59  1  a
share|improve this answer
    
Thank you. I am still a bit overwhelmed by everything R has, and did not know about the rev function. In the meantime, I had figured it out that if the second vector is numeric, I could order by max minus the vector, but the character vector was still a problem until you answered. – rumtscho Oct 17 '11 at 15:15
    
@rumtscho yes, that's how it's done in the help file of order which is where I got my inspiration from. ;) – Roman Luštrik Oct 18 '11 at 7:54
4  
Be sure to check out @dudusan's answer for data where this method would fail. The problem is that using rev() no longer keeps the rows all together, it simply flips the column upside down. It only worked in this case because the example was "nicely" arranged. – MrFlick May 10 '14 at 6:30

I'm afraid Roman Luštrik's answer is wrong. It works on this input by chance. Consider for example its output on a very similar input (with an additional line similar to the original line 3 with "c" in the I2 column):

rum <- read.table(textConnection("P1  P2  P3  T1  T2  T3  I1  I2
2   3   5   52  43  61  6   b
6   4   3   72  NA  59  1   a
1   5   6   55  48  60  6   f
2   4   4   65  64  58  2   b
1   5   6   55  48  60  6   c"), header = TRUE)

rum$I2 <- as.character(rum$I2)
rum[order(rum$I1, rev(rum$I2), decreasing = TRUE), ]

  P1 P2 P3 T1 T2 T3 I1 I2
3  1  5  6 55 48 60  6  f
1  2  3  5 52 43 61  6  b
5  1  5  6 55 48 60  6  c
4  2  4  4 65 64 58  2  b
2  6  4  3 72 NA 59  1  a

This is not the desired result: the first three values of I2 are f b c instead of b c f, which would be expected since the secondary sort is I2 in ascending order.

To get the reverse order of I2, you want the large values to be small and vice versa. For numeric values multiplying by -1 will do it, but for characters its a bit more tricky. A general solution for characters/strings would be to go through factors, reverse the levels (to make large values small and small values large) and change the factor back to characters:

rum <- read.table(textConnection("P1  P2  P3  T1  T2  T3  I1  I2
2   3   5   52  43  61  6   b
6   4   3   72  NA  59  1   a
1   5   6   55  48  60  6   f
2   4   4   65  64  58  2   b
1   5   6   55  48  60  6   c"), header = TRUE)

f=factor(rum$I2)
levels(f) = rev(levels(f))
rum[order(rum$I1, as.character(f), decreasing = TRUE), ]

  P1 P2 P3 T1 T2 T3 I1 I2
1  2  3  5 52 43 61  6  b
5  1  5  6 55 48 60  6  c
3  1  5  6 55 48 60  6  f
4  2  4  4 65 64 58  2  b
2  6  4  3 72 NA 59  1  a
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Check out also Michele's answer below, which seems to work and is more straightforward than my own. – dudusan Feb 6 '15 at 4:10

I use rank:

rum <- read.table(textConnection("P1  P2  P3  T1  T2  T3  I1  I2
2   3   5   52  43  61  6   b
6   4   3   72  NA  59  1   a
1   5   6   55  48  60  6   f
2   4   4   65  64  58  2   b
1   5   6   55  48  60  6   c"), header = TRUE)

> rum[order(rum$I1, -rank(rum$I2), decreasing = TRUE), ]
  P1 P2 P3 T1 T2 T3 I1 I2
1  2  3  5 52 43 61  6  b
5  1  5  6 55 48 60  6  c
3  1  5  6 55 48 60  6  f
4  2  4  4 65 64 58  2  b
2  6  4  3 72 NA 59  1  a
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1  
Simple one without rank : rum[order(rum$I1, -rum$I2, decreasing = TRUE), ] – Somnath Kadam Nov 19 '15 at 11:36

The default sort is stable, so we sort twice: First by the minor key, then by the major key

rum1 <- rum[order(rum$I2, decreasing = FALSE),]
rum2 <- rum1[order(rum1$I1, decreasing = TRUE),]
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The correct way is:

rum[order(rum$T1, rum$T2, decreasing=c(T,F)), ]
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5  
This would be very neat, but doesn't seem to work: compare the output of Roman Luštrik's rum[order(rum$I1, rev(rum$I2), decreasing = TRUE), ] to your rum[order(rum$I1, rum$I2, decreasing = c(TRUE, FALSE)), ]. I don't think decreasing accepts a vector of values. – Michael Dunn Nov 20 '11 at 8:04
1  
This is just wrong. Decreasing does not accept a vector, and this answer should not be relied on. – TARehman Mar 17 '15 at 21:57

Let df be the data frame with 2 fields A and B

Case 1: if your field A and B are numeric

df[order(df[,1],df[,2]),] - sorts fields A and B in ascending order
df[order(df[,1],-df[,2]),] - sorts fields A in ascending and B in descending order
priority is given to A.

Case 2: if field A or B is non numeric say factor or character

In our case if B is character and we want to sort in reverse order
df[order(df[,1],-as.numeric(as.factor(df[,2]))),] -> this sorts field A(numerical) in ascending and field B(character) in descending.
priority is given to A.

The idea is that you can apply -sign in order function ony on numericals. So for sorting character strings in descending order you have to coerce them to numericals.

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rum[order(rum$T1, -rum$T2 ), ]
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1  
clarify answer with explanation – IanO.S. Jan 24 '13 at 12:16
1  
This does not always work. If T2 is a date vector it will give the error: Error in -.Date(rum$T2) : unary - is not defined for Date objects. This doesn't apply to the specific example provided but as general advice it's good to know. – tjnel Apr 25 '13 at 1:13
    library(dplyr)
    library(tidyr)
    #supposing you want to arrange column 'c' in descending order and 'd' in ascending order. name of data frame is df
    ## first doing descending
    df<-arrange(df,desc(c))
    ## then the ascending order of col 'd;
    df <-arrange(df,d)
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In @dudusan's example, you could also reverse the order of I1, and then sort ascending:

> rum <- read.table(textConnection("P1  P2  P3  T1  T2  T3  I1  I2
+   2   3   5   52  43  61  6   b
+   6   4   3   72  NA  59  1   a
+   1   5   6   55  48  60  6   f
+   2   4   4   65  64  58  2   b
+   1   5   6   55  48  60  6   c"), header = TRUE)
> f=factor(rum$I1)   
> levels(f) <- sort(levels(f), decreasing = TRUE)
> rum[order(as.character(f), rum$I2), ]
  P1 P2 P3 T1 T2 T3 I1 I2
1  2  3  5 52 43 61  6  b
5  1  5  6 55 48 60  6  c
3  1  5  6 55 48 60  6  f
4  2  4  4 65 64 58  2  b
2  6  4  3 72 NA 59  1  a
> 

This seems a bit shorter, you don't reverse the order of I2 twice.

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Simple one without rank :

rum[order(rum$I1, -rum$I2, decreasing = TRUE), ]
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