Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have to sort a datapool with following structure into subgroups based on the value of 3 columns in R, but I cannot figure it out.

What I want to do is:

  1. First, sort the datapool based on the column V1, the datapool should be divided into three subgroups according to the value of V1 (the value of V1 should be sorted by descending at first).
  2. Sort each of the 3 subgroups into another 3 subgroups according to the value of V2, now we should have 9 subgroups.
  3. Similarly, subdivide each of the 9 groups into 3 groups again,and resulting in 27 subgroups all together.

the following data is only a simple example, the data have 1545 firms.

 Firm  value V1   V2    V3
1       7    7   11    8
2       9    9   11    7
3       8   14    8   10
4       9    9    7   14
5       8   11   15   14
6       9   10    9    7
7       8    8    6   14
8       4    8   11   14
9       8   10   13   10
10      2   11    6   13
11      3    5   12   14
12      5   12   15   12
13      1    9   13    7
14      4    5   14    7
15      5   10    5    9
16      5    8   13   14
17      2   10   10    7
18      5   12   12    9
19      7    6   11    7
20      6    9   14   14
21      6   14    9   14
22      8    6    6    7
23      9   11    9    5
24      7    7    6    9
25     10    5   15   11
26      4    6   10    9
27      4   13   14    8

And the result should be:

Firm  value  V1  V2  V3
 5      8    11  15  14
12      5    12  15  12
27      4    13  14   8
21      6    14   9  14
18      5    12  12   9
23      9    11   9   5
10      2    11   6   13
 3      8    14   8   10
 6      9    10   9   7
20      6     9  14  14
 9      8    10  13  10
13      1     9  13   7
 8      4     8  11  14
 2      9     9  11   7
17      2    10  10   7
 4      9     9   7  14
 7      8     8   6  14
15      5    10   5   9
16      5     8  13  14
25      10    5  15  11
14      4     5  14   7
11      3     5  12  14
 1      7     7  11   8
19      7     6  11   7
26      4     6  10   9
24      7     7   6   9
22      8     6   6   7

I have tried for a long time, also searched Google without success. :(

share|improve this question
3  
Downvoting for massive failure to capitalize as well as not formatting data compactly. –  BondedDust Oct 8 '13 at 18:51
    
I'm unable to connect your output to what your description is of what you want to do, but have you had a look at the data.table package? –  Codoremifa Oct 8 '13 at 19:05
    
It seems that you do not have a way of breaking ties. For example, you've got V1s taking value 8 on both the bottom and middle groups, seemingly arbitrarily. –  Frank Oct 8 '13 at 19:18

2 Answers 2

up vote 3 down vote accepted

As @Codoremifa said, data.table can be used here:

require(data.table)
DT <- data.table(dat)

DT[order(V1),G1:=rep(1:3,each=9)]
DT[order(V2),G2:=rep(1:3,each=3),by=G1]
DT[order(V3),G3:=1:3,by='G1,G2']

Now your groups are labeled using the additional columns G1 and G2. To sort, so that it's easier to see the groups, use

setkey(DT,G1,G2,G3)

A couple of the OP's columns are just noise unrelated to the question; to verify that this works by eye, try DT[,list(V1,V2,V3,G1,G2,G3)]

EDIT: The OP did not specify a means of dealing with ties. I guess it makes sense to use the value in the later columns to break ties, so...

DT <- data.table(dat)
DT[order(rank(V1)+rank(V2)/100+rank(V3)/100^2),
    G1:=rep(1:3,each=9)]
DT[order(rank(V2)+rank(V3)/100),
    G2:=rep(1:3,each=3),by=G1]
DT[order(V3),
    G3:=1:3,by='G1,G2']
setkey(DT,G1,G2,G3)

DT[27:1] (the result backwards) is

    Firm value V1 V2 V3 G1 G2 G3
 1:    5     8 11 15 14  3  3  3
 2:   12     5 12 15 12  3  3  2
 3:   27     4 13 14  8  3  3  1
 4:   21     6 14  9 14  3  2  3
 5:    9     8 10 13 10  3  2  2
 6:   18     5 12 12  9  3  2  1
 7:   10     2 11  6 13  3  1  3
 8:    3     8 14  8 10  3  1  2
 9:   23     9 11  9  5  3  1  1
10:   20     6  9 14 14  2  3  3
11:   16     5  8 13 14  2  3  2
12:   13     1  9 13  7  2  3  1
13:    8     4  8 11 14  2  2  3
14:   17     2 10 10  7  2  2  2
15:    2     9  9 11  7  2  2  1
16:    4     9  9  7 14  2  1  3
17:   15     5 10  5  9  2  1  2
18:    6     9 10  9  7  2  1  1
19:   11     3  5 12 14  1  3  3
20:   25    10  5 15 11  1  3  2
21:   14     4  5 14  7  1  3  1
22:   26     4  6 10  9  1  2  3
23:    1     7  7 11  8  1  2  2
24:   19     7  6 11  7  1  2  1
25:    7     8  8  6 14  1  1  3
26:   24     7  7  6  9  1  1  2
27:   22     8  6  6  7  1  1  1
    Firm value V1 V2 V3 G1 G2 G3
share|improve this answer
    
And just type DT to see the full result; and DT[27:1] to see it sorted backwards. –  Frank Oct 8 '13 at 19:08
    
@wesley No problem. rep(c(1,2,3),c(172,171,172)) or something similar should work. Try ?rep for documentation. –  Frank Oct 9 '13 at 17:52
1  
@ Frank I get it now,thank you so much for your nice help!:) –  wesley Oct 9 '13 at 20:10

Here is an answer using transform and then ddply from plyr. I don't address the ties, which really means that in case of a tie the value from the lowest row number is used first. This is what the OP shows in the example output.

First, order the dataset in descending order of V1 and create three groups of 9 by creating a new variable, fv1.

dat1 = transform(dat1[order(-dat1$V1),], fv1 = factor(rep(1:3, each = 9)))

Then order the dataset in descending order of V2 and create three groups of 3 within each level of fv1.

require(plyr)
dat1 = ddply(dat1[order(-dat1$V2),], .(fv1), transform, fv2 = factor(rep(1:3, each = 3)))

Finally order the dataset by the two factors and V3. I use arrange from plyr for typing efficiency compared to order

(finaldat = arrange(dat1, fv1, fv2, -V3) )

This isn't a particularly generalizable answer, as the group sizes are known in advance for the factors. If the V3 group size was larger than one, a similar process as for V2 would be needed.

share|improve this answer
    
thank you for your answer:) –  wesley Oct 9 '13 at 11:19

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.