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my apologies if this is a duplicate. this seems like a question that SO would've answered long ago, but i did quite a bit of searching and couldn't find anything specifically answering this. there are lots of related questions that could be used to answer this, but i figured it should be answered formally.

this is in response to this question asked on the r-help mailing list.

here are lots of examples of how to do this using sql, so i imagine it's easy to convert that knowledge over using the R sqldf package.. but there are a few ways to do this with R, and i wanted to check if others had ideas.

main question: using the example mtcars data.frame, how would someone find the top or bottom (maximum or minimum) N records within a stated category? the top or bottom N results, per group.

if you open up R and type mtcars you get an example table with 32 records. when grouped by the cylinder column cyl - here are the top three records for each distinct value of cyl. note that ties are excluded in this case, but it'd be nice to show some different ways to treat ties.

                     mpg cyl  disp  hp drat    wt  qsec vs am gear carb ranks
Toyota Corona       21.5   4 120.1  97 3.70 2.465 20.01  1  0    3    1   2.0
Volvo 142E          21.4   4 121.0 109 4.11 2.780 18.60  1  1    4    2   1.0
Valiant             18.1   6 225.0 105 2.76 3.460 20.22  1  0    3    1   2.0
Merc 280            19.2   6 167.6 123 3.92 3.440 18.30  1  0    4    4   3.0
Merc 280C           17.8   6 167.6 123 3.92 3.440 18.90  1  0    4    4   1.0
Cadillac Fleetwood  10.4   8 472.0 205 2.93 5.250 17.98  0  0    3    4   1.5
Lincoln Continental 10.4   8 460.0 215 3.00 5.424 17.82  0  0    3    4   1.5
Camaro Z28          13.3   8 350.0 245 3.73 3.840 15.41  0  0    3    4   3.0
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4 Answers 4

This seems more straightforward using data.table as it performs the sort while setting the key.

So, if I were to get the top 3 records in sort (ascending order), then,

require(data.table)
d <- data.table(mtcars, key="cyl")
d[, head(.SD, 3), by=cyl]

does it.

And if you want the descending order

d[, tail(.SD, 3), by=cyl] # Thanks @MatthewDowle

Edit: To sort out ties using mpg column:

d <- data.table(mtcars, key="cyl")
d.out <- d[, .SD[mpg %in% head(sort(unique(mpg)), 3)], by=cyl]

#     cyl  mpg  disp  hp drat    wt  qsec vs am gear carb rank
#  1:   4 22.8 108.0  93 3.85 2.320 18.61  1  1    4    1   11
#  2:   4 22.8 140.8  95 3.92 3.150 22.90  1  0    4    2    1
#  3:   4 21.5 120.1  97 3.70 2.465 20.01  1  0    3    1    8
#  4:   4 21.4 121.0 109 4.11 2.780 18.60  1  1    4    2    6
#  5:   6 18.1 225.0 105 2.76 3.460 20.22  1  0    3    1    7
#  6:   6 19.2 167.6 123 3.92 3.440 18.30  1  0    4    4    1
#  7:   6 17.8 167.6 123 3.92 3.440 18.90  1  0    4    4    2
#  8:   8 14.3 360.0 245 3.21 3.570 15.84  0  0    3    4    7
#  9:   8 10.4 472.0 205 2.93 5.250 17.98  0  0    3    4   14
# 10:   8 10.4 460.0 215 3.00 5.424 17.82  0  0    3    4    5
# 11:   8 13.3 350.0 245 3.73 3.840 15.41  0  0    3    4    3

# and for last N elements, of course it is straightforward
d.out <- d[, .SD[mpg %in% tail(sort(unique(mpg)), 3)], by=cyl]
share|improve this answer
    
Hi. I'm not following what the head(seq(.I)) inside .SD[...] does. Why not head(.SD,3)? Or d[,.SD[head(order(mpg))],by=cyl]. d's key is one column (cyl), was it intended to include mpg in the key maybe? –  Matt Dowle Feb 10 '13 at 23:07
    
@MatthewDowle, :) the intention was your first suggestion head(.SD, 3). It dint occur to me to do the head straightforward! I'll edit it. –  Arun Feb 10 '13 at 23:18
1  
Ok great, +1. It's rare I find anything to comment about these days! –  Matt Dowle Feb 10 '13 at 23:42

Just sort by whatever (mpg for example, question is not clear on this)

mt <- mtcars[order(mtcars$mpg), ]

then use the by function to get the top n rows in each group

d <- by(mt, mt["cyl"], head, n=4)

If you want the result to be a data.frame:

Reduce(rbind, d)

Edit: Handling ties is more difficult, but if all ties are desired:

by(mt, mt["cyl"], function(x) x[rank(x$mpg) %in% sort(unique(rank(x$mpg)))[1:4], ])

Another approach is to break ties based on some other information, e.g.,

mt <- mtcars[order(mtcars$mpg, mtcars$hp), ]
by(mt, mt["cyl"], head, n=4)
share|improve this answer
    
@Arun Um, what? There is a tie when cyl == 8 too... which the data.table solution seems to ignore. Using by we can retain both matches in both cases with by(mtcars, mtcars["cyl"], function(x) x[rank(x$mpg) < sort(unique(rank(x$mpg)))[4], ]) –  Ista Feb 10 '13 at 18:17
    
+1 for Reduce(rbind, by(...)) –  BondedDust Feb 10 '13 at 18:54
    
Fixed thanks for the suggestion. –  Ista Feb 10 '13 at 18:57
    
Couldn't you save steps with x[ x$mpg < sort( x$mpg )[4]? –  BondedDust Feb 10 '13 at 18:59

If there were a tie at the fourth position for mtcars$mpg then this should return all the ties:

top_mpg <- mtcars[ mtcars$mpg >= mtcars$mpg[order(mtcars$mpg, decreasing=TRUE)][4] , ]

> top_mpg
                mpg cyl disp  hp drat    wt  qsec vs am gear carb
Fiat 128       32.4   4 78.7  66 4.08 2.200 19.47  1  1    4    1
Honda Civic    30.4   4 75.7  52 4.93 1.615 18.52  1  1    4    2
Toyota Corolla 33.9   4 71.1  65 4.22 1.835 19.90  1  1    4    1
Lotus Europa   30.4   4 95.1 113 3.77 1.513 16.90  1  1    5    2

Since there is a tie at the 3-4 position you can test it by changing 4 to a 3, and it still returns 4 items. This is logical indexing and you might need to add a clause that removes the NA's or wrap which() around the logical expression. It's not much more difficult to do this "by" cyl:

 Reduce(rbind,  by(mtcars, mtcars$cyl, 
        function(d) d[ d$mpg >= d$mpg[order(d$mpg, decreasing=TRUE)][4] , ]) )
#-------------
                   mpg cyl  disp  hp drat    wt  qsec vs am gear carb
Fiat 128          32.4   4  78.7  66 4.08 2.200 19.47  1  1    4    1
Honda Civic       30.4   4  75.7  52 4.93 1.615 18.52  1  1    4    2
Toyota Corolla    33.9   4  71.1  65 4.22 1.835 19.90  1  1    4    1
Lotus Europa      30.4   4  95.1 113 3.77 1.513 16.90  1  1    5    2
Mazda RX4         21.0   6 160.0 110 3.90 2.620 16.46  0  1    4    4
Mazda RX4 Wag     21.0   6 160.0 110 3.90 2.875 17.02  0  1    4    4
Hornet 4 Drive    21.4   6 258.0 110 3.08 3.215 19.44  1  0    3    1
Ferrari Dino      19.7   6 145.0 175 3.62 2.770 15.50  0  1    5    6
Hornet Sportabout 18.7   8 360.0 175 3.15 3.440 17.02  0  0    3    2
Merc 450SE        16.4   8 275.8 180 3.07 4.070 17.40  0  0    3    3
Merc 450SL        17.3   8 275.8 180 3.07 3.730 17.60  0  0    3    3
Pontiac Firebird  19.2   8 400.0 175 3.08 3.845 17.05  0  0    3    2

Incorporating my suggestion to @Ista:

Reduce(rbind,  by(mtcars, mtcars$cyl, function(d) d[ d$mpg <= sort( d$mpg )[3] , ]) )
share|improve this answer
    
Don't know what you mean by not doing it if you don't know before hand. It will return all rows with mpg values at or above the fourth largest value. Again if you picked third largest as a target, you still get 4 items in the four-cylinder class. I thought that was one of Anthony's goals –  BondedDust Feb 10 '13 at 18:47
    
As I understood the tasks requested that was the correct answer for one of them dealing with ties. –  BondedDust Feb 10 '13 at 19:12
    
My code does what you seem to be requesting. –  BondedDust Feb 10 '13 at 21:59
1  
Ah, then we do understand the task differently. You want mtcars$mpg %in% sort( unique(mtcars$mpg))[1:3]. –  BondedDust Feb 10 '13 at 22:29
up vote 0 down vote accepted
# start with the mtcars data frame (included with your installation of R)
mtcars

# pick your 'group by' variable
gbv <- 'cyl'
# IMPORTANT NOTE: you can only include one group by variable here
# ..if you need more, the `order` function below will need
# one per inputted parameter: order( x$cyl , x$am )

# choose whether you want to find the minimum or maximum
find.maximum <- FALSE

# create a simple data frame with only two columns
x <- mtcars

# order it based on 
x <- x[ order( x[ , gbv ] , decreasing = find.maximum ) , ]

# figure out the ranks of each miles-per-gallon, within cyl columns
if ( find.maximum ){
    # note the negative sign (which changes the order of mpg)
    # *and* the `rev` function, which flips the order of the `tapply` result
    x$ranks <- unlist( rev( tapply( -x$mpg , x[ , gbv ] , rank ) ) )
} else {
    x$ranks <- unlist( tapply( x$mpg , x[ , gbv ] , rank ) )
}
# now just subset it based on the rank column
result <- x[ x$ranks <= 3 , ]

# look at your results
result

# done!

# but note only *two* values where cyl == 4 were kept,
# because there was a tie for third smallest, and the `rank` function gave both '3.5'
x[ x$ranks == 3.5 , ]

# ..if you instead wanted to keep all ties, you could change the
# tie-breaking behavior of the `rank` function.
# using the `min` *includes* all ties.  using `max` would *exclude* all ties
if ( find.maximum ){
    # note the negative sign (which changes the order of mpg)
    # *and* the `rev` function, which flips the order of the `tapply` result
    x$ranks <- unlist( rev( tapply( -x$mpg , x[ , gbv ] , rank , ties.method = 'min' ) ) )
} else {
    x$ranks <- unlist( tapply( x$mpg , x[ , gbv ] , rank , ties.method = 'min' ) )
}
# and there are even more options..
# see ?rank for more methods

# now just subset it based on the rank column
result <- x[ x$ranks <= 3 , ]

# look at your results
result
# and notice *both* cyl == 4 and ranks == 3 were included in your results
# because of the tie-breaking behavior chosen.
share|improve this answer
    
@Arun ..there's no other choice? :) ps thanx for your awesome answer –  Anthony Damico Feb 10 '13 at 17:30
    
This is way complicated for such a simple task! –  Ista Feb 10 '13 at 17:40
    
@Arun I down voted because it seems way too complicated, as I complained about in my comment above. Maybe I'm just a bit cranky after spending hours shoveling my driveway... –  Ista Feb 10 '13 at 18:22
    
haha @Ista a little unfair :P i wrote a lot of comments for newbies, but really, it's only three lines of code once you get rid of all the contingencies and notes.. –  Anthony Damico Feb 10 '13 at 18:39
2  
OK, points taken. Sorry for down voting. I don't think there is an undo button for that... –  Ista Feb 10 '13 at 18:48

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