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 a dataset that looks like this

year month age
2007 1     17
2007 1     18
2007 1     19
2007 1     30
2007 1     31
2007 2     18
2007 2     19
2007 2     30
2008 2     41
2008 2     52
2008 2     49  
2008 3     23
2008 3     19
2008 3     39

And I'm stuck trying to find quartile group by each year and month.

The results should be like:

2007 1 Q1 Q2 Q3 Q4
2007 2 Q1 Q2 Q3 Q4

etc..

Thanks

share|improve this question
add comment

2 Answers 2

up vote 1 down vote accepted

Your question is a bit confusing. It only takes three cutpoints to separate into quartiles. So what do you really want in those Q1, Q2, Q3,Q4 columns? If you want counts it would seem to be a bit boring. I'm going to assume you want the min, 25th.pctile, median, 75th.pctile, and max:

do.call ( rbind, with( dfrm, tapply(age, interaction(year=year , month=month), quantile, 
                                                           probs=c(0, .25,.5, 0.75, 1) ) ) )
#---------------------
       0%  25% 50%  75% 100%
2007.1 17 18.0  19 30.0   31
2007.2 18 18.5  19 24.5   30
2008.2 41 45.0  49 50.5   52
2008.3 19 21.0  23 31.0   39
share|improve this answer
add comment

Aggregate does this.

> aggregate(.~year + month, data=age, FUN=fivenum)
  year month age.1 age.2 age.3 age.4 age.5
1 2007     1  17.0  18.0  19.0  30.0  31.0
2 2007     2  18.0  18.5  19.0  24.5  30.0
3 2008     2  41.0  45.0  49.0  50.5  52.0
4 2008     3  19.0  21.0  23.0  31.0  39.0


> dput(age)
structure(list(year = c(2007L, 2007L, 2007L, 2007L, 2007L, 2007L, 
2007L, 2007L, 2008L, 2008L, 2008L, 2008L, 2008L, 2008L), month = c(1L, 
1L, 1L, 1L, 1L, 2L, 2L, 2L, 2L, 2L, 2L, 3L, 3L, 3L), age = c(17L, 
18L, 19L, 30L, 31L, 18L, 19L, 30L, 41L, 52L, 49L, 23L, 19L, 39L
)), .Names = c("year", "month", "age"), class = "data.frame", row.names = c(NA, 
-14L))
share|improve this answer
add comment

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.