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I have a data frame, such as the following:

  name day wages
1  Ann   1   100
2  Ann   1   150
3  Ann   2   200
4  Ann   3   150
5  Bob   1   100
6  Bob   1   200
7  Bob   1   150
8  Bob   2   100

For every unique name/day pair, I would like to calculate a range of totals, such as 'number of times wages was greater than 175 on current or next day for this person'. There are many more columns than wages and there are four time-slices to be applied to each total for each row.

I can currently accomplish by unique'ing my data frame:

df.unique <- df[!duplicated(df[,c('name','day')]),]

And then for every row in df.unique, applying the following function (written longhand for clarity) to df:

for(i in 1:nrow(df.unique)) {
    df.unique[i,"wages_gt_175_day_and_next"] <- wages_gt_for_person_today_or_next(df,175,df.unique[i,"day"],df.unique[i,"name"])
}

wages_gt_for_person_today_or_next <- function(df,amount,day,person) {
  temp <- df[df$name==person,]
  temp <- temp[temp$day==day|temp$day==day+1,]
  temp <- temp[temp$wages > amount,]
  return(nrow(temp))
}

Giving me, in this trivial example:

name day wages_gt_175_day_and_next
Ann   1   1
Ann   2   1
Ann   3   0
Bob   1   1
Bob   2   0

However, this seems an extremely slow approach, given that I have hundreds of thousands of rows. Is there a cleverer way of doing this? Something with matrix operations, apply, sqldf, anything like that?

Code to recreate example df:

structure(list(name = structure(c(1L, 1L, 1L, 1L, 2L, 2L, 2L, 
2L), .Label = c("Ann", "Bob"), class = "factor"), day = c(1, 
1, 2, 3, 1, 1, 1, 2), wages = c(100, 150, 200, 150, 100, 200, 
150, 100)), .Names = c("name", "day", "wages"), row.names = c(NA, 
-8L), class = "data.frame")
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1 Answer 1

up vote 3 down vote accepted

Going simply from your example output, here's something a bit fancier using data.table:

require(data.table)
DT <- data.table(df)
setkey(DT,name,day)

DT[,list(gt175 = sum(wages >= 175)),list(name,day)][,list(day = day,gt175 = as.integer(gt175 + c(tail(gt175,-1),0) > 0)),list(name)]

This is a little convoluted, but should be fast.

share|improve this answer
    
Thanks joran, it's really fast –  Ina Apr 18 '12 at 14:40

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