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I have the following question:

I have data frame which looks like this. I have prices, 3 X's and 2 R's.

Date    Name  Price  Interest
01.02.10 X  120     0.2
01.02.10 R  120     0.3
01.02.10 X  130     0.8
01.02.10 X  140     0.4
01.02.10 R  130     0.2
etc.

I would like to tell R to look for pairs of X&Rs with the same price, and delete the rest. So this should result: 2 X's and 2'Rs (in this case).

Date    Name  Price  Interest
01.02.10 X  120     0.2
01.02.10 R  120     0.3
01.02.10 X  130     0.8
01.02.10 R  130     0.2
etc.

To make it clearer (hopefully): I have a lot of different prices for each date. Each row either has an X or an R in it. There are a lot of pairs on each date, i.e. for example X, Price = 120 & R, Price = 120 on Date 1. But there are also Prices which only match one Name, for example there is a Price = 140 only for Name = X. So what i would like R to do is: check for machting Names for one Price (i.e. there exists the same Price for one X and one R) and delete the rest. What actually would result is the same number of X's and R's because I'm looking for pairs.

I'm sorry not to be able to post something I tried. I just couldn't think of anything.

Now, to the next problem: If the pairs are there, I would like to tell R to check each line. If the Name is X, I want it to calculate a new price, if not just print the existing price. I tried

xx <- if(Name == "X"){Price + 100*interest} else print{Price}

but it didn't work.

Thanks for help

Cheers Dani

share|improve this question
    
You need to explain the logic of the first part better. "Look for pairs of Name and Price" doesn't make any sense to me. For the second part, you can use ifelse() instead of if() ... else, since the former is vectorized. –  Shane Dec 8 '10 at 14:33
    
Ok thanks. I would like to look for matches for Prices and Names. So I have a lot of dates in my data frame, which either have the Name X or R. For each date, i also have price observations. Now, for each date, there should be exactly on pair of X&R for one price, e.g. Date 1, x , price = 120 and Date 1, r, price = 120. There are other observations that do not have a match, i.e. for example Date 1, x, price = 140 while there is NO Date 1, r, price = 140. I would like to tell R to check for matches (i.e X&R with same price on each date) and delete the rest. Is that clearer now? Thanks Shane –  Dani Dec 8 '10 at 14:53
    
That makes it a merge problem. You merge on Date and Name and then compare (test for equality) x.Price and y.Price. –  BondedDust Dec 8 '10 at 15:18
    
@DWin; good point, if a bit cryptic. Took me a while to see how that could work. I've edited my answer showing step by step how this could be done. –  Gavin Simpson Dec 8 '10 at 16:24
    
if you are happy with an answer, mark it as accepted (the big tick underneath the "0"). This serves two purposes; i) others who come across you Q can see that it was successfully solved, and ii) accepting answers gives rep to the person providing the answer. As their rep grows the person can do more to help manage the community. –  Gavin Simpson Dec 10 '10 at 11:45

1 Answer 1

up vote 0 down vote accepted

Edit: @Dwin's comment to the Q was a bit cryptic, and seeing as my first attempt at part 1 of the Q was not correct due to the unclear Q, I'll try to redeem myself with a go at expanding on DWin's comment:

[Assuming dat contains the data you quote in the Q.] First, merge dat with itself:

> foo <- merge(dat[, -4], dat, by.x = "Date", by.y = "Date")
> head(foo)
      Date Name.x Price.x Name.y Price.y Interest
1 01.02.10      X     120      X     120      0.2
2 01.02.10      X     120      R     120      0.2
3 01.02.10      X     120      X     130      0.2
4 01.02.10      X     120      X     140      0.2
5 01.02.10      X     120      R     130      0.2
6 01.02.10      R     120      X     120      0.2

Next, get out the rows where Price.x == Price.y and where Name.x != Name.y

> (foo <- foo[with(foo, which(Price.x == Price.y & Name.x != Name.y)),])
       Date Name.x Price.x Name.y Price.y Interest
2  01.02.10      X     120      R     120      0.2
6  01.02.10      R     120      X     120      0.2
15 01.02.10      X     130      R     130      0.2
23 01.02.10      R     130      X     130      0.2

Then, get rid of the superfluous columns:

> (foo <- foo[, -(4:5)])
       Date Name.x Price.x Interest
2  01.02.10      X     120      0.2
6  01.02.10      R     120      0.2
15 01.02.10      X     130      0.2
23 01.02.10      R     130      0.2

And finally, fix-up the column names:

> names(foo) <- names(dat)
> foo
       Date Name Price Interest
2  01.02.10    X   120      0.2
6  01.02.10    R   120      0.2
15 01.02.10    X   130      0.2
23 01.02.10    R   130      0.2

The second thing can be done using ifelse

with(dat, ifelse(Name == "X", Price + 100*Interest, Price))

Which gives something this

> with(dat, ifelse(Name == "X", Price + 100*Interest, Price))
[1] 140 120 150 160 130

The reason that the if() doesn't work, is that if() only take a scalar logical (a single TRUE or FALSE), yet Name == "X" returns a logical vector:

> with(dat, Name == "X")
[1]  TRUE FALSE  TRUE  TRUE FALSE

In these cases, ifelse() is your friend.

share|improve this answer
    
Hey Gavin! Thanks for the answer. The second part works perfectly. I'm sorry for the bad description of the first part. I accidently took a subset of my dataframe where the interest is actually equal. However, it does change and is not constant. I tried unique but actually nothing happens. I edited my first post to make the first part clearer. Cheers Dani –  Dani Dec 8 '10 at 15:17
    
Gavin, thank you very much for the explanation. –  Dani Dec 10 '10 at 11:13

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