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I'm asking this as a general/beginner question about R, not specific to the package I was using.

I have a dataframe with 3 million rows and 15 columns. I don't consider this a huge dataframe, but maybe I'm wrong.

I was running the following script and it's been running for 2+ hours - I imagine there must be something I can do to speed this up.

Code:

ddply(orders, .(ClientID), NumOrders=len(OrderID))

This is not an overly intensive script, or again, I don't think it is.

In a database, you could add an index to a table to increase join speed. Is there a similar action in R I should be doing on import to make functions/packages run faster?

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4  
See the data.table package. –  Joshua Ulrich Jun 6 '12 at 0:28
    
@JoshuaUlrich data.table instead of dataframe? Are they truly interchangeable? Thanks –  mikebmassey Jun 6 '12 at 0:32
    
Came in to suggest data.table too. This op will be significantly faster and you can run the same bit of code once you convert your data.frame to data.table. orders <- data.table(orders). That simple. –  Maiasaura Jun 6 '12 at 0:32
3  
Just to explain, plyr is extremely popular due to its oh-so-sweet syntactic sugar, but it is slow for large data sets, particularly when the number of groups in your splitting variable is large. Spend some time learning data.table; the syntax isn't as nice (IMHO) but it will often be many orders of magnitude faster. –  joran Jun 6 '12 at 0:36
1  
It sounds like table(orders$ClientID) might get you want you want too. –  Dason Jun 6 '12 at 0:56

3 Answers 3

up vote 2 down vote accepted

With the suggested data.table package, the following operation should do the job within a second:

orders[,list(NumOrders=length(OrderID)),by=ClientID]
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Looks to me that you might want:

orders$NumOrders <- with( orders( ave(OrderID  , ClientID) , FUN=length) )

(I'm not aware that len() function exists.)

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It seems like all your code is doing is this:

orders[order(orders$ClientID), ]

That would be faster.

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