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I do not use that many functions but when I do I tend to use an anon function and some form of apply . I now however am trying to write a function that works over items in a list.

There are two lists that each have many items (by item I mean e.g. mylist1[1]). All items are dataframes. I want to take the first dataframe from mylist1 and the first dataframe from mylist2 and run a bunch of functions over the columns in those dataframes. Then take the 2nd mylist1 item and the 2nd mylist2 item and so on...

Below is the sort of thing I am used to writing but clearly does not work in this case with two lists. Can anyone help me out with a fast way to figure out how I should approach this using something other than sapply method that seems to be causing the main problem.

a <- c(1:10)
b <- c(1:10)
z <- c(rep("x", 5), rep("y", 5))
df <- data.frame(cbind(a, b, z))
mylist1 <- split(df, z)
mylist2 <- split(df, z)

myfunction <- function(x, y) 
{

    a <- as.data.frame(x[1])
    b <- as.data.frame(y[1])
    meana <- mean(a[1])
    meanb <- mean(b[1])
    model <- lm(a[1]~b[1])
    return(c(model$coefficients[2], meana, meanb))
}

result <- sapply(mylist1, mylist2, myfunction)

I also just thought do people think it would be better to subset by z rather than split and do the function that way?

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Hi. What's the value of n on (e.g.) line 4? –  Josh O'Brien Jun 15 '12 at 13:10
    
sorry n should be z . corrected it. –  user1322296 Jun 15 '12 at 13:12
    
What's the difference between mylist and mylist2? At the moment, you have both as split(df, z). –  Ananda Mahto Jun 15 '12 at 13:23
    
in reality they are lists with the same number of elements but the size of the data frames within are different. different number of columns and rows. I just doubled mylist here for (I thought) simplicity. –  user1322296 Jun 15 '12 at 13:28
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1 Answer 1

up vote 4 down vote accepted

You are describing exactly the use case for mapply.

result <- mapply(myfunction,x=mylist,y=mylist2)

Unfortunately your example doesn't seem to enjoy being passed two data.frames (x, y 's first elements are both data.frames, which x[1] and y[1] would seem to contradict).

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thank you @gsk I had a closer look at mapply and it seems to be the right one. I see the problem now with the x[1] etc. can you suggest an improvement? –  user1322296 Jun 15 '12 at 13:34
    
@user1322296, I see a few other problems that you need to fix. Your data.frame(cbind(... code converts your numeric values to factors. Just use data.frame without cbind. Some lines in your function can also be reduced. For example you can directly use meana <- mean(x[[1]][, 1]) (that is, the first column as a vector from the first item in the list) instead of first creating a. I think also that for your model, you might also need to use the same [[1]][, 1] structure. Can you post what you expect as the result of this example? –  Ananda Mahto Jun 15 '12 at 16:24
    
thank you gsk I played around more and I get something pretty much what I was asking for but changed all my notation. I'll try and get to grips and see if i can improve it more. –  user1322296 Jun 16 '12 at 9:18
1  
@user1322296 To debug *apply functions, I find it simpler to create a test dataset that represents the data from a single iteration. Write your function based on those, then run the apply command. For instance, set x <- mylist[[1]] and y <- mylist2[[1]], and write your myfunction based on those. You'll quickly see where the errors are coming from. The other way do to this is to make the first line of myfunction a call to browser() and then run the mapply command. –  Ari B. Friedman Jun 16 '12 at 12:01
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