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I have n number of lists, lets say list1, list2, ..., listn. Each list has 10 elements and I need to calculate the "mean" of "dim" of ten elements of each list. So the output should be a vector of length n.

For example the first element of the output vector should be:

n1 = mean(dim(list1[[1]]), dim(list1[[2]]), dim(list1[[3]]), ..., dim(list1[[10]]) 

I know how to obtain it using for-loops but I am sure it is not the best solution.

The lists have structure derived from one of "Bioconductor" R packages called "edgeR". So each element of the list has this structure:

 $ :Formal class 'TopTags' [package "edgeR"] with 1 slots
  .. ..@ .Data:List of 4
  .. .. ..$ :'data.frame':      2608 obs. of  4 variables:
  .. .. .. ..$ logFC : num [1:2608] 6.37 -6.48 -5.72 -5.6 -4.01 ...
  .. .. .. ..$ logCPM: num [1:2608] 5.1 2.55 2.08 1.57 3.08 ...
  .. .. .. ..$ PValue: num [1:2608] 3.16e-292 1.57e-187 2.15e-152 5.58e-141 1.27e-135 ...
  .. .. .. ..$ FDR   : num [1:2608] 7.37e-288 1.83e-183 1.67e-148 3.25e-137 5.92e-132 ...
  .. .. ..$ : chr "BH"
  .. .. ..$ : chr [1:2] "healthy" "cancerous"
  .. .. ..$ : chr "exact"

And since each list has 10 elements, I have 10 repeats of above structure when running:

str(list1)
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Can you share the structure of list1 (str(list1)) –  Simon O'Hanlon Aug 15 '13 at 14:01
    
How do you suppose to use a for loop to iterate over variables list1..list10? –  sds Aug 15 '13 at 14:15
    
@SimonO101 I added the edits above –  hora Aug 15 '13 at 14:17
    
@SimonO101 Thanks alot. One more question then I wouldnt ask anything regarding sapply any more. How about if I wanted to calculate the mean of dim of corresponding elements from "list*"s. like this: n1 = mean(dim(list1[[1]], list2[[1]], list3[[1]], ...,listn[[1]])) and then n10 = mean(dim(list1[[10]], list2[[10]], ..., listn[[10]])) –  hora Aug 15 '13 at 16:32
    
@hora I am not sure I understand. Can you include adput of your data structure –  Simon O'Hanlon Aug 15 '13 at 16:47

3 Answers 3

up vote 2 down vote accepted

If all your objects are called "list*" and you have no other objects with the names list in them, you can easily stick all the lists into a single list object which will make it easier to operate on them...

ll <- mget( ls( pattern = "list" ) )
sapply( ll , function(x) mean( sapply( x , dim ) )
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Original question

lapply (or sapply) is your friend:

mean(sapply(mylist,dim))

If you have many lists with a uniform meaning and structure, you should use instead a list of lists (i.e., mylist[[3]] instead of mylist3).

Edited question

sapply(mylist, function(x) mean(sapply(x,dim)))

will return a vector of means of inner lists.

Question in a comment

If your list contains matrices instead of vectors and you want to average one of the dimensions (dim(.)[1] or dim(.)[2]), you can use ncol and nrow for that instead of dim.

Alternatively, you can pass any function there, e.g.,

sapply(mylist, function(x) mean(sapply(x, function(y) sum(dim(y)))))

to average the sums of dimensions.

share|improve this answer
    
Yes but I have n lists. Should I use "for" loop again for repeating the above command for all of them? –  hora Aug 15 '13 at 14:10
    
Yes, But I have lists of lists. So I already have: list3[[1]], list3[[2]], ..., list3[[10]]. And then I have n lists of type list3 –  hora Aug 15 '13 at 14:19
    
okay, use nested sapply (see edit) –  sds Aug 15 '13 at 14:21
2  
use function(x) dim(x)[1] instead of dim in sapply –  sds Aug 15 '13 at 14:25
1  
the word list is just a name for your variable, I think I was not very consistent there - fixed –  sds Aug 15 '13 at 15:14

Here is the solution using Map function where mylist is the list of yours:

Map(function(x) mean(x[[1]]:x[[10]]), mylist)

Example:

a<-list(1,2,3,4)
b<-list(2,3,5,6)
mylist<-list(a,b)



k<- Map(function(x) mean(x[[1]]:x[[4]]), mylist)
>k
[[1]]
[1] 2.5

[[2]]
[1] 4

To convert to vector:

> do.call(rbind,k)
     [,1]
[1,]  2.5
[2,]  4.0

OR,

library(plyr)
ldply(k)
   V1
1 2.5
2 4.0

If the elements of each list are matrix:

Map(function(x) mean(dim(x[[1]])[1]:dim(x[[10]])[1]), mylist)
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