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Here is how the list looks:

>>>print(pelist)
[[1]]
     Power Type I Error
[1,]     1     0.024339

[[2]]
     Power Type I Error
[1,]   0.8     0.038095

[[3]]
     Power Type I Error
[1,]     1     0.032804

I can do it this way, but it quickly becomes impractical as the size of the list grows:

>>>rbind(pelist[[1]], pelist[[2]], pelist[[3]])
     Power Type I Error
[1,]   1.0     0.024339
[2,]   0.8     0.038095
[3,]   1.0     0.032804
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Does this answer your question? stackoverflow.com/questions/2851327/… –  sashkello Apr 29 '13 at 23:18
1  
Those list elements are actually matrices with column names. –  BondedDust Apr 29 '13 at 23:36

2 Answers 2

The idiomatic approach is to use do.call

do.call(rbind, pelist)
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Given that your list elements have all the same length, you can also use

 test_list=list(matrix(c(1,2),ncol=2,nrow=1),matrix(c(3,4),ncol=2,nrow=1),matrix(c(5,6),ncol=2,nrow=1))

 test_matrix=matrix(unlist(test_list),ncol=2,byrow=TRUE)

I am not sure, but this is probably faster than subsequent rbind calls.

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1  
Both the OP and @mnel are doing a single call to rbind. And it being an .Internal function, you can bet it's not wasting resources. –  flodel Apr 29 '13 at 23:38
    
You are of course right! –  cryo111 Apr 30 '13 at 1:21
    
BTW: You made me curious :) library(rbenchmark); test_list=list(matrix(c(1,2),ncol=2,nrow=1),matrix(c(3,4),ncol=2,nrow=1),matrix(‌​c(5,6),ncol=2,nrow=1)); bind1=function(x) matrix(unlist(x),ncol=2,byrow=TRUE); bind2=function(x) do.call(rbind,x); benchmark(replications=800000, bind1(test_list), bind2(test_list), columns=c("test", "elapsed", "replications")) Same performance ;) –  cryo111 Apr 30 '13 at 1:22

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