Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Say I have a list:

thelist=list(first=data.frame(Year=1:10,Time=rnorm(10)),second=data.frame(Year=1:10,Time=rnorm(10)),third=data.frame(Year=1:10,Time=rnorm(10)))

I then want to add a column to each list element, where the names for that column differ.

Test=mapply(function(x,y) {

     x$y=x$Time+0.5

     x=x[complete.cases(x[,3]),][,c(1,3)]      
                           }, 
     x=thelist,y=c("Add1","Add2","Add3") 

        )

And the answer is

Test
     first      second     third     
Year Integer,10 Integer,10 Integer,10
y    Numeric,10 Numeric,10 Numeric,10

It is not what I expect. I would like the answer to be:

Test[1:2]

$first
   Year  Time  Add1 
1     1 -0.27  Some values...
2     2  0.76
3     3  1.53
4     4  1.00
5     5 -0.25
6     6  0.64
7     7 -0.38
8     8  1.52
9     9 -1.18
10   10 -0.97

$second
   Year   Time  Add2
1     1  0.330  Some values...
2     2  0.075
3     3  1.357
4     4 -1.393
5     5 -0.382
6     6 -0.016
7     7  0.604
8     8 -0.721
9     9  0.665
10   10 -1.115

Update:

If I use SIMPLIFY=FALSE

Test=mapply(function(x,y) {

  x$y=x$Time+0.5

  x=x[complete.cases(x[,3]),][,c(1,3)]      
}, 
            x=thelist,y=c("Add1","Add2","Add3"),SIMPLIFY=FALSE 

)

Test[1:2]
$first
   Year     y
1     1  0.23
2     2  1.26
3     3  2.03
4     4  1.50
5     5  0.25
6     6  1.14
7     7  0.12
8     8  2.02
9     9 -0.68
10   10 -0.47

$second
   Year     y
1     1  0.83
2     2  0.57
3     3  1.86
4     4 -0.89
5     5  0.12
6     6  0.48
7     7  1.10
8     8 -0.22
9     9  1.16
10   10 -0.62
share|improve this question

3 Answers 3

up vote 0 down vote accepted

try this:

Test <- mapply(function(x,y) {
    x[[y]] <- x$Time + 0.5
    x <- x[complete.cases(x[,3]), c(1,3)]  
  }, 
  thelist, c("Add1","Add2","Add3"), SIMPLIFY = FALSE)
share|improve this answer
    
Great! But why does not x$y work? –  user1665355 Sep 4 '13 at 12:24
    
it works: it defines a new column named "y". What you want is to define a new column with name the value of y. That's why you should use the x[[y]] syntax. –  Karl Forner Sep 4 '13 at 13:10

Use SIMPLIFY = FALSE or replace mapply with Map.

share|improve this answer
    
See my update please. Tried SIMPLIFY=FALSE. But still it does not add that extra column with unique names. –  user1665355 Sep 4 '13 at 12:17

Using lapply:

lapply(seq(thelist), function(i) within(thelist[[i]][complete.cases(thelist[[i]]$Time),], assign(y[i],Time+0.5)))
share|improve this answer
    
thanks! Good answer –  user1665355 Sep 4 '13 at 12:28

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.