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.

If I have a list of zoo objects, how do I go about referring to particular values by list index([[]]) and date? For example:

require("zoo")
require("tseries")
require("lubridate")

z = zoo(c(1,2,3), as.Date(c("2000/1/1", "2000/2/1", "2000/3/1")))
z1 = zoo(c(1,2,3), as.Date(c("2000/1/1", "2000/2/1", "2000/3/1")))
z2 = zoo(c(10,20,30), as.Date(c("2000/1/1", "2000/2/1", "2000/3/1")))
z3 = zoo(c(100,200,300), as.Date(c("2000/1/1", "2000/2/1", "2000/3/1")))
> l = list(z1,z2,z3)
> l
[[1]]
2000-01-01 2000-02-01 2000-03-01 
         1          2          3 

[[2]]
2000-01-01 2000-02-01 2000-03-01 
        10         20         30 

[[3]]
2000-01-01 2000-02-01 2000-03-01 
       100        200        300 

My goal is to return a value for each row that has the column number of the month from the index. Desired output on above data would be:

1, 20, 300 (can be a zoo object, vector, whatever is easiest to show). I'll coerce it how I need.

The way I've been trying to code it is (among others):

monthNumbs = month(index(l[[1]]))
l[[monthNumbs]][index(l)]

I know this is structurally incorrect; but it's how I'm viewing the data structures. Any help would be great...

share|improve this question
    
I don't understand how do you get 1, 20, 30 , Do you mean 1, 20, 300. can you clarify this? –  agstudy Aug 5 '13 at 22:56
    
Yes! Edited, thx. –  StatsViaCsh Aug 5 '13 at 22:57
    
Does all your zoo objects have the same index? –  agstudy Aug 5 '13 at 23:04
    
@agstudy some are longer by a few... 12 zoos with lengths varying from 155-162. All are monthly; where they overlap, the index values are the same. –  StatsViaCsh Aug 5 '13 at 23:11

1 Answer 1

up vote 3 down vote accepted

If I well understood your question , I think you can do this for example:

## loop through the index of the list
## for each zoo object l[[x]]  you get months index
## and you compare it to current index
unlist(lapply(seq_along(l),
        function(x)l[[x]][month(index(l[[x]]))==x]))
[1]   1  20 300

EDIT Another alternative using xts package:

If all your zoo objects have teh same index, you can merge them to get a matrix structure:

library(xts)
mm <- do.call(merge,lapply(l,as.xts))
           c.1..2..3. c.10..20..30. c.100..200..300.
2000-01-01          1            10              100
2000-02-01          2            20              200
2000-03-01          3            30              300

Then you get the diagonales values like this :

as.matrix(mm)[col(mm)==row(mm)]
share|improve this answer
    
Very cool, thank you. –  StatsViaCsh Aug 5 '13 at 23:24

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.