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I have a series of objects storing the results of some statistical models in my workspace. Call them "model1", "model2", etc. Each of these models has the same set of named elements attached, $coef, for example. I would like to extract into a list or vector the values stored in a particular element from all objects containing the string "model".

The following code entered at the command line does what I want:

unlist(lapply(parse(text = paste0(ls()[grep("model", ls() )], "$", "coef")), eval))

From this, I've created the following generic function:

get.elements <- function(object, element) {
    unlist(lapply(parse(text = paste0(ls()[grep(object, ls() )], "$", element)), eval))
}

However, when I run this function I get the following error:

Error in parse(text = paste0(ls()[grep(object, ls() )], "$", element)) : 
  <text>:1:1: unexpected '$'
1: $
   ^

Q1. Why does this code work when run from the command line but not as a function, and more importantly, how do I fix it?

Q2. Even better, is there a simpler method that will accomplish the same thing? This seems like such a common task for statisticians and simulation modelers that I would expect some kind of command in the base package, yet I've been unable to find anything. Surely there must be a more elegant way to do this than my cumbersome method.

Thanks for all help.

--Dave

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What arguments are you using to call the function? –  David Robinson Sep 25 '12 at 17:56
5  
You can access the coefficients from a model with the code m[["coefficients"]], so you could just do m[[element]]. Also, keeping multiple models as variables named model1, model2 is a poor choice: you should keep them as a list of models. That way, you can get the coefficients like this: lapply(models, function(m) m[[element]]) –  David Robinson Sep 25 '12 at 18:00

2 Answers 2

Q1) The code fails because ls() looks in the environment of the function and since there are no matching objects there,

paste0(ls()[grep(object, ls() )], "$", element)

is equivalent to

paste0("$", element)

To get ls() to look in your workspace, you'd need ls(pos = 1).

Q2) This is a common task, but as far as know there isn't a function to do this because where the models are, what they are called, what objects you want to extract and how you want them returned will depend on your requirements. A slightly neater version of what you propose above would be

nm <- paste0("model", 1:2) # adjust numbers as required
unlist(lapply(nm, function(x) get(nm)$coef))

Alternatively you could put your models in a list and use

modList <- list(model1, model2)
unlist(lapply(modList, "[[", "coefficients"))
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1  
+1 for suggesting the list and not relying on get. –  Paul Hiemstra Sep 25 '12 at 18:16
    
I believe you can replace unlist(lapply()) by a single call to sapply, i.e. sapply(modList, "[[", "coefficients")). –  Paul Hiemstra Sep 25 '12 at 18:19
    
@PaulHiemstra There is one problem with sapply in this case: If the coefficient names of the first model are not identical to the one of the second, the output (in which only the names of the first model are used) could be misleading. This, of course, is only relevant if all models have the same number of coefficients. If the number of coefficients differs, the output from sapply will be identical to the one of lapply. –  Sven Hohenstein Sep 25 '12 at 18:39
    
@SvenHohenstein point taken, I think using unlist is better. –  Paul Hiemstra Sep 25 '12 at 18:56
    
Thanks! Info about environments and how ls() works inside of functions is especially helpful. –  David Nolin Sep 25 '12 at 21:13

This is a way to obtain the desired output:

get.elements <- function(object, element) {
 unlist(lapply(ls(pattern = object, .GlobalEnv),
        function(x) get(x, .GlobalEnv)[[element, exact = FALSE]]))
}

Both element and object are character strings.

Note that I used the argument exact = FALSE, since the element is named coefficients, not coef. In this way, you can still use element = "coef".

share|improve this answer
    
This seems quite cumbersome in relation to using a list and indexing that, see the answer of @HeatherTurner. –  Paul Hiemstra Sep 25 '12 at 18:17
    
Agreed, but this will only work if the objects are already in a list. –  Sven Hohenstein Sep 25 '12 at 18:21
    
And the OP should do that IMO, not hard to do :) –  Paul Hiemstra Sep 25 '12 at 18:34
3  
People seem to forget that ls has a pattern argument and that grep has a value argument –  GSee Sep 25 '12 at 18:37
    
+1 Great ideas @GSee ! - I updated my answer. Thanks for pointing to these tricks. –  Sven Hohenstein Sep 25 '12 at 18:48

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