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I am new to R, and I am often confused by data structures that either don't exist or I don't have a need for in other languages.

At the moment, I am trying to convert an object of type "language" to "expression" so that I can plot it.

First I create the function I want to plot:

> model <- nls(y~a+b*exp(x*z),start = list(a=1, b = -.5, z = -.8),data=results)  
> modelsym <- substitute(a+b*exp(z*x), list(a=coef(model[1],b=coef(model)[2],z=coef(model)[3]))

The function is of type "language":

> modelsym  
0.958945264470923 + -0.463676594301167 * exp(-0.155697065390677 * x)  
> typeof(modelsym)  
[1] "language"

If I try to plot this curve:

> curve(modelsym)  
Error in eval(expr, envir, enclos) : could not find function "modelsym"

However if I copy and paste it works fine:

> curve(0.958945264470923 + -0.463676594301167 * exp(-0.155697065390677 * x))  
**[plot appears here]**

I've tried as(modelsym,expression) to no avail.

How can I convert my object modelsym to an expression in order to plot it?

share|improve this question
    
Can you show exactly how modelsym was created? Just so we are working with exactly the same thing. –  Gavin Simpson Mar 31 '13 at 19:17
    
@GavinSimpson sure, i just edited my original question –  Jeff Mar 31 '13 at 19:20
    
FYI I just figured out a work-around: plot(eval(modelsym),type='line') works, but would still like to know the answer to my original question... –  Jeff Mar 31 '13 at 19:31

2 Answers 2

An alternative plan of attack is to use predict:

model <- nls(y~a+b*exp(x*z),start = list(a=1, b = -.5, z = -.8),data=results)

modelf <- function(x) predict(model, newdata = data.frame(x = x))
plot(modelf)
curve(modelf)
share|improve this answer

This is not a full solution but I have got close with:

do.call(curve, list(expr = modelsym))

which essentially arranges for the call to curve for you with the expr argument set to the content of modelsym.

The reason what you are trying fails is that the first line of curve is

sexpr <- substitute(expr)

which gives this when passed an object containing a statement (well any object, really) results in:

Browse[2]> sexpr
modelsym
Browse[2]> is.call(sexpr)
[1] FALSE
Browse[2]> is.expression(sexpr)
[1] FALSE

and those two tests are what curve uses to see if the input is acceptable.

Whatever you pass curve it needs to be an actual statement and not a call containing one.

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2  
I think that's a bug in curve, since any time you pass in an object to expr, is.name(sexpr) will be true. Also you're using expression in two slightly incompatible ways. Colloquially, an expression a quoted (unevalated) call, but that's not what is.expression tests for (in a similar way to is.vector not testing if an object is a vector) –  hadley Apr 1 '13 at 12:43
1  
+1 for the solution, though I agree with Hadley that talking about expressions here (and especially testing for one with is.expression) is possibly misleading because of its several meanings in this context. (Even the R documentation is occasionally confusing in this regard.) –  Josh O'Brien Apr 1 '13 at 13:17
    
I only showed the output from is.expression as that is what curve uses as a test on the substituted input, but I agree the terminology is confusing. Thanks for your comments, both. –  Gavin Simpson Apr 1 '13 at 13:32
    
@hadley I seem what you mean and have changed the usage to "statement" or "expression object", which I think is more strictly correct? –  Gavin Simpson Apr 1 '13 at 14:47
    
@GavinSimpson -- I think those are good terms to use. R-lang does something similar, saying that, "in particular syntactically correct expressions will be referred to as statements". In the final line of your post, I'd edit "not an expression object ..." to something like "not a symbol containing one as its value" b/c modelsym is not itself an expression object. Instead, it's a symbol whose value is an expression object. Just my 2 cents. –  Josh O'Brien Apr 1 '13 at 15:59

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