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I'm wondering if this is a bug.

I have the following piece of code:

h2 <- hist(c(rep(65, times=5), rep(25, times=5), rep(35, times=10), rep(45, times=4)))
model2 = nls(formula = log(counts[1:5]) ~a+log(mids[1:5])*gamma, start=list(gamma=-3,a=10),data=h2)

it breaks with the error:

Error in parse(text = x) : <text>:2:0: unexpected end of input
1: ~
  ^

But if I do:

h2 <- hist(c(rep(65, times=5), rep(25, times=5), rep(35, times=10), rep(45, times=4)))
model2 = nls(formula = log(counts[1:5]) ~a+log(breaks[1:5])*gamma, start=list(gamma=-3,a=10),data=h2)

it doesn't give the error (it cannot fit this particular data, but can fit the data I really have).

The thing is, for the work I'm doing, I need the mid of the histogram intervals, not the breaks.

EDIT: After the error, traceback is:

7: parse(text = x)
6: eval(parse(text = x)[[1L]])
5: formula(eval(parse(text = x)[[1L]]))
4: formula.character(object, env = baseenv())
3: formula(object, env = baseenv())
2: as.formula(paste("~", paste(varNames[varIndex], collapse = "+")), 
       env = environment(formula))
1: nls(formula = log(counts[1:5]) ~ a + log(mids[1:5]) * gamma, 
       start = list(gamma = -3, a = 10), data = h2)
share|improve this question
    
You sometimes use h and sometimes use h2 in your code. Can you please clean that up so it makes sense...? –  joran Jan 16 '13 at 18:56
    
@joran It's done now. I was using this from my code, thanks. The problem remains the same. –  jbssm Jan 16 '13 at 19:00
    
What does traceback provide as output just after your error? In addition, I very much doubt this is a bug in R. hist is used daily by thousands of people, more likely you made a mistake yourself. –  Paul Hiemstra Jan 16 '13 at 19:00
    
@PaulHiemstra I added the traceback now (I think it's this you asked, if not please let me know). I believe thousands of people use the his function everyday... I'm quite sceptic about how small is fraction that uses the kind of data I'm trying to get from it tough. –  jbssm Jan 16 '13 at 19:21
1  
Yeah, as I suspected, I think the problem is that your "formula" is really a horrible, horrible abuse of formulas. Put the data you want in a separate data frame and use a real formula without all that crazy evaluation and subsetting. –  joran Jan 16 '13 at 19:28

1 Answer 1

up vote 2 down vote accepted

As I suspected:

d <- data.frame(counts = h2$counts[1:5],mids = h2$mids[1:5])
model2 = nls(formula = log(counts) ~a+log(mids)*gamma, start=list(gamma=-3,a=10),data=d)

runs without the formula parsing error (but of course still won't fit this small ill-formed data set).

share|improve this answer
    
Thanks I did something similar after your comment and this works. The parser R uses is quite picky though. –  jbssm Jan 16 '13 at 19:44
1  
@jbssm "The parser R uses is quite picky though." I see no evidence for that claim. –  joran Jan 16 '13 at 19:45
    
@jbssm any formal language is "picky"... –  Paul Hiemstra Jan 16 '13 at 21:20
    
@joran Well, you just saw it here. 1st it picks one set of values (h2$counts and h2$breaks) but it decided it doesn't like h2$mids, 2nd it receives a set of data from a data.frame perfectly identified and cannot figure out what it is. I would call that picky... or worst, inconsistent. –  jbssm Jan 16 '13 at 22:33
    
@joran Not really, cause if you try the example with: model2 = nls(formula = log(counts[1:5]) ~a+log(mids[1:5])*gamma, start=list(gamma=-3,a=10),data=h2) it still breaks with the same error, even not including the $ you talk about and without any reason to think h2 is the name of the variable in my formula, and that doesn't make sense since I'm clearly specifying the dataset and the values it should use. It's inconsistent. –  jbssm Jan 16 '13 at 23:26

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