118

Here is my R code. The functions are defined as:

f <- function(x, T) {
  10 * sin(0.3 * x) * sin(1.3 * x ^ 2) + 0.001 * x ^ 3 + 0.2 * x + 80
}

g <- function(x, T, f=f) {
  exp(-f(x) / T)
}

test <- function(g=g, T=1) { 
  g(1, T)
}

The running error is:

> test()
Error in test() :
promise already under evaluation: recursive default argument reference or earlier problems?

If I substitute the definition of f in that of g, then the error goes away.

I was wondering what the error was? How to correct it if don't substitute the definition of f in that of g? Thanks!


Update:

Thanks! Two questions:

(1) if function test further takes an argument for f, will you add something like test <- function(g.=g, T=1, f..=f){ g.(1,T, f.=f..) } ? In cases with more recursions, is it a good and safe practice adding more .?

(2) if f is a non-function argument, for example g <- function(x, T, f=f){ exp(-f*x/T) } and test <- function(g.=g, T=1, f=f){ g.(1,T, f=f.) }, will using the same name for both formal and actual non-functional arguments a good and safe practice or it may cause some potential trouble?

128

Formal arguments of the form x=x cause this. Eliminating the two instances where they occur we get:

f <- function(x, T) {
   10 * sin(0.3 * x) * sin(1.3 * x^2) + 0.001 * x^3 + 0.2 * x + 80 
}

g <- function(x, T, f. = f) {  ## 1. note f.
   exp(-f.(x)/T) 
}

test<- function(g. = g, T = 1) {  ## 2. note g.
   g.(1,T) 
}

test()
## [1] 8.560335e-37
  • 2
    Thanks! Two questions (1) if function test further takes an argument for f, will you add something like test<- function(g.=g, T=1, f..=f){ g.(1,T, f.=f..) }? In cases with more recursions, is it a good and safe practice adding more .? (2) if f is a non-function argument, for example g <- function(x, T, f=f){ exp(-fx/T) }* and test<- function(g.=g, T=1, f=f){ g.(1,T, f=f.) }, will using the same name for both formal and actual non-functional arguments a good and safe practice or it may cause some potential trouble? – Tim Dec 8 '10 at 17:53
  • 12
    Any other solutions? I'm passing some arguments quite deep down the chain of functions (about 5 levels), and this solution can become .....cumbersome. :) – Roman Luštrik Feb 9 '12 at 13:59
  • What if I cannot change the name of an argument, e.g., when the function in question is a system function like get? – sds Jun 25 '13 at 13:27
  • @#sds, The discussion here relates to defining default arguments in function definitions. If you are not defining a function but simply using existing functions then its all irrelevant. – G. Grothendieck Jun 25 '13 at 13:35
  • @RomanLuštrik If you are passing the arguments down and you can safely ignore some of them, then look into using ellipses ... or a list to pass the arguments down the function chain. It is a lot more flexible (for good and ill) than pre-defining everything. You might just end up needing to add some checks to make sure your original arguments in the ellipses (or list) are sensible. – russellpierce Aug 25 '15 at 15:45
0

The same problem, the name of default value, in a simpler function:

f1=function(df1,tr=tr){
  print(tail(tr))
}
df1=data.frame()
f1(df1)
Error in tail(tr) : 
  promise already under evaluation: recursive default argument reference or earlier problems? 

One solution is simply assign tr explicitly:

 f1(df1,tr)
      nu_pregao cd_papel true_range pc_true_range     mdTr13      sdTr13     mdTr21      sdTr21
70315      1781    AGRO3       0.25         0.019 0.01492308 0.005880215 0.01628571 0.006709269
70316      1781    AELP3       0.47         0.157 0.04223077 0.041219239 0.06061905 0.055112137
70317      1781    ADHM3       0.05         0.026 0.03469231 0.014912996 0.02976190 0.014542712
70318      1781    ABEV3       0.52         0.022 0.02176923 0.006610016 0.02204762 0.008639885
70319      1781    ABCB4       0.69         0.037 0.02838462 0.010444604 0.02585714 0.009456668
70320      1781    AALR3       0.71         0.042 0.02700000 0.010885771 0.02466667 0.010184956

Other solution is simply change parameter name:

f2=function(df1,tr1=tr){
  print(tail(tr1))
}
f2(df1)
      nu_pregao cd_papel true_range pc_true_range     mdTr13      sdTr13     mdTr21      sdTr21
70315      1781    AGRO3       0.25         0.019 0.01492308 0.005880215 0.01628571 0.006709269
70316      1781    AELP3       0.47         0.157 0.04223077 0.041219239 0.06061905 0.055112137
70317      1781    ADHM3       0.05         0.026 0.03469231 0.014912996 0.02976190 0.014542712
70318      1781    ABEV3       0.52         0.022 0.02176923 0.006610016 0.02204762 0.008639885
70319      1781    ABCB4       0.69         0.037 0.02838462 0.010444604 0.02585714 0.009456668
70320      1781    AALR3       0.71         0.042 0.02700000 0.010885771 0.02466667 0.010184956

Why does not R allow the same name for the default value?

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