1

I am trying to write a recursive function in Mathematica whose argument is a list. If the list is of length 1, it returns a value. If not, the function breaks it down into several smaller lists according to some rules and the function is then evaluated on those lists. Here is my code :

f[u_] :=
 (Print["u : ", u];
  If[Length[u] == 1, 
   Subscript[T, u[[1]]] - Subscript[\[Lambda], 1]^u[[1]],
   v = SetPartitions[Length[u]];
   aux[v_] := Sum[u[[v[[i]]]], {i, 1, Length[v]}];
   res = Map[aux, v, {2}];
   res = Drop[res, -1];
   Print[res];
   Product[Subscript[T, u[[i]]], {i, 1, Length[u]}] - 
    Sum[f[res[[i]]], {i, 1, Length[res]}]]
  )

It works fine for

f[{1, 2}]

or

f[{3}]

but it does not work anymore when the list is of length 3 or more, like for example

f[{1,1,2}].

Here is the error message I get :

f[{1, 1, 2}]

u : {1,1,2}
{{4},{1,3},{2,2},{3,1}}
u : {4}
u : {1,3}
{{4}}
u : {4}

Part::partw: Part 3 of {{4}} does not exist. >>

u : {{4}}[[3]]
{{{{7}}}}
u : {{{7}}}

Part::partw: Part 4 of {{{{7}}}} does not exist. >>

u : {{{{7}}}}[[4]]
{{{{{{11}}}}}}
u : {{{{{11}}}}}

Does anyone have an idea what to do ? I guess it has something to do with the variables res being overwritten, but I don't know how to get round the problem....

Thank you !

0

You are correct, res is being overwritten. The solution is to localise res to each call of function f using a module like so:

f[u_] := Module[{res},
  Print["u : ", u];
  If[Length[u] == 1, 
   Subscript[T, u[[1]]] - Subscript[\[Lambda], 1]^u[[1]], 
   v = SetPartitions[Length[u]];
   aux[v_] := Sum[u[[v[[i]]]], {i, 1, Length[v]}];
   res = Map[aux, v, {2}];
   res = Drop[res, -1];
   Print[res];
   Product[Subscript[T, u[[i]]], {i, 1, Length[u]}] - 
    Sum[f[res[[i]]], {i, 1, Length[res]}]]]
  • Thank you, I didn't know about modules ! I've also found an alternative way of getting round the problem by removing the loop Sum[f[res[[i]]], {i, 1, Length[res]}] and simply replacing it by Total[Map[f, res]]. Thanks again for your suggestion though, it will be useful to me sometime ! – user5082172 Jul 5 '15 at 15:47

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.