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For my theory of computing languages class, we got a homework assignment to implement a piece of code in a language that only has while statements for flow control (no if statements). This is mainly to prove that you can write a Turing-complete language with only a while loop.

For those of you who can understand language grammars, here are the language rules:

S -> S;S | while C do S od | id := E

E -> E + T | T | E - T

T -> T * F | F | F / T

F -> id | cons | (E)

C -> E = E | E > E | E < E | E >= E | E <= E | E != E | C and C | C or C | not(C)

This is copied from my class notes, so don't blame me if something is missing or incorrect!

The piece of code to implement is this:

if d = 0 do
    x := 1
else
    x := a / d

At any rate, if you want to go ahead and write that using the language rules above, go ahead. Otherwise, go ahead and write it in whatever language you're most comfortable in. But there are a few caveats!

  • No if statements or any other kind of flow control other than while loops.
  • No cheating: the grammar above doesn't include any break statements, return statements, or exceptions. Don't use them.

I've got my piece of code written for this (which I'll post just to prove this isn't a show me teh codez post). I'm kinda curious what anyone else can come up with though.

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+1 for taking extra effort to get more feedback on top of solving the Homework. –  Mostlyharmless Feb 3 '09 at 14:41

5 Answers 5

up vote 9 down vote accepted

Here's my code:

continue := True
while d = 0 and continue do
    x := 1
    continue := False
od
while d != 0 and continue do
    x := a/d
    continue := False
od
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1  
Yes, I think the key is a getOutOfJail variable to short circuit the while loop. My VB.NET, C#, Perl, PHP, Java, Javascript. ECMAScript samples would follow this pattern. –  jrcs3 Feb 3 '09 at 14:44
    
This doesn't give you the "else" effect. What if 'd' had been set to a non-zero number in the first while-loop. If that had happened, then you would have had both the IF path and the ELSE path run. –  BobbyShaftoe Feb 3 '09 at 14:47
    
The else would be while(getOutOfJail) ... (no other condition) after the other while statements. –  jrcs3 Feb 3 '09 at 15:01
    
@BobbyShaftoe - That's the purpose of the continue variable. If d had been set to non-zero, then continue would be false and the second loop wouldn't run. –  Jason Baker Feb 3 '09 at 15:01
    
@Jason Baker, you got the explanation backwards I think, but the code is right... –  Brian Postow Feb 3 '09 at 15:18

It can be done with a single while loop, but it is not that clear:

while d == 0 do
  d := 1;
  a := 1
od
x := a / d;

Explanation, if d = 0, then d will be 1, also a will be 1. This ends the loop.

Now x is set to a / d which is fine, because if d was 0, a / d evaluates to 1.

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This changes the values of d and a which may have bad side effects. You can fix this with: d1 := d; a1 := a; at the beginning and d :=d1; a := a1; at the end. –  Brian Postow Feb 3 '09 at 15:16

Would this work?

td := d
x := 1

while td != 0 do
    x := a / d
    td := 0
od
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Yes, I believe it would, +1. –  paxdiablo Mar 5 '09 at 3:05

To be Turing Complete, you need to support both selection and iteration. While loops obviously iterate. Selection can be accomplished by making it go through the loop once if the condition is true, and not at all otherwise.

So worst case you can do everything you need to by applying those techniques. I'd imagine some complicated control flows would get ugly fast though. :-)

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Without using details of the true or false branches, and without repeating the predicate:

statementIncomplete := True
while d = 0 and statementIncomplete do
    x := 1
    statementIncomplete := False
od
while statementIncomplete do
    x := a/d
    statementIncomplete := False
od
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