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I have written a simple brainfuck interpreter in MATLAB script language. It is fed random bf programs to execute (as part of a genetic algorithm project). The problem I face is, the program turns out to have an infinite loop in a sizeable number of cases, and hence the GA gets stuck at the point.
So, I need a mechanism to detect infinite loops and avoid executing that code in bf.
One obvious (trivial) case is when I have


I can detect this and refuse to run that program.
For the non-trivial cases, I figured out that the basic idea is: to determine how one iteration of the loop changes the current cell. If the change is negative, we're eventually going to reach 0, so it's a finite loop. Otherwise, if the change is non-negative, it's an infinite loop.
Implementing this is easy for the case of a single loop, but with nested loops it becomes very complicated. For example, (in what follows (1) refers to contents of cell 1, etc. )

++++ Put 4 in 1st cell (1)
>+++ Put 3 in (2)
<[   While( (1) is non zero)
    --   Decrease (1) by 2
    >[   While( (2) is non zero)
        -    Decrement (2)
        <+   Increment (1) 
    (2) would be 0 at this point
    +++  Increase (2) by 3 making (2) = 3
<]   (1) was decreased by 2 and then increased by 3, so net effect is increment

and hence the code runs on and on. A naive check of the number of +'s and -'s done on cell 1, however, would say the number of -'s is more, so would not detect the infinite loop.
Can anyone think of a good algorithm to detect infinite loops, given arbitrary nesting of arbitrary number of loops in bf?

EDIT: I do know that the halting problem is unsolvable in general, but I was not sure whether there did not exist special case exceptions. Like, maybe Matlab might function as a Super Turing machine able to determine the halting of the bf program. I might be horribly wrong, but if so, I would like to know exactly how and why.

SECOND EDIT: I have written what I purport to be infinite loop detector. It probably misses some edge cases (or less probably, somehow escapes Mr. Turing's clutches), but seems to work for me as of now. In pseudocode form, here it goes:

subroutine bfexec(bfprogram)
    Looping through the bfprogram,
    	If(current character is '[')
    		Find the corresponding ']'
    		Store the code between the two brackets in, say, 'subprog'
    		Save the value of the current cell in oldval
    		Call bfexec recursively with subprog
    		Save the value of the current cell in newval
    		If(newval >= oldval)
    			Raise an 'infinite loop' error and exit
    	/* Do other character's processings */
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Matlab can't be super-turing, because it runs in a turing machine (your computer). Since state is limited, the snapshot approach detailed by Aur Saraf ought to work, and although the worst case is rather bad, many infinite loops in BF ought to be detected quickly. – Nick Johnson Dec 17 '08 at 10:58
[] only loops infinitely if the value under the pointer isn't 0. Yes, it would be useless if used at a point where the value of the pointer can only be 0 (like at the beginning of the program) but it's not necessarily an error. – Skilldrick May 16 '10 at 21:14
What is a Super Turing Machine anyway... Maybe you refer to Stannett, M. 1990. X-Machines and the Halting Problem: Building a Super-Turing Machine. Formal Aspects of Computing, 2, 331-341.? – Dr Beco Apr 6 '11 at 17:08
I think you have a problem with the sentence: Call bfexec recursively with subprog. It can runs forever if it find an infinite loop. There is no know solution for this is the Halting Problem. – Dr Beco Apr 6 '11 at 17:10

9 Answers 9

up vote 18 down vote accepted

When I used linear genetic programming, I just used an upper bound for the number of instructions a single program was allowed to do in its lifetime. I think that this is sensible in two ways: I cannot really solve the halting problem anyway, and programs that take too long to compute are not worthy of getting more time anyway.

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I chose this as the answer since this was most relevant to my situation. I think I have written an infinite loop detector, but it probably misses some cases (or, less probably, somehow escapes Turing's clutches.) I'll post that code in the question shortly. – sundar Dec 22 '08 at 11:06
"I cannot really solve the halting problem anyway," is a nice understatement :) – hop Dec 24 '08 at 12:09
You Jelly? Run the program, if it stops, it isn't infinite. Problem? – DampeS8N Dec 1 '10 at 20:46
DampeS8N: If it doesn't stop, it never gives an answer, and thus never solves the problem. – Svante Dec 1 '10 at 22:41
+1 Timeout can be set based on Complexity, Num of Lines, & Priority relative to Application Context to real time, for ex there're processes doing big-bang simulation that is scheduled to run for few years on a super computer – Khaled A Khunaifer Mar 10 at 10:59

Alan Turing would like to have a word with you.

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@dancavallaro, lol. Made me spit out my drink I was laughing so hard. – Simucal Dec 15 '08 at 11:24
I have seen this misconception so many times... thanks for bringing the correction @NasBanov. – mmgp Dec 17 '12 at 22:31
@NasBanov The memory required to compute to halting of the LBA, is greater than the amount of memory that it has. Therefore, unless a bigger LBA is simulating a smaller LBA, it's still unsolvable. All of that aside, it's still impractically solvable. – Cruncher Sep 3 '13 at 20:56
@Cruncher, i don't understand - what are you arguing about? BF is a deterministic machine with limited memory. The question is about practical implementation of BF in another language, this is not universal machine and is not bound by the limitations of the BF VM. Relatively small amount of additional memory (~ VM memory) is needed to detect infinite looping. So yes, what the OP asks about is possible and dancavallaro reply dismissing the possibility is wrong. – Nas Banov Sep 5 '13 at 5:15

Let's say you did write a program that could detect whether this program would run in an infinite loop. Let's say for the sake of simplicity that this program was written in brainfuck to analyze brainfuck programs (though this is not a precondition of the following proof, because any language can emulate brainfuck and brainfuck can emulate any language).

Now let's say you extend the checker program to make a new program. This new program exits immediately when its input loops indefinitely, and loops forever when its input exits at some point.

If you input this new program into itself, what will the results be?

If this program loops forever when run, then by its own definition it should exit immediately when run with itself as input. And vice versa. The checker program cannot possibly exist, because its very existence implies a contradiction.

As has been mentioned before, you are essentially restating the famous halting problem:

Ed. I want to make clear that the above disproof is not my own, but is essentially the famous disproof Alan Turing gave back in 1936.

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A brainfuck program is turing-complete if it has infinite memory, infinitely large numbers can be stored in each cell, or both. – user522860 Oct 27 '11 at 13:14

State in bf is a single array of chars.

If I were you, I'd take a hash of the bf interpreter state on every "]" (or once in rand(1, 100) "]"s*) and assert that the set of hashes is unique.

The second (or more) time I see a certain hash, I save the whole state aside.

The third (or more) time I see a certain hash, I compare the whole state to the saved one(s) and if there's a match, I quit.

On every input command ('.', IIRC) I reset my saved states and list of hashes.

An optimization is to only hash the part of state that was touched.

I haven't solved the halting problem - I'm detecting infinite loops while running the program.

*The rand is to make the check independent of loop period

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Due to the finite state a BF program has, this would actually work (though I think you've made it more complicated than it needs to be - just hash state on every ] and quit if you've encountered the hash before), and it would eventually detect any infinite loop as long as storage is finite. – Nick Johnson Dec 17 '08 at 10:56
If I'd quit on a hash encountered before, I'd have a chance of halting on a finite program. Though it is arguable how realistic this chance is, I do not believe it can be declared too-small-to-care without a lot of research. – Aur Saraf Dec 21 '08 at 14:34
Input command is ',' not '.'. Otherwise great idea. – Chris Lutz Apr 26 '09 at 21:10

Infinite loop cannot be detected, but you can detect if the program is taking too much time.

Implement a timeout by incrementing a counter every time you run a command (e.g. <, >, +, -). When the counter reaches some large number, which you set by observation, you can say that it takes very long time to execute your program. For your purpose, "very long" and infinite is a good-enough approximation.

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As already mentioned this is the Halting Problem. But in your case there might be a solution: The Halting Problem is considering is about the Turing machine, which has unlimited memory.

In case you know that you have a upper limit of memory (e.g. you know you dont use more than 10 memory cells), you can execute your programm and stop it. The idea is that the computation space bounds computation time (as you cant write more than one cell at one step). After you executed as much steps as you can have different memory configurations, you can break. E.g. if you have 3 cells, with 256 conditions, you can have at most 3^256 different states, and so you can stop after executing that many steps. But be careful, there are implicit cells, like the instruction pointer and the registers. You do it even shorter, if you save every state configuration and as soon as you detect one, which you already had, you have an infite loop. This approach is definitly much better in the run time, but therefor needs much more space (here it might be suitable to hash the configurations).

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Isn't it 256^3 ? – Vilx- Dec 15 '08 at 8:34
Yes. 3 cells, each with 256 states, is 256*256*256 = 16777216, not that big of a number (for a computer). – dancavallaro Dec 15 '08 at 8:38
Yes, you are right, its 256^3. – flolo Dec 15 '08 at 15:01
However, because brainfuck uses such simple constructs even the smallest programs can take tens to hundreds of cells. For example, multiplying two numbers in brainfuck takes around 30 cells. Any interesting brainfuck program would be impractical to analyze in such a manner. – shsmurfy Dec 15 '08 at 17:19
@shsmurfy - How do you multiply? Multiplication of two cells can be done with two temporary cells. – Chris Lutz Apr 26 '09 at 21:08

Off the top of my head (and I could be wrong), I would think it would be a little bit difficult to detect whether or not a program has an infinite loop without actually executing the program itself.

As the conditional execution of portions of the program depends on the execution state of the program, it will be difficult to know the particular state of the program without actually executing the program.

If you don't require that a program with an infinite loop be executed, you could try having an "instructions executed" counter, and only execute a finite number of instructions. This way, if a program does have an infinite loop, the interpreter can terminate the program which is stuck in an infinite loop.

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"Infinite loop" is the correct term ... – BobbyShaftoe Dec 15 '08 at 6:09
Thank you for pointing out the error. Fixed! – coobird Dec 15 '08 at 8:12

This is not the halting problem, however, it is still not reasonable to try to detect halting even in such a limited machine as a 1000 cell BF machine.

Consider this program:


This program will not repeat until it has filled up the entire of memory which for just 1000 cells will take about 10^300 years.

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If I remember correctly, the halting problem proof was only true for some extreme case that involved self reference. However it's still trivial to show a practical example of why you can't make an infinite loop detector.

Consider Fermat's Last Theorem. It's easy to create a program that iterates through every number (or in this case 3 numbers), and detects if it's a counterexample to the theorem. If so it halts, otherwise it continues.

So if you have an infinite loop detector, it should be able to prove this theorem, and many many others (perhaps all others, if they can be reduced to searching for counterexamples.)

In general, any program that involves iterating through numbers and only stopping under some condition, would require a general theorem prover to prove if that condition can ever be met. And that's the simplest case of looping there is.

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