Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Found in torvalds/linux-2.6.git -> kernel/mutex.c line 171

I have tried to find it on Google and such to no avail.

What does for (;;) instruct?

share|improve this question
32  
that's not a helpful comment. Just because konman isn't that well versed in C doesn't mean they can't read code files. And now they have learned something, so that's a good thing. –  Alastair Pitts Jan 2 '10 at 14:52
10  
I agree with Alastair. Reading source written by others is a great way to learn. –  CesarGon Jan 2 '10 at 15:09
20  
If you aren't well-versed in c, read kernel code. –  just somebody Jan 2 '10 at 17:40
3  
@Kim Despite the protests, your point is valid. It's true that the OP learned something -- but by asking a question at SO, not by reading the kernel code. There are far more efficient ways to learn than to read code in a language one doesn't even know the basics of and then ask SO about every little thing one doesn't understand. –  Jim Balter May 11 '11 at 4:54
1  
P.S. Most of the answers here are misleading. for(;;) is not (necessarily) an "infinite" loop, it's simply a loop that doesn't test the condition in the for(...) construct itself. This is particularly relevant in the code cited by the OP -- the very first statement inside the loop is if (...) break;, and there are several other conditional breaks in the loop as well; nothing at all "infinite" about it. –  Jim Balter May 11 '11 at 5:02

12 Answers 12

up vote 20 down vote accepted

The for(;;) is an infinite loop condition, similar to while(1) as most have already mentioned. You would more often see this, in kernel mutex codes, or mutex eg problem such as dining philosophers. Until the mutex variable is set to a particular value, such that a second process gets access to the resource, the second process keeps on looping, also known as busy wait. Access to a resource can be disk access, for which 2 process are competing to gain access using a mutex such that at a time only one process has the access to the resource.

share|improve this answer
1  
Infinite loops and busy waits are different things. A busy wait is a sleepless loop waiting for some condition -- nothing infinite about it. –  Jim Balter May 11 '11 at 4:50
2  
@Jim, to be fair, no loop is infinite as you could lose power at any moment or your machine will die of old age. He's talking more about asking the compiler for a loop with no end condition than actually something infinite. –  Blindy Aug 8 '11 at 19:59
    
@Blindy Way to miss the point and be absurdly pedantic at the same time. Like duh, I didn't know about the heat death of the universe. Meanwhile, busy waits are, as I said, sleepless, and have end conditions. –  Jim Balter Aug 8 '11 at 23:29

It literally means "do nothing, until nothing happens and at each step, do nothing to prepare for the next". Basically, it's an infinite loop that you'll have to break somehow from within using a break, return or goto statement.

share|improve this answer
1  
Thumbs up for the speed :) –  Anna Jan 2 '10 at 14:11

It is an infinite loop which has no initial condition, no increment condition and no end condition. So it will iterate forever equivalent to while(1).

share|improve this answer
4  
at least one compiler I know will warn about while ( 1 ) or while ( true ) loops, but "know" to not produce diagnostics for ( ; ; ) as it is considered the "standard" form for infinite loop. –  Peeter Joot Jan 2 '10 at 15:36

It loops forever (until the code inside the loop calls break or return, of course. while(1) is equivalent, I personally find it more logical to use that.

share|improve this answer
1  
Or calls exit or longjmp or does a goto out of the loop, or (POSIX) until a signal occurs that does not return. Also various sorts of undefined behavior can terminate the loop, as well as various external events beyond the scope of the C language, including dropping a nuke on the computer on which the program is running. –  Jim Balter May 11 '11 at 4:48

It's equivalent to while( true )

Edit: Since there's been some debate sparked by my answer (good debate, mind you) it should be clarified that this is not entirely accurate for C programs not written to C99 and beyond wherein stdbool.h has set the value of true = 1.

share|improve this answer
4  
provided that true == 1. –  GregS Jan 2 '10 at 14:09
12  
They need a comment downvoting system. –  Blindy Jan 2 '10 at 14:11
4  
Ugh, the pain of a language where "1" is a more authoritative "True" value than a boolean "true". –  Clueless Jan 2 '10 at 14:21
3  
@Blindy: Why would you downvote his comment? @Frank: Changing from what? true is not defined in standard C. –  sepp2k Jan 2 '10 at 14:44
9  
@GregS: No. Provided that true != 0 :) –  AndreyT Jan 2 '10 at 15:10

it is an infinite for loop.

share|improve this answer

It is same as writing infinite loop using " for " statement but u have to use break or some other statement that can get out of this loop.

share|improve this answer

for(;;)

is an infinite loop just like while(1). Here no condition is given that will terminate the loop. If you are not breaking it using break statement this loop will never come to an end.

share|improve this answer

I means:

#define EVER ;;

for(EVER)
{
     // do something
}

Warning: Using this in your code is highly discouraged.

share|improve this answer
6  
I really hate it when I see code like this. The author obviously think he is more clear but I often have to back and make sure that EVER isn't defined as something bad that will cause me problem. –  Fredrik Jan 2 '10 at 15:26
    
True, i would not write for(EVER) in my code either. This is just for fun :) –  JCasso Jan 2 '10 at 15:35
    
Indeed, don't do this in real code. –  Ree Jan 2 '10 at 16:43

It is functionally equivilent to while(true) { }.

The reason why the for(;;) syntax is sometimes preferred comes from an older age where for(;;) actually compiled to a slightly faster machine code than while(TRUE) {}. This is because for(;;) { foo(); } will translate in the first pass of the compiler to:

lbl_while_condition:
   mov $t1, 1
   cmp $t1, 0
   jnz _exit_while
lbl_block:
   call _foo
   jmp lbl_while_condition

whereas the for(;;) would compile in the first pass to:

lbl_for_init:
   ; do nothing
lbl_for_condition:
   ; always
lbl_for_block:
   call foo;
lbl_for_iterate:
   ; no iterate
   jmp lbl_for_condition

i.e.

 lbl_for_ever:
    call foo
    jmp lbl_for_ever

Hence saving 3 instructions on every pass of the loop.

In practice however, both statements have long since been not only functionally equivalent, but also actually equivalent, since optimisations in the compiler for all builds other than debug builds will ensure that the mov, cmp and jnz are optimised away in the while(1) case, resulting in optimal code for both for(;;) and while(1).

share|improve this answer

It's an infinite loop that you'll have to break somehow from within using a break, return or goto statement. or either some interrupt happens otherwise this loop will run infinitely and executes ;(null statement) every time

share|improve this answer

That was obviously an infinite loop condition.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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