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While implementing nedmalloc into my application, I am frequently hitting a situation when nedmalloc refuses to free a block of memory, claiming it did not allocate it.

I am using v1.06beta1_svn1151 version.

While debugging I have come up to the point I see a particular condition which is failing, all other (including magic numbers) succeed. The condition is this:

if((size_t)mem-(size_t)fm>=(size_t)1<<(SIZE_T_BITSIZE-1)) return 0;

On Win32 this seems to be equivalent to:

if((int)((size_t)mem-(size_t)fm)<0) return 0;

Which seems to be the same as:

if((size_t)mem<(size_t)fm) return 0;

In my case I really see mem < fm. What I do not understand now is, where does this condition come from. I cannot find anything which would guarantee the fm <= m anywhere in code. Yet, "select isn't broken": I doubt it would really be a bug in nedmalloc, most likely I am doing something wrong somewhere, but I cannot find it. Once I turn debugging features of nedmalloc on, the problem goes away.

If someone here understands inner working of nedmalloc, could you please explain to me why is fm <= mem guaranteed?

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I can't find this in the current nedmalloc source code. Which version are you using? –  Thomas Mar 25 '10 at 16:22
    
Crazy. I did not expect upvote for this kind of detailed technical minutes question, esp. not this soon. Either there is somebody out there who likes and understands this stuff, or the monkey programmers are already here on the SO, up-voting random questions? (But how on earth did they get enough reputation to vote?) No matter what, I hope someone will answer - in this case this is more important to me than reputation. –  Suma Mar 25 '10 at 16:23
    
you posed a well described question, which will hopefully give rise to some explanation about an interesting issue like memory management, so no wonder that someone upvoted you. –  Francesco Mar 25 '10 at 16:55
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I upvoted because (a) the question is clear and also interesting and puzzling, (b) you did some thinking of yourself, and (c) your "select isn't broken" attitude. –  Thomas Mar 25 '10 at 20:11
    
As it turned out it is question about a bug in a specific version, I suggest closing as "too localized". –  Suma Mar 26 '10 at 5:21

2 Answers 2

up vote 1 down vote accepted

I can see now for this line there was added a comment /* See if mem is lower in memory than mem */ and it was disabled using #if 0 in beta svn1159. The condition is not mature and it is probably wrong (it is still left in the Linux specific part of the code - most likely wrong there as well?)

Lesson learned: "beta select can be broken".

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Haha, yeah, after you updated your post to include that you are using an svn version, and I noticed that the line you mention is not in the current stable version, I was beginning to doubt select as well... :) –  Thomas Mar 25 '10 at 20:13
    
What to do with this now? The whole question point seems to be moot now - it does not seem to me StackOverflow should document already fixed bugs in various libs. I guess I will probably vote to delete this question? (Still, I am very glad to have asked it - your question about which version helped me a lot). –  Suma Mar 25 '10 at 20:17

I am assuming that SIZE_T_BITSIZE is the number of bits in size_t type, so shifting 1 by SIZE_T_BITSIZE - 1 will give you (SIZE_MAX + 1) / 2 (mathematical) value. So the condition is testing if (size_t)mem - (size_t)fm is greater than or equal to the mathematical value of (SIZE_MAX + 1) / 2.

This is not the same as (int)((size_t)mem - (size_t)fm) < 0. Further, if mem and/or fm are cast to size_t, which is an unsigned type, the arithmetic happens in unsigned types, which means that the difference cannot be less than 0. So, even if (size_t)mem is less than (size_t)fm, (size_t)mem - (size_t)fm is never going to be less than 0. It is equal to the difference mem - fm plus SIZE_MAX plus 1, which is a positive value. Converting that value to an int may overflow, which is implementation-defined, or may not overflow, in which case you end up with a positive value.

So, to answer your question, if (size_t)mem is less than (size_t)fm, you probably have a bug before that point.

What is m? By m, do you mean mem?

Edit: Looks like a bug in nedmalloc, for reasons I mentioned above. The code in question has been commented out in the latest version.

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I am assuming Win32 (as indicated by a tag). –  Suma Mar 25 '10 at 16:44
    
Yes, m should be mem. Thanks for pointing out, this is corrected now. –  Suma Mar 25 '10 at 19:37
    
@Suma, see my edit. –  Alok Singhal Mar 25 '10 at 20:04

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