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I have the following struct in C.

struct a {
    long state;
    long uid;
    long w, x, y, z, xx, yy, zz, xxx, yyy, zzz;
    char comm[64];
};

Then I do a malloc as follows.

buf = malloc (100 * sizeof(struct a));

But when I try to access the individual structs as follows, I get a seg fault.

for (i = 0; i < 100; ++i) {
    tmp = buf + (i * sizeof(struct a));
    printf ("\t>%d>%ld,%ld\n", i, tmp->state, tmp->uid);
}

I am getting a seg fault after the first 10 entries. I have no idea why this happens. Please help.

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3  
What is the type of buf? –  chrisaycock Sep 27 '12 at 21:48
    
possible duplicate of stackoverflow.com/questions/5605745/… –  Josh Petitt Sep 27 '12 at 21:59

3 Answers 3

up vote 5 down vote accepted

if buf is a pointer to a struct a, the pointer math should be:

tmp = buf + i;
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awesome.. it worked.. thanks –  kanap008 Sep 27 '12 at 21:52
    
no problem, just remember to accept an answer :-) –  Josh Petitt Sep 27 '12 at 21:53
    
but I dont understand how this works, dont we have to increment the point by the sizeof(struct). Lets buf is at location 100, and the sizeof(struct a) is 50, so the next struct will be at 150 right. but if we do (buf + i) wont it increment by just 'i' places, eg, if i=1, and buf=100, then buf+1 will give 101 right.. –  kanap008 Sep 27 '12 at 21:54
    
look at AusCBloke's detailed answer. –  Josh Petitt Sep 27 '12 at 21:54
    
also, probably not at 150 on your 32bit or 64bit machine, since the struct address will be word aligned by default. Again, look at AusCBloke's answer and trust in your compiler to do the pointer math correctly based on struct size, word alignment, padding, yada yada yada –  Josh Petitt Sep 27 '12 at 21:57

This line is wrong:

tmp = buf + (i * sizeof(struct a));

You don't need to multiply i by the size of each element in the array, this is done implicitly for you based on the type of buf.


What you're actually doing is

tmp = &buf[i * sizeof(struct a)];

when what you're really trying to do is

tmp = &buf[i];
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thanks @AusCBloke for the explanation. –  kanap008 Sep 27 '12 at 22:10

The compiler already handles sizeof() advancement during pointer arithmetic. Thus,

ptr + i;

is the same as

&ptr[i];

It is wrong to use

ptr + (i * sizeof(some_type));
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