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I have the following structs:

typedef struct bucket {
    unsigned int contador; 
    unsigned int * valor;
} Bucket;

typedef struct indice {
    unsigned int bs;            
    unsigned int valor;      
    unsigned int capacidade; 
    Bucket * bucket;
} Indice;

typedef struct tabela {
    unsigned int bs; 
    Indice * indice;
} Tabela;

And I want to do something like this:

tabela->indice[2].bucket = &tabela->indice[0].bucket;

But I get segmentation fault.

How can I get the tabela->indice[0].bucket address and associate to tabela->indice[2].bucket.

Thanks!

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1) Create pointer inside struct: just like you've done. 2) Make sure that every pointer actually points to something before you use it. Make sure you've allocated allocated each object - and correctly assigned the pointers! –  paulsm4 Nov 7 '12 at 22:57

2 Answers 2

up vote 2 down vote accepted

I'm probably going to get neg repped agian for attempting to answer a c question, but here goes nothing

have you tried getting rid of the &?

tabela->indice[2].bucket = tabela->indice[0].bucket;
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1  
I'll go easy on you, but the most likely scenario is that these pointers have not yet been initialized. We can't say for sure from the example though, so no -1 from me –  Ed S. Nov 7 '12 at 22:53
    
@EdS. That is what I was going to say at first, but then I read the question closer, and it almost seemed like he was already able to use the 2 values. –  Sam I am Nov 7 '12 at 22:54
    
Well, taking the address of an uninitialized pointer would not cause a segfault and is perfectly valid. The pointer itself has a valid address. Dereferencing an invalid pointer may cause a segfault though, so that's my guess. –  Ed S. Nov 7 '12 at 22:56
    
First Ed is totally correct, and was very gentle, so thank him =) You, however, are also correct. this would be the right way to copy that pointer value, though I question whether that itself is what the OP thinks it is doing, especially if that Bucket pointer is free'd my someone that doesn't know all those indicies are holding it. –  WhozCraig Nov 7 '12 at 22:56
1  
No, he's saying you're right and they are not the same. &tabela->indice[0].bucket; produces a Bucket**, which is wrong (and should result in a warning). –  Ed S. Nov 7 '12 at 23:00

You have to initialize your pointers to point to something valid. Simply creating an instance of your struct does not do that for you. For example:

Tabela t = {};  /* t is a valid, zero-initialized object, but indice is not valid */

t.indice = malloc(sizeof(Indice) * some_count);
/* now t.indice is valid */

for(int i = 0; i < some_count; ++i)
    t.indice[i].bucket = malloc(sizeof(Bucket));

/* now t.indice[0-(some_count-1)].bucket are all valid */

By the way, your pointer copy is incorrect.

tabela->indice[2].bucket = tabela->indice[0].bucket;
/* assuming indices 0 and 2 are valid, this now works (but leaks memory)
   note that I removed the &.  It is incorrect and produces
   a Bucket** because t.indice[n].bucket is already a pointer */

However, that results in a memory leak. It's hard for me to figure out what you are actually trying to accomplish here.

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