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i have returned address form a function search(keys), like this

return ptr->keys[pos]

where ptr->keys[pos].value was used to access the member function of keys. is the above return statement correct? does this return the address after it returns i have done

struct classifier keys,temp,*temp_ptr;
temp = search(key);
temp_ptr = &temp;

and then i am accessing the member function value of keys as

temp->value
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very unclear :( –  Drakosha Feb 18 '11 at 8:48
    
Your question is very unclear. What is ptr? What is the type of ptr->keys[pos]? –  Oliver Charlesworth Feb 18 '11 at 8:50
    
ptr is pointer to struct node,and inside that structure there is struct classifier keys[2] which is a member function of struct node, so the type of ptr->keys[pos] is struct node –  asir Feb 18 '11 at 8:56
    
It is not return adress of variable if "keys" are not double pointer. –  user319824 Feb 18 '11 at 9:13

1 Answer 1

From what you've said, if pos is 0 or 1 then it's a valid index in keys and the return statement is ostensibly correct. Please post realistic code though: the question's "struct classifier keys,..." is not reconcilable with "struct classifier keys[2]" mentioned in your comment above. The following code is not correct: temp = search(key); tries to copy a pointer into a structure. You might mean temp = *search(key), which will copy the struct classifier's content out. You can then use temp.value or temp_ptr->value but NOT temp->value as you asked.

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