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I've got a structure which holds names and ages. I've made a linked-list of these structures, using this as a pointer:

aNode *rootA;

in my main. Now i send **rootA to a function like so

addElement(5,"Drew",&rootA);

Because i need to pass rootA by reference so that I can edit it in other functions (in my actual program i have two roots, so return will not work)

The problem is, in my program, i can't say access the structure members.

*rootA->age = 4;

for example doesnt work.

Hopefully you guys can help me out. Thanks!

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2 Answers 2

up vote 6 down vote accepted

It's hard to tell from your question but it looks like the type of rootA in the last sample is aNode**. If so the reason why it's failing is that -> has higher precedence than *. You need to use a paren to correct this problem

(*rootA)->age = 4;

See full C Operator Precedence Table.

If the type of rootA is instead aNode*. Then you don't need to dereference in addition to using ->. Instead just use -> directly

rootA->age = 4;
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Wow, that does it perfectly. Thanks, i had no idea it worked that way. Also, getting an answer in 36 seconds thats completely right is awesome. I have to wait 11min to select it as the right answer, lol! –  Blackbinary Apr 1 '10 at 0:28
    
+1 for a very complete answer –  Sam Post Apr 1 '10 at 0:34
    
Precedence mistakes are common faults in today's programming. –  Robert Apr 1 '10 at 1:38

I suspect you need to pass a pointer to the rootA variable, and not dereference it twice.

addElement(5,"Drew",&rootA);
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my copying abilities are to blame, fixed in the question. –  Blackbinary Apr 1 '10 at 0:34

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