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There is a function that I have to use that looks like this:

void pushNode (struct onode** head, struct onode* node) ;

I tried to use this:

struct onode *head = NULL;
head=malloc(sizeof(struct onode));

struct onode *tempO;

pushNode(*head,tempO);

To which I receive this error in the terminal:

expected ‘struct onode **’ but argument is of type ‘struct onode’

I am not sure what to put instead of *head. Any light you could shed on this would be much appreciated.

Thank you

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2 Answers

up vote 5 down vote accepted

When you use:

pushNode(*head, tempO);

It dereferences head, turning the struct onode * into a struct onode.
You want to take its address, which could be said to be the opposite of dereferencing:

pushNode(&head, tempO);

Taking its address will make it from a struct onode * into a struct onode **.

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+1 good explanation –  Morten Jensen Mar 16 '13 at 4:01
    
Thank you! Pointers in practice are very confusing to me. –  user2172330 Mar 16 '13 at 4:13
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Try putting instead pushNode(&head,tempO);

The address of the pointer that is a pointer to a pointer, that is struct node **.

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