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I have a function declared something like

void func1(int& x) {
    func2(x); // func2 accepts an int

I think this is what crashes the program? I get the error

R6010 - abort() has been called

What do I need to do to pass x into a function that accepts an int? I expected them to work the same ... since I can just echo the value of x using cout << x


Just a test:

cout << stmtNo << endl;
Node* n = ast->getNode(stmtNo);
cout << n->getNodeType() << " " << n->getStmtNo() << endl;

Above fails ... Below passes

cout << stmtNo << endl;
Node* n = ast->getNode(1);
cout << n->getNodeType() << " " << n->getStmtNo() << endl;
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"I think this is what crashes the program" did you debug? – Luchian Grigore Nov 3 '12 at 12:40
Yes I changed the call from func2(x) to func2(1) and it worked ... not sure seems like thats the problem ... tho ... I'm not the one that made func2() ... and am also new to C++ – Jiew Meng Nov 3 '12 at 12:41
what does the call to func1() look like? – juanchopanza Nov 3 '12 at 12:43
@LuchianGrigore, I updated the qn with what I did to think that the variable is the problem ... – Jiew Meng Nov 3 '12 at 12:43
Where does stmtNo come from originally? It's passed into your function, so chances are this is an invalid reference. – dasblinkenlight Nov 3 '12 at 12:47

1 Answer 1

up vote 2 down vote accepted

There is no problem, you can always pass an integer reference as an argument for an integer.

Integer references can be interpreted as constant pointers who automatically de-reference themselves.

using namespace std;
void fun_2(int s)
void func(int &d)

int main()
   int x=99;

   return 0;

The above code works perfectly!

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