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What's wrong with this code below and how to fix it.

using namespace std;

template<typename Func1, typename Func2>
class guard{
    guard(Func1 first, Func2 last) : last(last){
    Func2& last;

template<typename Func1, typename Func2>
guard<Func1, Func2> make_guard(Func1 first, Func2 last){
    return guard<Func1, Func2>(first, last);

void first(){
    cout << "first" << endl;

void last(){
    cout << "last" << endl;

int main(){
        first(); // ok
        last(); // ok
        auto g = make_guard(first, last);
        first(); //exception: Access violation
        last(); //exception: Access violation
    first(); // ok
    last(); // ok

The function first() and last() can't be called before variable g expired. Compiled at VC++ 2012 and got the same problem both in debug and release mode.

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1 Answer 1

up vote 5 down vote accepted

Your guard keeps a reference, but it takes a value. The reference becomes invalid as soon as guard's constructor end, as it refers to the last parameter taken by the constructor and not to the parameter passed to make_guard.

Once you access an invalid reference you have undefined behavior, and all bets are off.

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Thank you. already fix it. But I still don't understand why call function first() and last() directly failed when variable g isn't expired. – user955249 Dec 22 '12 at 4:44
@Mike: Once you incur in undefined behavior, anything can happen... – K-ballo Dec 22 '12 at 4:48
Aren't first and last addresses of global functions? Why do they become invalid? – user93353 Dec 22 '12 at 4:48
@user93353: first and last are addresses of global functions, but copying them gets you local pointers to such functions. It is the reference to the temporary copy of the pointer to that address that becomes invalid. – K-ballo Dec 22 '12 at 4:50
Ok - didn't notice that the private member last was a reference. Simple fix is to not make it a reference. Func2 last – user93353 Dec 22 '12 at 4:52

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