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For the following code:

vector<int*> x;
vector<int*>* p;

// say i initiated x with a couple of integers
p  = &x;

//erases the indicie of the given integer
void erase(vector<int*> &x, int n){
  int i = 0;
  while (*(x[i]) != n){
    i++;
  }
  delete x[i];
  x.erase(x.begin() + i);
}

if i call the code erase(*p, 2); i want to now set p to this address of this vector that has been erased ... I'm trying p = &(*p); .. but that doesn't work and i get a segmentation fault, any ideas?

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You need to explain it better. It is completely unclear at this point. "i want to now set p to this address of this vector that has been erased" - what is that supposed to mean? No vector is erased in your code and there's no reason to do anything with p. –  AndreyT Nov 20 '12 at 19:59
    
basically want p to be the address of this new vector, since erase took that vector and removed a certain indicie. –  John Smith Nov 20 '12 at 20:17
    
@JohnSmith, there is no new vector. The old vector is the only vector. It persists through the call to erase. –  Robᵩ Nov 20 '12 at 20:18
1  
@JohnSmith - Consider this program program and its output. –  Robᵩ Nov 20 '12 at 20:26

1 Answer 1

You shouldn't have to do anything. p still points to &x just as it did before you called erase(). Removing an element from a vector doesn't change the address of the vector.

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so after i call erase (*p, 2), p will now be the address of the vector of a shorter vector. ? –  John Smith Nov 20 '12 at 20:26
    
p will be unchanged, and will continue to point to x. You only have one vector, there is no "shorter vector". –  Robᵩ Nov 20 '12 at 20:27

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