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why when I use below code don't get exception out of range?

std::vector<int> v;
v.resize(12);
int t;
try {
    t = v[12];

}catch(std::exception  e){
    std::cout<<"error:"<<e.what()<<"\n";
}
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3  
Also, Exceptions should always be thrown by value and catch by (preferrably, const) reference. –  Alok Save Oct 15 '12 at 13:38
    
because the standard says so. If you want exceptions when out of bounds, use std::vector::at(). –  Walter Oct 15 '12 at 14:08
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2 Answers 2

up vote 8 down vote accepted

By using operator[] you are essentially telling the compiler "I know what I'm doing. Trust me." If you access some element that is outside of the array it's your fault. You violated that trust; you didn't know what you were doing.

The alternative is to use the at() method. Here you are asking the compiler to do a sanity check on your accesses. If they're out of bounds you get an exception.

This sanity checking can be expensive, particularly if it is done in some deeply nested loop. There's no reason for those sanity checks if you know that the indices will always be in bounds. It's nice to have an interface that doesn't do those sanity checks.

The reason for making operator[] be the one that doesn't perform the checks is because this is exactly how [] works for raw arrays and pointers. There is no sanity check in C/C++ for accessing raw arrays/pointers. The burden is on you to do that checking if it is needed.

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operator[] doesn't throw an exception. Use the at() function for that behaviour.

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In my program i use operator [] is way to fix it ? –  herzl shemuelian Oct 15 '12 at 13:42
    
@herzlshemuelian, The only reasonable way I see is to change each operator[] call to an at call. However, when debugging, I'm pretty sure some will let you choose to monitor out-of-bounds accesses. –  chris Oct 15 '12 at 13:43
    
by choosing operator[] you've decided not to want out-of-bounds checking. If you now decide otherwise, you must pay the price for your change of mind. –  Walter Oct 15 '12 at 14:09
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