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It is said that arrays are allocated at compile time, then the size must be const and available at compile time.
But the following example also works, Why?

#include <iostream>                                  
#include <vector>                                                 
using namespace::std;                                             
int main()                                                       
{                                                    
    vector<int> ivec;                                               
    int k;                                                  
    while(cin>>k)                                              
        ivec.push_back(k);                                     
    int iarr[ivec.size()];                                           
    for (size_t k=0;k<ivec.size();k++)                                 
    {                                                             
        iarr[k]=ivec[k];                                               
        cout<<iarr[k]<<endl;                                   
    }                                                            
    return 0;                                                    
}   
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2  
Clearly your assumptions aren't right then, yes? –  Carl Norum Feb 9 '12 at 6:00

1 Answer 1

up vote 7 down vote accepted

Compile your code with -pedantic.
Most compilers support variable length arrays through compiler extensions.
The code works due to the compiler extensions, However as you noted the code is non standard conforming and hence non portable.

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Yes, with -pedantic it fails. –  flyingfoxlee Feb 9 '12 at 6:08
    
@flyingfoxlee: -pedantic disables all compiler specific and compiles the source code as per the strict specifications laid out by the C++ standard.So if you intend to write a portable code, always compile using -pedantic.I hope this answers your Q then. –  Alok Save Feb 9 '12 at 6:10

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