1

I ran into above problem when I ran following little piece of code in visual C++ 2010 Express.

When I used CodeBlocks, inner for loop couldn't be executed completely because of line (A).

Couldn't figure out why. Thanks for help!

int main()
{
    int* ap[10];
    for(int j=0;j<10;j++){
        *(ap+j) = new int[10];
        for(int i=0;i<10;i++){
            *((ap+j)+i) = *(ap+j)+i;//(A)
            **((ap+j)+i) = j * 10 + i;
            cout<<setw(6)<<**((ap+j)+i);
        }
        cout<<endl;
     }
     return 0;
}
  • 1
    Why say *(ap+j) instead of the conventional ap[j]? – Kos Jan 21 '14 at 12:12
  • Do you think *((ap+j)+i) is different to *(ap+j+i)? – Luchian Grigore Jan 21 '14 at 12:16
  • Why say *(ap+j) instead of the conventional ap[j]? – Kos 1 hour ago – user3219000 Jan 21 '14 at 13:42
2

This line

*((ap+j)+i) = *(ap+j)+i;//(A)

can be rewritten as

ap[j+i] = ap[j]+i;//(A)

and you can clearly see this can write out-of-bounds when j+i > 10.

You probably meant ap[j][i] or equivalently *(*(ap+j)+i).

  • Thanks for reply but the problem still exists! – user3219000 Jan 21 '14 at 13:38
  • 1
    You also have **((ap+j)+i) and similar expressions all around. As the next step, try rewriting the whole code to use the [] notation, it should help you see what happens and how it's different from what you expected – Kos Jan 21 '14 at 14:08
  • int main(){ int* ap[10]; for(int j=0;j<10;j++){ ap[j] = new int[10]; for(int i=0;i<10;i++){ ap[j+i] = ap[j]+i; *ap[j+i] = j * 10 + i; cout<<setw(6)<<*ap[j+i]; } cout<<endl; } system("pause"); return 0; } – user3219000 Jan 21 '14 at 15:28
  • You still have *ap[j+i] that accesses out of bounds. – Kos Jan 21 '14 at 15:34
  • When I remove use pointers and use 2D array instead, no problem at all. However, I think the use of pointers should be equivalent and I don't understand why pointers don't work here. Thanks! – user3219000 Jan 21 '14 at 15:39

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.