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If the user inputs a very large number in binary the output shows a 0, how would I go about modifying this function to work with larger numbers?

{ 
    // Binary to Decimal converter function

    int bin_Dec(int myInteger)
    {
    int output = 0;
    for(int index=0; myInteger > 0; index++ )
    {
    if(myInteger %10 == 1)
        {
            output += pow(2, index); 
        }
    myInteger /= 10;
    }
    return output;
    }

    int _tmain(int argc, _TCHAR* argv[])
    { // start main

    int myNumber;

    // get number from user

    cout << "Enter a binary number, Base2: "; // ask for number 
    cin >> myNumber;

    //print conversion

    cout << "Base10: " << bin_Dec(myNumber) << endl; // print conversion
    system("pause");

    } // end of main
}
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3  
999 isn't a base 2 number. 1000 is, and it works with your code. What is the real problem you're having? What specifically is the input that didn't work for you? –  Drew Dormann Mar 9 '13 at 17:36
1  
not sure what you're asking here... the program expects you to enter a binary number. Entering 999 just won't work. By the way, the way it is written, the highest binary number it will accept is 1111111111 (=10 digits). The highest number it'll output will be 2023. –  Hazzit Mar 9 '13 at 17:38

1 Answer 1

up vote 1 down vote accepted

Stop taking your "binary number" as an int. An int is limited in size; the max is generally about 2 billion, which is 10 digits. When you're abusing digits as bits, that gives you a max of 10 bits, which equates to 1023.

Take a string instead. You're not doing any useful math with the input; you're just using it as a string of digits anyway.

// oh, and unless you have good reason...this would be better unsigned.
// Otherwise your computer might catch fire when you specify a number larger
// than INT_MAX.  With an unsigned int, it's guaranteed to just lop off the
// high bits.
// (I may be overstating the "catch fire" part.  But the behavior is undefined.)
unsigned int bin_to_dec(std::string const &n) {
    unsigned int result = 0;
    for (auto it = n.begin(); it != n.end(); ++it) {
        result <<= 1;
        if (*it == '1') result |= 1;
    }
    return result;
}

If you have C++11, though, there's std::stoi and family (defined in <string>) which will do this for you when you specify base 2. Unless you're reinventing the wheel for learning purposes, it'd be better to use them.

std::cout << "Base10: " << std::stoi(myNumberString, 0, 2) << '\n';
share|improve this answer
    
a side note: although the result is correct, I think it's more correct to use result += 1; operation instead of result |= 1; –  icepack Mar 9 '13 at 18:08
    
Depends on how you consider it. I consider it more "shifting in" a 1 or 0. But X*2+1 is correct too. –  cHao Mar 9 '13 at 18:11
    
BTW, the g++ 4.7.2 compiler at LWS doesn't seem to like your code, I can't figure why: liveworkspace.org/code/2OTOP6$4 –  icepack Mar 9 '13 at 18:15
    
You might need to specify --std=c++0x or --std=c++11. auto is a C++11'ism. –  cHao Mar 9 '13 at 18:30
    
It's with -std=c++11. The problem is with the shifting(result << 1). Replacing it with multiplication resolves the issue. –  icepack Mar 9 '13 at 18:34

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