Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to add two lists of uint8_t as though the list were individual integers, and I'm getting some weird values:

0x1000 + 0x100 + 0x10 -> 0x1210 ?????

Code is as follows:

// values 0x123456 stored as: {12, 34, 56}
integer operator+(integer rhs){
    // internal list called 'value'
    std::list <uint8_t> top = value, bottom = rhs.value;
    if (value.size() < rhs.value.size())
        top.swap(bottom);
    top.push_front(0);                           // extra byte for carrying over
    while (bottom.size() + 1 < top.size())       // match up the byte sizes, other than the carry over
        bottom.push_front(0);
    bool carry = false, next_carry = false;
    for(std::list <uint8_t>::reverse_iterator i = top.rbegin(), j = bottom.rbegin(); j != bottom.rend(); i++, j++){
        next_carry = (((uint8_t) (*i + *j + carry)) <= std::min(*i, *j));
        *i += *j + carry;
        carry = next_carry;
    }
    if (carry)
        *top.begin() = 1;
return integer(top);
}

Can someone tell me what I'm doing wrong?

share|improve this question
add comment

4 Answers 4

In your example (0x100 + 0x10), you begins with carry = false, *top.rbegin() = 0, and *bottom.rbegin() = 0. When we drop into the loop we see the following test:

next_carry = (((uint8_t) (*i + *j + carry)) <= std::min(*i, *j));
// given *i == 0, *j == 0, and carry == false
// this will evaluate to TRUE

Since next_carry rolls around to the next addition you end up with carry = true, when it should be false. Switch the conditional to < std::min(*i, *j).

share|improve this answer
    
wow. that is? i cant believe i missed that –  calccrypto Jun 26 '11 at 19:22
add comment

Consider what happens when adding two zero digits and there was no carry. *i + *j + carry == 0, which is <= than min(*i, *j). Thus you're generating a carry out of thin air.

If you know you're only working with bytes, you can store *i + *j + carry in an int and then carry is just sum / 256.

share|improve this answer
add comment
up vote 2 down vote accepted

next_carry = ((*i + *j + carry) > 255); is the correct answer, due to the extra 1, since *i + *j + carry can equal the minimum std::min(*i, *j)

share|improve this answer
    
+1, just came to the same conclusion. Stricken the use of std::min from my answer. –  user7116 Jun 26 '11 at 19:55
add comment

Let maxval be the maximal value of uint8_t. Determine the existence of next_carry as follows:

next_carry = false;
if( *i == maxval && ( *j > 0 || carry ) ) // excluding *i + carry > maxval case in next if
        next_carry = true;
    else
        if( *i + carry > maxval - *j ) ///  equal to *i + *j + carry > maxval
             next_carry = true;
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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