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The boolean array has true for 1 and false for 0. 8 would be represented as false false false true, where true is at index 3. 6 would be false, true, true. Also I want to do this without using pow(). The method will return the decimal representation as an integer.

What I have so far:

int Binary::binaryToInteger(bool *binaryArray, int size)
{
    Something that will keep track of the index and something that will keep track of
    the amount I need to multiply by added to a total and an if else that will take care
    of true or false

    return total;
}

Thanks for the help!

  • possible duplicate of Fast way to convert a binary number to a decimal number – CoryKramer Jan 9 '15 at 19:34
  • Is there any representation of the signed-ness of the number in the input array? – Mark B Jan 9 '15 at 19:46
  • @MarkB: The sign of an int is in its highest bit. So if the array size is <= numeric_limits<int>::digits, the array represents an unsigned number. If the size of the array is == numeric_limits<int>::digits+1, the last array element specifies the sign. numeric_limits<int>::digits does not count the sign bit. – Remy Lebeau Jan 9 '15 at 19:53
2

I want to do this without using pow()

Using pow() for powers of two is an overkill, at least on binary hardware. You can use

int mask = 1 << bitNumber;

to produce an int with all bits set to zero except bitNumber, which would be set to one.

something that will keep track of the amount I need to multiply by added to a total

There is no need for multiplication. As for the addition, you can replace it with bitwise "OR":

res |= 1 << bitNumber;

If you go through your array of bool values, set res to zero initially, and apply the above operation to bitNumber indexes where binaryArray[bitNumber] is set to true, then the final value of res would correspond to an int defined by your array of bool values.

  • Thanks! I'll look into what a bitwize "OR" is. – Bapho Jan 10 '15 at 0:52
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int mul = 1;
int accum = ;
for(int i = size - 1; i > 0; i++) {
    accum+=mul*binaryArray[i];
    mul*=2;
}

Something like that.

  • @Bapho Yeah, I wrote that really quick. – BWG Jan 10 '15 at 0:56
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Try something like this:

#include <limits>
#include <stdexcept> 

int Binary::binaryToInteger(bool *binaryArray, int size)
{
    if ((size < 0) || (size > (std::numeric_limits<int>::digits+1))) // +1 for sign bit, which digits ignores
        throw std::runtime_error("invalid size!");

    // The boolean array has true for 1 and false for 0.
    // 8 would be represented as "false false false true", where true is at index 3.
    // 6 would be "false, true, true".

    int result = 0;
    for (int i = 0; i < size; ++i)
    {
        if (binaryArray[i])
            result |= (1 << i);
    }

    return result;
}

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