6

I have the function which I believe will convert an int into a floating point value split into the sign exponent and fraction components of the value. Using IEEE 754 to represent Float values.

enter image description here

unsigned test(unsigned x) {    
    // split the given bits of sign exponent and fraction, combine to return

    unsigned int sign = (x & 0x80000000) >> 31;
    unsigned int expo = (x & 0x7F800000) >> 23;
    unsigned int frac = (x & 0x007fffff);

    return (sign << 31) | (expo << 23) | frac;
}

I'm unsure however how I could compute the halved or doubled values from this floating point representation.

unsigned doubled(unsigned x) {
    // get float
    // float = unsigned int to float
    // doubleFloat  = 2*f
    // if float is not a number
        // return unsigned float
    // else return unsigned integer of half float

    unsigned int sign = (x & 0x80000000) >> 31;
    unsigned int expo = (x & 0x7F800000) >> 23;
    unsigned int frac = (x & 0x007fffff);

    if (expo == 0xff)
        return uf;
    else ...
}
1
  • 1
    Just change exponent. Float = Fraction * 2^exponent * (sign ? -1 : 1). Note, here exponent is a signed value. – Vyacheslav Napadovsky Jul 21 '16 at 4:51
6

It seems that you are using IEEE 754 to represent Float values.

If you want to double the binary representation, you just need to increment by 1 the expoent. The same is true if you want to half, just decrement by 1

Remember that this is true only if your number is in normal range, including even after doubling or halving

4
  • simply bit shifting the exponent by 1 << or >>? – Silverfin Jul 21 '16 at 5:26
  • If numbers are in normal range, just increment / decrement (exp += 1 or exp -= 1) – Amadeus Jul 21 '16 at 5:27
  • how do things change if they're denormalized? – Silverfin Jul 24 '16 at 5:35
  • If they are at subnormal range, you do shifts (number <<= 1 to double, and number >>=1 to half). Again, after that, verify if number is still in subnormal range – Amadeus Jul 26 '16 at 2:02

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.