Start with a number whose mantissa is your number (00000011 in your example) and whose exponent is 01111111 (127, which is how 0 is stored in excess-of-127)
Count how many bits are from the LSb to the last set bit (not included). For each bit counted, add 1 to the exponent.
In your example: there are only one bit from the LSb to the last (most significant) bit set, so the exponent is added by 1 resulting in 128 (10000000).
Shift left your mantissa (your original number) so the left-most set bit is lost. Take into account that the shift must be performed using a variable capable of holding at least 23 bits. So in your example, the original mantissa is 00000000000000000000011 . You must shift left it until the left-most '1' is lost, resulting in 10000000000000000000000
About the sign, if the original number is in 2-complement, simply take the MSb, and that will be your sign. In your example, 0 (positive)
So your result will be:
Sign : 0
Exponent: 10000000
Mantissa: 10000000000000000000000
Another example: convert the short int number -234 into a float.
-234 using 2-complement is stored as 1111111100010110 (16 bits)
From here it's easy to get the sign: 1 (the MSb)
We must work with the absolute magnitude, so we complement the number to get the positive (magnitude) version. We can do it by xoring it with 1111111111111111, then adding 1. This gives us 0000000011101010 (234)
Initial mantissa (using 23 bits): 00000000000000011101010
Initial exponent: 01111111 (127)
Count how many bits are from the LSb to the left-most set bit, withouth including it. There are 7 bits. We add this to our exponent: 127+7=134 = 10000110
The mantissa is shifted left until the left-most set bit is gone. This gives us:
11010100000000000000000
Our number will be: 1 10000110 11010100000000000000000
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