I'm trying to turn a string representing a Hexidecimal number into an int in python without using the int constructor.

For example if I was given

    hexstring = "802"

How would I get that to be

    output = 2050

Without doing

    int("802",16)

How would I go about this?

  • 2
    Why would you need to avoid int? – chepner Sep 8 '17 at 19:13
  • 2
    @chepner: common homework problem, with a constraint to prevent the trivial answer. – Matthew Cole Sep 8 '17 at 19:14
  • 2
    You could do int()'s work yourself, i.e. parse "802" into its component parts of (2 * 1) + (0 * 16) + (8 * 256). – John Gordon Sep 8 '17 at 19:15
  • for i in range(0,<big number>): if hex(i)[2:] == hexstring: return i -- just kidding, don't do this. – jedwards Sep 8 '17 at 19:17
  • One way would be to use the values of this list: weird_numbers = [ord(x) for x in hexdigits], perhaps in relation to the values of ord('0') and ord('a') (and/or ord('A'))... – jedwards Sep 8 '17 at 20:22
hexstring = "802"
L=len(hexstring)

def val(h_char):
    # Note you need to extend this to make sure the lowercase hex digits are processed properly
    return ord(h_char)- (55 if ord(h_char)>64 else 48)

def sumup(sum,idx):
    global hexstring # global variables are not recommended
    L=len(hexstring)
    return sum + 16**idx*val(hexstring[L-idx-1])

output = reduce(lambda a,b:sumup(a,b),range(L),0))  


Below is just an explanation of the above and doesn't add any value
Processes on a list of [0,1,2] produced by range(L).

For each idx from above list a function call is made as sumup(sum, idx)=sum+16^idx*h_digit_at_idx.(^ is ** is exp in above)

h_digit_at_idx = ord(h_char)- (55 if ord(h_char)>64 else 48)

ord(h_char) produces 48,49...57,65,66,67,68,69,70 for hex characters 0,1...10,A,B,C,D,E,F

ord(h_char)-(55 if ord(h_char)>64 else 48 produces 0,1...10,11,12,13,14,15 for respective chars.

Finally the last argument of the reduce function is 0(which is the initial sum to start with)

  • Nice, yeah my solution used a "reducer" like 16*a + b (after turning the string into a list of integers in [0,16] with a similar ord trick. – jedwards Sep 8 '17 at 20:28
  • Also this will produce unreliable results if lower case letter are input as hex digits. I hope OP can edit the statement to add that extra condition for lowercase hex digits. – kaza Sep 8 '17 at 20:34

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