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I have int in python that I want to reverse

x = int(1234567899) I want to result will be 3674379849

explain : = 1234567899 = 0x499602DB and 3674379849 = 0xDB029649

How to do that in python ?

5
  • convert int to hex-string (hint: python has built-in function hex), reverse string, convert string to int again.
    – Heike
    Aug 27, 2020 at 6:31
  • 2
    It looks like you are trying to convert from little-endian to big-endian representation vice versa. Am I correct?
    – tayken
    Aug 27, 2020 at 6:34
  • 1
    In that case, you probably want struct.pack and struct.unpack. Aug 27, 2020 at 6:38
  • Does this answer your question? Python - Decimal to Hex, Reverse byte order, Hex to Decimal
    – n00by0815
    Aug 27, 2020 at 6:45
  • 1
    I don't understand the question. If I need to read potential answers to guess the actual question, I feel there need more details / explanations in the question itself.
    – Pac0
    Aug 27, 2020 at 6:57

2 Answers 2

8
>>> import struct
>>> struct.unpack('>I', struct.pack('<I', 1234567899))[0]
3674379849
>>>

This converts the integer to a 4-byte array (I), then decodes it in reverse order (> vs <).

Documentation: struct

1

If you just want the result, use sabiks approach - if you want the intermediate steps for bragging rights, you would need to

  • create the hex of the number (#1) and maybe add a leading 0 for correctness
  • reverse it 2-byte-wise (#2)
  • create an integer again (#3)

f.e. like so

n = 1234567899
# 1
h = hex(n)              
if len(h) % 2:    # fix for uneven lengthy inputs (f.e. n = int("234",16))
    h = '0x0'+h[2:]
# 2 (skips 0x and prepends 0x for looks only)
bh = '0x'+''.join([h[i: i+2] for i in range(2, len(h), 2)][::-1])
# 3
b = int(bh, 16)
print(n, h, bh, b)

to get

1234567899 0x499602db 0xdb029649 3674379849

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