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I'm current;y working on an encryption/decryption program and I need to be able to convert bytes to an integer. I know that:

bytes([3]) = b'\x03'

Yet I can not find out how to do the inverse. What am I doing terribly wrong?

54

Assuming you're on at least 3.2, there's a built in for this:

int.from_bytes( bytes, byteorder, *, signed=False )

...

The argument bytes must either be a bytes-like object or an iterable producing bytes.

The byteorder argument determines the byte order used to represent the integer. If byteorder is "big", the most significant byte is at the beginning of the byte array. If byteorder is "little", the most significant byte is at the end of the byte array. To request the native byte order of the host system, use sys.byteorder as the byte order value.

The signed argument indicates whether two’s complement is used to represent the integer.


## Examples:
int.from_bytes(b'\x00\x01', "big")                         # 1
int.from_bytes(b'\x00\x01', "little")                      # 256

int.from_bytes(b'\x00\x10', byteorder='little')            # 4096
int.from_bytes(b'\xfc\x00', byteorder='big', signed=True)  #-1024
  • Ah thank you, works now :-) – Vladimir Shevyakov Nov 30 '15 at 23:15
  • 6
    if using 1 byte only ord() still works – sherpya Sep 21 '18 at 21:49
  • Thanks. Is there a difference between int.from_bytes and ord(b'\x03') for single bytes/chars? – Bill Jun 9 at 19:39
  • The only difference I can think of is that int.from_bytes can interpret the byte as a signed integer if you tell it to - int.from_bytes(b'\xe4', "big", signed=True) returns -28, while ord() or int.from_bytes in unsigned mode returns 228. – Peter DeGlopper Jun 10 at 3:50
0
int.from_bytes( bytes, byteorder, *, signed=False )

doesn't work with me I used function from this website, it works well

https://coderwall.com/p/x6xtxq/convert-bytes-to-int-or-int-to-bytes-in-python

def bytes_to_int(bytes):
    result = 0
    for b in bytes:
        result = result * 256 + int(b)
    return result

def int_to_bytes(value, length):
    result = []
    for i in range(0, length):
        result.append(value >> (i * 8) & 0xff)
    result.reverse()
    return result

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