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Say that I have a 4 character string, and I want to convert this string into a byte array where each character in the string is translated into its hex equivalent. e.g.

str = "ABCD"

I'm trying to get my output to be

array('B', [41, 42, 43, 44])

Is there a straightforward way to accomplish this?

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What you want is not possible, at least not in this exact form. A bytearray of type B contains 1-byte integers, and they are always represented in decimal. – Tim Pietzcker Jul 24 '12 at 4:50

4 Answers 4

up vote 21 down vote accepted

encode function can help you here, encode returns an encoded version of the string

In [44]: str = "ABCD"

In [45]: [elem.encode("hex") for elem in str]
Out[45]: ['41', '42', '43', '44']

or you can use array module

In [49]: import array

In [50]: print array.array('B', "ABCD")
array('B', [65, 66, 67, 68])
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however as you can see,, array module gives a ascii value of string elements, which doesn't match with your expected output – avasal Jul 24 '12 at 4:51
Thanks. These ideas give me enough to work with! – Randall Jul 24 '12 at 4:59
Why not use map? – Pradyun May 4 '13 at 12:14

Just use a bytearray() which is a list of bytes.


s = "ABCD"
b = bytearray()


s = "ABCD"
b = bytearray()
b.extend(map(ord, s))

By the way, don't use str as a variable name since that is builtin.

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This is broken in 3.4: TypeError: an integer is required – Kevan Ahlquist Apr 10 at 2:43
@KevanAhlquist my bad. Fixed it now. – Pithikos Apr 13 at 15:29
s = "ABCD"
from array import array
a = array("B", s)

If you want hex:

print map(hex, a)
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An alternative to get a byte array is to encode the string in ascii: b=s.encode('ascii').

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