46

How would you convert a string to ASCII values?

For example, "hi" would return 104105.

I can individually do ord('h') and ord('i'), but it's going to be troublesome when there are a lot of letters.

83

You can use a list comprehension:

>>> s = 'hi'
>>> [ord(c) for c in s]
[104, 105]
19

Here is a pretty concise way to perform the concatenation:

>>> s = "hello world"
>>> ''.join(str(ord(c)) for c in s)
'10410110810811132119111114108100'

And a sort of fun alternative:

>>> '%d'*len(s) % tuple(map(ord, s))
'10410110810811132119111114108100'
  • 1
    What was I thinking? This is much more pythonic than mine. That's what I get for trying to answer a python question right after reading a bunch of Haskell questions... +1 – Nate Dec 9 '11 at 23:45
5

If you want your result concatenated, as you show in your question, you could try something like:

>>> reduce(lambda x, y: str(x)+str(y), map(ord,"hello world"))
'10410110810811132119111114108100'
2
def stringToNumbers(ord(message)):
    return stringToNumbers
    stringToNumbers.append = (ord[0])
    stringToNumbers = ("morocco")
2

your description is rather confusing; directly concatenating the decimal values doesn't seem useful in most contexts. the following code will cast each letter to an 8-bit character, and THEN concatenate. this is how standard ASCII encoding works

def ASCII(s):
    x = 0
    for i in xrange(len(s)):
        x += ord(s[i])*2**(8 * (len(s) - i - 1))
    return x
  • 1
    How to code the reverse of it? – RaisoMos Apr 22 '18 at 2:18
2

If you are using python 3 or above,

>>> list(bytes(b'test'))
[116, 101, 115, 116]
  • 1
    Why is this annswer downvoted? – freezed Nov 5 '18 at 8:09
1

It is not at all obvious why one would want to concatenate the (decimal) "ascii values". What is certain is that concatenating them without leading zeroes (or some other padding or a delimiter) is useless -- nothing can be reliably recovered from such an output.

>>> tests = ["hi", "Hi", "HI", '\x0A\x29\x00\x05']
>>> ["".join("%d" % ord(c) for c in s) for s in tests]
['104105', '72105', '7273', '104105']

Note that the first 3 outputs are of different length. Note that the fourth result is the same as the first.

>>> ["".join("%03d" % ord(c) for c in s) for s in tests]
['104105', '072105', '072073', '010041000005']
>>> [" ".join("%d" % ord(c) for c in s) for s in tests]
['104 105', '72 105', '72 73', '10 41 0 5']
>>> ["".join("%02x" % ord(c) for c in s) for s in tests]
['6869', '4869', '4849', '0a290005']
>>>

Note no such problems.

protected by Machavity May 16 '17 at 13:05

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