6

Is there a way to use map() function with a string instead of a list? Or the map() function is meant only to work with lists?

For instance, ignoring the content of the lambda function, this code returns a map object and not a string:

def rot_13(string):
    alph = 'abcdefghijklmnopqrstuwxyz'
    return str(map(lambda i: alph[(alph.find(i)+13) % len(alph)], string))
4
  • 1
    map returns a generator in Python3, try: return "".join(list(map(lambda i: alph[(alph.find(i)+13) % len(alph)], string))) May 23, 2018 at 15:27
  • You can turn a string into a list with something like a_list = list(a_string).
    – martineau
    May 23, 2018 at 15:40
  • 1
    @MauriceMeyer map returns a map object, not a generator May 23, 2018 at 16:02
  • Yes. map always returns a map object. No matter the iterable you are napping over. It is meant to work with any iterable. May 23, 2018 at 16:06

2 Answers 2

8

Using list/generator comprehensions is preferable (more Pythonic) to map():

def rot_13(string):
    alph = 'abcdefghijklmnopqrstuwxyz'
    return ''.join(alph[(alph.find(i)+13) % len(alph)] for i in string)
0
6

python3 map returns a generator, so you have to consume it, using str.join is the easiest way:

"".join(map(lambda i: alph[(alph.find(i)+13) % len(alph)], string))

It is similar to this code:

my_string = ""
for l in map(lambda i: alph[(alph.find(i)+13) % len(alph)], string):
    my_string += l
1
  • 1
    map does not return a generator, it returns a map-object, which is an iterator but not a generator. May 23, 2018 at 16:05

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