349

I have a Python list variable that contains strings. Is there a function that can convert all the strings in one pass to lowercase and vice versa, uppercase?

1
  • Why "in one pass"? Do you contemplate the possibility of it taking multiple passes? Nov 26, 2009 at 5:44

13 Answers 13

584

It can be done with list comprehensions

>>> [x.lower() for x in ["A", "B", "C"]]
['a', 'b', 'c']
>>> [x.upper() for x in ["a", "b", "c"]]
['A', 'B', 'C']

or with the map function

>>> list(map(lambda x: x.lower(), ["A", "B", "C"]))
['a', 'b', 'c']
>>> list(map(lambda x: x.upper(), ["a", "b", "c"]))
['A', 'B', 'C']
4
  • 60
    Second proposition with map is correct but wasteful. There is no point in making a lambda function. Just use map(str.lower, ["A","B","C"])
    – fralau
    Jan 20, 2018 at 9:12
  • 1
    When I try to print a list after this call nothing changes. Why is that?
    – mimic
    Jul 5, 2018 at 17:51
  • 2
    @mimic A bit late, but for people coming across this, I'm guessing your issue was probably that you were not assigning the result of the list comprehension back to your list. Just doing to the list comprehension returns the value, but does not reassign it to the list variable. Jun 26, 2019 at 14:56
  • 1
    What is the fastest between the two? (list comprehension vs map)
    – ThePhi
    Jun 28, 2021 at 5:25
64

Besides being easier to read (for many people), list comprehensions win the speed race, too:

$ python2.6 -m timeit '[x.lower() for x in ["A","B","C"]]'
1000000 loops, best of 3: 1.03 usec per loop
$ python2.6 -m timeit '[x.upper() for x in ["a","b","c"]]'
1000000 loops, best of 3: 1.04 usec per loop

$ python2.6 -m timeit 'map(str.lower,["A","B","C"])'
1000000 loops, best of 3: 1.44 usec per loop
$ python2.6 -m timeit 'map(str.upper,["a","b","c"])'
1000000 loops, best of 3: 1.44 usec per loop

$ python2.6 -m timeit 'map(lambda x:x.lower(),["A","B","C"])'
1000000 loops, best of 3: 1.87 usec per loop
$ python2.6 -m timeit 'map(lambda x:x.upper(),["a","b","c"])'
1000000 loops, best of 3: 1.87 usec per loop
5
  • 5
    Do you know the reason behind why a list comprehension is faster than map?
    – Nixuz
    Nov 26, 2009 at 6:05
  • 6
    It isn't always faster. Here's an example where it's not: stackoverflow.com/questions/1247486/… But it's not much slower in that case. Using a lambda obviously makes a big difference. There are more examples of why it's dangerous to trust your intuition on performance issues, especially in Python.
    – Ned Deily
    Nov 26, 2009 at 7:50
  • 4
    in python 3, map wins the race, but does nothing :) Mar 7, 2018 at 19:22
  • 2
    @NedDeily map(str.lower,["A","B","C"]) is fastest is python3.7.5 Apr 28, 2020 at 8:54
  • 1
    @SHIVAMJINDAL because map doesn't do anything besides create an object that does the .lower() when you iterate over it. If you try list(map()) it's slower. Just as Jean-François said. Jun 9, 2021 at 17:08
63
>>> list(map(str.lower,["A","B","C"]))
['a', 'b', 'c']
2
  • 2
    obviously str.upper to convert to uppercase Nov 26, 2009 at 5:49
  • 3
    In Python 3 you need to pass the resulting map to the list function to get the desired result, that is, list(map(str.lower,["A","B","C"])).
    – CrouZ
    Jan 9, 2021 at 17:35
21

List comprehension is how I'd do it, it's the "Pythonic" way. The following transcript shows how to convert a list to all upper case then back to lower:

pax@paxbox7:~$ python3
Python 3.5.2 (default, Nov 17 2016, 17:05:23) 
[GCC 5.4.0 20160609] on linux
Type "help", "copyright", "credits" or "license" for more information.

>>> x = ["one", "two", "three"] ; x
['one', 'two', 'three']

>>> x = [element.upper() for element in x] ; x
['ONE', 'TWO', 'THREE']

>>> x = [element.lower() for element in x] ; x
['one', 'two', 'three']
5
  • 2
    err, using list as a variable name isn't the best choice :) Mar 7, 2018 at 19:21
  • No but, since the name is of little importance to the method being shown, it's not really relevant. However, I'll change the name in case someone wants to use the code as is.
    – paxdiablo
    Mar 8, 2018 at 7:17
  • the magic of stackoverflow: 250 votes for a python 2-only solution using lambda where it shouldn't!! well 249 now Mar 8, 2018 at 8:12
  • @Jean-FrançoisFabre, not sure why you think this is this a Python-2-only solution. As the transcripts shows, it's clearly running under Python 3.5.2. In fact, I just checked it again for confirmation. ... some time passes while I investigate ... Actually, never mind, it appears you were talking about the current accepted answer rather than this one, so you probably should be commenting there rather than here. No doubt an honest mistake. Cheers.
    – paxdiablo
    Mar 8, 2018 at 8:27
  • 1
    yeah, I wasn't criticizing yours (apart from the list stuff :)).Where do you think the UV you recently got comes from ? :) Mar 8, 2018 at 8:38
7

For this sample the comprehension is fastest

$ python -m timeit -s 's=["one","two","three"]*1000' '[x.upper for x in s]'
1000 loops, best of 3: 809 usec per loop

$ python -m timeit -s 's=["one","two","three"]*1000' 'map(str.upper,s)'
1000 loops, best of 3: 1.12 msec per loop

$ python -m timeit -s 's=["one","two","three"]*1000' 'map(lambda x:x.upper(),s)'
1000 loops, best of 3: 1.77 msec per loop
6

a student asking, another student with the same problem answering :))

fruits=['orange', 'grape', 'kiwi', 'apple', 'mango', 'fig', 'lemon']
newList = []
for fruit in fruits:
    newList.append(fruit.upper())
print(newList)
6
mylist = ['Mixed Case One', 'Mixed Case Two', 'Mixed Three']
print(list(map(lambda x: x.lower(), mylist)))
print(list(map(lambda x: x.upper(), mylist)))
4

A much simpler version of the top answer is given here by @Amorpheuses.

With a list of values in val:

valsLower = [item.lower() for item in vals]

This worked well for me with an f = open() text source.

0
1

Solution:

>>> s = []
>>> p = ['This', 'That', 'There', 'is', 'apple']
>>> [s.append(i.lower()) if not i.islower() else s.append(i) for i in p]
>>> s
>>> ['this', 'that', 'there', 'is','apple']

This solution will create a separate list containing the lowercase items, regardless of their original case. If the original case is upper then the list s will contain lowercase of the respective item in list p. If the original case of the list item is already lowercase in list p then the list s will retain the item's case and keep it in lowercase. Now you can use list s instead of list p.

1

If your purpose is to matching with another string by converting in one pass, you can use str.casefold() as well.

This is useful when you have non-ascii characters and matching with ascii versions(eg: maße vs masse).Though str.lower or str.upper fails in such cases, str.casefold() will pass. This is available in Python 3 and the idea is discussed in detail with the answer https://stackoverflow.com/a/31599276/4848659.

>>>str="Hello World";
>>>print(str.lower());
hello world
>>>print(str.upper());
HELLO WOLRD
>>>print(str.casefold());
hello world
1

You could try using:

my_list = ['india', 'america', 'china', 'korea']

def capitalize_list(item):
    return item.upper()

print(list(map(capitalize_list, my_list)))
1

Here's another solution to the problem, but I don't recommend using it. Just putting it here for completion of this topic since this solution wasn't added before.

import timeit

def foo1():
    L = ["A", "B", "C", "&"]
    return [x.lower() for x in L]
def foo2():
    L = ["A", "B", "C", "&"]
    return "%".join(L).lower().split("%")

for i in range(10):
    print("foo1", timeit.timeit(foo1, number=100000))
    print("foo2", timeit.timeit(foo2, number=100000), end="\n\n")
foo1 0.0814619
foo2 0.058695300000000006

foo1 0.08401910000000004
foo2 0.06001100000000004

foo1 0.08252670000000001
foo2 0.0601641

foo1 0.08721100000000004
foo2 0.06254229999999994

foo1 0.08776279999999992
foo2 0.05946070000000003

foo1 0.08383590000000007
foo2 0.05982449999999995

foo1 0.08354679999999992
foo2 0.05930219999999997

foo1 0.08526650000000013
foo2 0.060690699999999875

foo1 0.09940110000000013
foo2 0.08484609999999981

foo1 0.09921800000000003
foo2 0.06182889999999985
0

If you are trying to convert all string to lowercase in the list, You can use pandas :

import pandas as pd

data = ['Study', 'Insights']

pd_d = list(pd.Series(data).str.lower())

output:

['study', 'insights']

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