31

I want to create a function that would check if first letter of string is in uppercase. This is what I've came up with so far:

def is_lowercase(word):
    if word[0] in range string.ascii_lowercase:
        return True
    else:
        return False

When I try to run it I get this error:

    if word[0] in range string.ascii_lowercase
                             ^
SyntaxError: invalid syntax

Can someone have a look and advise what I'm doing wrong?

3
  • range is a builtin function that returns a range of numbers, and has no place whatsoever in that code. – Wooble Sep 8 '11 at 20:22
  • 3
    avoid the pattern if [bool]: return True: else return False. you can simply use return [bool] – wim Sep 9 '11 at 2:10
  • It's just simply if word[0] in string.ascii_lowercase, there is no need for range. – David Callanan Apr 6 '18 at 9:21
64

Why not use str.isupper();

In [2]: word = 'asdf'   
In [3]: word[0].isupper()
Out[3]: False

In [4]: word = 'Asdf'   
In [5]: word[0].isupper()
Out[5]: True
4
  • This is a good answer but I was looking to learn what I did wrong in the code I wrote rather than just look for a different solution to the same problem. Thank you anyway. – Blücher Sep 8 '11 at 20:48
  • @gameFace Good point. Sometimes the best solution is a different solution. ;) – AlG Sep 9 '11 at 11:41
  • @Blücher In that case, I suggest Code Review, instead of Stack Overflow. – Ryan Jun 10 '18 at 5:28
  • one way could be is to use split. if you are sure there would be multiple words with space as separator then this might be a solution: w="Hello world w.split()[0].istitle() – Swapnil B. Apr 30 at 1:24
29

This is built-in for strings:

word = "Hello"
word.istitle() # True

but note that str.istitle looks whether every word in the string is title-cased, so this might give you a surprise:

"Hello world".istitle() # returns False!

If you just want to check the very first character of a string use this:

word = "Hello world"
word[0].isupper() # True
5
  • 1
    Visceral reaction: in the original post, before you edited, you didn't make it clear that phrases like "Hello world" and "HELlo" fail. istitle checks that every word satisfies the format of <uppercase><sequence of lowercase characters>, and it wasn't clear if that was a restriction given by the OP. Rolled back downvote – Foo Bah Sep 8 '11 at 20:26
  • Thank you, I've seen this but wanted to create something myself rather than use istitle(). – Blücher Sep 8 '11 at 20:26
  • 1
    @gameFace: Why? If this is for an excersice then I doubt it's usefulness, but if it's for real code than it's downright bad. – orlp Sep 8 '11 at 20:27
  • 2
    @nightcracker It's for an exercise, I feel I learn more by creating something new (even if it's usefulness is doubtful) rather than by blindly using ready made solutions - at least at the stage I'm right now. – Blücher Sep 8 '11 at 20:35
  • 1
    Never use istitle() function. It can lead to strange hard to find bug. For example try it "Father's".istitle() and then imagine that you have to debug the wrong behavior without knowing what this is the problem. – Salvador Dali Sep 11 '15 at 9:59
0

The syntax error stems from the fact that you need parentheses:

range(string.ascii_lowercase)

But in fact you shouldn't use range. It's as simple as:

if word[0] in string.ascii_lowercase
3
  • 2
    Testing if it is in ascii_lowercase could lead to localization problems down the road -- better to use isupper(). For example, what if the word is in Cyrillic? The first character would be upper case, but it would not be in ascii_lowercase. – Alex Martini Sep 8 '11 at 20:25
  • string.ascii_lowercase is not an integer, and isn't a valid argument to range(). – Wooble Sep 8 '11 at 20:26
  • @Wooble explaining why the syntax error arose in the first place. Hence I wrote "you shouldn't use range" afterwards, to make sure I wasn't advocating using that solution – Foo Bah Sep 8 '11 at 20:27

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