54
' ' in word == True

I'm writing a program that checks whether the string is a single word. Why doesn't this work and is there any better way to check if a string has no spaces/is a single word..

3
  • What do you mean it doesn't work? Do you get syntax error? Do you get no errors at all? Commented Jul 21, 2010 at 16:12
  • Also, it's ok to paste code in your comment, just make sure you format it. Commented Jul 21, 2010 at 16:17
  • 6
    Never use expression == True to test for truth. Just use expression! Commented Jul 21, 2010 at 16:21

12 Answers 12

103

== takes precedence over in, so you're actually testing word == True.

>>> w = 'ab c'
>>> ' ' in w == True
1: False
>>> (' ' in w) == True
2: True

But you don't need == True at all. if requires [something that evalutes to True or False] and ' ' in word will evalute to true or false. So, if ' ' in word: ... is just fine:

>>> ' ' in w
3: True
3
  • 4
    It won't match all kinds of spaces : \n, \r, ' ', ... If he needs to match them, it's better to use re module, with the match method on \s. It will do a better tokenizer. Commented Jul 21, 2010 at 16:29
  • 3
    Programming pet peeve: ... == True or ... != False, or any variant thereof.
    – Stephen
    Commented Jul 21, 2010 at 16:45
  • 2
    Jukka Suomela's explanation is a little more correct than mine, by the way. By my explanation, you'd be testing word==True then ' ' in True, which doesn't make sense. Commented Jul 21, 2010 at 17:42
26

Write if " " in word: instead of if " " in word == True:.

Explanation:

  • In Python, for example a < b < c is equivalent to (a < b) and (b < c).
  • The same holds for any chain of comparison operators, which include in!
  • Therefore ' ' in w == True is equivalent to (' ' in w) and (w == True) which is not what you want.
1
  • 1
    Wow. I knew that < and == worked the way you described, but I didn't realize in did, too. I had assumed combining them would be seen as a in (b == c) or (a in b) == c. To see that it's really interpreted as Jukka says, you can try 'a' in 'abc' == 'abc'. It's True, but it would be False if it were interpreted in either of the other ways I suggested. Commented Jul 14, 2015 at 22:25
16

There are a lot of ways to do that :

t = s.split(" ")
if len(t) > 1:
  print "several tokens"

To be sure it matches every kind of space, you can use re module :

import re
if re.search(r"\s", your_string):
  print "several words"
1
4

You can try this, and if it will find any space it will return the position where the first space is.

if mystring.find(' ') != -1:
    print True
else:
    print False
2
  • mystring.find(' ') != -1 is boolean. Commented Jul 22, 2010 at 12:08
  • I.e., this can be shortened to print mystring.find(' ') != -1 Commented Jul 22, 2010 at 12:12
3

You can use the 're' module in Python 3.
If you indeed do, use this:

re.search('\s', word)

This should return either 'true' if there's a match, or 'false' if there isn't any.

2
  • 1
    This is not equivalent (also matches \t\n\r\f\v next to normal spaces) and introduces a lot of overhead. A quick check revealed 48.5ns for " " in word versus 873ns for re.search("\s", word), more than one order of magnitude slower. The regex should only be used for genuinely more complex tasks.
    – Alex Povel
    Commented May 3, 2020 at 9:21
  • 1
    Its more important to actually perform the action that OP wants. In this case 900ns or 50ns is most likely not relevant unless they are parsing a whole book word-per-word compared to not detecting if a string contains whitespace.
    – Regretful
    Commented Apr 11, 2023 at 12:22
1

You can say word.strip(" ") to remove any leading/trailing spaces from the string - you should do that before your if statement. That way if someone enters input such as " test " your program will still work.

That said, if " " in word: will determine if a string contains any spaces. If that does not working, can you please provide more information?

1

You mentioned whitespace in general, rather than just spaces. I stumbled upon a solution with isidentifier. Per W3 schools:

A string is considered a valid identifier if it only contains alphanumeric letters (a-z) and (0-9), or underscores (_). A valid identifier cannot start with a number, or contain any spaces.

So, if this matches your requirements, isidentifier is quick and easy to use.

Somebody mentioned efficiency of regex, and I was curious:

import timeit

setup='import re; rs="\s"; rc=re.compile(rs); s="applebananacanteloupe"'
stm1='re.search(rs,s)'
stm2='re.search(rc,s)'
stm3='" " in s'
stm4='s.isidentifier()'

timeit.repeat(stm1,setup)
# result: [0.9235025509842671, 0.8889087940042373, 0.8771460619755089, 0.8753634429886006, 1.173506731982343]

timeit.repeat(stm2,setup)
# results: [1.160843407997163, 1.1500899779784959, 1.1857644470001105, 1.1485740720236208, 1.2856045850203373]
# compiled slower than uncompiled? Hmm, I don't get regex...

timeit.repeat(stm3,setup)
# [0.039073383988579735, 0.03403249100665562, 0.03481135700712912, 0.034628107998287305, 0.03392893000273034]

timeit.repeat(stm4,setup)
# [0.08866660299827345, 0.09206177099258639, 0.08418851799797267, 0.08478381999884732, 0.09471498697530478]

So, isidentifier is almost as fast as in, and 10x faster than regex. Note that there is technically no guarantee that python's idea of what an identifier is won't change - but it's also likely that if it did, your code would need some rework anyway.

1
  • 1
    If you change stm2 to be stm2='rc.search(s)' you will notice that the compiled query is faster than the uncompiles query, it's 2X to 4X faster on my machine than the uncompiled version.
    – Ali
    Commented Nov 27, 2023 at 5:56
0
word = ' '
while True:
    if ' ' in word:
        word = raw_input("Please enter a single word: ")
    else:
        print "Thanks"
        break

This is more idiomatic python - comparison against True or False is not necessary - just use the value returned by the expression ' ' in word.

Also, you don't need to use pastebin for such a small snippet of code - just copy the code into your post and use the little 1s and 0s button to make your code look like code.

0

Use this:

word = raw_input("Please enter a single word : ")
while True:
    if " " in word:
        word = raw_input("Please enter a single word : ")
    else:
        print "Thanks"
        break
0
# The following would be a very simple solution.

print("")
string = input("Enter your string :")
noofspacesinstring = 0
for counter in string:
    if counter == " ":
       noofspacesinstring += 1
if noofspacesinstring == 0:
   message = "Your string is a single word" 
else:
   message = "Your string is not a single word"
print("")   
print(message)   
print("")
0
def word_in(s):
   return " " not in s 
1
  • 4
    maybe consider telling the author of the question why his solution does not work and why you think yours is better.
    – Ente
    Commented Jun 22, 2020 at 7:47
0

You can see whether the output of the following code is 0 or not.

'import re
x='  beer   '
len(re.findall('\s', x))

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