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I need to check if string contains only predefined list of symbols and doing something like:

my_string = 'qwer123asd!@#$%^'
tmp = str.maketrans({'0': None, 'x': None, '#': None, '$': None, 'q': None, 'i': None})
if my_string.translate(tmp) == '':
    print("Only predefined symbols!")

Is there a better way to achieve this?

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2 Answers 2

up vote 4 down vote accepted
my_string = 'qwer123asd!@#$%^'
predef = set('0x#$qi')

if set(my_string).issubset(predef):
    print "only predefined symbols"
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1  
This is neat. You can also use set(my_string) - predef to get the characters that are not in the predefined set, which could make error-handling easier. –  Johnsyweb Apr 25 '12 at 8:27
    
awesome, thanks –  user1355585 Apr 25 '12 at 8:35

I'm often advocating alternatives to regexp, since I think it is often used as a solution looking for a problem, but in this case I think it may be appropriate.

import re
pat = re.compile("^[0x#$qi]*$")
my_string = 'qwer123asd!@#$%^'
if pat.match(my_string):
    print("Only predefined symbols!")

Just make sure that if "]" is one of your predefined symbols it is the first symbol inside the square brackets.

A quick comparison with the set method of euromino shows that this is 3 times faster, using the strings you've used in your question. The creation of pat and predef was excluded from the timing, so this is the "repeated use" scenario. If you include them, the difference is less, but regexp is still faster.

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This may be faster, but I see a possible error source in the creation of pat, where you have to implement the right positioning of possible appearance of ]. Also if ^ is contained, it cannot be at the first position and " has to be escaped and maybe there's still something we forgot. Too complicated if the list of predefined symbols changes during the execution. –  eumiro Apr 25 '12 at 8:29
    
Timeit shows @eumiro's solution to run in 80% of the time of yours on my laptop. –  Johnsyweb Apr 25 '12 at 8:31
    
@eumiro You're right, these are valid and important concerns, and one of the reasons I'm sceptical of using regexps if I can avoid it. –  Lauritz V. Thaulow Apr 25 '12 at 8:33
    
@Johnsyweb strange. I'm using python 2.7, can that be the reason? Example tests: python -m timeit -s 'import re; a = "qwer123asd!@#$%^"; b = "0x#$qi"; p = re.compile("^[{0}]*$".format(b))' 'p.match(a)' and python -m timeit -s 'a = "qwer123asd!@#$%^"; b = "0x#$qi"; p = set(b)' 'set(a).issubset(p)' –  Lauritz V. Thaulow Apr 25 '12 at 8:34
    
@lazyr: Here's another run: pastebin.com/1EWEHskF –  Johnsyweb Apr 25 '12 at 8:39

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