Right now I'm trying to make a simple tic-tac-toe game, and while user chooses the sector of the board for their next move I need to check if the input is a single-digit natural number. I don't think just making a ['1','2','3'...'9'] list and calling an in statement for it is the most optimal thing. Could you suggest anything?
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Now I at least know all the possible ways. Thanks everyone for the answers!– OwlythesovaJan 1, 2015 at 1:59
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6 Answers
You can check if a string, x, is a single digit natural number by checking if the string contains digits and the integer equivalent of those digits is between 1 and 9, i.e.
x.isdigit() and 1 <= int(x) <= 9
Also, if x.isdigit() returns false, int(x) is never evaluated due to the expression using and (it is unnecessary as the result is already known) so you won't get an error if the string is not a digit.
Using len and str.isdigit:
>>> x = '1'
>>> len(x) == 1 and x.isdigit() and x > '0'
True
>>> x = 'a'
>>> len(x) == 1 and x.isdigit() and x > '0'
False
>>> x = '12'
>>> len(x) == 1 and x.isdigit() and x > '0'
False
Alternative: using len and chained comparisons:
>>> x = '1'
>>> len(x) == 1 and '1' <= x <= '9'
True
>>> x = 'a'
>>> len(x) == 1 and '1' <= x <= '9'
False
>>> x = '12'
>>> len(x) == 1 and '1' <= x <= '9'
False
Why not just use
>>> natural = tuple('123456789')
>>> '1' in natural
True
>>> 'a' in natural
False
>>> '12' in natural
False
Checking for membership in a small tuple you initialize once is very efficient, a tuple in particular over a set since it's optimized for small numbers of items. Using len and isdigit is overkill.
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Well, I just wanted to know a more compact way of checking without the need to print the whole natural number row. Jan 1, 2015 at 1:40
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@Owlythesova but it's the best way to do it and very fast. Checking a
tupleis also faster than alist(python can optimize this membership check since tuples are immutable). Two function calls has to be slower but I haven't made any timings– jamylakJan 1, 2015 at 1:41 -
@Owlythesova, If you don't want to list them manually, you can use
string.digits[1:]– falsetruJan 1, 2015 at 1:48 -
1@PM2Ring You are going too far into this, this code is not the bottleneck.– jamylakJan 1, 2015 at 5:11
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1That would make sense but it is ludicrous to think that would really ever make a difference– jamylakJan 1, 2015 at 5:46
Following on console could help :
>>> x=1
>>> x>0 and isinstance(x,int)
True
Although there are many answers for your question , but , with all due respect, i believe there are some bugs that may happen through using them.
One of them is that using x.isdigit() , this works! but just for strings!!. but what if we wanna check another types such as float? and another problem is that using this method will not work for some numbers such as 12.0. right!. it's a natural number but pyhton will find this as a float. so i think we can check natural numbers by using this function :
def checkNatNum(n):
if str(n).isdigit() and float(n) == int(n) and int(n) > 0:
return True
else:
return False
I ensure you this will do the process fine.
answered Aug 24, 2020 at 18:11
I don't know why are people pushing this to next level. Simply for natural number you can write,
int(x) > 0
And for the range issue:
0 < int(x) <= 9
Obviously numbers lying within the range are natural numbers.
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if x was eqaul to something like 12.45 , your code won't help any one Aug 24, 2020 at 18:25
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