When we give solution to a coding problem , why 1 out of 13 case fails ?

The link you provided leads to the code coach itself.

Prince Yadav, just store your attempt in a code in Playground and link it here, then we'll take a look at the problem. Or you copypaste it here, since they're generally short. Lynx, giving him *your* solution will not help him understand *his* mistake.

Ok sorry for it

Your result comes out as strong even if you have less than 2 of the symbols in it.

Doesn't isa(n) always return True ?

Lynx no it returns 1 when the character match with 7 special characters

'if x or y or z' doesn't mean what you think it means. It means: if x is truthy or y is truthy or z is truthy. Every string that's not empty ('') is truthy, so that function indeed always returns 1. You probably want to find out if n is one of the symbols. One pattern you can use: if n in (x, y, z): ...

Prince Yadav line 27. Just add "or x<2"

#password validator a=input() def isd(n): if ord(n)<58 and ord(n)>47: return 1 return 0 def isa(n): if '!' or '&' or '*' or '#' or '#x27; or '%' or '@': return 1 return 0 def lv(a): b=len(a) if b>=7: return 1 return 0 def pv(a): if not lv(a) : return 0 z=0 x=0 for i in a: if i==' ': return 0 if isd(i): z+=1 if isa(i): x+=1 if z<2: return 0 return 1 if pv(a): print ('Strong') else : print ('Weak')

HonFu As you suggested, I made a change in my code Link: https://code.sololearn.com/cb8GAiZf7k6N/?ref=app Still it is failing in test case 8

I think the error is not inside special character validator fxn It's somewhere else Please help me

Prince Yadav you still have to check if there more than 2 special chars.

Thanks to all Now it is working

This is an approach import re def password_validation(password): numbers = re.findall(r'[0-9]', password) specialChars = re.findall(r'\W', password) if len(password) > 6 and len(numbers) > 1 and len(specialChars) > 1: return 'Strong' return 'Weak' print(password_validation(input()))