First clear solution for Acceptable Password III by Red_Ale - python coding challenges

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First solution in Clear category for Acceptable Password III by Red_Ale

def is_acceptable_password(word):
    return len(word) > 6 and not word.isdigit() and True in [x.isdigit() for x in word]


if __name__ == "__main__":
    # These "asserts" are used for self-checking and not for an auto-testing
    assert is_acceptable_password("short") == False
    assert is_acceptable_password("muchlonger") == False
    assert is_acceptable_password("ashort") == False
    assert is_acceptable_password("muchlonger5") == True
    assert is_acceptable_password("sh5") == False
    assert is_acceptable_password("1234567") == False
    print("Coding complete? Click 'Check' to earn cool rewards!")

Nov. 28, 2021

Comments:

H0r4c3 on April 29, 2023, 9:47 p.m.
Simple and clear! I used re.findall('[\D]+[\d]+', password) for the second part, because I am a fan of regex.

Red_Ale on April 30, 2023, 2:55 a.m.
I am trying to learn and use it. Still a rookie on that module

H0r4c3 on April 30, 2023, 8:11 a.m.
Me, too, I am still learning. That's why I like Python very much: you learn all the time.

Strings Theory

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