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The Task:
Write a program that checks if a word supplied as the argument is an Isogram. An Isogram is a word in which no letter occurs more than once.

Create a method called is_isogram that takes one argument, a word to test if it's an isogram. This method should return a tuple of the word and a boolean indicating whether it is an isogram.

If the argument supplied is an empty string, return the argument and False: (argument, False). If the argument supplied is not a string, raise a TypeError with the message 'Argument should be a string'.

Example:

is_isogram("abolishment")

Expected result:

("abolishment", True)

The Visible test

from unittest import TestCase

class IsogramTestCases(TestCase):
  def test_checks_for_isograms(self):
    word = 'abolishment'
    self.assertEqual(
      is_isogram(word),
      (word, True),
      msg="Isogram word, '{}' not detected correctly".format(word)
    )

  def test_returns_false_for_nonisograms(self):
    word = 'alphabet'
    self.assertEqual(
      is_isogram(word),
      (word, False),
      msg="Non isogram word, '{}' falsely detected".format(word)
    )

  def test_it_only_accepts_strings(self):
    with self.assertRaises(TypeError) as context:
      is_isogram(2)
      self.assertEqual(
        'Argument should be a string',
        context.exception.message,
        'String inputs allowed only'
      )

My Solution:

def is_isogram(word):
    if type(word) != str:
        raise TypeError('Argument should be a string')

    elif word == "":
      return (word, False)
    else:
        word = word.lower()
        for char in word:
            if word.count(char) > 1:
                return (word, False)
            else:
                return (word, True) 

But it the function refuses to pass some hidden test: What is wrong with my solution? Is there another elegant way of writing this function?

  • 2
    return (word,True) should be outside the for loop. – Jean-François Fabre Jan 26 '17 at 9:52
  • Please fix your indentation in your code snippet – Sayse Jan 26 '17 at 9:53
  • While this isn't off-topic here, you may be able to find more constructive feedback on the Code Review SE (codereview.stackexchange.com) (since your code's mostly working, and only failing what's supposedly an edge case). – Jules Jan 26 '17 at 13:02
  • @Jules Thanks, I will do just that – Nifemi Sola-Ojo Jan 26 '17 at 22:33
  • @Jules I think this is just fine for SO; the code requires de-bugging and and a better solution is asked for. – Chris_Rands Jan 27 '17 at 10:04

10 Answers 10

5

I'm not sure your search should be case insensitive so perhaps you should remove word = word.lower(), but your main issue is return terminates the function so you current code needs to only return True after all tests have been conducted (i.e. outside of the loop):

for char in word:
    if word.count(char) > 1:
        return (word, False)
return (word, True)

Anyway, a better way is to use set() to remove all duplicates from your string and then compare the lengths; also use isinstance() to check if word is a string. You can use if w to check for empty strings . You don't need parentheses with return, the comma is enough to return a tuple:

def is_isogram(word):
    if isinstance(word,str):
        w = word.lower() # assuming you want a case in-sensitive search
        return word, len(w) == len(set(w)) if w else False
    else:
        raise TypeError('Argument should be a string')

Examples:

is_isogram('abolishment')
# ('abolishment', True)
is_isogram('happy')
# ('happy', False)
is_isogram('')
# ('', False)
is_isogram(1)
# TypeError: Argument should be a string
|improve this answer|||||
2

I have tried in this way:

def isogram(n):
 if not isinstance(n, str):
    return n,False
 elif len(n) < 1:
    return n,False
 n = n.lower()
 if len(n) == len(set(n)):
    return n,True
 else:
    return n,False
  • The second line checks if the input n is a string, if it isn't it returns False.
  • The line 4 checks if the length of the input is smaller than 1, in that case the input is empty and we cannot check if it is an isogram or not.
  • 'n = n.lower()' in line 6 assures us that the input becomes a string with lowercase letters.
  • In line 7 we check if the length of the input is equal to the length of the set(n). The function set() converts a collection or a sequence or an iterator object into a set. For example: set('lists') returns {'s', 't', 'l', 'i'}, as you can see the letter 's' which appears twice in 'lists', does not appear in the set. This is useful to check if the length of the set is equal to the length of the input, if there is a letter which appears twice in the input the condition is False.

I hope this explanation makes the script clear.

|improve this answer|||||
  • comments on what the code does would be appreciated – Qchmqs Apr 1 '17 at 14:01
  • I've edited my comment above adding some explanations. I hope it helps you. @Qchmqs – Emanuela Masucci Apr 1 '17 at 15:11
  • I already understood it tho, but having a better quality answer is good for everyone – Qchmqs Apr 1 '17 at 16:11
1

The reason for this

"But it the function refuses to pass some hidden test: What is wrong with my solution? Is there another elegant way of writing this function?"

i.e refuses to pass the tests is pretty simple.

elif word == "": 

should be

elif word == " ":

as per the unit test

if argument==" " :
    return(argument,False)

You are forgetting the whitespace. Hope this helps the next person who comes searching.

|improve this answer|||||
1

This works for me. If there are more than one digit it will be added to a new string. If this new string is empty the function will return True. Else False. Only " if word.count(char) > 1: " won´t do it. At least not for me.

def isagram (word):
    if not isinstance(word, str):
        return (False, word)
    if not word:
        return (False, word)
    word.lower()
    multi_char = ''
    for char in word:
        if word.count(char) > 1:
            multi_char += char
    return (False, word) if multi_char else (True, word)
|improve this answer|||||
  • Sorry, I added some more explanation. Try it. I´m sure there are much better solutions but it solved my problem. – Christian Sep 13 '18 at 20:35
0

Here is one way to solve the problem:

def is_isogram(argument):
  word_seen=set()
  if type(argument) != str:
    raise TypeError('Argument should be a string')
  if argument==" " :
    return(argument,False)
  argument.lower()
   for letter in argument:
    if letter in word_seen:
      return(argument,False)
    word_seen.add(letter)
  return (argument,True)

Equivalently, I also tried the following to remove all spaces in strings:

def is_isogram(argument):
  word_seen=set()
  if type(argument) != str:
    raise TypeError('Argument should be a string')
  if argument==" " :
    return(argument,False)
  argument.lower()
  argument = ''.join(argument.split())
  for letter in argument:
    if letter in word_seen:
      return(argument,False)
    word_seen.add(letter)
  return (argument,True)
|improve this answer|||||
0

i solved it here:

def is_isogram(word):

for letter in word:
    if word.count(letter) > 1:
        return False
else:
    return True

print is_isogram("Hello")

|improve this answer|||||
0
def is_Isogram(words):
cover_words = words.lower()

letter_list = []

for letter in cover_words:
    if letter.isalpha():
        if letter in letter_list:
            return False
        letter_list.append(letter)
return True

if __name__ == '__main__':
      print(is_Isogram('Machine'))
      print(is_Isogram('Geeks'))`
|improve this answer|||||
0
def is_isogram(string):
    if type(string) != str:
        raise TypeError('Argument should be a string')
    elif string == " ":
        return (string, False)
    else:
        for i in string:
            if string.count(i) > 1:
                return (string, False)
    return (string, True)
|improve this answer|||||
  • 1
    Please add an explanation of how to implement and use the code above – Dov Benyomin Sohacheski Aug 27 '17 at 15:14
-1

You just need an extra conditional statement to check if the characters in the word are solely alphabets (i.e. no numbers or symbols) whilst checking if the characters are repeated:

def is_isogram(word):
    if type(word) != str:
        raise TypeError("Argument should be a string")
    if len(word) < 1:
        return (word, False)
    word = word.lower()

    for char in word:
        if word.count(char) > 1 or \
        char not in "abcdefghijklmnopqrstuvwxyz":  # this checks that the char is an alphabet
            return (word, False)
    return (word, True)

I guess this should help.

|improve this answer|||||
-1

i found this correct

    def is_isogram(word):
if type(word)!=str: raise TypeError("Argument should be a String") elif word.strip()=="": return(word,False) else: word =word.lower() for char in word: if word.count(char) >1: return (word ,False) else: return(word ,True)

|improve this answer|||||
  • Please consider adding some text.. Whats the difference, ..? – Finduilas May 23 '17 at 8:56

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