1

The program I am trying to make checks for reiterances of letter in the given word, however, when the word has multiples of the same letter, for instance 'hello' has multiple 'l', the program prints an error saying that the string index is out of range, and I am curious as to why that is. I have looked at the other threads, but i am still curious as to why that is. The bottom for loop is where the issue is located.

right =""
guess=""
attempts = 6
tries = 0

print("Hangman: guess letters until you can guess the word or phrase.")
print("In this game you get six tries.")

right_str = str(input("\nEnter your word: "))

#checks to see if user input is all letters or if there are none letters in the string
while right_str.isalpha()==False:
    print("Error, only letters are accepted as an input")
    right_str = str(input("Enter your word: "))

#displays the proper amount of unknown spaces
for i in range(0, len(right_str)):
    right += "-"


print("current: " + right)
print("0 guesses so far out of 6: " + guess)

for i in range(0, 6):
    guessed = str(input("Letter guessed: "))

    if guessed.lower() in right_str.lower():
        for i in range(0, len(right_str)):
            if right_str[i] in guessed:
                right = right[:i] + guessed[i] + right[i + 1:]
                print(right)
1

Re the code segment:

if guessed.lower() in right_str.lower():
    for i in range(0, len(right_str)):
        if right_str[i] in guessed:
            right = right[:i] + guessed[i] + right[i + 1:]
            print(right)

If guessed is a single letter, what do you expect will happen in your loop when you use guessed[i]? Bottom line, you should be using guessed on its own, not attempting to index it.


By the way, while your attempts to handle varying case in your input is commendable, you've left at least one small hole in it with the third line above (not using guessed.lower()).

You'll probably find it's better to convert everything to lower (or upper) case as it's entered, and store it consistently. That way, comparisons will automatically be correct.


And, one final note, your print statement which outputs the updated right string is happening within the loop meaning that a word like hello or Mississippi is going to result in a lot of outputs for certain guesses.

If your intent is to print out the new result after all occurrences of the current letter have been added, simply move the print to outside the loop, something like (with the added changes suggested in the previous section as well):

right_str = str(input("\nEnter your word: ")).lower()
:
guessed = str(input("Letter guessed: ")).lower()
:
if guessed in right_str:
    for i in range(0, len(right_str)):
        if right_str[i] in guessed:
            right = right[:i] + guessed + right[i + 1:]
    print(right)

And, of course, there's almost always a more Pythonic way to do this:

right = "".join([right_str[i] if right_str[i] == guessed else right[i] for i in range(len(right_str))])

I'll leave that as an exercise for the reader to figure out how it works. Once you grok that, you can probably consider yourself a true Pythonista :-)

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  • Does that mean it will only replace the first appearance/index of the letter? – Veyronvenom1200 Feb 6 '17 at 1:40
  • It means that you can't index into a character beyond index 0, so most of the time you'll go out-of-bounds. – synchronizer Feb 6 '17 at 1:41
  • so, i should just delete that? – Veyronvenom1200 Feb 6 '17 at 1:43
  • @user7433120, sorry, I may have been a bit obtuse in that I asked what you thought would happen but didn't actually provided a definitive solution. Fixed that now. As per your "first occurrence" question, no, it will replace every occurrence within right because of the for .. range loop. – paxdiablo Feb 6 '17 at 1:45
  • Thanks for clarifying! Your solution worked, however, i seem to get 2 printouts. The first being --l--, and the second being --ll-. Is there any way to ignore the first? Loop maybe? – Veyronvenom1200 Feb 6 '17 at 1:50
-1

I think your problem is here: right[i + 1:] If you are in the last element, it'll give the index out of range error.

5
  • im still getting index out of range. it has no issue when dealing with single characters to replace, it only has an issue when there are multiple instances of that character – Veyronvenom1200 Feb 6 '17 at 1:36
  • Another problem seems to be the first and second for use I as index car. Can you change the first to j, for example? – Walter_Ritzel Feb 6 '17 at 1:40
  • By first and second I mean the nested for. – Walter_Ritzel Feb 6 '17 at 1:42
  • Also, guessed on that concatenation seems odd. I think it should be just guessed. – Walter_Ritzel Feb 6 '17 at 1:44
  • I think you'll find that, while "hello"[9999] will indeed generate an error, "hello"[9999:] (with the colon) works fine, giving you an empty string. – paxdiablo Feb 6 '17 at 2:11

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