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I got tasked with writing a Python script that would output the longest chain of consecutive words of the same length from a sentence. For example, if the input is "To be or not to be", the output should be "To, be, or".

text = input("Enter text: ")
words = text.replace(",", " ").replace(".", " ").split()
x = 0
same = []
same.append(words[x])

for i in words:
    if len(words[x]) == len(words[x+1]):
        same.append(words[x+1])
        x += 1
    elif len(words[x]) != len(words[x+1]):
        same = []
        x += 1
    else:
        print("No consecutive words of the same length")

print(words)
print("Longest chain of words with similar length: ", same)

In order to turn the string input into a list of words and to get rid of any punctuation, I used the replace() and split() methods. The first word of this list would then get appended to a new list called "same", which would hold the words with the same length. A for-loop would then compare the lengths of the words one by one, and either append them to this list if their lengths match, or clear the list if they don't.

if len(words[x]) == len(words[x+1]):
                         ~~~~~^^^^^
IndexError: list index out of range

This is the problem I keep getting, and I just can't understand why the index is out of range.

I will be very grateful for any help with solving this issue and fixing the program. Thank you in advance.

3
  • 1
    What do you think words[x+1] is when x is the index of the last item in words?
    – MattDMo
    Dec 3, 2022 at 18:59
  • if x has been incremented enough times so that it is the last index in the list, x+1 will be out of range. Dec 3, 2022 at 19:00
  • By the way, your loop never uses the i variable, which is a clue that you're using the wrong kind of loop... Dec 3, 2022 at 19:03

2 Answers 2

2

using groupby you can get the result as

from itertools import groupby
string = "To be or not to be"
sol = ', '.join(max([list(b) for a, b in groupby(string.split(), key=len)], key=len))
print(sol)
# 'To, be, or'
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  • Wonder what should be expected for a tie - like this: S = 'To be or not too bee that is a question'
    – Daniel Hao
    Dec 3, 2022 at 19:30
  • 1
    @DanielHao more condition need to be provide by OP for that, regarding which one to consider in such case, first occurence pattern or word having more length Dec 3, 2022 at 20:29
  • Agreed. It's for OP to clarify... Sure. +1 smart use of two keys here
    – Daniel Hao
    Dec 3, 2022 at 20:32
  • I think according to task conditions, the first occurrence pattern should be the output in such case Dec 3, 2022 at 20:43
-1

len() function takes a string as an argument, for instance here in this code according to me first you have to convert the words variable into a list then it might work.

Thank You !!!

5
  • len() does take a string. words is a list. words[x] is one element in that list. in this case words[x] is a string, so len(words[x]) is allowable. the problem is when x is at the end of the list and len(words[x+1]) tries to reference the word AFTER the last word in the list. Dec 3, 2022 at 19:12
  • @user3055756 I tried changing the script so that x = 1 initially and words[x-1] and words[x] are used instead of words[x] and words[x+1], and yet I still get the same problem. Is there a solution to this you could suggest? Thanks a lot Dec 3, 2022 at 19:20
  • When you try to look at x-1 you are referencing array/list element you have almost the same problem. When x=0 (the first element), x-1 = -1 and that is not a valid element either. I would try to change your looping mechanism. Now you are using "for each in list"-style mechanism that loops through all elements of words[]. Instead, use a looping mechanism that steps from 0 to the total # of words -1. I'm learning python myself, so I don't know what looping mechanism that is (while..do?), but it is how the problem is solved in other programming languages. Dec 3, 2022 at 20:14
  • @user3055756 Thanks for the suggestion, I will try a different loop and see how it works. Have a great day! Dec 3, 2022 at 20:27
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    Dec 7, 2022 at 10:06

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