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Ive been working on a question to find the longest substring in alphabetical order from a given string. I have a lot of experience in C++ but am absolutely new to python. Ive written this code

s = raw_input("Enter a sentence:")

a=0   #start int
b=0   #end integer
l=0   #length
i=0

for i in range(len(s)-1):
    j=i
    if j!=len(s)-1:
    while s[j]<=s[j+1]:
        j+=1
    if j-i>l:  #length of current longest substring is greater than stored substring
        l=j-i
        a=i
        b=j

print 'Longest alphabetical string is ',s[i:j]

But I keep on getting this error

Traceback (most recent call last):
  File "E:/python/alphabetical.py", line 13, in <module>
    while s[j]<=s[j+1]:
IndexError: string index out of range

What am I doing wrong here? Again, I am very new to python!

  • 2
    What if the string is empty? – NoChance Oct 26 '13 at 9:06
  • I think your last line should have s[a:b] instead of s[i:j]. – Michael Burr Oct 26 '13 at 9:20
  • Do not use single letter variables. In your code you even had to add comments in order to let us understand it! Simply use a -> start_index, b -> end_index, l -> length[BTW never use lowercase L. in many fonts it is too similar to a 1]. i and j are acceptable because they are standard names for indexes. – Bakuriu Oct 26 '13 at 17:06
  • If you are new to python I would highly recommend visualise python website. It allows you to see the code. – syntaxError Jun 4 '17 at 5:08
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while s[j]<=s[j+1]:
    j+=1

Can run off the end of the string.

Try:

while j!=len(s)-1 and s[j]<=s[j+1]:
    j+=1

Also think about what it means when you find the end of a sequence that's alphabetical - is there any reason to check for a longer sequence starting at some position later within that sequence?

1

You can use this simple piece of code to achieve what you want

s = 'kkocswzjfq'
char = ''
temp = ''
found = ''
for letter in s:
    if letter >= char:
        temp += letter
    else:
        temp = letter
    if len(temp) > len(found):
        found = temp
    char = letter
print(found)

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