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I'm new to Python and am currently reading a chapter on String manipulation in "Dive into Python."

I was wondering what are some of the best (or most clever/creative) ways to do the following:

1) Extract from this string: "stackoverflow.com/questions/ask" the word 'questions.' I did string.split(/)[0]-- but that isn't very clever.

2) Find the longest palindrome in a given number or string

3) Starting with a given word (i.e. "cat")-- find all possible ways to get from that to another three- letter word ("dog"), changing one letter at a time such that each change in letters forms a new, valid word.

For example-- cat, cot, dot, dog

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3  
these are three separate question, having nothing in common. And in general, you don't seem to have a problem. –  SilentGhost Jan 19 '11 at 16:25
8  
the problem is he's new to the language and already looking for the 'craziest way' :-D.. btw, why is string.split('/')[1] not clever? –  Marco Mariani Jan 19 '11 at 16:28
    
@Parsetongue what do you have already? –  OscarRyz Jan 19 '11 at 16:40
    
@SilentGhost-- The above three questions were all projects I assigned myself to learn about strings. To be honest, the text I'm using isn't very instructive and people on StackOverflow always post creative solutions to problems. I was hoping to glean insight from those solutions to learn more about Python. –  Parseltongue Jan 19 '11 at 16:43
    
clever/craziest is not the same thing as best in my opinion. –  jaydel Jan 19 '11 at 16:44

3 Answers 3

up vote 2 down vote accepted

As personal exercise, here's to you, (hopefully) well commented code with some hints.

#!/usr/bin/env python2

# Let's take this string:
a = "palindnilddafa"
# I surround with a try/catch block, explanation following
try:
  # In this loop I go from length of a minus 1 to 0.
  # range can take 3 params: start, end, increment
  # This way I start from the thow longest subsring,
  # the one without the first char and without the last
  # and go on this way
  for i in range(len(a)-1, 0, -1):
    # In this loop I want to know how many 
    # Palidnrome of i length I can do, that
    # is len(a) - i, and I take all
    # I start from the end to find the largest first
    for j in range(len(a) - i):
      # this is a little triky.
      # string[start:end] is the slice operator
      # as string are like arrays (but unmutable).
      # So I take from j to j+i, all the offsets 
      # The result of "foo"[1:3] is "oo", to be clear.
      # with string[::-1] you take all elements but in the
      # reverse order
      # The check string1 in string2 checks if string1 is a 
      # substring of string2
      if a[j:j+i][::-1] in a:
        # If it is I cannot break, 'couse I'll go on on the first
        # cycle, so I rise an exception passing as argument the substring
        # found
        raise Exception(a[j:j+i][::-1])

# And then I catch the exception, carrying the message
# Which is the palindrome, and I print some info
except Exception as e:
  # You can pass many things comma-separated to print (this is python2!)
  print e, "is the longest palindrome of", a
  # Or you can use printf formatting style
  print "It's %d long and start from %d" % (len(str(e)), a.index(str(e)))

After the discussion, and I'm little sorry if it goes ot. I've written another implementation of palindrome-searcher, and if sberry2A can, I'd like to know the result of some benchmark tests!

Be aware, there are a lot of bugs (i guess) about pointers and the hard "+1 -1"-problem, but the idea is clear. Start from the middle and then expand until you can.

Here's the code:

#!/usr/bin/env python2


def check(s, i):
  mid = s[i]
  j = 1
  try:
    while s[i-j] == s[i+j]:
      j += 1
  except:
    pass
  return s[i-j+1:i+j]

def do_all(a):
  pals = []
  mlen = 0
  for i in range(len(a)/2):
    #print "check for", i
    left = check(a, len(a)/2 + i)
    mlen = max(mlen, len(left))
    pals.append(left)

    right = check(a, len(a)/2 - i)
    mlen = max(mlen, len(right))
    pals.append(right)

    if mlen > max(2, i*2-1):
      return left if len(left) > len(right) else right

string = "palindnilddafa"

print do_all(string)
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Wow! Thanks a lot. This is incredibly helpful. I will have to study up. –  Parseltongue Jan 19 '11 at 17:43
    
I've tried to get all the stuff I could writing this one, there's a little bit of many things. Glad to help. –  Enrico Carlesso Jan 19 '11 at 17:50
    
Nice answer. About 5 times faster than my solution (which is certainly not an optimal solution), but still 2x slower than the solution from @kefeizhou. –  sberry Jan 20 '11 at 0:22
    
@sberry2A, I've written another implementation, could you give it a look? –  Enrico Carlesso Jan 21 '11 at 10:45

No 3:

If your string is s:

max((j-i,s[i:j]) for i in range(len(s)-1) for j in range(i+2,len(s)+1) if s[i:j]==s[j-1:i-1:-1])[1]

will return the answer.

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2  
This looks like perl-vomit –  Aphex Jan 19 '11 at 16:59
    
I understand exactly zero percent of this answer. Awesome. –  Parseltongue Jan 19 '11 at 17:21
    
But it fails-- if you do the string "racecar" it will return "aceca" –  Parseltongue Jan 19 '11 at 17:25

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