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I am trying to write a function that will look at a list of strings and determine if the next string in the list is a sub-string of the preceding string.

So if I had a list of ['Ryan', 'Rya', 'Ry', 'Testing', 'Test']

I will get back ['Ryan', 'Rya', 'Ry', 'Test'].

I'm not really sure where to even start here.

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2  
why would "Ryan" be in the result –  Ryan Haining Apr 26 '13 at 20:50
    
I suggest writing a few small functions for this. You'll find that this makes things easier. –  squiguy Apr 26 '13 at 20:51
    
yep strictly because there is nothing to compare it to. –  blandman1990 Apr 26 '13 at 20:51
    
I don't get it. If a matching substring removes the preceding string you should be left with ['Ry', 'Test'] What am I missing? –  ecline6 Apr 26 '13 at 20:56
    
It shouldn't remove the preceding string, only return the strings, in order so Ryan is the first so it stays, Rya is a sub-string of Ryan so it stays and so on Testing isn't a sub-string of Ry so it is ignored but Test is a sub-string of testing so it is returned. –  blandman1990 Apr 26 '13 at 21:00

5 Answers 5

up vote 8 down vote accepted

You can accomplish this with a list comprehension

def find_results(seq): #I'm sure you can name this function better
    return [seq[0]] + [current for previous, current in zip(seq, seq[1:]) 
                       if current in previous]

seq[1:] is your whole list except the first element

zip(a, b) generates pairs of elements for each iterable you pass it. In this case, the preceeding string, and the current string.

The in operator will test if one string is inside of another. "test" in "testing" is true

The comprehension says, for each pair of strings (current and previous), construct a list of all the current strings if the current string is a substring of the previous string

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3  
+1 for being named Ryan. Could you change your last name to "Testing"? –  Tim Pietzcker Apr 26 '13 at 21:09
    
@TimPietzcker lol, if I didn't have to wait a month to change it back –  Ryan Haining Apr 26 '13 at 21:12
    
When I do this I only get the first two, so Ryan and Rya I dont get test –  blandman1990 Apr 26 '13 at 21:12
    
@blandman1990 it works fine for me. Are your cases off? Cause 'test' in 'Testing' will be false (note the capital 'T') –  Ryan Haining Apr 26 '13 at 21:14
1  
you know when someone deletes their comments, and then you just look like you're talking to yourself? haha. –  Ryan Haining Apr 26 '13 at 21:19

Inspired by @CristianCiupitu except I feel the way he has written it is confusing. Here's a simplified version of it.

>>> from itertools import izip, tee
>>> def find_results(iterable):
    a, b = tee(iterable)
    yield next(a)
    for cur, prev in izip(a, b):
        if cur in prev:
            yield cur


>>> print(list(find_results(['Ryan', 'Rya', 'Ry', 'Testing', 'Test'])))
['Ryan', 'Rya', 'Ry', 'Test']
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+1 Indeed, the solution for Python 2 might be a bit harder to read because I wanted to show the power of generators. –  Cristian Ciupitu Apr 27 '13 at 14:03

Inspired by Ryan Haining's answer, I wrote a generator based version which works with any iterables, not just sequences:

#!/usr/bin/env python2
from itertools import izip, tee

def find_results(iterable):
    icur, iprev = tee(iterable)
    yield next(icur)
    for i in (cur for cur, prev in izip(icur, iprev) if cur in prev):
        yield i

print list(find_results(['Ryan', 'Rya', 'Ry', 'Testing', 'Test']))

The Python 3 version is a bit shorter:

#!/usr/bin/env python3
from itertools import tee

def find_results(iterable):
    icur, iprev = tee(iterable)
    yield next(icur)
    yield from (cur for cur, prev in zip(icur, iprev) if cur in prev)

print(list(find_results(['Ryan', 'Rya', 'Ry', 'Testing', 'Test'])))
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You can do:

l = ['Ryan', 'Rya', 'Ry', 'Testing', 'Test'] 
r = []
for i in range(1, len(l)):
  if l[i] in l[i - 1]:
    r.append(l[i])

or with a list comprehension:

r = [l[i] for i in range(1,len(l)) if l[i] in l[i - 1]]
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The list comprehension will cause the first element to be compared to the last element. l[0-1] –  Ryan Haining Apr 26 '13 at 21:07
    
@RyanHaining ty ryan think now it works as expected –  Twissell Apr 26 '13 at 21:13
    
Minor nitpick: don't use l for variable names. I'd suggest using L. –  Cristian Ciupitu Apr 26 '13 at 21:15
    
This doesnt seem to work for me. –  blandman1990 Apr 26 '13 at 21:29
    
Worked it some and got it to do what I wanted, Thanks –  blandman1990 Apr 26 '13 at 21:36

You could do something like this:

def f(lst):
    yield lst[0]

    for i in range(1, len(lst)):
        prev_string = lst[i - 1]
        curr_string = lst[i]

        if curr_string in prev_string:
            yield curr_string

f will be a generator, so to turn it into a list, you pass it to list:

In [36]: f(['Ryan', 'Rya', 'Ry', 'Testing', 'Test'])
Out[36]: <generator object f at 0x02F75F08>

In [37]: list(f(['Ryan', 'Rya', 'Ry', 'Testing', 'Test']))
Out[37]: ['Ryan', 'Rya', 'Ry', 'Test']
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