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May be a little too many for today.. but meh.

This problem is pretty confusing to me. This function takes a list of strings as a parameter and returns every string that is a substring of the one that precedes it. So

  1. ["hope", "hop", "hopefully", "test", "testing"] will return ['hop']
  2. ["hopefully", "hope", "hop", "testing", "test"] will return ['hope', 'hop', 'test']

Excuse the mess of code here, I'm still learning.

def findSubStrs(lst):
'list ==> list, return list of all strings that are substrings of their predecessor in lst'
res = []
for a in lst:
    if len(int(a-1)) > len(lst):
        res = res + [a]
return res

I figured that len(int(a-1)) would work to check the preceeding string, but I just got the error message "TypeError: unsupported operand type(s) for -: 'str' and 'int'" The only result I found that worked was len(a) < 3 or some other int, but that doesn't return everything I need.

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2 Answers 2

up vote 2 down vote accepted

how bout

print [my_list[i] for i in range(1,len(my_list)) if my_list[i] in my_list[i-1]]

for example

>>> def findSubStrs(my_list):
...     return [my_list[i] for i in range(1,len(my_list)) if my_list[i] in my_list[i-1]]
>>> findSubStrs(["hope", "hop", "hopefully", "test", "testing"] )
['hop']
>>> findSubStrs(["hopefully", "hope", "hop", "testing", "test"])
['hope', 'hop', 'test']

to do this without a list comprehension you can just use a simple loop

for i in range(1,len(my_list)):
    if my_list[i] in my_list[i-1]:
        print my_list[i]
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This actually worked perfectly, thank you. How would I write that so it's not in list comprehension form, however? I think at this point it'd be easier for me to actually understand it that way. –  iKyriaki Feb 4 '13 at 5:08
    
edited to show using a simple loop –  Joran Beasley Feb 4 '13 at 5:09
    
Alright, thank you very much. I understand it much better now. –  iKyriaki Feb 4 '13 at 5:13
    
the zip solution is nice because you dont have to worry about indices and list lengths ... –  Joran Beasley Feb 4 '13 at 5:15

You can use zip to get the pairs to compare:

>>> s1 = ["hope", "hop", "hopefully", "test", "testing"]
>>> [b for a,b in zip(s1, s1[1:]) if b in a]
['hop']
>>> s2 = ["hopefully", "hope", "hop", "testing", "test"]
>>> [b for a,b in zip(s2, s2[1:]) if b in a]
['hope', 'hop', 'test']

As for your code:

res = []
for a in lst:
    if len(int(a-1)) > len(lst):
        res = res + [a]
return res

This will loop over every element in lst. len(int(a-1)) will try to subtract 1 from a string, and then convert the result to an integer, and then take the length of an integer, and after that you compare that length to the length of the list len(lst). That isn't what you want. (Another answer has already explained the right way to do this using loops and indices, so I'll stop.)

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gj explaining what was wrong with OP code (TBH it was hard to tell that that code was meant to solve the problem at hand...) –  Joran Beasley Feb 4 '13 at 5:14

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