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a simple question:

how to make a recursive list in python like this:

This is the input: A , B , C , D

The desired output:

              A | A>B | A>B>C | A>B>C>D

I tried this code:

line = "A, B , C , D"
line = line.split(',')

for i in range(len(line)):
    for j in range(i,len(line)):
             c=q+line[j]
             q=c+'>'
    c=c+'|'

but I came with a list like this:

'A > B > C > D > B > C > D > C > D|'

Any suggestions?

Thanks in Advance

share|improve this question
    
Why are so many people using range(len(iterable)) An iterable, by definition, had a iter method which ends the iteration for us, so why coding like years and years ago? Just saying... –  Apero Jul 28 '13 at 20:31
    
@Apero Offer your solution which doesn't use range. –  ovgolovin Jul 29 '13 at 19:21
    
Just have a look to Roman solution below. I was mostly talking about the first range, not the second one. –  Apero Jul 29 '13 at 19:28

3 Answers 3

up vote 3 down vote accepted

here's generator which gives you output you need. Performance-wise it's faster than double join, it's O(N) instead ot O(N^2)

>>> def getstr(s):
...     a = [x for x in s]
...     res = None
...     for x in a:
...         if not res: res = x
...         else: res = " > ".join([res, x])
...         yield res
>>>
>>> print " | ".join(getstr("ABCD"))
'A | A > B | A > B > C | A > B > C > D'
share|improve this answer
    
+1 I like this solution as it reuses previously created strings. –  ovgolovin Jul 28 '13 at 20:56
    
By the way, the first time I've seen the code which may use ireduce (iterator analog of traditional reduce). –  ovgolovin Jul 28 '13 at 20:58
1  
String joining is technically O(N) in the length of the strings, not just their number, since the memory for all of the characters needs to be copied. So this algorithm is probably O(N^2) as well. A further improvement: a = [x for x in s] is unnecessary, uses list(s) or just iterate over the string directly (or use a split call to get a list of letters from a comma separated string, like the questioner asked about). –  Blckknght Jul 28 '13 at 21:07
1  
Profiling your and my solution, yours is indeed faster. +1 from me. –  Hyperboreus Jul 28 '13 at 21:31
1  
@Blckknght But the strings that he reuses are needed and yielded. In our sulutions we glue strings with > from the very beginning. If @Roman solution is O(n^2) then ours are O(n^3). –  ovgolovin Jul 29 '13 at 19:20

Something like this?

#! /usr/bin/python3

a = [c for c in 'ABCD']
result = ' | '.join ('>'.join (a [:x + 1] ) for x in range (len (a) ) )
print (result)
share|improve this answer
>>> s = 'A , B , C , D'
>>> L = map(str.strip, s.split(','))
>>> L
['A', 'B', 'C', 'D']
>>> ' | '.join('>'.join(L[:i]) for i in range(1,len(L)+1))
'A | A>B | A>B>C | A>B>C>D'
share|improve this answer

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