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is there a pythonic way to implement this:

Insert /spaces_1/ U+0020 SPACE characters into /key_1/ at random positions other than the start or end of the string.

?

There /spaces_1/ is integer and /key_1/ is arbitrary existing string.

Thanks.

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How is the number of spaces inserted distributed, given the size of the string? –  dan_waterworth Nov 28 '10 at 12:30

7 Answers 7

up vote 1 down vote accepted

Here's a list based solution:

import random

def insert_spaces(s):
    s = list(s)
    for i in xrange(len(s)-1):
        while random.randrange(2):
            s[i] = s[i] + ' '
    return ''.join(s)
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strings in python are immutable, so you can't change them in place. However:

import random

def insert_space(s):
    r = random.randint(1, len(s)-1)
    return s[:r] + ' ' + s[r:]

def insert_spaces(s):
    for i in xrange(random.randrange(len(s))):
        s = insert_space(s)
    return s
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I think converting to a list first is more efficient so, isn't it? –  eigenein Nov 28 '10 at 12:32
    
@eigenein, it depends. I'd suggest trying both and seeing which is faster. –  dan_waterworth Nov 28 '10 at 12:44

I'm going to arbitrarily decide you never want two spaces inserted adjacently - each insertion point used only once - and that "insert" excludes "append" and "prepend".

First, construct a list of insertion points...

insert_points = range (1, len (mystring))

Pick out a random selection from that list, and sort it...

import random
selected = random.sample (insert_points, 5)
selected.sort ()

Make a list of slices of your string...

selected.append (len (mystring))  #  include the last slice
temp = 0  #  start with first slice
result = []
for i in selected :
  result.append (mystring [temp:i])
  temp = i

Now, built the new string...

" ".join (result)
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That's interesting but slightly long way. =) –  eigenein Nov 28 '10 at 12:55
    
@eigenein - there was already at least one sane answer, so I aimed for the slightly insane niche. FWIW, there may be a way to avoid the for-loop bit - a built-in that splits a string at specified positions. I didn't think to check for that at the time. –  Steve314 Nov 28 '10 at 13:18
    
+1 for a list based answer. –  dan_waterworth Nov 28 '10 at 13:24
    
why not, selected = random.sample(insert_points, random.randrange(len(mystring))) ? –  dan_waterworth Nov 28 '10 at 13:29
    
@dan - because I didn't think of it - neat idea, though. –  Steve314 Nov 28 '10 at 14:16

Just because no one used map yet:

import random
''.join(map(lambda x:x+' '*random.randint(0,1), s)).strip()
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A beautiful solution. It's a pity that it doesn't insert exactly defined number of spaces. –  eigenein Dec 5 '10 at 15:31

If you want to add more than one space, then go

s[:r] + ' '*n + s[r:]
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1  
"At random positions" –  Chris Morgan Nov 28 '10 at 12:25
    
add r = random.randint(0, len(s)) and that's done –  Ant Nov 28 '10 at 18:13
    
"at random positionS" –  Chris Morgan Nov 28 '10 at 23:52

Here it comes...

def thePythonWay(s,n):
    n = max(0,min(n,25))
    where = random.sample(xrange(1,len(s)),n)
    return ''.join("%2s" if i in where else "%s" for i in xrange(len(s))) % tuple(s)
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We will randomly choose the locations where spaces will be added - after char 0, 1, ... n-2 of the string (n-1 is the last character, and we will not place a space after that); and then insert the spaces by replacing the characters in the specified locations with (the original character) + ' '. This is along the lines of Steve314's solution (i.e. keeping the assumption that you don't want consecutive spaces - which limits the total spaces you can have), but without using lists.

Thus:

import random
def insert_random_spaces(original, amount):
    assert amount > 0 and amount < len(original)
    insert_positions = sorted(random.sample(xrange(len(original) - 1), amount))
    return ''.join(
        x + (' ' if i in insert_positions else '')
        for (i, x) in enumerate(original)
    )
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