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Since generator returns values lazily, how do I determine if the value returned from a generator is one-but-last? I spent like an hour on this and can't figure it out.

Any help appreciated. Is it even possible??

Thanks, Boda Cydo!

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3 Answers 3

up vote 10 down vote accepted

You can wrap the generator in a generator that generates a sequence of pairs whose first element is a boolean telling you whether the element is the last-but-one:

def ending(generator):
    z2 = generator.next()
    z1 = generator.next()
    for x in generator:
        yield (False, z2)
        z2, z1 = z1, x
    yield (True, z2)
    yield (False, z1)

Let's test it on a simple iterator:

>>> g = iter('abcd')
>>> g
<iterator object at 0x9925b0>

You should get:

>>> for is_last_but_one, char in ending(g):
...     if is_last_but_one:
...         print "The last but one is", char
... 
The last but one is c

Too see what's happening under the hood:

>>> g = iter('abcd')
>>> for x in ending(g):
...     print x
... 
(False, 'a')
(False, 'b')
(True, 'c')
(False, 'd')
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+1 clever solution. –  Daniel Pryden Mar 10 '10 at 23:39
    
Wow. Thanks! Though I still have to wrap my head around what is happening in ending :) So many yields. –  bodacydo Mar 10 '10 at 23:43

If you want to see arbitrary future values of an iterator without consuming them, you can wrap the iterator in a 'peekable' iterator, that can buffer future values.

import collections

class PeekIter(object):

    def __init__(self, iterable):
        self._iter = iter(iterable)
        self._peekbuf = collections.deque()

    def next(self):
        if self._peekbuf:
            return self._peekbuf.popleft()
        else:
            return self._iter.next()

    def peek(self, future=0, default=None):
        try:
            while len(self._peekbuf) <= future:
                self._peekbuf.append(self._iter.next())
            return self._peekbuf[future]
        except StopIteration:
            return default

Then, you can peek at future values without consuming them.

>>> p = PeekIter(range(3))
>>> p.peek()
0
>>> p.next()
0
>>> p.peek(0)
1
>>> p.peek(0)
1
>>> p.peek(1)
2
>>> p.peek(2)
>>> sentinel = object()
>>> sentinel
<object object at 0x28470>
>>> p.peek(1, sentinel)
2
>>> p.peek(2, sentinel)
<object object at 0x28470>
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This is great. Thanks! –  bodacydo Mar 11 '10 at 13:07

An itertools-based solution

from itertools import tee, islice, repeat, chain, izip


def gen_with_offset(gen, offset):
    gen1, gen2 = tee(gen)
    gen2 = (False for x in gen2)
    gen2 = chain(islice(gen2, offset, None), [True], repeat(False))
    for g, sentinel in izip(gen1, gen2):
        yield g, sentinel 


Usage:
>>> gex = iter('abcedefg')
>>> for p in gen_with_offset(gex, 4):
...     print p
...
('a', False)
('b', False)
('c', False)
('e', False)
('d', True)
('e', False)
('f', False)
('g', False)
>>>
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