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The python syntax of for x in y: to iterate over a list must somehow remember what element the pointer is at currently right? How would we access that value as I am trying to solve this without resorting to for index, x in enumerate(y):

The technical reason why I want to do this is that I assume that enumerate() costs performance while somehow accessing the 'pointer' which is already existing would not. I see that from the answers however this pointer is quite private and inaccessible however.

The functional reason why I wanted to do this is to be able to skip for instance 100 elements if the current element float value is far off from the 'desired' float range.

-- Answer --

The way this was solved was as follows (pure schematic example):

# foo is assumed to be ordered in this example
foo = [1,2,3,4,5,6....,99,100]
low = 60
high = 70
z = iter(foo)
for x in z:
    if x < low-10
        next(islice(z,10,10),None)
    if x > high
        break
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7  
Why exactly are you avoiding the use of enumerate()? It's the cleanest (and simplest) solution, and this is exactly what it's designed for. –  user2032433 Mar 22 '13 at 14:00
    
I assume (could be wrong) that enumerating the list costs performance and if the under the hood pointer knew the value I could gain performance by adressing it directly. I will add this to the original question so people know why I wanted to avoid enumerate() –  Bas Jansen Mar 22 '13 at 14:03
2  
@BasJansen enumerate() doesn't "enumerate the list", it enumerates the iteration. It's equivalent to i=-1; for x in y: i+=1; ... –  Michael Wild Mar 22 '13 at 14:05
    
Can you tell us what you'd like to do inside the loop that requires you to know the "pointer"? –  Robᵩ Mar 22 '13 at 14:21
    
I wanted to display a progress bar by doing print str(x / (len(y)/10))+"0%" for every 10% of the iteration. I can easily fix this by using index instead of x after an enumeration but I was hoping I didn't need to do that. –  Bas Jansen Mar 22 '13 at 14:33

4 Answers 4

up vote 7 down vote accepted

You cannot. for uses the Python iteration protocol, which for lists means it'll create a private iterator object. That object keeps track of the position in the list.

Even if you were to create the iterator explicitly with iter(), the current position is not a public property on that object:

>>> list_iter = iter([])
>>> list_iter
<listiterator object at 0x10056a990>
>>> dir(list_iter)
['__class__', '__delattr__', '__doc__', '__format__', '__getattribute__', '__hash__', '__init__', '__iter__', '__length_hint__', '__new__', '__reduce__', '__reduce_ex__', '__repr__', '__setattr__', '__sizeof__', '__str__', '__subclasshook__', 'next']

The point of the iteration protocol is that it lets you treat any sequence, even one that continues without bounds, in exactly the same way. It is trivial to create a sequence generator that does not have a position:

def toggle():
    while True:
        yield True
        yield False

That generator will toggle between True and False values as you iterate over it. There is no position in a sequence there, so there is no point exposing a position either.

Just stick to enumerate(). All that enumerate() has to do is keep a counter. It doesn't keep position in the wrapped iterator at all. Incrementing that integer does not cost you much performance or memory.

enumerate() is basically this, implemented in C:

def enumerate(sequence, start=0):
    n = start
    for elem in sequence:
        yield n, elem
        n += 1

Because it is implemented in C, it'll beat trying to read an attribute on the original iterator any day, which would require more bytecode operations in each iteration.

share|improve this answer
    
Great clarification of why it is inaccessible, thank you –  Bas Jansen Mar 22 '13 at 14:39
    
I am assuming that there is no way to skip X elements during the loop? That is the functional aspect I was hoping to 'do'. –  Bas Jansen Mar 25 '13 at 11:15
    
@BasJansen: Then use a while loop instead, or create the iterator before you loop over it and call next() on the iterator in the loop: iterable = iter(sequence) then for elem in iterable: then next(elem) # skip one element. –  Martijn Pieters Mar 25 '13 at 11:17
1  
@BasJansen: You can use itertools.islice() to 'slice' items from an iterable, but you then need to 'consume' those items still: list(islice(iterable, 100)) # skip 100 items. .next() is the method on the iterable in Python 2, in Python 3 it has been renamed to .__next__(), next() is the built-in function that'll work across both Python 2 and Python 3. –  Martijn Pieters Mar 25 '13 at 11:21
1  
@BasJansen: Why don't you join us in the python chat room and we can help you figure things out more easily? –  Martijn Pieters Mar 25 '13 at 13:48

That 'pointer' value is internal to whatever it is that created the iterator. Remember that is doesn't need to be a list (something that can be indexed), so if you really want the 'index', you will need to resort to using enumerate.

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This information is internal to the iterator and cannot be accessed. See here for a description of the iterator protocol. Essentially, the only publicly available member of the iterator is next() which raises a StopIteration exception once the range is exhausted.

Besides, enumerate is pretty efficient. It is the equivalent of writing

i = -1
for x in y:
  i += 1
  # do something with x and i
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No, it uses the underlying iterator, which is not forced to keep track of a current index.

Unless you manually incerement a counter, this is not possible:

idx = 0
for x in y:
    idx+=1
    # ...

so, just keep with enumerate()

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