Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

(So I'm trying to learn python. I figured it would be good to read code by people better than me. I decided to read through the email module...)

The init function for the Feedparser class in the email.feedparser module is defined as:

def __init__(self, _factory=message.Message):
    """_factory is called with no arguments to create a new message obj"""
    self._factory = _factory
    self._input = BufferedSubFile()
    self._msgstack = []
    self._parse = self._parsegen().next
    self._cur = None
    self._last = None
    self._headersonly = False

The line I'm having trouble with is:

self._parse = self._parsegen().next

Which I think should mean 'set the attribute self._parse to the value of the next attribute of the return value of the method self._parsegen()

As far as I can tell, self._parsgen() when called during __init__() will first call self._new_message() which will set/add values to self._cur, self._last, and self._msgstack. It will then assign an empty list object to the local variable headers then start iterating over the self._input object. I think the first value for line will be a NeedMoreData object. Since the NeedMoreData class just extends object it should have no attribute or method named next. So does next just refer back to the iterator (self._input)?

Is there any way to have a look at this in the interpreter so that I can step through each line of the script?

share|improve this question
2  
You can set a debugger breakpoint in any code (your own, 3rd party modules or the Python parts of the standard library) like this: import pdb; pdb.set_trace() That will kick you into the built in debugger, pdb, as soon as that line of code is hit. You can then use n to execute the next line (step over), s to step into the evaluation of the next line (a function call for example), w to show the call stack, l to display some code context around the line you're at, and of course do whatever you can do in the regular interpreter. –  Lukas Graf Aug 23 '12 at 22:03

2 Answers 2

up vote 4 down vote accepted

So does next just refer back to the iterator (self._input)?

next does refer to the generator. Since the _parsegen() method uses yield, it returns a generator object. Consider the following simple example (from IPython):

In [1]: def a():
   ...:     yield 1
   ...:     yield 2
   ...:     

In [2]: a()
Out[2]: <generator object a at 0x1a56550>

In [3]: a().next
Out[3]: <method-wrapper 'next' of generator object at 0x1a567d0>

In [4]: a().next()
Out[4]: 1

So, yes, you are mostly right. It will fall down to the iterator, and reference the method returning the next value from it.

Is there any way to have a look at this in the interpreter so that I can step through each line of the script?

You can use pdb for that.

share|improve this answer

The next method is a way to generate the next value of a python iterator or generator. The easiest way to think about this is to rewrite a for-loop.

You have a really easy syntax for looping over a list:

for element in list:
    print element 

which will produce an element on each iteration. But under the hood, Python is actually doing something akin to this:

iterator = iter(list)
while True:
    element = iterator.next()
    # do something with element (e.g. print it)
    print element

When the iterator is exhausted (has no more items), it raises the StopIteration exception, which is how for loops and other methods employing iterators know when to stop. (so the previous code snippet should really be wrapped in a try/except block, but I figured it would be clearer to read without it).

You can read about the protocol for iterators in the Python docs. (but basically anything can be an iterator if it defines __iter__ and produces an iterator that defines __iter__ and next.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.