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I got this far:

>>> some_template = get_template_from_string(
...     load_template_source(
...         'some_template.html',
...         settings.TEMPLATE_DIRS))
... 
>>> blocks = some_template.nodelist.get_nodes_by_type(BlockNode)
>>> blocks[0]
<Block Node: another_block. Contents: [<Text Node: '\nThis one is really cool'>, <Block Node: sub_block. Contents: [<Text Node: '\nI\'m a sub-block.\n\t'>]>, <Text Node: '\n'>]>
>>> # Right there is when I realized this wasn't going to be fun.

You see, the contents of a block are contained in block.nodelist, as opposed to just plain text. If I have a template:

{% extends "base.html" %}

{% block some_block %}
Some value
{% endblock %}

{% block other_block %}
Other Value
    {% sub_block %}Sub block value{% endblock %}
{% endblock %}

I want to be able to do this:

>>> get_block_source('other_block')
'\nOther Value\n    {% sub_block %}Sub block value{% endblock %}\n'
>>> get_block_source('sub_block')
'Sub block value'

If Django's internals don't provide enough resourced to find a way to do this, I'm OK with using a regex / series of regex as well, but I don't see how it'd be possible with regex alone, given that you can have nested {% block... tags.

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Why do you want to do this? –  Daniel Roseman Oct 13 '11 at 18:07
1  
Because you can!! –  jathanism Oct 13 '11 at 18:22
1  
We do this because often there is a better way. Many developers decide on a solution, and get half-way in, and get stuck, and then just ask how to solve the problem right in front of them, rather than asking how to solve the original problem. –  Ned Batchelder Oct 13 '11 at 19:40
1  
@orokusaki: Ah, you may have misinterpreted him (or not, hard to say). Note that if you read his question literally, he's simply asking you for more information about the larger problem: "Why do you want to do this?" But culturally, we are used to interpreting that question posed that briefly as, "You are wrong." This is a big challenge in using these sorts of online forums. –  Ned Batchelder Oct 13 '11 at 19:56

2 Answers 2

This seems like you're working hard against the Django grain. Put the content into an include file, then {% include %} it in your block, and also read the file directly. If you could tell us more about what you're trying to accomplish, there's probably a better way to do it.

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up vote 0 down vote accepted

The solution I created:

import re


BLOCK_RE = re.compile(r'{%\s*block\s*(\w+)\s*%}')
NAMED_BLOCK_RE = r'{%%\s*block\s*%s\s*%%}'  # Accepts string formatting
ENDBLOCK_RE = re.compile(r'{%\s*endblock\s*(?:\w+\s*)?%}')


def get_block_source(template_source, block_name):
    """
    Given a template's source code, and the name of a defined block tag,
    returns the source inside the block tag.
    """
    # Find the open block for the given name
    match = re.search(NAMED_BLOCK_RE % (block_name,), template_source)
    if match is None:
        raise ValueError(u'Template block {n} not found'.format(n=block_name))
    end = inner_start = start = match.end()
    end_width = 0
    while True:
        # Set ``end`` current end to just out side the previous end block
        end += end_width
        # Find the next end block
        match = re.search(ENDBLOCK_RE, template_source[end:])
        # Set ``end`` to just inside the next end block
        end += match.start()
        # Get the width of the end block, in case of another iteration
        end_width = match.end() - match.start()
        # Search for any open blocks between any previously found open blocks,
        # and the current ``end``
        nested = re.search(BLOCK_RE, template_source[inner_start:end])
        if nested is None:
            # Nothing found, so we have the correct end block
            break
        else:
            # Nested open block found, so set our nested search cursor to just
            # past the inner open block that was found, and continue iteration
            inner_start += nested.end()
    # Return the value between our ``start`` and final ``end`` locations
    return template_source[start:end]
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