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It seems that you cannot group sorted lists in jinja without loosing the sort order.

Here an example template:

{% set l = [{'c': 3, 'result': 1.0},
            {'c': 3, 'result': 2.0},
            {'c': 9, 'result': 3.0},
            {'c': 1, 'result': 4.0}] %}
{% for d in l|groupby('c') %}
    {{d}}
{% endfor %}

Unfortunately, this templates outputs:

(1, [{'c': 1, 'result': 4.0}])
(3, [{'c': 3, 'result': 1.0}, {'c': 3, 'result': 2.0}])
(9, [{'c': 9, 'result': 3.0}])

But what I was expecting is:

(3, [{'c': 3, 'result': 1.0}, {'c': 3, 'result': 2.0}])
(9, [{'c': 9, 'result': 3.0}])
(1, [{'c': 1, 'result': 4.0}])

I have absolutely to keep the items in the pre-sorted order.

Does anybody know how to achieve this?

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The results are passed through sorted: github.com/mitsuhiko/jinja2/blob/… –  Blender Jul 13 '13 at 5:50
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1 Answer

As @Blender pointed out in his comment, jinja uses sorted to sort the passed list according to the received key.

In case you want to keep the sort-order, I fear the only solution is to write your own jinja-filter.

Here the filter I implemented to achieve this:

from jinja2 import environmentfilter
from itertools import groupby
from jinja2.filters import make_attrgetter, _GroupTuple
@environmentfilter
def do_groupby(environment, value, attribute):
    expr = make_attrgetter(environment, attribute)
    return map(_GroupTuple, groupby(value, expr))

Caution: This filter is only working if the received list is grouped correctly (The group-indicator must be in sequence). This list, for example will not group correctly:

[{'c': 3, 'result': 1.0},
 {'c': 9, 'result': 2.0},
 {'c': 3, 'result': 3.0},
 {'c': 1, 'result': 4.0}]
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