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I am trying to get the index number of {% for p in mydict_1 %} so that I can use that index on another dict to get the value. I want to use p as an index number. How to do this within Django Views? Data from both lists corresponds to the index in a series.

mylist_1 = [{'itemCode': 'AZ001', 'price': 15.52}, {'itemCode': 'AB01', 'price': 31.2}, {'itemCode': 'AP01', 'price': 1.2}] #list of dict
mylist_2 = [{'prop': 'val000'}, {'prop': 'val008'}, {'prop': 'val009'}] #list of dict

{% for p in mylist_1 %}
    <tr>
       <td><a>{{p.itemCode}}</a></td>
       <td><a>{{p.price}}</a></td>
       #Want to use p's index number to get value of that index from mylist_2
       <td><a>{{mylist_2.[p].prop}}</a></td> #How to do this correctly? Expecting val000 for index 0
    </tr>
{% endfor %}
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You don't. Django's template language deliberately restricts that to prevent people writing business logic in the template. You can pass the dictionaries with zip(…) [python-doc] to the template:

def my_view(request):
    # …
    context = {
        # …,
        'mydicts': zip(mydict_1, mydict_2)
    }
    return render(request, 'some-template.html', context)

in the template you then iterate with:

{% for p, q in mydicts %}
    {{ p.itemCode }}
    {{ p.price }}
    {{ q.prop }}
{% endfor %}
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  • My example had errors, I fixed them. Is there a way to get the index number for p in {% for p in mylist_1 %}?
    – Majoris
    Jan 1 at 19:44
  • 1
    @KapishM: the index numbers yes, with {{ forloop.counter0 }}, but you can not subscript, so even if you somehow have the index, you can not access the i-th element of mylist_2, (except for inefficient nested loops). Jan 1 at 19:46
  • Thanks for the help. I can modify and put both lists in one list; in that case, can I used the idex number on the parent list?
    – Majoris
    Jan 1 at 19:48
  • @KapishM: no, you can not subscript. So basically x[y] is impossible if y is a variable (except if you would use nested loops, but that would be horribly inefficient). That is done on purpose, exactly to prevent people from doing all such things in a template. The view simply needs to "prepare" data such that it is easy for the template to render it. Jan 1 at 19:50
  • Thank you again for your help. I was able to solve the problem using filters.
    – Majoris
    Jan 1 at 21:30

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