2
rows = fetchall()
resultList = []
resultModel = []
resultDict = []
for row in rows:
    resultModel.append(ResultModel(*row)) # Object of type ResultModel is not JSON serializable
    resultList.append(list(row)) # Rows returned by pyodbc are not JSON serializable
    resultDict.append(dict(zip(columns, row))) # Object of type Decimal is not JSON serializable

I need to get a json version of the data in the view. For this, I am trying to get the JSON dump of the data. Using json.dumps(resultDict) throws the error.

The errors trying different results from the model is commented out for reference. The dict(zip()) option is the closest to what I want resultDict gives me a JSON (key, value) pairing that I can use. But it gives me an error on the resulting data that includes 'DecimalField' Is there a way to have decimal places without erroring on the data returned back? It seems that this would be a simple thing Django would support, so I'm not sure if I am missing something!

https://github.com/pyeve/eve-sqlalchemy/issues/50

Also, can I process the ResultModel directly into the json dump in the view, rather than setting up 2 result sets (of the same data, just different formatting) to send back to the view from the model?

UPDATE: I figured this out. As this is a stored proc/direct query, ORM mapping doesn't work when we use dict(zip(columns, row)) , the column names from the db query should be used. Then, for getting JSON do a json.dumps(myDict)

Alternate solution: In models, return [ResultModel(*row) for row in rows]

Views:

results = Get-model
json = serializers.serialize("python", results, fields=('Column1', 'Column2')

But this also gives me the model name. Is there a way to get only the .fields part of each list returned?

[ fields: {Column1: "1", Column2: "2"}, model:"app_name.resultmodel", pk:"" ]

  • Indeed, JSON does not have a decimal type so json.dumps does not know what to do with your DecimalField. But Django does support this, in its serializers which are intended for exactly this. Or, use Django REST Framework which has much more customisable ones. – Daniel Roseman Sep 13 '18 at 18:18
  • I got this working by using - from django.core.serializers.json import DjangoJSONEncoderand then json.dumps(data, cls=DjangoJSONEncoder) but I have had to return both the ResultModel as well as the JSON version. I need both, is there a way to send one in and then covert it in the views/templates as needed? – Loser Coder Sep 13 '18 at 18:19
  • Also, is the serializer supposed to be seperated our from the views.py ? Am very new to using Django so want to try and use best practises – Loser Coder Sep 13 '18 at 18:20
3

Try to extend the JSONEncoder

import json
from decimal import Decimal

class DecimalEncoder(json.JSONEncoder):
    def default(self, obj):
        if isinstance(obj, Decimal):
            return float(obj)
        return json.JSONEncoder.default(self, obj)

# Usage:
d = Decimal("42.5")
json.dumps(d, cls=DecimalEncoder)
  • edited my question. I have 2 objects that I create and send in to the view, from the model. Is there a way to display the model data (ResultModel (row)) from the json object/dictionary of columns? {'col1': 'val1', 'col2':'val2'} {'col1':'res2', 'col2':'row2'} but this is not an array/list of objects so the looping over doesn't work in the template directly. Trying to use json.loads(jsonData) doesn't work either. – Loser Coder Sep 13 '18 at 18:55
  • As your answer is more towards my original question, I have accepted it as the answer. – Loser Coder Sep 13 '18 at 20:13

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