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I have a database "records" within it documents of the type:

{ ..., ..., "grades" : {"good": "40.0", "bad":"22.0"}}
  1. I need to get into the document and define a variable as the sum of the "good" and "bad" grades.
  2. I don't know how to get inside the imbedded doc,

I tried :

for i in records:
    variable = i['grade.good']

But that doesn't seem to work.

Secondly, the grades are strings, and I need to convert them to integers/ Again, tried

total = int(i['grade.good']) + int(i['grade.bad'])

But that it also wrong. note that my strings are floating points Help much appreciated!!

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4  
instead of i[grade.good] try i[grade][good] –  avasal Nov 21 '12 at 11:35

2 Answers 2

up vote 3 down vote accepted

instead of i['grade.good'] try i['grade']['good']

retrieve data from dictionary properly

In [11]: d = {"grades" : {"good": "40", "bad":"22"}}

In [12]: d['grades']['good']
Out[12]: '40'

In [13]: total= int(d['grades']['good']) + int(d['grades']['bad'])

In [14]: total
Out[14]: 62

for float number

In [21]: d = {"grades" : {"good": "40.0", "bad":"22.0"}}

In [22]: print float(d['grades']['good']) + float(d['grades']['bad'])
62.0
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I tried this, but it returns ValueError: invalid literal for int() with base 10: '3.0' note: my number of good and bad grades are floating points –  Julia Nov 21 '12 at 11:43
1  
@Julia: if you have float number, convert it to float(d['grades']['good']) rather than int –  avasal Nov 21 '12 at 11:46
    
thank you so much! –  Julia Nov 21 '12 at 11:47

The most elegant solution would be:

good_grades=[grades['good'] for grades in records] 

That will return an array with all of your good grades, do the same thing for bad.

Alternatively, you could simply change this line:

variable = i['grade']['good']
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