107

I have the following DataFrame:

customer    item1      item2    item3
1           apple      milk     tomato
2           water      orange   potato
3           juice      mango    chips

which I want to translate it to list of dictionaries per row

rows = [{'customer': 1, 'item1': 'apple', 'item2': 'milk', 'item3': 'tomato'},
    {'customer': 2, 'item1': 'water', 'item2': 'orange', 'item3': 'potato'},
    {'customer': 3, 'item1': 'juice', 'item2': 'mango', 'item3': 'chips'}]
  • 1
    Welcome to Stack Overflow! I indented your code sample by 4 spaces so that it renders properly - please see the editing help for more information on formatting. – ByteHamster Apr 23 '15 at 6:43
118

Edit

As John Galt mentions in his answer , you should probably instead use df.to_dict('records'). It's faster than transposing manually.

In [20]: timeit df.T.to_dict().values()
1000 loops, best of 3: 395 µs per loop

In [21]: timeit df.to_dict('records')
10000 loops, best of 3: 53 µs per loop

Original answer

Use df.T.to_dict().values(), like below:

In [1]: df
Out[1]:
   customer  item1   item2   item3
0         1  apple    milk  tomato
1         2  water  orange  potato
2         3  juice   mango   chips

In [2]: df.T.to_dict().values()
Out[2]:
[{'customer': 1.0, 'item1': 'apple', 'item2': 'milk', 'item3': 'tomato'},
 {'customer': 2.0, 'item1': 'water', 'item2': 'orange', 'item3': 'potato'},
 {'customer': 3.0, 'item1': 'juice', 'item2': 'mango', 'item3': 'chips'}]
  • 1
    What would be the solution in the case of a dataframe containing for each Customer many rows? – Aziz Dec 3 '16 at 12:21
  • 1
    When I use df.T.to_dict().values(), I loose the sort order also – Hussain May 2 '17 at 13:03
  • When opening a csv file to list of dicts, I'm getting twice the speed with unicodecsv.DictReader – radtek Mar 9 '18 at 16:01
156

Use df.to_dict('records') -- gives the output without having to transpose externally.

In [2]: df.to_dict('records')
Out[2]:
[{'customer': 1L, 'item1': 'apple', 'item2': 'milk', 'item3': 'tomato'},
 {'customer': 2L, 'item1': 'water', 'item2': 'orange', 'item3': 'potato'},
 {'customer': 3L, 'item1': 'juice', 'item2': 'mango', 'item3': 'chips'}]
  • 2
    How would I change it to include the index value into each entry of the resulting list? – Gabriel L. Oliveira Aug 16 '16 at 18:08
  • 4
    @GabrielL.Oliveira you can do df.reset_index().to_dict('records') – Wei Ma Feb 2 '17 at 22:28
  • Is the order of the columns reserved in each case i.e. is the nth entry in the resulting list always also the nth column? – Cleb May 23 '18 at 12:03
10

As an extension to John Galt's answer -

For the following DataFrame,

   customer  item1   item2   item3
0         1  apple    milk  tomato
1         2  water  orange  potato
2         3  juice   mango   chips

If you want to get a list of dictionaries including the index values, you can do something like,

df.to_dict('index')

Which outputs a dictionary of dictionaries where keys of the parent dictionary are index values. In this particular case,

{0: {'customer': 1, 'item1': 'apple', 'item2': 'milk', 'item3': 'tomato'},
 1: {'customer': 2, 'item1': 'water', 'item2': 'orange', 'item3': 'potato'},
 2: {'customer': 3, 'item1': 'juice', 'item2': 'mango', 'item3': 'chips'}}

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