178

Possible Duplicate:
How can I convert a Python dictionary to a list of tuples?

I'm trying to convert a Python dictionary into a Python list, in order to perform some calculations.

#My dictionary
dict = {}
dict['Capital']="London"
dict['Food']="Fish&Chips"
dict['2012']="Olympics"

#lists
temp = []
dictList = []

#My attempt:
for key, value in dict.iteritems():
    aKey = key
    aValue = value
    temp.append(aKey)
    temp.append(aValue)
    dictList.append(temp) 
    aKey = ""
    aValue = ""

That's my attempt at it... but I can't work out what's wrong?

  • sum(dict.items(), ()) – Natim Nov 21 '16 at 18:36
  • 3
    Note that in Python 3, dict.items() dict.keys() and dict.values() returns a Dictionary object which, not supporting indexing, is not a real list. A real list can be obtained by list(dict.values()). – ZhaoGang Sep 21 '18 at 2:59
135

Your problem is that you have key and value in quotes making them strings, i.e. you're setting aKey to contain the string "key" and not the value of the variable key. Also, you're not clearing out the temp list, so you're adding to it each time, instead of just having two items in it.

To fix your code, try something like:

for key, value in dict.iteritems():
    temp = [key,value]
    dictlist.append(temp)

You don't need to copy the loop variables key and value into another variable before using them so I dropped them out. Similarly, you don't need to use append to build up a list, you can just specify it between square brackets as shown above. And we could have done dictlist.append([key,value]) if we wanted to be as brief as possible.

Or just use dict.items() as has been suggested.

  • 3
    Correct answer due to explaining what I was doing wrong. As you can tell, I'm fairly knew to Python and any explanations are greatly appreciated. Cheers! – Federer Nov 5 '09 at 9:46
  • 2
    If you use append lists like this, you are producing an list of lists. What he wanted was a flat list, for which you would use extend() like in Shay's answer. – Ajith Antony Dec 22 '12 at 12:22
  • 2
    He never said that, Ajith. A list of lists is a valid python list, and a much better interpretation of a "dictionary" than a flat list containing only non-list values. A list of lists is at least capable of showing keys and values still grouped together. – codetaku Nov 19 '14 at 16:42
  • 4
    It says 'dict' object has no attribute 'iteritems' Can you update the answer for python 3.6 please. – Tessaracter Jun 30 '18 at 11:22
  • 1
    dict(iterable) -> new dictionary initialized as if via: d = {} for k, v in iterable: d[k] = v so please use items() instead of 'iteritems' – A.Anwin Aug 16 at 14:11
394
dict.items()

Does the trick.

  • 13
    I knew there'd be some ridiculous Pythonic way of doing this, thank you very much indeed. I just find the documentation for Python rather hard to read! – Federer Nov 5 '09 at 9:44
  • 14
    @shylent i think he meant it as in ridiculously obvious/easy/pythonic – ofko Jan 10 '12 at 16:45
  • 19
    He wants a flat list, items() produces a list of tuples. – Ajith Antony Dec 22 '12 at 12:12
  • 20
    To get a flat list, use dict.values() instead. – Andy Fraley Apr 11 '16 at 15:55
  • 3
    When I tried to access the list resulting from dictlist=dict.items(), I then got an error trying to access it like a list: dictlist[i][1]. Python3 doc says: ~~~~ "The objects returned by dict.keys(), dict.values() and dict.items() are view objects. They provide a dynamic view on the dictionary’s entries, which means that when the dictionary changes, the view reflects these changes." ~~~~ One more step was required to make it work: ---- [ (item[0],item[1]) for item in dict.items() ] – Craig Hicks Oct 5 '17 at 6:05
176

Converting from dict to list is made easy in Python. Three examples:

>> d = {'a': 'Arthur', 'b': 'Belling'}

>> d.items()
[('a', 'Arthur'), ('b', 'Belling')]

>> d.keys()
['a', 'b']

>> d.values()
['Arthur', 'Belling']
52

You should use dict.items().

Here is a one liner solution for your problem:

[(k,v) for k,v in dict.items()]

and result:

[('Food', 'Fish&Chips'), ('2012', 'Olympics'), ('Capital', 'London')]

or you can do

l=[]
[l.extend([k,v]) for k,v in dict.items()]

for:

['Food', 'Fish&Chips', '2012', 'Olympics', 'Capital', 'London']
  • 2
    In python 2.6, at least, you do not need dict.items(): [(k,v) for k,v in dict]. – hughdbrown Nov 5 '09 at 14:05
  • 2
    Python3.6 - [x for x in dict.items()] does the same thing. – SIGSTACKFAULT Jul 22 '17 at 16:04
  • 3
    or just list(dict.items()) – ajb Oct 10 '18 at 20:16
33
 >>> a = {'foo': 'bar', 'baz': 'quux', 'hello': 'world'}
 >>> list(reduce(lambda x, y: x + y, a.items()))
 ['foo', 'bar', 'baz', 'quux', 'hello', 'world']

To explain: a.items() returns a list of tuples. Adding two tuples together makes one tuple containing all elements. Thus the reduction creates one tuple containing all keys and values and then the list(...) makes a list from that.

  • Interesting... There could be use for this kind of merge somewhere. – Akseli Palén Mar 12 '12 at 13:51
  • 4
    For python 3.^ instead of using reduce, use functools.reduce – Alexandre Martins Montebelo Dec 19 '17 at 13:30
21

Probably you just want this:

dictList = dict.items()

Your approach has two problems. For one you use key and value in quotes, which are strings with the letters "key" and "value", not related to the variables of that names. Also you keep adding elements to the "temporary" list and never get rid of old elements that are already in it from previous iterations. Make sure you have a new and empty temp list in each iteration and use the key and value variables:

for key, value in dict.iteritems():
    temp = []
    aKey = key
    aValue = value
    temp.append(aKey)
    temp.append(aValue)
    dictList.append(temp)

Also note that this could be written shorter without the temporary variables (and in Python 3 with items() instead of iteritems()):

for key, value in dict.items():
    dictList.append([key, value])
5

If you're making a dictionary only to make a list of tuples, as creating dicts like you are may be a pain, you might look into using zip()

Its especialy useful if you've got one heading, and multiple rows. For instance if I assume that you want Olympics stats for countries:

headers = ['Capital', 'Food', 'Year']
countries = [
    ['London', 'Fish & Chips', '2012'],
    ['Beijing', 'Noodles', '2008'],
]

for olympics in countries:
    print zip(headers, olympics)

gives

[('Capital', 'London'), ('Food', 'Fish & Chips'), ('Year', '2012')]
[('Capital', 'Beijing'), ('Food', 'Noodles'), ('Year', '2008')]

Don't know if thats the end goal, and my be off topic, but it could be something to keep in mind.

Not the answer you're looking for? Browse other questions tagged or ask your own question.