I have a Python dictionary

steps = {1:"value1", 5:"value2", 2:"value3"}

I need to iterate over this is sorted order by the key.

I tried this:

x = sorted(steps, key=lambda key: steps[key])

but the values are gone from x.

up vote 72 down vote accepted

I need to iterate over this is sorted order by the key.

I think lambdas is overkill here, try this:

>>> steps = {1:"val1", 5:"val2", 2:"val3"}
>>>
>>> for key in sorted(steps):
...     print steps[key]
...
val1
val3
val2
  • 1
    that worked, thanks – user984003 May 23 '13 at 9:30
  • 2
    What if the key is a string, but I need to sort it as an int? – user984003 May 23 '13 at 9:54
  • 8
    I know this is a very old post but I came across this searching for something else and I wanted to note: for key,value in sorted(steps): print value is significantly faster than for key in sorted(steps): print steps[key] – Dave LeBlanc May 21 '15 at 19:33
  • 3
    @DaveLeBlanc: For steps as defined in the answer for key,value in sorted(steps): print value gives TypeError: 'int' object is not iterable - you meant for key,value in sorted(steps.iteritems()): print value ? – Mr_and_Mrs_D Jun 11 '15 at 3:36
  • 2
    Python 3: for key, value in sorted(steps.items()):. – Kirill Bulygin Dec 24 '16 at 10:48

You need to iterate over steps.items(), because an iteration over dict only returns its keys.

>>> x = sorted(steps.items())
>>> x
[(1, 'value1'), (2, 'value3'), (5, 'value2')]

Iterate over sorted keys:

>>> for key in sorted(steps):
...     # use steps[keys] to get the value
  • so then how do I iterate over it, like an iteritems or something? – user984003 May 23 '13 at 9:28
  • @user984003 You can't sort a dict, you can only get a list of sorted keys,values or items. – Ashwini Chaudhary May 23 '13 at 9:29
  • @AshwiniChaudhary You don't need a key for sorted at all, dictionary keys are bound to be unique so sorted(steps.items()) works fine – jamylak May 23 '13 at 10:37
  • @jamylak You're right, key is not required in this case. – Ashwini Chaudhary May 23 '13 at 10:46

You can also use one of Python's many SortedDict container types. These types automatically maintain the dictionary sorted in key-order. Take a look at the sortedcontainers module which is pure-Python and fast-as-C-implementations. There's a performance comparison that benchmarks several other implementations against each other.

In your case then, you'd use:

from sortedcontainers import SortedDict
steps = SortedDict({1:"value1", 5:"value2", 2:"value3"})

# Then iterate the items:

for key, value in steps.items():
    print key, value

# Or iterate the values:

for value in steps.values():
    print value

Iteration for keys/values/items works automatically by sorted key order.

Like pointed by Zagorulkin Dmitry, you should not pass a lambda to the sorting function. The sorting function default behaviour is to act on the keys.

steps = {1:"val1", 5:"val2", 2:"val3"}

for key in sorted(steps):
   print steps[key]
...
val1
val3
val2

However, passing the lambda to the sorting function isn't a better operation of small benefit (i.e. an 'overkill'), but it is actually undesired. It makes the code less readable and it also slower, particularly if you are going to apply it to very large dictionaries or make the call multiple times. Other than making the sorting target more explicit in respect to the (key, value) pairs, there is no benefit to using it. The following timings show the performance hit you get when specifying a lambda.

steps = {randint(0, 100000): randint(0, 100000) for _ in range(100000) } # random dict

%%timeit 
sort_list = [value for _, value in sorted(steps.items(), key=lambda item: item[0])]
1 loops, best of 3: 241 ms per loop

%%timeit 
sort_list = [steps[k] for k in sorted(steps, key=lambda k: k)]
1 loops, best of 3: 196 ms per loop

%%timeit
sort_list = [ steps[key] for key in sorted(steps) ]
10 loops, best of 3: 106 ms per loop

Depending on your use case, it might be an option to hold an already ordered dictionary. See pythons OrderedDict for details. If you want to sort the keys as integer, you have to convert them to integers. The best moment to do so depends on your use case.

In case your keys are not integers, but strings that should be parsed as integers:

steps = {'1':'value1', '10': 'value0', '5':'value2', '2':'value3'}

you can use something similar to your solution:

for key, value in sorted(steps, key=lambda key: int(key[0])):
    print(key)

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