14

I have a very large dictionary, maybe about 10,000 keys/values and I want to simultaneously change all values to 0. I am aware that I can loop through and set all the values to 0 but it take forever. Is there anyway that I can simultaneously set all values to 0?

Looping method, very slow:

#example dictionary
a = {'a': 1, 'c': 1, 'b': 1, 'e': 1, 'd': 1, 'g': 1, 'f': 1, 'i': 1, 'h': 1, 'k': 1,
 'j': 1, 'm': 1, 'l': 1, 'o': 1, 'n': 1, 'q': 1, 'p': 1, 's': 1, 'r': 1, 'u': 1,
 't': 1, 'w': 1, 'v': 1, 'y': 1, 'x': 1, 'z': 1}
for key.value in a.items():
    a[key] = 0

Output:

{'a': 0, 'c': 0, 'b': 0, 'e': 0, 'd': 0, 'g': 0, 'f': 0, 'i': 0, 'h': 0, 'k': 0,
 'j': 0, 'm': 0, 'l': 0, 'o': 0, 'n': 0, 'q': 0, 'p': 0, 's': 0, 'r': 0, 'u': 0,
 't': 0, 'w': 0, 'v': 0, 'y': 0, 'x': 0, 'z': 0}
  • Have you profiled your code and found this to be the limiting factor? A dictionary with 10k items is not very large. – Steven Rumbalski Dec 4 '12 at 21:43
  • Its not so much the size it is how many times that I am going to be looping through the dictionaries. I have it programmed to loop through almost every second and additionally, I have not one but multiple dictionaries. – enginefree Dec 4 '12 at 21:45
  • 1
    You could simultaneously set all values to 0 if all values would be in a continuous memory block. I don't think you can do this with the builtin dict... unless you create your create your own dict implementing data structure in C. – Ioan Alexandru Cucu Dec 4 '12 at 21:48
  • @loanAlexandruCucu Thanks for the advice! I think I might just do that. – enginefree Dec 4 '12 at 21:53
  • 4
    The best method would be to make a copy of the empty dictionary before you start putting stuff into it. – kreativitea Dec 4 '12 at 22:27
34

You want dict.fromkeys():

a = dict.fromkeys(a, 0)
  • is that any faster than looping? and I believe it'll take twice the memory while running, as it's creating a separate copy, correct? – ernie Dec 4 '12 at 21:30
  • 1
    Surprisingly, looping is faster, your method, 10000000 loops, best of 3: 0.0226 usec per loop, looping 10000000 loops, best of 3: 0.0224 usec per loop – enginefree Dec 4 '12 at 21:42
  • 1
    @enginefree thanks for profiling; I would imagine the two should be similar since both your original loop and fromkeys likely use iterators. I think kreativitea's idea to store an empty copy makes the most sense. – ernie Dec 4 '12 at 22:59
5

Thanks @akaRem for his comment :)

a = dict.fromkeys( a.iterkeys(), 0 )
  • 3
    since you do not need copy of all keys, it will be better to use iterkeys() – akaRem Dec 4 '12 at 21:51
1

Be warned, if the order of your keys matter the solution may not be suitable as it seems to reorder.

To stop this from happening use list comprehension:

aDictionary =  { x:0 for x in aDictionary}

Note: It's only 2.7.x and 2.x exclusive

0

If you know what type your dict values need to be, you could this:

  1. store the the dict values in an array.array object. This uses a continuous block of memory.
  2. the dict, rather than storing the actual values would store the array index at which the actual value can be found
  3. reinitialize the array with a contiguous binary string of zeros

Didn't test the performance, but it should be faster...


import array

class FastResetDict(object):

    def __init__(self, value_type):
        self._key_to_index = {}
        self._value_type = value_type
        self._values = array.array(value_type)

    def __getitem__(self, key):
        return self._values[self._key_to_index[key]]

    def __setitem__(self, key, value):
        self._values.append(value)
        self._key_to_index[key] = len(self._values) - 1

    def reset_content_to_zero(self):
        zero_string = '\x00' * self._values.itemsize * len(self._values)
        self._values = array.array(self._value_type, zero_string)



fast_reset_dict = FastResetDict('i')
fast_reset_dict['a'] = 103
fast_reset_dict['b'] = -99

print fast_reset_dict['a'], fast_reset_dict['b']
fast_reset_dict.reset_content_to_zero()
print fast_reset_dict['a'], fast_reset_dict['b']
  • I haven't tested this but I would expect accessing the values in the FastResetDict would be a touch slower so this would only be worth it in edge cases. – Supamee Oct 3 '18 at 14:14
0

To expand on @Daniel Roseman answer a=a.fromkeys(d,0) is functionaly the same and a bit faster. Also if you plan to do this frequently save=dict.fromkeys(a,0) and then call a=save.copy() which is faster in some cases(large dicts)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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