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I know numpy.array is much faster and cost much less memory than the python built-in list. Is there something dict like but much faster ? I only need to store int : int or int : float data.

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whats the usecase? – root Oct 19 '12 at 8:05
First of all, python lists are fast for the type of data structure they represet -- a list [not an array]. I think python dictionaries are pretty efficient at the data structure they are supposed to represent: an associative array. – Dhara Oct 19 '12 at 8:15
Secondly, not sure what your use case is, but perhaps you can use spare-matrices from numpy? coo_matrix uses integer indices to only represent parts of matrix data – Dhara Oct 19 '12 at 8:17
@Dhara What Python calls a list is simply an array, albeit a dynamic one (here, dynamic refers to the size, not to the types of items). – delnan Oct 19 '12 at 8:18
@delnan A python list can hold different (dynamic) data types, whereas a numpy array can not. – Dhara Oct 19 '12 at 9:20

1 Answer 1

I would take a look at series from pandas. As you can see from the examples, it works well with np.arrays:

import numpy as np

from pandas import *

randn = np.random.randn

In [309]: s = Series(randn(5), index=randn(5))

In [310]: s
 1.968290    0.132438
-0.307750    0.158168
 0.288507    2.129288
 1.002813   -0.247056
-0.450041    1.731273

In [311]: foo = np.array([0., 1.5, 1.])

In [312]: s = Series(foo)

In [313]: s
0    0.0
1    1.5
2    1.0
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thanks! I'll try it! – zhangailin Oct 19 '12 at 8:22
It would be interesting to see a timing comparison with the built in dictionary type, since the OP asked for a faster implementation – Dhara Oct 19 '12 at 9:21
@root you can have ints as keys in the builtin dictionary type as well – Dhara Oct 19 '12 at 14:05
@ Dhara: yes you are right, and i even checked the perfomance, if you just want to retrive values by key, using a dict is the best choice, being at least two order of magnitudes faster. So if thats, the usecase, dict's are the way to go. – root Oct 19 '12 at 14:10

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