7

It is possible to 'fill' an array in Python like so:

> [0] * 10
[0, 0, 0, 0, 0, 0, 0, 0, 0, 0]

I wanted to use this sample principle to quickly create a list of similar objects:

> a = [{'key': 'value'}] * 3
> a
[{'key': 'value'}, {'key': 'value'}, {'key': 'value'}]

But it appears these objects are linked with one another:

> a[0]['key'] = 'another value'
> a
[{'key': 'another value'}, {'key': 'another value'}, {'key': 'another value'}]

Given that Python does not have a clone() method (it was the first thing I looked for), how would I create unique objects without the need of declaring a for loop and calling append() to add them?

Thanks!

  • 2
    FWIW, the copy.copy() function can be used to "clone" many kinds of existing Python objects. In addition, a number of mutable objects (deques, sets, dicts) have a copy() method. The list object grew a copy() method in Python 3. – Raymond Hettinger Aug 9 '15 at 2:54
  • Since the question was closed, I'll have to use a comment to answer the interesting part of your question, "how can you do this without a for-loop and append?" Here is what you could do: d = {'key': 'value'}; import copy; from itertools import repeat; a = list(map(copy.copy, repeat(d, 10))). When a copy() method is available, it would be faster still to use starmap thusly: a = list(starmap(d.copy, repeat((), 10))). – Raymond Hettinger Aug 9 '15 at 3:03
3

A simple list comprehension should do the trick:

>>> a = [{'key': 'value'} for _ in range(3)]
>>> a
[{'key': 'value'}, {'key': 'value'}, {'key': 'value'}]
>>> a[0]['key'] = 'poop'
>>> a
[{'key': 'poop'}, {'key': 'value'}, {'key': 'value'}]

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