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I want to create a dict from lower triangle of a symmetric matrix represented as 2d array. For examples if the numpy array is;

array([[0, 2, 3],
       [2, 0, 4],
       [3, 4, 0]])

then I want the dict to look like;

{('1', '0'): 2, ('2', '0'): 3, ('2', '1'): 4}

There is a similar post for vector;

Fastest way to convert a Numpy array into a sparse dictionary?

I am relatively new to python so any help/suggestoins appreciated.

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  • oops sorry for typo, corrected!
    – Krrr
    Mar 3, 2012 at 10:18

2 Answers 2

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>>> arr =[[0, 2, 3],
          [2, 0, 4],
          [3, 4, 0]]
>>> dict(((j,i), arr[i][j]) for i in range(len(arr)) for j in range(len(arr[0])) if i<j)
{(2, 0): 3, (1, 0): 2, (2, 1): 4}
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  • @kap: Is you Python older than version 2.4? Ah, wait. The answer has been edited.
    – Frg
    Mar 3, 2012 at 11:34
3

One way to do it is with ndenumerate and defaultdict.

Building a dict mapping each value to all its positions:

>>> d = defaultdict(list)
>>> for pos,val in numpy.ndenumerate(a):
...     if val:
...         d[val].append(pos[1])
... 
>>> d
defaultdict(<class 'list'>, {2: [1, 0], 3: [2, 0], 4: [2, 1]})

And then reversing keys and values:

>>> {tuple(v):k for k,v in d.items()}
{(2, 0): 3, (1, 0): 2, (2, 1): 4}

If your python version does not support dict comprhension, this last part could be:

>>> dict((tuple(v),k) for k,v in d.iteritems())
{(2, 0): 3, (1, 0): 2, (2, 1): 4}
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  • np.ndenumerate, great! If you don't care about the lower triangle but want the whole array as a dict, you can do this: dict(np.ndenumerate(a)) May 26 at 7:15

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