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Given the two dictionaries below, I'm trying to create a list of new dictionaries combining the items from one (com), which will repeat for each member, with only the values of the second (e), entered one at a time, under key 'n'. E.g. first list member would be: {'n': 330, 'b': 2, 'a': 1} If I use update() within the list comprehension to add the key-pair values from the first dictionary to the result I get a list with two None members. I've tried different ways to write this, e.g. using map() and on both python 2 and 3; so I ask the experts.

>>> com
{'b': 2, 'a': 1}
>>> e
{'p': 330, 'r': 220}
>>> [n for rt in e.values() for n in [{'n':rt}]]
[{'n': 330}, {'n': 220}]
>>> [n.update(com) for rt in e.values() for n in [{'n':rt}]]
[None, None]
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  • It is not clear what you are asking. – AKS May 7 '16 at 5:30
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To clarify the problem statement:

Given a fixed map com and a map containing a series of elements (I would find the name 'nvals' more mnemonic), return a list of maps, where each element of the list has one of the values from nvals as the value of key 'n', and all the elements of com.

So the following code returns the required result:

>>> com = {'b': 2, 'a': 1}
>>> nvals = {'p': 330, 'r': 220}
>>> l = []
>>> for n in nvals.values():
...     d = dict(com) # Make sure to clone the dictionary.
...     d["n"] = n
...     l.append(d)
...
>>> l
[{'n': 330, 'b': 2, 'a': 1}, {'n': 220, 'b': 2, 'a': 1}]
>>>

The trouble is that is not a list comprehension

>>> [dict(list(com.items()) + [('n', n)]) for n in nvals.values()]
[{'n': 330, 'b': 2, 'a': 1}, {'n': 220, 'b': 2, 'a': 1}]
>>>

Seems to meet the requirements.

I have to say, I think I find the loop easier to read.

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  • Note: I am sure your variable names are mnemonic in the context of the wider program - but for this problem, I think mine are better. – Martin Bonner supports Monica May 7 '16 at 6:20
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Try this:

    com = {'b': 2, 'a': 1}
    e = {'p': 330, 'r': 220}
    res = [{i:j for i,j in com.items()+[("n",v)]} for v in e.values()]

Or this:

    res = map(lambda x: dict([("n",x)]+com.items()), e.values())

Or maybe:

    res = [dict(zip(["n"]+com.keys(),[v]+com.values())) for v in e.values()]

Don't you just love python?

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