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You have list of objects each of them have id property. Here's my way to covert it to dict where keys are ids and values are objects:

reduce(
  lambda x,y: dict(x.items() + { y.id : y}.items()),
  list,
  {}
)

Suggest better way to do it.

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3 Answers 3

up vote 14 down vote accepted

In Python 3.x:

object_dict = {x.id: x for x in object_list}

In both Python 3.x and Python 2.4+:

object_dict = dict((x.id, x) for x in object_list)

(x.id, x) for x in object_list is a generator comprehension (and, nicely, does not need to be wrapped in parentheses like a list comprehension needs to be wrapped in brackets if it's being used as a single argument for a call; of course, this means that in other circumstances the expression I used would have to be ((x.id, x) for x in object_list)). Unlike a list comprehension, it will not generate an actual list of all the items, and is thus more efficient in situations such as this.

As a side note, Python has a built-in method id():

Return the “identity” of an object. This is an integer which is guaranteed to be unique and constant for this object during its lifetime. Two objects with non-overlapping lifetimes may have the same id() value. (Implementation note: this is the address of the object.)

So if you wanted to let Python handle the ids on its own, you could do it as:

object_dict = {id(x): x for x in object_list}

or

object_dict = dict((id(x), x) for x in object_list)
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dict([(x.id, x) for x in list])
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works in Python 2.x –  tlayton Jun 18 '10 at 14:08
    
you don't need list comprehension there –  SilentGhost Jun 18 '10 at 14:09
1  
Indeed. As stated in my answer, a generator expression is better. –  JAB Jun 18 '10 at 14:15
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dict(map(lambda x: [x.id, x], list))
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He wants id, not length. –  JAB Jun 18 '10 at 14:37
    
@JAB: Oops, dunno how I came up with length. –  sepp2k Jun 18 '10 at 14:39
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