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What is the most pythonic way to set a value in a dict if the value is not already set?

At the moment my code uses if statements:

if "timeout" not in connection_settings:
    connection_settings["timeout"] = compute_default_timeout(connection_settings)

dict.get(key,default) is appropriate for code consuming a dict, not for code that is preparing a dict to be passed to another function. You can use it to set something but its no prettier imo:

connection_settings["timeout"] = connection_settings.get("timeout", \
    compute_default_timeout(connection_settings))

would evaluate the compute function even if the dict contained the key; bug.

Defaultdict is when default values are the same.

Of course there are many times you set primative values that don't need computing as defaults, and they can of course use dict.setdefault. But how about the more complex cases?

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consider changing the title of your question to something more precise like: "how to set default kwarg values to pass to another function". I feel the title is too general. –  Ciro Santilli Apr 12 '13 at 7:18

6 Answers 6

up vote 4 down vote accepted

This is a bit of a non-answer, but I would say the most pythonic is the if statement as you have it. You resisted the urge to one-liner it with __setitem__ or other methods. You've avoided possible bugs in the logic due to existing-but-falsey values which might happen when trying to be clever with short-circuiting and/or hacks. It's immediately obvious that the compute function isn't used when it wasn't necessary.

It's clear, concise, and readable - pythonic.

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dict.setdefault will precisely "Set a value in a dict only if the value is not already set", which is your question. However, you'd still need to compute the value to pass it as the parameter, which is not what you want.

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The most python (and generic) way should be:

if key not in dict:
  dict[key] = value
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I'm using the following to modify kwargs to non-default values and pass to another function:

def f( **non_default_kwargs ):

    kwargs = {
        'a':1,
        'b':2,
    }
    kwargs.update( non_default_kwargs )

    f2( **kwargs )

This has the merits that

  • you don't have to type the keys twice

  • all is done in a single function

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1  
I think you are assuming too much about the use-case. The OP might not have (or even want) a pre-existing and pre-computed collection of sensible defaults. –  wim Apr 12 '13 at 7:28

Try this one liner:

connection_settings["timeout"] ||= compute_default_timeout(connection_settings)
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Which Python is this? In 2.7 its saying its invalid syntax –  Will Oct 17 '13 at 5:16
2  
Thanks, this was exactly what I was looking for! So elegant! –  Josh Adams Oct 17 '13 at 11:10
1  
Thanks, a SyntaxError is exactly what I was looking for too! –  wim Oct 17 '13 at 15:49

You probably need dict.setdefault:

Create a new dictionary and set a value:

>>> d = {}
>>> d.setdefault('timeout', 120)
120
>>> d
{'timeout': 120}

If a value already set, dict.setdefault won't override it:

>>> d['port']=8080
>>> d.setdefault('port', 8888)
8080
>>> d
{'port': 8080, 'timeout': 120}
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1  
"would evaluate the compute function even if the dict contained the key; bug" –  wim Apr 12 '13 at 7:25
    
That is not a bug: compute_default_timeout() must be called before calling dict.get()--That might not be what the OP wants, but that's the correct behavior. –  Hai Vu Apr 12 '13 at 7:37
    
The quote is from the question, so it is clear that the behaviour is equivalent to something which the OP already considers a bug (I wouldn't call it a bug myself, but it's still unnecessary and undesirable in this case) –  wim Apr 12 '13 at 7:40
    
Undesirable: yes, bug: no –  Hai Vu Apr 12 '13 at 7:41
1  
My point was it's obviously not useful to the OP, because they have already dismissed an equivalent alternative for that reason.. By the way, I asked a question once about this behaviour already and whether it could be made "lazy" ... :) stackoverflow.com/q/9802981/674039 –  wim Apr 12 '13 at 7:41

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