Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

Let's say I have two list of dicts:

dates = [{'created':'2010-12-01'},{'created':'2010-12-02'},....]
elts = [{'created':'2010-12-01', 'key1':'val1', 'key2':'val2'}, {'created':'2010-12-05','key1':'val1'}]

The dates list is a bunch of contiguous dates.

The elts list can be anywhere from 1 to len(dates), and what I want to do is basically pad elts so that it has a dict for a date regardless if there're other keys.

This is my naive solution:

for d in dates:
    for e in elts:
        if d['created'] == e['created']:
            d.update(dict(key1=e['key1']))

Thus I will have a final array d with all dates in each dict, but there may/may not be other key/vals.

What's a good 'pythonic' solution?

share|improve this question
1  
It sounds like what you really want is a dict of dicts, with the outer dict keyed on the 'created' date. – Karl Knechtel Jan 3 '11 at 22:41
    
d.update(dict(key1=e['key1'])) is a weird way to write d['key1']=e['key1'] – Jochen Ritzel Jan 3 '11 at 23:02
up vote 3 down vote accepted

Your question is a little off, I think, since your solution doesn't seem to actually address your question, but if you wanted to create an entry in elts for every date in dates that does not already appear in elts, you could use this:

all_dates = set(e['created'] for e in dates) # gets a list of all dates that exist in `dates`
elts_dates = set(e['created'] for e in elts) # same for elts

missing_dates = all_dates - elts_dates

for entry in missing_dates:
    elts.append(dict(created=entry))

Here's a http://codepad.org snippet that shows this snippet in effect: http://codepad.org/n4NbjvPM

share|improve this answer
1  
+1, This is my understanding of the question too. set() works fine with generator expressions, so it's more efficient to use set(e['created'] for e in dates) etc. – John La Rooy Jan 3 '11 at 23:01
    
@gnibbler: Good point. I updated my answer to use generator expressions instead (and updated the codepad snippet to use the new changes) – Alex Vidal Jan 3 '11 at 23:22

EDIT: Different solution:

Make a set of dates you've already got:

dates_in_elts = set(e['created'] for e in elts)

for d in dates:
    if d['created'] not in dates_in_elts:
        e.append(d)

This only iterates over each list once, rather than iterating over elts for each date in dates.

share|improve this answer
    
I would recommend against using set() as it won't preserve the keys and values together. – Ishpeck Jan 4 '11 at 1:57
    
@lshpecK: If you want to keep them up to date, then it's best to keep them together. But if you create and use it straight away, a set works absolutely fine. – Thomas K Jan 4 '11 at 18:12

I'd probably make those lists dictionaries instead.

  dates_d = dict([(x['created'], x) for x in dates])
  elts_d = dict([(x['created'], x) for x in elts])
  dates_d.update(elts_d)

If you then need it to be a list of dicts in order again, you can do that easily:

  dates = [dates_d[x] for x in sorted(dates_d)]

If you are not doing anything else than merging them, your solution might be more easily readable, though. But lists of dictionaries is not a very handy format for data in this case, I suspect.

share|improve this answer

Maybe I've misread, but it seems to me that the end result of your code is that, for every dict in elts, you really want to just copy that dict from elts to overwrite the corresponding dict in dates.

>>> for d in dates:
...    for e in elts:
...       if d['created'] == e['created']:
...          d.update(e)

At that point, it's the dates dictionary that reflects what I think you want.

share|improve this answer
    
that's correct, dates reflects after which I just do, elts = dates and use that. – Maverick Jan 4 '11 at 4:36

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.