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I have a list of of dictionaries and my current list comprehension is separating the dictionaries (i.e., creating new dictionaries where they weren't previously). Here is some example code to help illustrate the problem.

list_of_dicts = [{"this": "hi<br>", "that":"bye"}, {"this": "bill", "that":"nye"},{"hello":"kitty<br>", "good bye": "to all of that"}]

Thus, as you can see, I have a list whose len() is three. Each item is a dictionary that includes two keys and two values.

Here is my list comprehension:

list_of_dicts = [{key: val.replace("<br>", " ")} for dic in list_of_dicts for key, val in dic.items()]

if you print len() of this new line, you will note that I now have six dictionaries. I trust that what I am trying to do -- i.e., replace "<br>" in values with one space (" ") -- is possible, but I don't know how.

thus far, I've tried every way I know to create a dictionary instead of {key: val.method()}. The only thing I have not tried is a ternary list comprehension, because I can see it being so long that I would never want it in production code.

Any insight? Can I manipulate the value of some dicts in a list comprehension without compromising the dict's initial structure?

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Why must it be a list comprehension; why not just iterate over the list conventionally? –  jonrsharpe Jun 21 at 22:26
    
it's just preference. I can read list comprehensions more easily than nested code. –  Bee Smears Jun 21 at 22:29
1  
@jonrsharpe thank you for your edit. my questions are always terribly confusing. you probably earned me a very rare upvote, so thanks :) –  Bee Smears Jun 21 at 23:10

3 Answers 3

up vote 4 down vote accepted

The dictionary comprehension is being executed six times because your current code is equivalent to this:

list_of_dicts = [{"this": "hi<br>", "that":"bye"}, {"this": "bill", "that":"nye"},{"hello":"kitty<br>", "good bye": "to all of that"}]
tmp = []

for dic in list_of_dicts:
    for key, val in dic.items():
        tmp.append({key: val.replace("<br>", " ")})

list_of_dicts = tmp

The outer loop will run three times because list_of_dicts has three items. The inner loop will run twice for each iteration of the outer loop because each dictionary in list_of_dicts has two items. In all, this line:

tmp.append({key: val.replace("<br>", " ")})

will be executed six times.


You can fix this problem by simply moving the for key, val in dic.items() clause inside the dictionary comprehension:

>>> list_of_dicts = [{"this": "hi<br>", "that":"bye"}, {"this": "bill", "that":"nye"},{"hello":"kitty<br>", "good bye": "to all of that"}]
>>> [{key: val.replace("<br>", " ") for key, val in dic.items()} for dic in list_of_dicts]
[{'this': 'hi ', 'that': 'bye'}, {'this': 'bill', 'that': 'nye'}, {'hello': 'kitty ', 'good bye': 'to all of that'}]
>>>

Now, the dictionary comprehension will only be executed three times: once per item in list_of_dicts.

share|improve this answer
    
genius. thank you for your additional explanation, iCodez. –  Bee Smears Jun 21 at 22:54

You're looking for a nested comprehension

list_of_dicts = [dict((key, val.replace("<br>", " "))
                      for key, val in d.iteritems())
                 for d in list_of_dicts]

however you're making things more complex than they need to be... What about the simpler:

for d in list_of dicts:
    for k, v in d.items():
        d[k] = v.replace("<br>", " ")

instead?

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In this case the list comprehension can be confusing. I suggest a classical for loop:

source

data = [{"this": "hi<br>", "that":"bye"}, {"this": "bill", "that":"nye"},{"hello":"kitty<br>", "good bye": "to all of that"}]

for mydict in data:
    for key,value in mydict.iteritems():
        mydict[key] = value.replace('<br>', '')

print data

output

[{'this': 'hi', 'that': 'bye'}, {'this': 'bill', 'that': 'nye'}, {'hello': 'kitty', 'good bye': 'to all of that'}]
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