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I have a list (l) of dictionaries {"id": id, "class": class, "parameter": parameter}. I have to do this,

for each value of class:
    parameter = getParameter(class) //we can get different parameter for same class
    if {"class":class, "parameter":parameter} not in l:
         increment id and do l.append({"id": id, "class": class, "parameter": parameter})

Here dict in list has 3 keys, where as i have to search in list with 2 keys. How can i validate 'if' condition?

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1  
id and class are reserved words. Don't use them for variable names. –  eumiro Nov 14 '12 at 14:25
    
thanks, i used those words only for representation. actual code is free from reserved words –  Netro Nov 14 '12 at 14:28

4 Answers 4

up vote 5 down vote accepted

If I understand correctly your problem is deciding if there is already an entry with the given values for class and parameter? You will have to write an expression that searches the list for you, like this:

def search_list(thedict, thelist):
    return any(x["class"] == thedict["class"]
               and x["parameter"] == thedict["parameter"]
               for x in thelist)

The function returns True if an entry is found. Call it like this:

if not search_list({"class": class, "parameter": parameter}, l):
    #the item was not found - do stuff
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'any' is life saver. it is new to me. –  Netro Nov 14 '12 at 14:53
if not any(d['attr1'] == val1 and d['attr2'] == val2 for d in l):

tests whether there is not dict d in list l with its attr1 equal to val1 and attr2 equal to val2.

The advantage is that it stops the iteration as soon as match is found.

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if {"class":class, "parameter":parameter} not in [{'class':d['class'], 'parameter':d['parameter']} for d in l]:

You'll probably not want to calculate the list every time the condition is checked, do that outside of the loop.

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Using a list comprehension seems wasteful when you can just evaluate this lazily with a generator. As the list changes (values that are not found get appended), you cannot calculate it once... –  l4mpi Nov 14 '12 at 14:33

I think with set comparison, you can get rid of that:

>>> d1 = {"id": 1, "class": 3, "parameter": 4}
>>> d2 = {"id": 1, "class": 3}
>>> set(d2.items()) < set(d1.items())
True
>>> 
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