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If I have a dictionary that looks like:

{'first': [
   {'red': ['six', 'three', 'seven', 'six']},
   {'green': ['eight', 'three', 'four']}
 ],
 'second': [
   {'blue': ['one', 'five', 'three']}
 ]
}

How can I get to specific points in the dictionary? For example, how can I print out the second 'six' in the 'first' header under subheading 'red'?

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Do you mean the second "six"? –  Mark Byers Oct 6 '11 at 20:28
    
yes, sorry. i was referring to the fourth position. –  user728166 Oct 6 '11 at 20:28
    
dict_name['first'][0]['red'][3]? Is that what you mean? –  agf Oct 6 '11 at 20:29
    
Here: docs.python.org/tutorial –  JBernardo Oct 6 '11 at 20:31
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3 Answers

up vote 2 down vote accepted

Assuming your dictionary is called d you could do this:

print(d['first'][0]['red'][3])
  • The expression d['first'] gives you the value associated with the key 'first'. The value is a list.
  • The [0] gives you the first element in the list (by the way, why do you have a list containing only one element?). Note that indexing is 0-based in Python.
  • Then you have another dictionary whose values are again lists. The ['red'] fetches the value from this dictionary.
  • The [3] accesses the fourth element in the list.
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I was just throwing together a quick example. Generally my lists have more than one element. Thank you for your answer. I knew it had to be something simple like this. –  user728166 Oct 6 '11 at 20:34
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print mydict["first"][0]["red"][3] will print item 3 (the fourth item, since item 0 is the first element). In this case it should give you six.

Also, what you have here is a list contained within a dict contained within a list contained within another dict. The numeric index 3 accesses part of that inner list, and isn't something that's generally useful for a dict.

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For the one you asked:

>>> a = {'first': [{'red': ['six', 'three', 'seven', 'six']}, {'green': ['eight', 'three', 'four']}], 'second': [{'blue': ['one', 'five', 'three']}]}
>>> a['first'][0]['red'][3]
'six'
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