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I have a dictionary and I want to insert keys and values dynamically but I didn't manage to do it. The problem is that when I use the update method it doesn't add a pair but it deletes the previous values so I have only the last value when printing the dictionary here is my code

i = 0
for o in iterload(f):
    i=i+1
    mydic = {i : o["name"]}
    mydic.update({i : o["name"]})
    for k, v in mydic.items():
        print(k,v) 
print(mydic)

f is a file that i'm parsing with python code as a result I get

{3: 'toto'}

which is the last element. is there a solution to have all the elements in my dictionary

Thanks in advance

I have another question

Now I need to chek if an input value equals a key from my dictionary and if so I need to get the value of this key to continue parsing the file and get other informations.

Here is my code :

f = open('myfile','r')
nb_name = input("\nChoose the number of the name :")

for o in iterload(f):
    if o["name"] == mydic[nb_name]: 
        ...

I get a keyError

Traceback (most recent call last):
  File ".../test.py", line 37, in <module>
            if o["name"] == mydic[nb_name]: 
KeyError: '1'

I don't understand the problem

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2 Answers 2

up vote 4 down vote accepted

Remove the following line:

    mydic = {i : o["name"]}

and add the following before your loop:

mydic = {}

Otherwise you're creating a brand new one-element dictionary on every iteration.

Also, the following:

mydic.update({i : o["name"]})

is more concisely written as

mydic[i] = o["name"]

Finally, note that the entire loop can be rewritten as a dictionary comprehension:

mydic = {i+1:o["name"] for i,o in enumerate(iterload(f))}
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Thanks a lot !! it was a stupid mistake :p –  user850287 Dec 13 '12 at 12:41
2  
you could pass start=1 to enumerate() to match code from the question without i+1 –  J.F. Sebastian Dec 13 '12 at 12:45

@NPE pointed out the problem in your code (redefining the dict on each iteration).

Here's one more way to generate the dict (Python 3 code):

from operator import itemgetter

mydict = dict(enumerate(map(itemgetter("name"), iterload(f)), start=1))

About the KeyError: '1': input() returns a string in Python 3 but the dictionary mydict expects an integer. To convert the string to integer, call int:

nb_name = int(input("\nChoose the number of the name :"))
share|improve this answer
    
Why do you say this is python 3 code? I don't see any reason for it to fail with python 2... although, I might write it as: dict(enumerate((x['name'] for x in iterload(f)),start=1)), or possibly moving the enumerate: dict((i,x['name]) for i,x in enumerate(iterload(f),start=1)). I replaced map with a generator expression. In python3, this is the same thing, but this will do exactly the same thing in python3 and python2 -- and I think it is a little easier to read. –  mgilson Dec 13 '12 at 13:37
    
@mgilson: map returns a list in Python 2. To make it Python 2 code you could add from itertools import imap as map. For readability I would use the dict comprehension from @NPE's answer. –  J.F. Sebastian Dec 13 '12 at 13:53
    
I'm aware that map would return a list in py2k. But the code would probably still work (unless the file is huge) -- in which case, storing the data in a dict might not work either. The dict-comprehension is nice, but it imposes a python2.7 minimum. My version with dict is an attempt to meet a happy medium -- generators that behave like your map, but work for python2.x and IMHO are more easy to read + using the dict constructor to create the dict in a way that is compatible with older python versions. (and it really doesn't read much different than the dict-comp) –  mgilson Dec 13 '12 at 14:09

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