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I am having a heck of a time trying to create a dictionary for a script I am trying to write that handles different IP addresses.

My question is this:

Given d1 and d2, and assuming d1 and d2 will always have an equal number of key:pair items, how can I create d3?

d1 = {1:a, 2:b, 3:b, 4:c, 5:c}

d2 = {one:a, two:b, three:b, four:c, five:c}

d3 = {a:[{1:one}], b:[{2:two},{3:three}], c:[{4:four},{5:five}]}

You can see d3 contains keys that are the same as the values from d1 and d2, and for each key in d3, it has a value of a list, in which there are more dictionaries with key:pair values that correspond to the original keys from d1 and d2.

I have been trying to create d3 for a while now but I just can't seem to reason out how to do it. Your help is greatly appreciated!

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Any examples of what you've tried? What did you get as output? You've shown us what you wanted, which is fantastic - but it's also a good idea to show us the effort you've put into solving the problem on your own. Which can be super helpful if all you need is to correct some small misunderstanding –  Wayne Werner Sep 26 '13 at 14:19
6  
How do you expect d3 to know that "2" and "two" go together? If it were b:[{3:two},{2:three}] would that still be good? May I remind you that dictionaries in python don't preserve order.. –  Ofir Israel Sep 26 '13 at 14:23
    
Ofir, it would not work if 2:two and 3:three did not go together. Those two dictionaries can appear in any order within the list, but the key:value in each of those dictionaries must be how I listed it. –  user1243151 Sep 26 '13 at 16:47

2 Answers 2

First tip before giving out the answer :

reverse_d1 = {}
for k, v in d1.iteritems():
  reverse_d1.set_default(v, []).append(k)
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Thomas, let me give that a try and see what I can do. I have tried a number of things including adding the values from the beginning two dictionaries to a list, etc.. Everything I've done has not worked so far. –  user1243151 Sep 26 '13 at 16:47

All, thank you for the input. I really appreciate it. Unfortunately I realized that the way I currently posed the question, it is completely invalid. The keys in d2 correspond to subnet masks, which are not all unique, so the way I had it structured is not even a valid dictionary.

After a lot of fussing, I came up with a working solution:

p = 0
sysNames = ['R3','R2','R1']
d1 = OrderedDict([('200.200.200.2','R3'),('200.200.200.1','R2'),('172.172.172.1','R2'),('172.172.172.100','R1'),('192.168.1.151','R1')])

oid1 = '1.3.6.1.2.1.4.20.1.3.200.200.200.2'
oid2 = '1.3.6.1.2.1.4.20.1.3.200.200.200.1'
oid3 = '1.3.6.1.2.1.4.20.1.3.172.172.172.1'
oid4 = '1.3.6.1.2.1.4.20.1.3.172.172.172.100'
oid5 = '1.3.6.1.2.1.4.20.1.3.192.168.1.151'

d2 = {oid1:'255.255.255.0',oid2:'255.255.255.0',oid3:'255.255.255.0',oid4:'255.255.255.0',oid5:'255.255.255.0'}

d1keys = list(d1.keys())
d1values = list(d1.values())
maskOid = '1.3.6.1.2.1.4.20.1.3.'

d3 = {}

for i in range(len(sysNames)):
    ipMaskList = list()
    numInterfaces = d1values.count(sysNames[i])

    for dummy in range(numInterfaces):
        ipMaskList.append({d1keys[p]:d2.get(maskOid+d1keys[p])})
        p += 1

    d3[sysNames[i]] = ipMaskList

As typical, I'm sure this is a horribly inefficient and convoluted way to accomplish my goal. I am absolutely not a great programmer, and am just happy when things run correctly.

Again thank you guys you your help, and if anybody would like to post a more efficient solution, please feel free :)

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