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I have the following string :

str = "{application.root.category.id:2}"

I would like to convert the above to a dictionary data type in python as in :

dict = {application.root.category.id:2}

I tried using eval() and this is the error I got:

AttributeError: java package 'application' has no attribute "root"

My current python is of <2.3 and I cannot update the python to >2.3 .

Any solutions ?

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1  
What should be the key of the dictionary item? –  pepr Jun 11 '12 at 11:10
1  
can you explain the java package thing? –  wong2 Jun 11 '12 at 11:12
1  
Do you want {application.root.category.id: 2} or {"application.root.category.id": 2}? Your problem is that application.root.category.id cannot be evaluated. –  Eric Jun 11 '12 at 11:22

3 Answers 3

up vote 3 down vote accepted

First, 'dict' is the type name so not good for the variable name.

The following, does precisely as you asked...

a_dict = dict([str.strip('{}').split(":"),])

But if, as I expect, you want to add more mappings to the dictionary, a different approach is required.

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Python dictionaries have keys that needn't be strings; therefore, when you write {a: b} you need the quotation marks around a if it's meant to be a string. ({1:2}, for instance, maps the integer 1 to the integer 2.)

So you can't just pass something of the sort you have to eval. You'll need to parse it yourself. (Or, if it happens to be easier, change whatever generates it to put quotation marks around the keys.)

Exactly how to parse it depends on what your dictionaries might actually look like; for instance, can the values themselves be dictionaries, or are they always numbers, or what? Here's a simple and probably too crude approach:

contents = str[1:-1]        # strip off leading { and trailing }
items = contents.split(',') # each individual item looks like key:value
pairs = [item.split(':',1) for item in items] # ("key","value"), both strings
d = dict((k,eval(v)) for (k,v) in pairs) # evaluate values but not strings
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2  
For security reasons, I'd rather use int(v) or eval(v,{},{}) instead of the plain eval(v). Compare eval("os.remove('/tmp/a')", {}, {}) ("name 'os' is not defined") against eval("os.remove('/tmp/a')") ("No such file or directory: '/tmp/a'"). –  daniel kullmann Jun 11 '12 at 11:37
2  
Yes. Generally using eval (especially its simple one-arg form) is a bad, bad idea. I just lazily did it because the OP did :-). –  Gareth McCaughan Jun 11 '12 at 22:53

Suppose I have a string

str='{1:0,2:3,3:4}'
str=str.split('{}')
mydict={}
for every in str1.split(','):
    z=every.split(':')
    z1=[]
    for every in z:
        z1.append(int(every))
    for k in z1:
        mydict[z1[0]]=z1[1]

output: mydict {1: 0, 2: 1, 3: 4}

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