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I have a dict x={'a':1,'b':2} of this type. I have one more dict where I stored formula

x1={'c':{'p':'pre','r':'ref','2010':'a+b'},'d': {'p':'pre','r':'ref','2010':'f+g'}

I am using eval to calculate formula. For this i am using code

for k,v in x1.iteritems():
   if eval(x1[k]['2010'],x) is False:
       continue

Actually value for "a" and "b" is their but values of "f" and "g" not their eval(x1['c']['2010'],x) works but eval(x1['d]['2010'],x) fails, so i want to skip this evaluation. But it shows 'f' not defined.

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2  
What is this.. I don't even .. –  wim Mar 15 '12 at 6:45
    
@wim Actually in Text box i indented program by 4 spaces,but when i save it all comes in one line –  user1182090 Mar 15 '12 at 6:51
    
@user1182090 You need to leave a blank line between a block formatted code and the context. –  torrential coding Mar 15 '12 at 6:53
    
Now its formatted can anyone help –  user1182090 Mar 15 '12 at 6:56

3 Answers 3

up vote 0 down vote accepted

You might want to try:

for k,v in x1.iteritems():
    try:
        eval(x1[k]['2010'],x)
    except NameError:
       continue

But IMHO the concept is somewhat strange - or I just do not understand it...

BTW: a closing bracket is missing in the definition of x1.

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Thanks@Andreas Florath –  user1182090 Mar 15 '12 at 7:24

Why use eval()? Why not just test for the value? Also, since your using .items() you get the key and value, so you don't need to re-reference the dictionary.

for k, v in x.items():
    if not v:
        continue
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I don't think he got your solution, unfortunately. :) –  Jonas Byström Mar 15 '12 at 7:26

There is a concept you are missing: lambda expressions. They allow you to create single-expression functions.

So, instead of eval('a+b', {'a':1,'b':2}), you can do (lambda a,b: a+b)(1,2). Lambda expressions (like functions) are first-class objects which can be held in a dict.

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