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I have this dictionary that stores pairs of two quiz scores and participants' ID. The structure is {(quiz1, quiz2): ID}

scoredict = {('83', '93'): '81937', ('88', '86'): '33576', ('96', '97'): '01084', 
('81', '95'): '48534', ('84', '72'): '11235', ('77', '80'): '01835', ('90', '83'): 
'39488', ('75', '74'): '31049', ('80', '62'): '10188', ('85', '86'): '63011', 
('66', '89'): '58272'}

I want to make this program to look up for an ID by entering a pair of quiz scores. Like, for example, if the user input 83 and 93 for quiz 1 and quiz 2, it will return 81937. I've been working on this since the last 48 hours, but none of my codes worked...

And is it possible to find the closest available scores for both quizzes and print the ID?

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3 Answers 3

up vote 4 down vote accepted

I verified your solution already works with ipython:

In [1]: scoredict = {('83', '93'): '81937', ('88', '86'): '33576', ('96', '97'): '01084', 
   ...: ('81', '95'): '48534', ('84', '72'): '11235', ('77', '80'): '01835', ('90', '83'): 
   ...: '39488', ('75', '74'): '31049', ('80', '62'): '10188', ('85', '86'): '63011', 
   ...: ('66', '89'): '58272'}

In [2]: scoredict['83','93']
Out[2]: '81937'
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Oh my bad. Thanks for letting me know! –  DarsAE Apr 14 '12 at 2:54

For the closest scores, you can try this:

test = (83, 93)

deviation = float('inf')
best_match = None

for score1, score2 in scoredict:
  error = abs(int(score1) - test[0]) + abs(int(score2) - test[1])

  if error < deviation:
    deviation = error
    best_match = (score1, score2)

print scoredict[best_match]
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I tried to use this method but I got this error: ValueError: invalid literal for int() with base 10: '-140.0' –  DarsAE Apr 14 '12 at 2:54
    
Use float() instead of int() if you are using floating point numbers. –  Blender Apr 14 '12 at 4:15

Simply do:

>>> scoredict[(score1,score2)]
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