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I want to find the column number that corresponds to the highest value in a row.

I need to write it as a function that takes the following dictionary as a argument:

    {'1': {'3': 0, '2': 1, '5': 1, '4': 0, '6': 29},
    '3': {'1': 0, '2': 0, '5': 0, '4': 1, '6': 1},
    '2': {'1': 13, '3': 1, '5': 21, '4': 0, '6': 0},
    '5': {'1': 39, '3': 0, '2': 1, '4': 0, '6': 14},
    '4': {'1': 1, '3': 1, '2': 17, '5': 2, '6': 0},
    '6': {'1': 0, '3': 43, '2': 0, '5': 0, '4': 1}}

my first row is number 4. I find the highest number by:

max(d['4'].values())

From the matrix representation of the dictionary i know that this number is in column number 2. And I want my function to return this number. How?

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3  
Why are you indexing the dictionary with string representations of integers instead of ints? –  David Robinson Jan 3 '13 at 15:52
    
This is how the dictionary is given to me in the exercise –  anne Jan 3 '13 at 16:05

4 Answers 4

Code:

def key_of_max_value(d):
    for k, v in d.iteritems():
        yield k, max((v, k) for k, v in v.iteritems())

Test code:

def test_key_of_max_value():
    d = {
        '1': {'3': 0, '2': 1, '5': 1, '4': 0, '6': 29},
        '3': {'1': 0, '2': 0, '5': 0, '4': 1, '6': 1},
        '2': {'1': 13, '3': 1, '5': 21, '4': 0, '6': 0},
        '5': {'1': 39, '3': 0, '2': 1, '4': 0, '6': 14},
        '4': {'1': 1, '3': 1, '2': 17, '5': 2, '6': 0},
        '6': {'1': 0, '3': 43, '2': 0, '5': 0, '4': 1}
    }
    for k, (value, column_key) in key_of_max_value(d):
        print k, column_key, value    

test_key_of_max_value()

Results:

1 6 29
3 6 1
2 5 21
5 1 39
4 2 17
6 3 43
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I think you want the items method of a dictionary:

col,value = max(d['4'].items(), key = lambda x: x[1])

Breaking it down to see how this works:

  • d['4'].items() returns a list (or iterable object in python3) of key-value tuples
  • max takes a second argument which is a function that is used to actually compare the items. In this case, we take the second item in each tuple (the value)
  • max returns the entire tuple, and we disassemble it using col,value = max(...)
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In [11]: max(d['4'].items(), key=lambda (k,v):v)[0]
Out[11]: '2'

where d is your dictionary.

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If a write print max(d['4'].items(), key=lambda (k,v):v)[0] I get a syntax error, why is that? –  anne Jan 3 '13 at 16:22

Something like this should work:

max(d['4'].iteritems(), key=lambda x: x[1])[0]
share|improve this answer
    
When i use that i line I get en error saying invalid syntax and suggesting '=' –  anne Jan 3 '13 at 16:07
    
Please paste the exact error message, and (if you can) pastebin your code too. –  cdhowie Jan 3 '13 at 16:08
    
I din't know what happend before. it works now. Thank you –  anne Jan 3 '13 at 16:29
    
If I wan't the function to return the column number of the largest value in the dictionary, so without knowing the row. Is that possible? –  anne Jan 3 '13 at 16:40
    
@anne: Yes, it is. Reduce each row to its largest value, then reduce the entire dictionary the same way. r = max(map(lambda i: (i[0], max(i[1].iteritems(), key=lambda j: j[1])), d.iteritems()), key=lambda x: x[1][1]) It's ugly, but it works. r[0] is the outer dict key, r[1][0] is the inner dict key, and r[1][1] is the value that was determined to be the largest. –  cdhowie Jan 3 '13 at 16:51

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