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I have a list of elements created by:

if x > 2:
            pricePerUnit.append(name)
            pricePerUnit.append(price/quantity)
bestValue = list.count(min(pricePerUnit))

How could I take the element preceding each value at the same time as I take the value?

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1 Answer 1

The best thing to do would be to structure your pricePerUnit list differently, storing both values together as a tuple:

if x > 2:
    pricePerUnit.append((name, price / quantity))

This way, when you find the best value item, you also find the name. To find the minimum value in the list, you now need to supply a key argument to min. This key function should extract the value to compare to find the minimum, which in this case is the 1st item in the tuple (name is the 0th item in the tuple):

bestValueName, bestValue = min(pricePerUnit, key=lambda ppu: ppu[1])

To find all of the items that have the best value, you should find the best value, and then find all items that have that value:

_, bestValue = min(pricePerUnit, key=lambda ppu: ppu[1])
bestValueItems = filter(lambda ppu: ppu[1] == bestValue, pricePerUnit)
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the append function only takes one arguement though –  user2368334 May 10 '13 at 2:28
    
Note the extra pair of parens inside the append call. This makes a tuple. If it is broken apart in to two statements like so, it should be clearer: nameValueTuple = (name, price / quantity); pricePerUnit.append(nameValueTuple). The python docs have more information on tuples: docs.python.org/release/1.5.1p1/tut/tuples.html –  Tim Heap May 10 '13 at 2:52
    
is there a way to make this work when there are multiple values that are the same? –  user2368334 May 10 '13 at 3:16
    
Yep, I updated my answer with a solution. –  Tim Heap May 10 '13 at 3:48

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