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In Python I have a list called "list1" containing lists of variable length.

I want to append a second list "add" to that long list iff the first element of add is not the first element of any of the lists in list1.

This code works:

list1 = [["a", 5, 9, 22], ["b", 10, 1], ["c"], ["d", 42]]

add = ["e", 1, 31]
add2 = ["b", 1, 31]

temp = []
for e in list1:
    temp.append(e[0])

if add[0] not in temp:
    list1.append(add)

As expected, add ist added to list1 while add2 would not be added.

However, I wonder if there is a more elegant and effective way that avoids creating a temporary list.

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1 Answer 1

up vote 1 down vote accepted

You could test with all() and a generator expression:

if any(add[0] != elem[0] for elem in list1):
    list1.append(add)

The all() function loops over the included generator expression testing that it'll onl contain True values, but will stop if it comes across a False (where add[0] is equal to elem[0]). This saves having to loop through all of list1 to find out if elem[0] is already present.

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I guess they actually want if all(add[0] != elem[0])... –  georg Mar 11 '13 at 15:22
    
@thg435: Uhm, yes, indeed. Inverted my logic there, corrected. –  Martijn Pieters Mar 11 '13 at 15:27
    
Probably worth mentioning that this will break if any of the lists involved are empty. If that's possible with your data, you can add a filter to the generator expression: if all(add[0] != elem[0] for elem in list1 if elem)... –  Henry Keiter Mar 11 '13 at 15:30

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