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I have a list of tuples of the form (a,b,c,d) and I want to copy only those tuples with unique values of 'a' to a new list. I'm very new to python.

Current idea that isn't working:

for (x) in list:
   a,b,c,d=(x)
   if list.count(a)==1:
      newlist.append(x)
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Just as a suggestion: If you'd put some examples of input and expected output, you would help people that want to verify that their solutions work like you want them too. –  Mattias Nilsson Jul 15 '10 at 19:51
    
You should use L instead of list so that you don't hide the built-in list type. –  Cristian Ciupitu Jul 15 '10 at 20:03

4 Answers 4

up vote 3 down vote accepted

If you don't want to add any of the tuples that have duplicate a values (as opposed to adding the first occurrence of a given a, but none of the later ones):

seen = {}
for x in your_list:
    a,b,c,d = x
    seen.setdefault(a, []).append(x)

newlist = []
for a,x_vals in seen.iteritems():
    if len(x_vals) == 1:
        newlist.append(x_vals[0])
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Thanks, this is perfect. –  coup Jul 15 '10 at 19:37

You could use a set to keep track of the duplicates:

seen_a = set()
for x in list:
    a, b, c, d = x
    if a not in seen_a:
        newlist.append(x)
        seen_a.add(x)
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1  
This, like Jesses suggestion, will take the first entry for each value of "a", not just the ones where "a" i unique. –  Mattias Nilsson Jul 15 '10 at 19:41
values = {}

for t in tups:
  a,b,c,d = t
  if a not in values:
    values[a] = (1, t)
  else:
    count, tup = values[a]
    values[a] = (count+1, t)

unique_tups = map(lambda v: v[1],
                  filter(lambda k: k[0] == 1, values.values()))

I am using a dictionary to store a values and the tuples that have that a value. The value at that key is a tuple of (count, tuple) where count is the number of times that a has been seen.

At the end, I filter the values dictionary for only those a values where the count is 1, i.e. they are unique. Then I map that list to return only those tuples, since the count value will be 1.

Now, unique_tups is a list of all those tuples with unique a's.

Updated after receiving feedback from commenters, thanks!

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This doesn't really make a list, which the OP asked for. It also will lose track of the order (OP doesn't say if that is problem) and it doesn't just put the entries where "a" is unique, but will just pick the first entry for each value of "a" –  Mattias Nilsson Jul 15 '10 at 19:32
    
Thanks for the feedback, I've updated it to try to make it correct. –  Jesse Dhillon Jul 15 '10 at 20:04

you could indeed sort the list and then iterate over it:

xs = [(1,2,3,4), (5, 2, 3, 4), (2, 3, 3, 3), (1, 5, 2, 3)]
newList = []
xs.sort()
lastX = None
for x in xs:
  if lastX:
    if lastX[0] == x[0]:
      lastX = None
    else:
      newList.append(lastX)
      lastX = x
if lastX:
  newList.append(lastX)
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This also works well! thanks! –  coup Jul 15 '10 at 19:47
    
Hang on, wouldn't this keep this keep the first tuple with a given value for 'a' and ignore the rest? For example, if the first few tuples are [(125, b, c, d) (125, b, c, d) (127, b, c, d) (127, b, c, d) (128, b, c, d) (129, b, c, d)], then this iteration would append the first tuple but not the second, and the third tuple but not the fourth, when none of those four have unique values for 'a'. –  coup Jul 15 '10 at 20:16
    
Ok, I misunderstood your objective. The updated code will look at last element and only if it differs from current one on [0] (and there were no others with that [0]), it will add it to the output list. –  nazgul Jul 15 '10 at 20:28

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