Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am parsing 100s of files that follow a similar format. From the file, I create a dictionary that may contain two keys or more than two keys where the values are in a set. Regardless, there will always be a key that contains the 'Y' value. For that key, I need to remove any duplicate values that exist in the other keys.

I had a similar problem where I only had two keys and it was solved. Python: How to compare values of different keys in dictionary and then delete duplicates?

The below code works fine when the dictionary has two keys but not more than two.

for d, p in zip(temp_list, temp_search_list):
    temp2[d].add(p) #dictionary with delvt and pin names for cell
for test_d, test_p in temp2.items():
    if not re.search('Y', ' '.join(test_p)) :
         tp = temp2[test_d]
    else:
         temp2[test_d] = [t for t in temp2[test_d] if t not in tp]

Example dictionary that uses three keys but depending on the parsed file I can have more keys.

temp2 = {'0.1995': set(['X7:GATE', 'X3:GATE', 'IN1']), '0.199533': set(['X4:GATE', 'X8:GATE', 'IN2']), '0.399': set(['X3:GATE', 'X5:GATE', 'X1:GATE', 'IN0', 'X4:GATE', 'Y', 'X8:GATE'])}

Expected Output:

temp2
{'0.1995': set(['X7:GATE', 'X3:GATE','IN1']), '0.199533': set(['X4:GATE', 'X8:GATE', 'IN2']), '0.399': set(['X5:GATE', 'X1:GATE', 'IN0', 'Y'])}
share|improve this question
2  
any('Y' in value for value in test_p) would be a better way to test for the presence of Y. –  Martijn Pieters Jan 16 '13 at 15:51

4 Answers 4

up vote 1 down vote accepted

You need to separate the search for the Y value from the search through the rest of you data. You really want to do that when you are already building temp2, to avoid unnecessary loops:

y_key = None
for d, p in zip(temp_list, temp_search_list):
    temp2[d].add(p)
    if p == 'Y':
        y_key = d

Next, removing the dupe values is easiest using set.difference_update() to alter the sets in-place:

y_values = temp2[y_key]
for test_d, test_p in temp2.iteritems():
    if test_d == y_key:
        continue
    y_values.difference_update(test_p)

Using your example temp2, and presuming that y_key has already been set while building temp2, the result of the second loop is:

>>> temp2 = {'0.1995': set(['X7:GATE', 'X3:GATE', 'IN1']), '0.199533': set(['X4:GATE', 'X8:GATE', 'IN2']), '0.399': set(['X3:GATE', 'X5:GATE', 'X1:GATE', 'IN0', 'X4:GATE', 'Y', 'X8:GATE'])}
>>> y_key = '0.399'
>>> y_values = temp2[y_key]
>>> for test_d, test_p in temp2.iteritems():
...     if test_d == y_key:
...         continue
...     y_values.difference_update(test_p)
... 
>>> temp2
{'0.1995': set(['X7:GATE', 'X3:GATE', 'IN1']), '0.199533': set(['X4:GATE', 'X8:GATE', 'IN2']), '0.399': set(['X5:GATE', 'X1:GATE', 'IN0', 'Y'])}

Note how the values X3:GATE, X4:GATE and X8:GATE have been removed from the 0.399 set.

share|improve this answer
    
Hi @Martijn I actually want the duplicates to be removed from the set that contains 'Y'. I'll update the OP to show the expected outcome. –  Jon A. Jan 16 '13 at 16:19
    
@JonA.: That's easy enough. Updated to reverse the difference_update() variables, and the produced output. –  Martijn Pieters Jan 16 '13 at 16:20

You can do the whole thing with only 1 loop that actually has to traverse the entire dataset.

from collections import defaultdict

target = None
result = defaultdict(set)
occurance_dict = defaultdict(int)
# Loop over the inputs, building the result, counting the
# number of occurances for each value as you go and marking
# the key that contains 'Y'
for key, value in zip(temp_list, temp_search_list):
    # This is here so we don't count values twice if there
    # is more than one instance of the value for the given
    # key.  If we don't do this, if a value only exists in
    # the 'Y' set, but it occurs multiple times in the input,
    # we would still filter it out later on.
    if value not in result[key]:
        occurance_dict[value] += 1
        result[key].add(value)
    if value == 'Y':
        if target is None:
            target = key
        else:
            raise ValueError('Dataset contains more than 1 entry containing "Y"')
if target is None:
    raise ValueError('Dataset contains no entry containing "Y"')
# Filter the marked ('Y' containing) entry; if there is more than
# 1 occurance of the given value, then it exists in another entry
# so we don't want it in the 'Y' entry
result[target] = {value for value in result[target] if occurance_dict[value] == 1}

Yes occurance_dict is the much same as a collections.Counter, but I'd rather not iterate over the dataset twice (even if it is happening behind the scenes) if I don't have to, and we also aren't counting a second occurance of a given value for the same key.

share|improve this answer

I wish I could think of a cute way to do this with list comprehensions and/or the itertools module, but I can't. I'd start with something like:

dict1 = {1: set([1,2,3,4,5]),
         2: set([3,4,5,6]),
         3: set([1,7,8,9])
        }

list1 = dict1.items()
newDict = {}
for i in range(len(list1)):
    (k1,set1) = list1[i]
    newDict[k1] = set1
    for j in range(i+1,len(list1)):
        (k2, set2) = list1[j]
        newDict[k2] = set2 - (set1 & set2)

print newDict 
# {1: set([1, 2, 3, 4, 5]), 2: set([6]), 3: set([8, 9, 7])}

This is probably not super efficient if you have huge dictionaries.

Another idea: are the sets too long so that you can't just form a collection.Counter? You would first go through the dict and strip out the members in each set and stick them in a counter (probably can be doen in one line wiht a list comprehension). Then, loop through originalDict.iteritems(). Into a new dict, you can insert the key (i.e., 0.1995) whose value is the original set, filtered (use & as above, I think) so that it only contains entries in the counter with counts > 0. For all elements that you inserted into the new dictionary, remove them from the counter (even if they have >1 counts). At the end of the day, you still have to loop twice though.

share|improve this answer

Seems pretty straight-forward to me. First find the key that has a 'Y' in its set of value, then go though the all the other sets of values and remove them from that set of values.

temp2 = {'0.1995':  set(['X7:GATE', 'X3:GATE', 'IN1']),
         '0.199533':set(['X4:GATE', 'X8:GATE', 'IN2']),
         '0.399':   set(['X3:GATE', 'X5:GATE', 'X1:GATE', 'IN0', 'X4:GATE', 'Y', 'X8:GATE'])}

y_key = None
for k,v in temp2.iteritems():
    if 'Y' in v:
        y_key = k
        break

if y_key is None:
    print "no 'Y' found in values"
    exit()

result = {}
for k,v in temp2.iteritems():
    if k != y_key:
        temp2[y_key] -= v

print 'temp2 = {'
for k,v in temp2.iteritems():
    print '  {!r}: {!r},'.format(k,v)
print '}'

Output:

temp2 = {
  '0.1995': set(['X7:GATE', 'X3:GATE', 'IN1']),
  '0.199533': set(['X4:GATE', 'X8:GATE', 'IN2']),
  '0.399': set(['X5:GATE', 'X1:GATE', 'IN0', 'Y']),
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.