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I have a list of lists a eg:

a = [[1, 3, 7], [3, 5, 7], [-23, -34, -45]]

and another list b eg:

b = [1, 2, 3, 4]

I want to create a list c where when the items in the first two columns of a single row of list a are not present in list b that row of a is appended to list c. In the example lists c would look like:

c = [[7], [7], [-45]]

as the first row of a contains 1 and 3, both of which are present in b and the 2nd row contains 3 which is present in b.

I have tried the following without success:

for row in a:
    if row[0] or row[1] not in b:
        c.append(a)

and

for row in a:
    if row[1] not in b:
        if row[0] not in b:
            c.append(a)

as both just seem to copy a into b

Does anyone know why my code isn't working/code that would instead?

edit: apologies, I got my expected result wrong the first time round

edit 2: I messed up big time - I was designing it all wrong, my input lists are coming from another source and I had copied them down wrong. So what I am actually looking to do is as follows

c = [ ]

a = [[1, 3, -23], [3, 5, -34], [7, 7, -45]]
b = [1, 2, 3, 4]

for row in a:
    if row[0] not in b and row[1] not in b:
        c.append(row)

Thanks for everyone who helped. sorry I'm such an idiot.

share|improve this question
2  
What your function should do is very unclear to me. Your definitions seem contradictory – m09 Apr 18 '13 at 15:39
    
Is it any clearer now, I'd messed up the expected result because I forgot to add the third column – mark mcmurray Apr 18 '13 at 15:42
2  
Except it's still off, because you say if the first two columns are not present in b, the third column should be added. The first row shouldn't be added, then, and so it should be c = [[7], [-45]]. – mattg Apr 18 '13 at 15:44
    
"when the items in the first two columns of a single row of list a are not present in list b that row of a is appended to list c" So if a[0] or a[1] is in b then append a to c. Does it not read like that? – mark mcmurray Apr 18 '13 at 15:47
up vote 1 down vote accepted

Slight modification on @muzulget's answer:

for row in a:
    if row[0] not in b or row[1] not in b:
        c.append(a[2])
share|improve this answer
    
This isn't quite the answer since I messed up the question but it is close – mark mcmurray Apr 18 '13 at 16:20

Maybe wrong condition?

for row in a:
    if row[0] not in b or row[1] not in b:
        c.append(a)

row[0] is true if is none-zero, so why always copy a to b.

share|improve this answer
    
This still copies all the values in a into c for me – mark mcmurray Apr 18 '13 at 15:49
    
Oh, didn't notice the line c.append(a), @mattg's answer is what your want. – muzuiget Apr 18 '13 at 16:07

Just use sets and list comprehensions:

[row[2] for row in a if set(b)-set(row[:2]) != set(b)] # prints [7, 7]
share|improve this answer
    
I need c to end up as a list of lists as multiple rows could be added to it. – mark mcmurray Apr 18 '13 at 16:03

I'd go with:

c = [row[2:] for row in a if row[0] in b or row[1] in b]

or, with sets:

b_set = set(b)
c = [row[2:] for row in a if not set(row[:2]).isdisjoint(b_set)]

test:

>>> a = [[1, 3, 7], [3, 5, 7], [-23, -34, -45]]
>>> b = [1, 2, 3, 4]
>>> c = [row[2:] for row in a if row[0] in b or row[1] in b]
>>> print c
[7, 7]

Seems to fit your last definition in the comments. Not sure it's the right one though ;)

share|improve this answer
    
I need c to still be a list of lists as it may end up having multiple rows added to it – mark mcmurray Apr 18 '13 at 16:02
    
fixed, but your sample doesn't show why the list of lists would be useful – m09 Apr 18 '13 at 16:06
    
Sorry about that - I just drew up a quick example of a sample and didn't think of demonstrating that fact. – mark mcmurray Apr 18 '13 at 16:08

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