0

I have 2 lists of hostnames

foo=['some-router-1', 'some-switch-1', 'some-switch-2']

bar=['some-router-1-lo','some-switch-1','some-switch-2-mgmt','some-switch-3-mgmt']

I would expect output to be like...

out=['some-switch-3-mgmt']

I want to find entries in bar that are not in foo. However some names in bar have "-mgmt" or some other string appended that don't occur in foo. The length and number of dashes per list item vary greatly, so I'm not sure how successful using a regex would be. I'm new to programming, so please provide some explanation if possible.

2
  • The bar elements are always in the name_in_foo-something_else? Or could be in the form one_thing-name_in_foo-something_else? – Jose Raul Barreras Aug 26 '16 at 17:03
  • bar is a list of hosts that show up on a logging server. foo is a list of hosts in a monitor server. They aren't matching lists. Purpose is to find hosts from the logging server (bar) that may not be in the monitoring server (foo). The beginning of the names are always the same, that's not the case with the ending though. – Eeternal Aug 26 '16 at 17:53
0

You may achieve it by using filter as:

>>> filter(lambda x: x if not any(x.startswith(f) for f in foo) else None, bar)
['some-switch-3-mgmt']

I am using startswith to check whether any element of bar starts with any element of foo

0
0

You could do this with a list comprehension and all:

>>> out = [i for i in bar if all(j not in i for j in foo)]    
>>> out
['some-switch-3-mgmt']

Meaning, you select every element i in bar if, for every element j in foo, j is not contained in i.

2
  • Use i.startswith(j) instead of j not in i. As mentioned by OP, j will be present only at the start of string – Anonymous Aug 26 '16 at 17:08
  • Yup, you should use i.startswith(j) otherwise a-switch-1 and ba-switch-1 will be counted as equals... – bbkglb Aug 26 '16 at 17:19
0

You can use startswith() to see if a string starts with another string. So something like:

out = [bar_string for bar_string in bar if not bar_string.startswith(tuple(foo))]
0

There is some problems with the solutions provided by @Jim and @bbkglb when the elements are repeated in bar. Those solutions should be converted to sets. I tested the solutions and their response times:

foo=['some-router-1', 'some-switch-1', 'some-switch-2']*1000
bar=['some-router-1-lo','some-switch-1','some-switch-2-mgmt','some-switch-3-mgmt']*10000

Using filter - lambda:

%timeit set(filter(lambda x: x if not any(x.startswith(f) for f in foo) else None, bar))
1 loop, best of 3: 7.65 s per loop

Using all:

%timeit set([i for i in bar if all(j not in i for j in foo)])
1 loop, best of 3: 7.97 s per loop

Using any:

%timeit set(b for b in bar if not any(b.startswith(f) for f in foo))
1 loop, best of 3: 7.97 s per loop

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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