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Here is the problem together with the kind of result I am expecting. I already have a routine that does this, I would like to research other solutions though so need any popular names for either a solutions or the problem itself.

If name1 and name2 are aliases or equivalent and name3 and name2 are aliases then
name1, name2, and name3 are all aliases of each other.

>>> aliases = [('name1', 'name2'), ('name3', 'name2')]
>>> consolidate_aliases(aliases)
[('name2', 'name3', 'name1')]
>>> aliases = [('A', 'X'), ('B', 'Y'), ('C', 'Z'), ('S', 'L'), ('T', 'M'), ('U', 'N'), ('Y', 'T'),  ('B', 'L')]
>>> consolidate_aliases(aliases)
[('S', 'B', 'T', 'Y', 'M', 'L'), ('U', 'N'), ('C', 'Z'), ('A', 'X')]
>>>
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You do realize that most people who are not you will not have any idea what you are talking about, right? –  Jon Apr 20 '12 at 7:59
    
Thanks Jon. The answers so far by Henrik and MBo below are interesting and touch on what I am after. (It would be nice if Wikipedia could try and make such admittedly technical subjects more approachable). –  Paddy3118 Apr 20 '12 at 8:43
    
this like as Separate part of connectivity in graph –  amin k Apr 20 '12 at 13:15

3 Answers 3

It's called transitive closure.

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It looks like Union-Find algorithm

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up vote 0 down vote accepted

It is a variant of the "Connected components of a graph" problem. Google for it to see answers like this and this.

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