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Let's say that there is at most one vertex with the following property in a DAG

  1. all vertices are connected to it
  2. it is not connected to any vertex.

Is it possible to detect this vertex in O(n) (n = number of vertices in graph) ?

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Can the graph have more than one edge A -> B, for some vertices A and B? –  Heatsink Nov 9 '10 at 19:17
    
no, just one edge for a pair of vertices –  bronzebeard Nov 9 '10 at 19:17

3 Answers 3

up vote 3 down vote accepted

As there are no cycles in the graph, and all vertex connect with the sink, just select any starting node and start walking randomly. When you can't continue walking, you are at the sink. (at most n steps)

Edit Answering @Heatsink comment:

Once you walked n steps (or less and you can't continue), as the problem does not guarantee that there is a sink, you should check if you are at one. That adds another O(n). So the problem is O(2 n) = O(n)

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Really simple solution ! –  Loïc Février Nov 9 '10 at 19:36
    
As Jason said its O(n+m) not n. –  Saeed Amiri Nov 9 '10 at 19:42
    
It's not guaranteed that a unique sink exists--the DAG might be disconnected. This method won't tell you whether all vertices are connected to the node you find. –  Heatsink Nov 9 '10 at 19:43
    
If disconnected then all vertices can't be connected to it, can they ? –  Loïc Février Nov 9 '10 at 19:44
    
EVERY vertex in connected to the sink. This arrives sooner to the sink if the graph has less edges. You can't stop at any vertex that is not the sink, because that vertex IS connected to the sink by definition. –  belisarius Nov 9 '10 at 19:45

The best I can think of is O(n + m) which is O(n) if m is O(n).

Assuming a sink exists, do a topological sort of the graph. The minimal node in the sort is a sink. Note that topological sort is O(n + m).

I have previously provided an implementation here which can easily be modified for this problem.

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topological sort in this case is O(n+m) if the graph representation is by Adjacency list. –  Saeed Amiri Nov 9 '10 at 19:32
    
You can update your answer : to check if it's a sink (there might be no sink in this graph), invert the adjacency list and not a DFS and count the number of nodes reached. –  Loïc Février Nov 9 '10 at 20:01

Provided you can count the number of edges in/out of a node in linear time, it's possible. First, find the vertices that have no outgoing edges (O(n) to scan all nodes). Your conditions are satisfied only if there's exactly one such vertex. Then, count its incoming edges (O(n) to scan all input edges). Your conditions are satisfied if there are exactly n-1 incoming edges. If either test fails, there's no sink vertex.

I'm assuming by "connected" you mean "connected by an edge", not "reachable by a path".

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Not good : it's a DAG, this node might not have n-1 inputs. Think A->B->C. C is a sink. –  Loïc Février Nov 9 '10 at 19:34
    
@Loïc I think "all vertices are connected to it" is a stronger property than "there is a path to it from any vertex" which is I think your take –  piccolbo Nov 9 '10 at 19:38
    
If "all connected" then what's the interest to have a DAG ? Connected here means path. –  Loïc Février Nov 9 '10 at 19:39
    
@Loïc Février, think a is a star node, b->a, c->a, b->c it's DAG and there is two path to a from b no problem –  Saeed Amiri Nov 9 '10 at 19:46
    
@Loïc You're probably right that bronzebeard cares about paths rather than edges. –  Heatsink Nov 9 '10 at 19:49

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