# Difference between revisions of "TADM2E 5.2"

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Yes, for a vertex with multiple outgoing edges, if we explore the edge in alphabetical order, then the pre-order DFS walk from A would give the ordering: A, B, C, F, D, E, G, I, J. The RPO order is: A, B, D, E, G, I, J, C, F. | Yes, for a vertex with multiple outgoing edges, if we explore the edge in alphabetical order, then the pre-order DFS walk from A would give the ordering: A, B, C, F, D, E, G, I, J. The RPO order is: A, B, D, E, G, I, J, C, F. | ||

− | Since the "topsort" given on the page 181 has a for-loop outermost, after finishing the DFS walk from A, it then starts another DFS from H, which will only explore the vertex H. Then H will be pushed into the stack. The final RPO | + | Since the "topsort" given on the page 181 has a for-loop outermost, after finishing the DFS walk from A, it then starts another DFS from H, which will only explore the vertex H. Then H will be pushed into the stack. The final RPO would be: H, A, B, D, E, G, I, J, C, F. |

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+ | --[[User:Ohk|Ohk]] ([[User talk:Ohk|talk]]) 08:45, 4 March 2016 (EST) | ||

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+ | Agreed... |

## Latest revision as of 13:45, 4 March 2016

Be sure to apply the errata and change the direction of the edge between F and H.

A topological sorting of this graph would be:

A, B, D, E, C, H, G, I, J, F

--Someguy (talk) 05:13, 3 March 2016 (EST)

After the direction change of the edge between F and H, vertex H has no incoming edges, just like vertex A. If we start DFS at vertex A, according to the "topsort" on page 181, vertex H is supposed to appear at the beginning of the sorting, rather than in the middle:

H, A, B, D, E, C, G, I, J, F

Please correct me if I am wrong.

--Ohk (talk) 08:03, 3 March 2016 (EST)

If the direction from H->F is changed to F->H, then J should be the terminal vertex ?

A pre-order DFS walk should give the ordering : A B C F H G I J D E

The RPO toposort should be : A B D E C F H G I J

--Someguy (talk) 04:27, 4 March 2016 (EST)

Hi Ohk, thanks for the reply.

The original graph on page 185 in the book pdf (obtained from "sist.sysu.edu.cn/~isslxm/DSA/textbook/Skiena.-.TheAlgorithmDesignManual.pdf") contains a directed cycle (G->F->H->G). According to the errata ("www3.cs.stonybrook.edu/~skiena/algorist/book/errata"), we should "reverse the edge (F,H)" to make it acyclic; that is to say changing the edge from F->H to H->F. It is different from yours (from H->F to F->H).

As I understand, after the change either J or F could be the terminal vertex, since both vertices have no outgoing edges. A and H have no incoming edges, so they are unreachable from other vertices. I removed the "http//" prefix in the above links as I do not have the right to put external link.

--Ohk (talk) 06:18, 4 March 2016 (EST)

Aww Snap ! I have the Kindle edition of the book and it already has the correct graph.

I am avoiding looking at the code in the book and building up the code on trying to mimic the pseudo-code

And as per my code, the RPO order is : A, B, D, E, G, I, J, C, F

The adjacency representation for the graph being : {A=[B, D], B=[C, D, E], C=[F], D=[E, G], E=[C, F, G], F=[], G=[F, I], H=[F, G, J], I=[J], J=[]}

(where A=[B,D] means node A forms and edge with nodes B,D etc)

Node H does not even appear in the topology then. And when tested with other graphs I do get correct RPO order though.

But I see your point... H should not appear in the middle of the order, it's not reachable from any node.

--Someguy (talk) 06:57, 4 March 2016 (EST)

Yes, for a vertex with multiple outgoing edges, if we explore the edge in alphabetical order, then the pre-order DFS walk from A would give the ordering: A, B, C, F, D, E, G, I, J. The RPO order is: A, B, D, E, G, I, J, C, F.

Since the "topsort" given on the page 181 has a for-loop outermost, after finishing the DFS walk from A, it then starts another DFS from H, which will only explore the vertex H. Then H will be pushed into the stack. The final RPO would be: H, A, B, D, E, G, I, J, C, F.

--Ohk (talk) 08:45, 4 March 2016 (EST)

Agreed...