35

I have a graph that has a tree as its backbone. So I have, for example a node A with children B, C, and D. Assuming the graph is being drawn top-down, A will be on one level, then B, C, and D. I would like to force graphviz to lay them out in B, C, D order within their rank. Is this possible? If so, how?

If there are only A, B, C, and D, I can get this effect by just putting B, C, and D in that order in the input dot file. But if there are other edges out of B, C, and/or D, sometimes the order gets scrambled. That's what I would like to avoid.

enter image description here

1

4 Answers 4

45

To help fill-out @TomServo's answer (for people struggling with "rank"), I've made the invisible edges visible:

After adding <code>rank1</code> and <code>rank2</code>.

1
  • Thanks, that helps understand the ranking better. Commented Jul 24, 2021 at 23:44
42

This can be achieved with "invisible" edges as shown. Please note well the comments that describe how it works.

digraph test{

// make invisible ranks
rank1 [style=invisible];
rank2 [style=invisible];

// make "invisible" (white) link between them
rank1 -> rank2 [color=white];

// declare nodes all out of desired order
A -> D;
A -> B;
A -> C;
A -> E;

// even these new connection don't mess up the order
B -> F -> G;
C -> F -> G;

{
rank = same;
// Here you enforce the desired order with "invisible" edges and arrowheads
rank2 -> B -> C -> D -> E [ style=invis ];
rankdir = LR;
}
}

enter image description here

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  • 1
    There is no need for rank1 and rank2, see below. Commented Sep 22, 2020 at 9:56
20

You don't need those magic rank1 and rank2.

Just:

  1. Make the graph as usual.
  2. Add nodes one again in a subgraph.
digraph test{

// declare nodes all out of desired order
A -> D;
A -> B;
A -> C;
A -> E;

B;C;D;E;

// even these new connection don't mess up the order
B -> F -> G;
C -> F -> G;

{
rank = same;
// Here you enforce the desired order with "invisible" edges and arrowheads
edge[ style=invis];
B -> C -> D -> E ;
rankdir = LR;
}
}

3
15

I hit the same snag, and discovered the magic incantation is ordering=out

My full example looks like this:

digraph game_tree {
node [shape = circle, ordering=out];
f, h [shape=doublecircle, color=red];
k, n [shape=doublecircle, color=blue];
l, m [shape=doublecircle];
a -> b [label=1];
a -> c [label=2];
a -> d [label=3];
b -> e [label=4];
b -> f [label=5];
c -> g [label=4];
c -> h [label=5];
d -> i [label=4];
d -> j [label=5];
e -> k [label=6];
g -> l [label=6];
i -> m [label=7];
j -> n [label=8];
}

graphviz tree

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  • 3
    This is much cleaner than other answers proposed above imho. Using fontcolor="transparent" makes the labelsdisapear for a cleaner result.
    – m.raynal
    Commented Jun 28, 2021 at 13:15
  • 2
    If you don't want labels, just do a -> b; etc instead of a -> b [label=1];
    – joeblog
    Commented Mar 1, 2022 at 9:09

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