30

I want to render several trees simultaneously and place all root nodes and all leaf nodes on the same level.

Here's an example of what I'm trying to do. Root nodes A and X are on the same level, and so are leaf nodes B, D, and Z.

Graph I want

I unsuccessfully tried putting roots in one rank and leaves in another as follows:

digraph G { 
rankdir = TB;
subgraph {
A -> B
A -> C
C -> D
X -> Y
rank = same; A; X;
rank = same; B; D; Y;
} /* closing subgraph */
}

And got this outcome where everything is on the same rank. enter image description here

Any suggestions about what I should be trying? I've already got roots and leaves identified.

51

Putting the rank = same; ... statements in braces, e.g.:

digraph G { 
  rankdir = TB;
  subgraph {
    A -> B
    A -> C
    C -> D
    X -> Y
    // note that rank is used in the subgraph
    {rank = same; A; X;}
    {rank = same; B; D; Y;}
  } /* closing subgraph */
}

... gives the desired result:

enter image description here

  • 1
    This is great! I thought that rank was always specified as an attribute of a subgraph, not as a statement unto itself. – Jeremy Jun 21 '17 at 19:49
  • 1
    Is the subgraph really necessary? I'm satisfied with this result: digraph { rankdir=LR; 1902387216 [label="h"]; 1902387216 -> 1736863396 [label="child"]; 1736863396 [label="e"]; 1736863396 -> 166482735 [label="peer"]; {rank = same; 1736863396; 166482735;}; 166482735 [label="a"]; 166482735 -> 915735320 [label="child"]; 915735320 [label="n"]; 915735320 -> 1424861798 [label="child"]; 1424861798 [label="d"]; 1736863396 -> 233979847 [label="child"]; 233979847 [label="r"]; } – William John Holden Jan 28 '18 at 5:07
  • 1
    @WilliamJohnHolden: I agree with you that the subgraph isn't really necessary. In the original question it was probably a part of the overall graph, the rest of which was omitted to create a minimal example. – Simon Jan 29 '18 at 23:28

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