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What is the easiest way to print out a tree in it's tree-structure? Such as...

                  some root
              /     |         \
          child1   child2     child 3
           /
      anotherchild               / \
                             yup     another

Even formatting it by hand is hard. How can you make a program print a tree this way?

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You should change the language-agnostic tag, since there are languages/environments where this is natively implemented. – Dr. belisarius Nov 15 '10 at 2:17

Unless there is some nice graphical library that you can use, you will have a lot of trouble representing a hierarchy in the way that you describe.

Assuming you want to print it to the Console, or a file, you will have to contend with pre-calculating the lengths of all of the data elements in the entire tree in order to line them up correctly. And how do you handle things like line-wrap?

A much better way is to represent the tree vertically, using indentation to show a child element.

Root
    - Child1
        - Grandchild1
        - Grandchild2
    - Child2
        - Grandchild3
        - Grandchild4

This is much simpler to code, and more tolerant of things like linewrap - as there is only ever one element on a line. This is how a folder-browser or xml document might display its hierarchical data.

To do it this way, you do a depth-first traversal and before the recursive step you print out the node:

public void PrintNode(TreeNode node)
{
    PrintNode(node, 0);
}

private void PrintNode(TreeNode node, int indentation)
{
    // Print the value to the console/file/whatever
    // This prefixes the value with the necessary amount of indentation
    Print(node.Value, indentation);

    // Recursively call the child nodes.
    foreach(TreeNode childNode in node.Children)
    {
        PrintNode(childNode, indentation + 1); // Increment the indentation counter.
    }
}

Hope that helps

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1  
Surely you would pass indentation depth as a second argument to PrintNode (defaulting to 0 for client calls, and adding a level in the recursive call)? Then you wouldn't have to decrement it manually. – Zecc Nov 15 '10 at 1:19
    
This isn't useful for printing a tree in the requested format. – Paul Creasey Nov 15 '10 at 1:46
    
@Zecc - That's what I meant by the last sentence (after my example). I was trying to write it in a language-agnostic way without specifying how indentation or printing was actually done. I'd actually usually have a public call that calls a private override with the 0 to hide that from the consumer. – Omnomnom Nov 15 '10 at 1:52
    
@Paul Creasey - you got me - it's a lot easier to represent a tree with rows than horizontally using columns. The length of the data element you were printing could cause all kinds of misalignment. You also run into issues with column limits on the console. I think the answer is still useful. I wouldn't even entertain trying to print it out the way the question specifies it. – Omnomnom Nov 15 '10 at 1:56
    
@Zecc - Ok, I've added your version. Now I am looking at it, I think my original simplification was unnecessary and that the latter method is clear enough. :-) – Omnomnom Nov 15 '10 at 1:59

Well, you could try something like PHP's var_dump - if you try var_dump on a tree-like array, it will give you a fair representation of that tree, that is:

root {
    child1 {
        anotherchild
    }
    child2
    child3 {
        yup
        another
    }
}
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Though I didn't try it myself, graphviz has a plain text output format.

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How about this answer to a similar question? It prints a nice ASCII-art tree.

Or maybe this one if you want to go fully graphical?

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I had to do this last year writing a family tree application. Found a java tutorial online that helped but my Google-fu failed me today so I will have to simply explain it.

It is simply a recursive algorithm that adjusts position of parent node based on child nodes. In pseudocode it is something like this:

positionNode (node,x,y) {
    foreach (child in node.children) {
        positionNode(child,x,y+1)
        x ++
    }
    node.x = (x-1)/2
    node.y = y
}

I may not be remembering this correctly, you may need to tweak the code a bit to get it right.

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