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I am creating a family tree program. My question is how do i position the nodes? Originally i positioned the root at the center of my screen and it works fine if it is a perfect binary tree and the levels are very less. However it is not most often the case. This is a sample tree :-

            A
        B       C
    D   E   F   I   J
K   L               N   O

As you can see, the main problem is regarding the position of the nodes. If a node has many childs and it's adjacent node also has many children, they tend to overlap.(MAIN PROBLEM) I am using absolute positioning of the node using Canvas in Silverlight. You may not bother with the Silverlight and Canvas part if you are not a Silverlight developer. I just need the logic of how to position the nodes.

The height of the tree can be computed fairly easily by knowing the total number of levels of tree but the width of the tree is what is troubling me. How can i calculate the width of the tree (total width of the canvas)

Can somebody give me some general guidelines regarding how to set the width of the canvas and what logic will work perfect for the positioning of the nodes.

NOTE :- I am not asking for the whole algorithm and it is not my homework. I already have the algorithm and database. I just need guideline for the positioning part of the node.

Thanks in advance :)

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could you clarify what do you mean by width of the canvas.Is it the total number of nodes at a particular level? –  Algorithmist Feb 19 '11 at 6:51
    
@Algorithmist :- What i mean by canvas width is the display area horizontally that is required for the tree to display itself completely. Canvas is a container(where you actually display) for my tree. It is not the total number of nodes at particular level. But you can say the width of tree. You may think it is the maximum number of nodes at any particular width. But it is not so. For example the 5th level may have 10 children and 6th level has just 4 children (2 children for 1st node of 5th level and 2 children for 10th node of 5th level) then the display width of the tree would be different. –  TCM Feb 19 '11 at 7:13
    
@Algorithmist :- Sorry if you don't understand what i meant to say. If you need i will draw on a piece of paper and upload that picture and then you see the link to better understand. Let me know. –  TCM Feb 19 '11 at 7:14
    
can't we traverse the tree level by level and check whether the node has an right or left child.And corresponding to each node we could reserve certain amount of fixed width(say 5 whitespaces).Now we traverse the tree level by level and then check whether it has left or right child.If suppose first node of level hs no child then we can set width to 10.Really good problem.i am also thinking lets see what the senior puys have to say. –  Algorithmist Feb 19 '11 at 7:29
    
@Algorthmist :- Really good problem Thanks. –  TCM Feb 19 '11 at 7:41
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3 Answers 3

If you implement a function: width(node) for arbitrary node of this tree, it is easy to positioning each node

This function may be defined recursively:
- for a tree of height 1 it tree this is exactly length of this node
- for a tree of height bigger than 1 this is a sum of lengths of all direct children of this node (plus some spaces between those)

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I would recommend starting with the widest level of the tree if you want to guess the width of the canvas. You can calculate by traversing the tree breadth-first. Multiply the number of nodes at that level by the amount of lateral space each node needs and you have the width of canvas you require.

However, that's no guarantee that adjacent nodes on the widest level won't each have many children. So, to perform spacing with no overlap, start by positioning the leaves of the tree at the deepest level and traverse the tree backwards, adding parents above and putting leaves into the gaps and at the sides.

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- Widest level is what i need. Widest level is what is the width of the canvas. But we can't directly assume that the level with the maximum number of nodes is the widest level. You may read my reply to Algorithmist above. For example the 5th level may have 10 children and 6th level has just 4 children (2 children for 1st node of 5th level and 2 children for 10th node of 5th level) then the display width of the tree would be different. –  TCM Feb 19 '11 at 7:22
    
- start by positioning the leaves of the tree at the deepest level and traverse the tree backwards. This is exactly what i was thinking. However here also there is a problem. Where should i position the deepest level node? What formula to apply? –  TCM Feb 19 '11 at 7:24
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I would suggest to give zoom in and zoom out functionality to unclutter the GUI Real Estate.

A Node with many children can be grouped and a special icon to denote it can be zoomed in to next level would be good i feel, as the family grows, as user can get big picture at first and as then can zoom into any branch he wishes too.

Take cues from google map's UI, might help.

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- I like your suggestion but it is not exactly what i intend to build. I am trying to build a exact clone of myheritage.com. You can check out the tree build process there. It is beautiful :) –  TCM Feb 19 '11 at 7:16
    
why exact clone ? give something new ;) –  sashank Feb 19 '11 at 7:27
    
- First let me build what they have built based on their hard work. If i achieve that level i can then only think about giving something extra ;) –  TCM Feb 19 '11 at 7:29
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