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The question is, given a Ancestor Matrix, as a bitmap of 1s and 0s, to construct the corresponding Binary Tree. Can anyone give me an idea on how to do it? I found a solution at Stackoverflow, but the line a[root->data][temp[i]]=1 seems wrong, there is no binding that the nodes will contain data 1 to n. It may contain, say 2000, in which case, there will be no a[2000][some_column], since there are only 7 nodes, hence 7 rows and columns in the matrix.

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If you have a node labeled 2000 the matrix has to be at least 2000 x 2000. That's how an ancestor matrix works afaik. How else do you want to store information about node 2000 in a matrix? –  IVlad Oct 19 '12 at 15:11
    
I can easily have 3 nodes, with 5 being the root, 2000 being its right-child, and 1 its left-child. –  Cupidvogel Oct 19 '12 at 15:14
    
Yes, but that's your English description. How are you going to store that in a matrix? –  IVlad Oct 19 '12 at 15:15
    
The matrix is n*n, n being the number of nodes. There is an extra top row and extra left column for denoting the node values. Have a look at ritambhara.in/build-binary-tree-from-ancestor-matrics. –  Cupidvogel Oct 19 '12 at 15:17
    
So remap the labels to 0 - n-1 –  harold Oct 19 '12 at 15:19

1 Answer 1

up vote 1 down vote accepted

Two ways:

  1. Normalize your node values such that they are all from 1 to n. If you have nodes 1, 2, 5000 for example, make them 1, 2, 3. You can do this by sorting or hashing your labels and keeping something like normalized[i] = normalized value of node i. normalized can be a map / hash table if you have very large labels or even text labels.

  2. You might be able to use a sparse matrix for this, implementable with a hash table or a set: keep a hash table of hash tables. H[x] stores another hash table that stores your y values. So if in a naive matrix solution you had a[2000][5000] = 1, you would use H.get(2000) => returns a hash table H' of values stored on the 2000th row => H'.get(5000) => returns the value you want.

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BTW, is the solution he has provided correct? –  Cupidvogel Oct 19 '12 at 15:30
    
@Cupidvogel - his question is the reverse of what you're asking: he asked how to build the matrix from the tree, you're asking about building the tree from the matrix. That said, his solution does seem correct for what he was trying to do. –  IVlad Oct 19 '12 at 15:37
    
No no, I meant to do the same. Made a mistake while typing the question. –  Cupidvogel Oct 19 '12 at 15:41
    
@Cupidvogel then yes, I think it is, although I haven't tried it. –  IVlad Oct 19 '12 at 15:43
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@Cupidvogel - index as 0, because otherwise you'd be using an uninitialized value for the root. –  IVlad Nov 3 '12 at 11:13

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