Tree is an interesting data structure. It has wide variety of applications in all sorts of fields.
For example:
- DOM is a tree data structure
- Directory and files in our OS can be represented as trees
- A family hierarchy can be represented as a tree.
There are bunch of variations of tree (such as heaps, BST etc.) which can be used in solving problems related to scheduling, image processing, databases etc. Many of complex problems may not seem related to tree on a quick look, but can actually be represented as one. We'll walk through such problems as well (in later parts of this series) to see how trees can make seemingly complex problems much easier to comprehend and solve.
Introduction
Implementing a Node for a binary tree is pretty straightforward.
function Node(value){
this.value = value
this.left = null
this.right = null
}
// usage
const root = new Node(2)
root.left = new Node(1)
root.right = new Node(3)
So these few lines of code would create a binary tree for us which looks like this:
2
/ \
1 3
/ \
null null
Cool! So that was easy. Now, how do we put this to use?
Traversal
Let's start with trying to walk through these connected tree nodes (or a tree). Just as we can iterate through an array, it would be cool if we can 'iterate' through tree nodes as well. However, trees are not linear data structures like arrays, so there isn't just one way of traversing these. We can broadly classify the traversal approaches into following:
- Breadth first traversal
- Depth first traversal
Breadth First Search/Traversal (BFS)
In this approach, we traverse the tree level by level. We would start at the root, then cover all of it's children, and we cover all of 2nd level children, so on and so forth.
For example for the tree above, traversal would result in something like this:
2, 1, 3
Here's an illustration with slightly complex tree to make this even simpler to understand:
To achieve this form of traversal we can use a queue (First In First Out) data structure. Here's how the overall algorithm would look like:
- Initiate a queue with root in it
- Remove the first item out of queue
- Push the left and right children of popped item into the queue
- Repeat steps 2 and 3 until the queue is empty
Here's how this algorithm would look like post implementation:
function walkBFS(root){
if(root === null) return
const queue = [root]
while(queue.length){
const item = queue.shift()
// do something
console.log(item)
if(item.left) queue.push(item.left)
if(item.right) queue.push(item.right)
}
}
We can modify above algorithm slightly to return an array of arrays, where each inner array represents a level with elements within in:
function walkBFS(root){
if(root === null) return
const queue = [root], ans = []
while(queue.length){
const len = queue.length, level = []
for(let i = 0; i < len; i++){
const item = queue.shift()
level.push(item)
if(item.left) queue.push(item.left)
if(item.right) queue.push(item.right)
}
ans.push(level)
}
return ans
}
Depth First Search/Traversal (DFS)
In DFS, we take one node and keep exploring it's children until the depth the fully exhausted. It can be done in one of following ways:
root node -> left node -> right node // pre-order traversal
left node -> root node -> right node // in-order traversal
left node -> right node -> root node // post-order traversal
All of these traversal techniques can be implemented recursively as well as iteratively. Let's jump into the implementation details:
Pre-Order traversal
Here's how PreOrder traversal looks like for a tree:
root node -> left node -> right node
Trick:
We can use this simple trick to find out the PreOrder traversal of any tree manually: traverse the entire tree starting from the root node keeping yourself to the left.
Implementation:
Let's dive into actual implementation for such a traversal.
Recursive approach is fairly intuitive.
function walkPreOrder(root){
if(root === null) return
// do something here
console.log(root.val)
// recurse through child nodes
if(root.left) walkPreOrder(root.left)
if(root.right) walkPreOrder(root.left)
}
Iterative approach for PreOrder traversal is very similar to BFS, except we use a stack instead of a queue and we push the right child first into the queue:
function walkPreOrder(root){
if(root === null) return
const stack = [root]
while(stack.length){
const item = stack.pop()
// do something
console.log(item)
if(item.right) stack.push(item.right)
if(item.left) stack.push(item.left)
}
}
In-Order traversal
Here's how InOrder traversal looks like for a tree:
left node -> root node -> right node
Trick:
We can use this simple trick to find out InOrder traversal of any tree manually: keep a plane mirror horizontally at the bottom of the tree and take the projection of all the nodes.
Implementation:
Recursive:
function walkInOrder(root){
if(root === null) return
if(root.left) walkInOrder(root.left)
// do something here
console.log(root.val)
if(root.right) walkInOrder(root.right)
}
Iterative:
function walkInOrder(root){
if(root === null) return
const stack = []
let current = root
while(stack.length || current){
while(current){
stack.push(current)
current = current.left
}
const last = stack.pop()
// do something
console.log(last)
current = last.right
}
}
Post-Order traversal
Here's how postOrder traversal looks like for a tree:
left node -> right node -> root node
Trick:
For quick manual PostOrder traversal of any tree: pluck all the leftmost leaf nodes one by one.
Implementation:
Let's dive into actual implementation for such a traversal.
Recursive:
function walkPostOrder(root){
if(root === null) return
if(root.left) walkPostOrder(root.left)
if(root.right) walkPostOrder(root.right)
// do something here
console.log(root.val)
}
Iterative:
function walkPostOrder(root){
if(root === null) return []
const tempStack = [root], mainStack = []
while(tempStack.length){
const last = tempStack.pop()
mainStack.push(last)
if(last.left) tempStack.push(last.left)
if(last.right) tempStack.push(last.right)
}
return mainStack.reverse()
}
Bonus: JavaScript tip
How nice it would be if we could traverse the tree in one of following ways:
for(let node of walkPreOrder(tree) ){
console.log(node)
}
Looks really nice and pretty simple to read, isn't it? All we've got to do is use a walk function, which would return an iterator.
Here's how we can modify our walkPreOrder function above to behave as per the example shared above:
function* walkPreOrder(root){
if(root === null) return
const stack = [root]
while(stack.length){
const item = stack.pop()
yield item
if(item.right) stack.push(item.right)
if(item.left) stack.push(item.left)
}
}
This article has been originally published at StackFull.dev. If you'd like to be notified when I drop more such articles, consider subscribing to the newsletter.
Top comments (2)
Hi @anishkumar ,
It was a wonderful read๐
However, In your example of in order traversal, it is mentioned as
root node -> left node -> right node
instead of like this
left node -> root node -> right node
dev-to-uploads.s3.amazonaws.com/up...
Yes, thanks for pointing out. Corrected.