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I've used recursion quite a lot on my many years of programming to solve simple problems, but I'm fully aware that sometimes you need iteration due to memory/speed problems.

So, sometime in the very far past I went to try and find if there existed any "pattern" or text-book way of transforming a common recursion approach to iteration and found nothing. Or at least nothing that I can remember it would help.

  • Are there general rules?
  • Is there a "pattern"?
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15 Answers 15

up vote 124 down vote accepted

Usually, I replace a recursive algorithm by an iterative algorithm by pushing the parameters that would normally be passed to the recursive function onto a stack. In fact, you are replacing the program stack by one of your own.

Stack<Object> stack;
stack.push(first_object);
while( !stack.isEmpty() ) {
   // Do something
   my_object = stack.pop();

  // Push other objects on the stack.

}

Note: if you have more than one recursive call inside and you want to preserve the order of the calls, you have to add them in the reverse order to the stack:

foo(first);
foo(second);

has to be replaced by

stack.push(second);
stack.push(first);

Edit: The article Stacks and Recursion Elimination goes into more details on this subject.

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4  
Thanks for this article, very helpful. –  Wojciech Kulik Feb 19 '12 at 9:59
    
Pushing just the parameters may not be sufficient. you need to push the local variables which are used subsequent to the point of recursive call. Also, the linked article provides a skeleton that is not suitable for implementations having recur. calls from deeper code blocks. I have tried to provide a repeatable method for converstion as an answer below. –  Chethan Apr 29 '13 at 14:49
3  
If you replace your stack with a Queue son't that solve the problem of reversing the add order? –  SamuelWarren May 30 '13 at 15:11
    
I worked it out on paper and they are two different things. If you reverse the order you added them it makes you traverse forward as usual, but your traversal is still depth-first search. But if you change the whole thing into a queue now you are doing breadth-first rather than depth-first traversal. –  pete Oct 31 '13 at 20:33
    
It might be worth mentioning that if between the two foos you add some work(), you could push that on your stack as well, but you would want to add an additional parameter like isWork. –  user420667 Jan 27 at 21:57

Really, the most common way to do it is to keep your own stack. Here's a recursive quicksort function in C:

void quicksort(int* array, int left, int right)
{
    if(left >= right)
        return;

    int index = partition(array, left, right);
    quicksort(array, left, index - 1);
    quicksort(array, index + 1, right);
}

Here's how we could make it iterative by keeping our own stack:

void quicksort(int *array, int left, int right)
{
    int stack[1024];
    int i=0;

    stack[i++] = left;
    stack[i++] = right;

    while (i > 0)
    {
        right = stack[--i];
        left = stack[--i];

        if (left >= right)
             continue;

        int index = partition(array, left, right);
        stack[i++] = left;
        stack[i++] = index - 1;
        stack[i++] = index + 1;
        stack[i++] = right;
    }
}

Obviously, this example doesn't check stack boundaries... and really you could size the stack based on the worst case given left and and right values. But you get the idea.

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1  
+1 The complete example is really helpful. –  Steve Rowe Mar 26 '09 at 16:37
    
Any ideas on how to work out the maximum stack to allocate for a particular recursion? –  flamingpenguin Mar 19 '12 at 15:36

Strive to make your recursive call Tail Recursion (recursion where the last statement is the recursive call). Once you have that, converting it to iteration is generally pretty easy.

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2  
Some JIT's transform tail recursion: ibm.com/developerworks/java/library/j-diag8.html –  Liran Orevi May 15 '09 at 14:03
    
Plenty of interpreters (ie Scheme being the most well known) will optimize tail recursion well. I know that GCC, with a certain optimization, does tail recursion (even though C is an odd choice for such an optimization). –  new123456 Apr 7 '11 at 15:20

Well, in general, recursion can be mimicked as iteration by simply using a storage variable. Note that recursion and iteraction are generally equivalent; one can almost always be converted to the other. A tail-recursive function is very easily converted to an iterative one. Just make the accumulator variable a local one, and iterate instead of recurse. Here's an example in C++ (C were it not for the use of a default argument):

// tail-recursive
int factorial (int n, int acc = 1)
{
  if (n == 1)
    return acc;
  else
    return factorial(n - 1, acc * n);
}

// iterative
int factorial (int n)
{
  int acc = 1;
  for (; n > 1; --n)
    acc *= n;
  return acc;
}

Knowing me, I probably made a mistake in the code, but the idea is there.

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It seems nobody has addressed where the recursive function calls itself more than once in the body, and handles returning to a specific point in the recursion (i.e. not primitive-recursive). It is said that every recursion can be turned into iteration, so it appears that this should be possible.

I just came up with a C# example of how to do this. Suppose you have the following recursive function, which acts like a postorder traversal, and that AbcTreeNode is a 3-ary tree with pointers a, b, c.

public static void AbcRecursiveTraversal(this AbcTreeNode x, List<int> list) {
        if (x != null) {
            AbcRecursiveTraversal(x.a, list);
            AbcRecursiveTraversal(x.b, list);
            AbcRecursiveTraversal(x.c, list);
            list.Add(x.key);//finally visit root
        }
}

The iterative solution:

        int? address = null;
        AbcTreeNode x = null;
        x = root;
        address = A;
        stack.Push(x);
        stack.Push(null)    

        while (stack.Count > 0) {
            bool @return = x == null;

            if (@return == false) {

                switch (address) {
                    case A://   
                        stack.Push(x);
                        stack.Push(B);
                        x = x.a;
                        address = A;
                        break;
                    case B:
                        stack.Push(x);
                        stack.Push(C);
                        x = x.b;
                        address = A;
                        break;
                    case C:
                        stack.Push(x);
                        stack.Push(null);
                        x = x.c;
                        address = A;
                        break;
                    case null:
                        list_iterative.Add(x.key);
                        @return = true;
                        break;
                }

            }


            if (@return == true) {
                address = (int?)stack.Pop();
                x = (AbcTreeNode)stack.Pop();
            }


        }
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1  
It's really usefull, I had to write iterative version of reccurence which ivokes itself n-times, thanks to your post I did it. –  Wojciech Kulik Feb 18 '12 at 23:02
    
This has to be the best example I have ever seen of emulating call stack recursion for situations where multiple recursive calls are being made within the method. Nice job. –  CCS Dec 18 at 17:46

Even using stack will not convert a recursive algorithm into iterative. Normal recursion is function based recursion and if we use stack then it becomes stack based recursion. But its still recursion.

For recursive algorithms, space complexity is O(N) and time complexity is O(N). For iterative algorithms, space complexity is O(1) and time complexity is O(N).

But if we use stack things in terms of complexity remains same. I think only tail recursion can be converted into iteration.

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Good succinct explanation. –  Mk12 Sep 11 '12 at 21:28
    
I agree with your first bit, but I think I'm misunderstanding the second paragraph. Consider cloning an array through just copying the memory copy = new int[size]; for(int i=0; i<size; ++i) copy[i] = source[i]; space and time complexity are both O(N) based on the size of the data, but it's clearly an iterative algorithm. –  Wallacoloo Aug 28 '13 at 23:52

Search google for "Continuation passing style." There is a general procedure for converting to a tail recursive style; there is also a general procedure for turning tail recursive functions into loops.

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The stacks and recursion elimination article captures the idea of externalizing the stack frame on heap, but does not provide a straightforward and repeatable way to convert. Below is one.

While converting to iterative code, one must be aware that the recursive call may happen from an arbitrarily deep code block. Its not just the parameters, but also the point to return to the logic that remains to be executed and the state of variables which participate in subsequent conditionals, which matter. Below is a very simple way to convert to iterative code with least changes.

Consider this recursive code:

struct tnode
{
    tnode(int n) : data(n), left(0), right(0) {}
    tnode *left, *right;
    int data;
};

void insertnode_recur(tnode *node, int num)
{
    if(node->data <= num)
    {
        if(node->right == NULL)
            node->right = new tnode(num);
        else
            insertnode(node->right, num);
    }
    else
    {
        if(node->left == NULL)
            node->left = new tnode(num);
        else
            insertnode(node->left, num);
    }    
}

Iterative code:

// Identify the stack variables that need to be preserved across stack 
// invocations, that is, across iterations and wrap them in an object
struct stackitem 
{ 
    stackitem(tnode *t, int n) : node(t), num(n), ra(0) {}
    tnode *node; int num;
    int ra; //to point of return
};

void insertnode_iter(tnode *node, int num) 
{
    vector<stackitem> v;
    //pushing a stackitem is equivalent to making a recursive call.
    v.push_back(stackitem(node, num));

    while(v.size()) 
    {
        // taking a modifiable reference to the stack item makes prepending 
        // 'si.' to auto variables in recursive logic suffice
        // e.g., instead of num, replace with si.num.
        stackitem &si = v.back(); 
        switch(si.ra)
        {
        // this jump simulates resuming execution after return from recursive 
        // call 
            case 1: goto ra1;
            case 2: goto ra2;
            default: break;
        } 

        if(si.node->data <= si.num)
        {
            if(si.node->right == NULL)
                si.node->right = new tnode(si.num);
            else
            {
                // replace a recursive call with below statements
                // (a) save return point, 
                // (b) push stack item with new stackitem, 
                // (c) continue statement to make loop pick up and start 
                //    processing new stack item, 
                // (d) a return point label
                // (e) optional semi-colon, if resume point is an end 
                // of a block.

                si.ra=1;
                v.push_back(stackitem(si.node->right, si.num));
                continue; 
ra1:            ;         
            }
        }
        else
        {
            if(si.node->left == NULL)
                si.node->left = new tnode(si.num);
            else
            {
                si.ra=2;                
                v.push_back(stackitem(si.node->left, si.num));
                continue;
ra2:            ;
            }
        }

        v.pop_back();
    }
}

Notice how the structure of the code still remains true to the recursive logic and modifications are minimal, resulting in less number of bugs. For comparison, I have marked the changes with ++ and --. Most of the new inserted blocks except v.push_back, are common to any converted iterative logic

void insertnode_iter(tnode *node, int num) 
{

+++++++++++++++++++++++++

    vector<stackitem> v;
    v.push_back(stackitem(node, num));

    while(v.size())
    {
        stackitem &si = v.back(); 
        switch(si.ra)
        {
            case 1: goto ra1;
            case 2: goto ra2;
            default: break;
        } 

------------------------

        if(si.node->data <= si.num)
        {
            if(si.node->right == NULL)
                si.node->right = new tnode(si.num);
            else
            {

+++++++++++++++++++++++++

                si.ra=1;
                v.push_back(stackitem(si.node->right, si.num));
                continue; 
ra1:            ;    

-------------------------

            }
        }
        else
        {
            if(si.node->left == NULL)
                si.node->left = new tnode(si.num);
            else
            {

+++++++++++++++++++++++++

                si.ra=2;                
                v.push_back(stackitem(si.node->left, si.num));
                continue;
ra2:            ;

-------------------------

            }
        }

+++++++++++++++++++++++++

        v.pop_back();
    }

-------------------------

}
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This has helped me a lot, but there dis a problem: stackitem objects are allocated with a garbage value for ra. Everything still works in the most like case, but should ra by coincidence be 1 or 2 you will get incorrect behavior. The solution is to initialize ra to 0. –  JanX2 Jan 1 at 18:28
    
@JanX2, stackitem must not be pushed without initializing. But yes, initializing to 0 would catch errors. –  Chethan Jan 2 at 6:14

One pattern to look for is a recursion call at the end of the function (so called tail-recursion). This can easily be replaced with a while. For example, the function foo:

void foo(Node* node)
{
    if(node == NULL)
       return;
    // Do something with node...
    foo(node->left);
    foo(node->right);
}

ends with a call to foo. This can be replaced with:

void foo(Node* node)
{
    while(node != NULL)
    {
        // Do something with node...
        foo(node->left);
        node = node->right;
     }
}

which eliminates the second recursive call.

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1  
Still looks recursive to me... :) –  nathan Oct 1 '08 at 20:51
1  
Well, yeah - but it's half as recursive. Getting rid of the other recursion is going to require using another technique... –  Mark Bessey Oct 1 '08 at 21:10
7  
'half as recursive' is an excellent turn of phrase. –  ajm Mar 5 '09 at 18:40

Generally the technique to avoid stack overflow is for recursive functions is called trampoline technique which is widely adopted by Java devs.

However, for C# there is a little helper method here that turns your recursive function to iterative without requiring to change logic or make the code in-comprehensible. C# is such a nice language that amazing stuff is possible with it.

It works by wrapping parts of the method by a helper method. For example the following recursive function:

int Sum(int index, int[] array)
{
 //This is the termination condition
 if (int >= array.Length)
 //This is the returning value when termination condition is true
 return 0;

//This is the recursive call
 var sumofrest = Sum(index+1, array);

//This is the work to do with the current item and the
 //result of recursive call
 return array[index]+sumofrest;
}

Turns into:

int Sum(int[] ar)
{
 return RecursionHelper<int>.CreateSingular(i => i >= ar.Length, i => 0)
 .RecursiveCall((i, rv) => i + 1)
 .Do((i, rv) => ar[i] + rv)
 .Execute(0);
}
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I just upvoted the answer suggesting to use an explicit stack that I think is the right solution and is of general applicability.

I mean that you can use it to transform any recursive function in an iterative function. Just check which values are saved across recursive calls, those are the ones that have to be local to the recursive function, and replace the calls with a cycle where you'll push them on a stack. When the stack is empty the recursive function would have been terminated.

I can't resist to say that the proof that every recursive function is equivalent to an iterative function on a different data type, it's one of my dearest memory of my University times. That was the course (and the professor) that really made me understand what computer programming was about.

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Just killing time... A recursive function

void foo(Node* node)
{
    if(node == NULL)
       return;
    // Do something with node...
    foo(node->left);
    foo(node->right);
}

can be converted to

void foo(Node* node)
{
    if(node == NULL)
       return;

    // Do something with node...

    stack.push(node->right);
    stack.push(node->left);

    while(!stack.empty()) {
         node1 = stack.pop();
         if(node1 == NULL)
            continue;
         // Do something with node1...
         stack.push(node1->right);             
         stack.push(node1->left);
    }

}
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The above example is an example of recursive to iterative dfs on binary search tree :) –  Amit Oct 11 '11 at 19:39

Recursion is nothing but the process of calling of one function from the other only this process is done by calling of a function by itself. As we know when one function calls the other function the first function saves its state(its variables) and then passes the control to the called function. The called function can be called by using the same name of variables ex fun1(a) can call fun2(a). When we do recursive call nothing new happens. One function calls itself by passing the same type and similar in name variables(but obviously the values stored in variables are different,only the name remains same.)to itself. But before every call the function saves its state and this process of saving continues. The SAVING IS DONE ON A STACK.

NOW THE STACK COMES INTO PLAY.

So if you write an iterative program and save the state on a stack each time and then pop out the values from stack when needed, you have successfully converted a recursive program into an iterative one!

The proof is simple and analytical.

In recursion the computer maintains a stack and in iterative version you will have to manually maintain the stack.

Think over it, just convert a depth first search(on graphs) recursive program into a dfs iterative program.

All the best!

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A rough description of how a system takes any recursive function and executes it using a stack:

This intended to show the idea without details. Consider this function that would print out nodes of a graph:

function show(node)
0. if isleaf(node):
1.  print node.name
2. else:
3.  show(node.left)
4.  show(node)
5.  show(node.right)

For example graph: A->B A->C show(A) would print B, A, C

Function calls mean save the local state and the continuation point so you can come back, and then jump the the function you want to call.

For example, suppose show(A) begins to run. The function call on line 3. show(B) means - Add item to the stack meaning "you'll need to continue at line 2 with local variable state node=A" - Goto line 0 with node=B.

To execute code, the system runs through the instructions. When a function call is encountered, the system pushes information it needs to come back to where it was, runs the function code, and when the function completes, pops the information about where it needs to go to continue.

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This link provides some explanation and proposes the idea of keeping "location" to be able to get to the exact place between several recursive calls:

However, all these examples describe scenarios in which a recursive call is made a fixed amount of times. Things get trickier when you have something like:

function rec(...) {
  for/while loop {
    var x = rec(...)
    // make a side effect involving return value x
  }
}
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