C Program for Trapping Rain water problem

Trapping Rain water problem in C

 

Here, in this page we will discuss the program for trapping rain water problem in C programing language. We will discuss different methods in this page.

Trapping Rain Water in C

Method Discussed :

  • Method 1 : Naive Approach
  • Method 2 : Efficient Approach

Let’s discuss the above two methods in brief.

Method 1 :

  • Iterate the entire array,
  • For every ith element, traverse the array from 0 to i and find the maximum height (a) and after that traverse the array from the i index to n, and find the maximum height (b).
  • The amount of water that will be stored in this column is min(a, b) – arr[i], add this value to the total amount of water stored.
  • After complete iteration print the amount of water.

Time and Space complexity :

  • Time-Complexity : O(n^2)
  • Space-Complexity : O(1)

Method 1 : Code in C

Run
#include <stdio.h>

int min(int a, int b){
    if(a<b) return a; return b; } int max(int a, int b){ if(a>b)
        return a;
        
    return b;
}

int maxWater(int arr[], int n)
{
    int res = 0;

    for (int i = 1; i < n-1; i++) {

      // Find the maximum element on its left
      int left = arr[i];
      for (int j=0; j<i; j++)
        left = max(left, arr[j]);

      // Find the maximum element on its right 
      int right = arr[i];
      for (int j=i+1; j<n; j++)
        right = max(right, arr[j]);

      // Update the maximum water 
     res = res + (min(left, right) - arr[i]); 
   }

  return res;
}

// Driver code
int main()
{
  
   int arr[] = {3, 0, 2, 0, 4};
   int n = sizeof(arr)/sizeof(arr[0]);
   
   printf("%d ", maxWater(arr, n));

   return 0;
}

Output

7

Method 2 :

  • Create two array say left[] and right[] of size n.
  • Create a variable say max_ and set its value to INT_MIN.
  • Run one loop from 0 to n and  in each iteration update max_ as max_ = max(max_, arr[i]) and also assign left[i] = max_.
  • Again, update max_ = INT_MIN.
  • Run another loop from n-1 to 0 and in each iteration update max_ as max_ = max(max_, arr[i]) and also assign right[i] = max_.
  • Now, traverse the array from 0 to n,
  • The amount of water that will be stored in this column is min(a,b) – array[i],(where a = left[i] and b = right[i]) add this value to total amount of water stored
  • After complete iteration print the amount of water.

Time and Space complexity :

  • Time-Complexity : O(n)
  • Space-Complexity : O(n)
Run
#include <stdio.h>

int min(int a, int b){
    if(a>b)
        return b;
        
    return a;
}

int max(int a, int b){
    if(a>b)
        return a;
        
    return b;
}

int maxWater(int arr[], int n)
{

    int left[n];

    int right[n];

    int water = 0;
    
    left[0] = arr[0];
    for (int i = 1; i < n; i++) 
      left[i] = max(left[i - 1], arr[i]); 
    
    right[n - 1] = arr[n - 1]; 
      
    for (int i = n - 2; i >= 0; i--)
        right[i] = max(right[i + 1], arr[i]);

    for (int i = 0; i < n; i++)
        water += min(left[i], right[i]) - arr[i];

    return water;
}

// Driver code
int main()
{
   int arr[] = {3, 0, 2, 0, 4};
   int n = sizeof(arr)/sizeof(arr[0]);
   
   printf("%d ", maxWater(arr, n));

   return 0;
    
}

Output

7

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