Count of subsequences in an array with sum less than or equal to X

Given an integer array arr[] of size N and an integer X, the task is to count the number of subsequences in that array such that its sum is less than or equal to X.
Note: 1 <= N <= 1000 and 1 <= X <= 1000, where N is the size of the array.

Examples:

Input : arr[] = {84, 87, 73}, X = 100
Output : 3
Explanation: The three subsequences with sum less than or equal to 100 are {84}, {87} and {73}.

Input : arr[] = {25, 13, 40}, X = 50
Output : 4
Explanation: The four subsequences with sum less than or equal to 50 are {25}, {13}, {40} and {25, 13}.

Recommended: Please try your approach on {IDE} first, before moving on to the solution.

Naive Approach: Generate all the subsequences of the array and check if the sum is less than or equal to X.
Time complexity:O(2^N)

Efficient Approach: Generate the count of subsequences using Dynamic Programming. In order to solve the problem, follow the steps below:

For any index ind, if arr[ind] ≤ X then, the count of subsequences including as well as excluding the element at the current index:

countSubsequence(ind, X) = countSubsequence(ind + 1, X) (excluding) + countSubsequence(ind + 1, X – arr[ind]) (including)
Else, count subsequences excluding the current index:

countSubsequence(ind, X) = countSubsequence(ind + 1, X) (excluding)
Finally, subtract 1 from the final count returned by the function as it also counts an empty subsequence.

Below is the implementation of the above approach:

C++

// C++ Program to count number 
// of subsequences in an array 
// with sum less than or equal to X 
#include <bits/stdc++.h> 
using namespace std; 
  
// Utility function to return the count 
// of subsequence in an array with sum 
// less than or equal to X 
int countSubsequenceUtil( 
    int ind, int sum, 
    int* A, int N, 
    vector<vector<int> >& dp) 
{ 
    // Base condition 
    if (ind == N) 
        return 1; 
  
    // Return if the sub-problem 
    // is already calculated 
    if (dp[ind][sum] != -1) 
        return dp[ind][sum]; 
  
    // Check if the current element is 
    // less than or equal to sum 
    if (A[ind] <= sum) { 
        // Count subsequences excluding 
        // the current element 
        dp[ind][sum] 
            = countSubsequenceUtil( 
                  ind + 1, 
                  sum, A, N, dp) 
              + 
  
              // Count subsequences including 
              // the current element 
              countSubsequenceUtil( 
                  ind + 1, 
                  sum - A[ind], 
                  A, N, dp); 
    } 
  
    else { 
        // Exclude current element 
        dp[ind][sum] 
            = countSubsequenceUtil( 
                ind + 1, 
                sum, A, 
                N, dp); 
    } 
  
    // Return the result 
    return dp[ind][sum]; 
} 
  
// Function to return the count of subsequence 
// in an array with sum less than or equal to X 
int countSubsequence(int* A, int N, int X) 
{ 
    // Initialize a DP array 
    vector<vector<int> > dp( 
        N, 
        vector<int>(X + 1, -1)); 
  
    // Return the result 
    return countSubsequenceUtil(0, X, A, 
                                N, dp) 
           - 1; 
} 
  
// Driver Code 
int main() 
{ 
    int arr[] = { 25, 13, 40 }, X = 50; 
  
    int N = sizeof(arr) / sizeof(arr[0]); 
  
    cout << countSubsequence(arr, N, X); 
  
    return 0; 
} 

Java

// Java program to count number 
// of subsequences in an array 
// with sum less than or equal to X 
class GFG{ 
  
// Utility function to return the count 
// of subsequence in an array with sum 
// less than or equal to X 
static int countSubsequenceUtil(int ind, int sum, 
                                int []A, int N, 
                                int [][]dp) 
{ 
      
    // Base condition 
    if (ind == N) 
        return 1; 
  
    // Return if the sub-problem 
    // is already calculated 
    if (dp[ind][sum] != -1) 
        return dp[ind][sum]; 
  
    // Check if the current element is 
    // less than or equal to sum 
    if (A[ind] <= sum)  
    { 
          
        // Count subsequences excluding 
        // the current element 
        dp[ind][sum] = countSubsequenceUtil( 
                           ind + 1, sum,  
                           A, N, dp) + 
                         
                       // Count subsequences  
                       // including the current 
                       // element 
                       countSubsequenceUtil( 
                           ind + 1,  
                           sum - A[ind],  
                           A, N, dp); 
    } 
    else 
    { 
          
        // Exclude current element 
        dp[ind][sum] = countSubsequenceUtil( 
                           ind + 1, sum, 
                           A, N, dp); 
    } 
  
    // Return the result 
    return dp[ind][sum]; 
} 
  
// Function to return the count of subsequence 
// in an array with sum less than or equal to X 
static int countSubsequence(int[] A, int N, int X) 
{ 
      
    // Initialize a DP array 
    int [][]dp = new int[N][X + 1]; 
    for(int i = 0; i < N; i++) 
    { 
        for(int j = 0; j < X + 1; j++) 
        { 
            dp[i][j] = -1; 
        } 
    } 
      
    // Return the result 
    return countSubsequenceUtil(0, X, A, 
                                N, dp) - 1; 
} 
  
// Driver Code 
public static void main(String[] args) 
{ 
    int arr[] = { 25, 13, 40 }, X = 50; 
    int N = arr.length; 
  
    System.out.print(countSubsequence(arr, N, X)); 
} 
} 
  
// This code is contributed by Rajput-Ji 

Output:

Time Complexity: O(N*X)

My Personal Notes

Recommended: Please try your approach on {IDE} first, before moving on to the solution.

C++

Java

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