Given an array of N positive integers and Q queries consisting of an integer K, the task is to print the length of the longest subsequence whose average is less than K.
Examples:
Input: a[] = {1, 3, 2, 5, 4}
Query1: K = 3
Query2: K = 5Output:
4
5
Query1: The subsequence is: {1, 3, 2, 4} or {1, 3, 2, 5}
Query2: The subsequence is: {1, 3, 2, 5, 4}
A Naive Approach is to generate all subsequences using power-set and check for the longest subsequence whose average is less than K.
Time Complexity: O(2N * N )
An efficient approach is to sort the array elements and find the average of elements starting from the left. Insert the average of elements computed from the left into the container(vector or arrays). Sort the container’s element and then use binary search to search for the number K in the container. The length of the longest subsequence will thus be the index number which upper_bound() returns for every query.
Below is the implementation of the above approach.
// C++ program to perform Q queries // to find longest subsequence whose // average is less than K #include <bits/stdc++.h> using namespace std;
// Function to print the length for every query int longestSubsequence( int a[], int n, int q[], int m)
{ // sort array of N elements
sort(a, a + n);
int sum = 0;
// Array to store average from left
int b[n];
for ( int i = 0; i < n; i++) {
sum += a[i];
double av = ( double )(sum) / ( double )(i + 1);
b[i] = (( int )(av + 1));
}
// Sort array of average
sort(b, b + n);
// number of queries
for ( int i = 0; i < m; i++) {
int k = q[i];
// print answer to every query
// using binary search
int longest = upper_bound(b, b + n, k) - b;
cout << "Answer to Query" << i + 1 << ": "
<< longest << endl;
}
} // Driver Code int main()
{ int a[] = { 1, 3, 2, 5, 4 };
int n = sizeof (a) / sizeof (a[0]);
// 4 queries
int q[] = { 4, 2, 1, 5 };
int m = sizeof (q) / sizeof (q[0]);
longestSubsequence(a, n, q, m);
return 0;
} |
// Java program to perform Q queries // to find longest subsequence whose // average is less than K import java.util.Arrays;
class GFG
{ // Function to print the length for every query
static void longestSubsequence( int a[], int n,
int q[], int m)
{
// sort array of N elements
Arrays.sort(a);
int sum = 0 ;
// Array to store average from left
int []b = new int [n];
for ( int i = 0 ; i < n; i++)
{
sum += a[i];
double av = ( double )(sum) / ( double )(i + 1 );
b[i] = (( int )(av + 1 ));
}
// Sort array of average
Arrays.sort(b);
// number of queries
for ( int i = 0 ; i < m; i++)
{
int k = q[i];
// print answer to every query
// using binary search
int longest = upperBound(b, 0 , n, k);
System.out.println( "Answer to Query" + (i + 1 ) + ": "
+ longest);
}
}
private static int upperBound( int [] a, int low, int high, int element)
{
while (low < high)
{
int middle = low + (high - low)/ 2 ;
if (a[middle] > element)
high = middle;
else
low = middle + 1 ;
}
return low;
}
// Driver Code
public static void main(String[] args)
{
int a[] = { 1 , 3 , 2 , 5 , 4 };
int n = a.length;
// 4 queries
int q[] = { 4 , 2 , 1 , 5 };
int m = q.length;
longestSubsequence(a, n, q, m);
}
} /* This code contributed by PrinciRaj1992 */ |
# Python3 program to perform Q queries to find # longest subsequence whose average is less than K import bisect
# Function to print the length for every query def longestSubsequence(a, n, q, m):
# sort array of N elements
a.sort()
Sum = 0
# Array to store average from left
b = [ None ] * n
for i in range ( 0 , n):
Sum + = a[i]
av = Sum / / (i + 1 )
b[i] = av + 1
# Sort array of average
b.sort()
# number of queries
for i in range ( 0 , m):
k = q[i]
# print answer to every query
# using binary search
longest = bisect.bisect_right(b, k)
print ( "Answer to Query" , i + 1 , ":" , longest)
# Driver Code if __name__ = = "__main__" :
a = [ 1 , 3 , 2 , 5 , 4 ]
n = len (a)
# 4 queries
q = [ 4 , 2 , 1 , 5 ]
m = len (q)
longestSubsequence(a, n, q, m)
# This code is contributed by Rituraj Jain |
// C# program to perform Q queries // to find longest subsequence whose // average is less than K using System;
class GFG
{ // Function to print the length for every query
static void longestSubsequence( int []a, int n,
int []q, int m)
{
// sort array of N elements
Array.Sort(a);
int sum = 0;
// Array to store average from left
int []b = new int [n];
for ( int i = 0; i < n; i++)
{
sum += a[i];
double av = ( double )(sum) / ( double )(i + 1);
b[i] = (( int )(av + 1));
}
// Sort array of average
Array.Sort(b);
// number of queries
for ( int i = 0; i < m; i++)
{
int k = q[i];
// print answer to every query
// using binary search
int longest = upperBound(b,0, n, k);
Console.WriteLine( "Answer to Query" + (i + 1) + ": "
+ longest);
}
}
private static int upperBound( int [] a, int low,
int high, int element)
{
while (low < high)
{
int middle = low + (high - low)/2;
if (a[middle] > element)
high = middle;
else
low = middle + 1;
}
return low;
}
// Driver Code
static public void Main ()
{
int []a = { 1, 3, 2, 5, 4 };
int n = a.Length;
// 4 queries
int []q = { 4, 2, 1, 5 };
int m = q.Length;
longestSubsequence(a, n, q, m);
}
} /* This code contributed by ajit */ |
<script> // Javascript program to perform Q queries
// to find longest subsequence whose
// average is less than K
// Function to print the length for every query
function longestSubsequence(a, n, q, m)
{
// sort array of N elements
a.sort( function (a, b){ return a - b});
let sum = 0;
// Array to store average from left
let b = new Array(n);
for (let i = 0; i < n; i++)
{
sum += a[i];
let av = parseInt((sum) / (i + 1), 10);
b[i] = (av + 1);
}
// Sort array of average
b.sort( function (a, b){ return a - b});
// number of queries
for (let i = 0; i < m; i++)
{
let k = q[i];
// print answer to every query
// using binary search
let longest = upperBound(b,0, n, k);
document.write( "Answer to Query" +
(i + 1) + ": "
+ longest + "</br>" );
}
}
function upperBound(a, low, high, element)
{
while (low < high)
{
let middle = low +
parseInt((high - low)/2, 10);
if (a[middle] > element)
high = middle;
else
low = middle + 1;
}
return low;
}
let a = [ 1, 3, 2, 5, 4 ];
let n = a.length;
// 4 queries
let q = [ 4, 2, 1, 5 ];
let m = q.length;
longestSubsequence(a, n, q, m);
</script> |
Answer to Query1: 5 Answer to Query2: 2 Answer to Query3: 0 Answer to Query4: 5
Complexity Analysis:
- Time Complexity: O(N*log N + M*log N)
- Auxiliary Space: O(N)