some confusion regarding lower bound and upperbound for non increasing vectors...

Правка en1, от CantLoseNow, 2022-11-01 13:40:55

so i know how lowerbound and upperbound works for a vector sorted in ascending order. But what if i arrange the vector in descending order? i wanted to know the answer and i searched it on cppreference but i was not able to understand it there. so i also wrote a small code to test it out. According to the definition of lower bound in geeksforgeeks —

"The lower_bound() method in C++ is used to return an iterator pointing to the first element in the range [first, last) which has a value not less than val."

so if i wrote a code like this:

#include<bits/stdc++.h>
using namespace std;

int main(){

	int n;
	cin >> n;
	int who_to_compare;
	cin >> who_to_compare;

	vector<int> v;

	for(int i=0;i<n;i++){
		int temp;
		cin >> temp;
		v.push_back(temp);
	}

	sort(v.begin(), v.end(), greater<int>());
	auto it = lower_bound(v.begin(), v.end(), who_to_compare);

	cout << v[it-v.begin()];
	
}

and my input is : 5 4 5 3 7 8 5

then the output is : 8

-> which is like correct according to me since 8 is the first number which is greater than 4 and is the first number in the range to be greater than 4 .(idk if i am correct, pls correct me here).

but when my input is : 5 6 5 3 7 8 5

then the output is : 0

-> why is it so ? shouldn't it be 8? because 8 is the first element in the range to be greater than 6.

Please help me understand this whole thing better...

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en1 Английский CantLoseNow 2022-11-01 13:40:55 1536 Initial revision (published)