#include <bits/stdc++.h>
#define ll long long int
using namespace std;
ll Xor(ll n)
{
if(n%4==0)
return n;
if(n%4==1)
return 1;
if(n%4==2)
return n+1;
if(n%4==3)
return 0;
}
int main()
{
ll t;
cin>>t;
while(t--)
{
ll l,r;
cin>>l>>r;
if(l==r)
cout<<"0\n";
else
cout<<abs(Xor(r)-Xor(l-1))<<"\n";
}
return 0;
}xor is done in between the elements . You cannot find the correct of an element . In the range you can find the xor of element using ^ operator.
You need to output Xor(r) ^ Xor(l-1) and not Xor(r) - Xor(l-1), because xor is its own inverse.
I think you conceptually are in a doubt with xor.
Lets say I have a xor numbers till 8 in xor(8) and numbers till 5 in xor(5).
xor(8)=1^2^3^4^5^6^7^8
xor(5)=1^2^3^4^5
Now, lets say you want xor of all numbers in range [6,8] , i.e. 6^7^8.
What does xor do? If the bits are same, it will result in 0, if the bits are different, it results in 1.
xor(5)=1 , xor(8)=8.
Their difference is 7. But whats their xor?
8=1000
1=0001
A=1001//A=ans=9.
You can see that the anser of 6^7^8 is indeed 9. Meaning, xor®^xor(l-1) can be greater than r itself, so only “^” operator should be used. You cannot replace “^” with a simple “-” or “+” sign.
(PS: I assume that @meooow 's answer already clarified the doubt of “Xor of a number with itself is always 0”)
Nice . Thanks for the link .
Please don’t use the award points feature, you will end up decreasing your own reputation points!
I don’t even know why it exists without any guidelines for use -_-
Forget that, even some people from CC team dont know why it exists XD
OK , thanks for informing!!