Problem Description
Consecutive sum come again. Are you ready? Go ~~
1 = 0 + 1
2+3+4 = 1 + 8
5+6+7+8+9 = 8 + 27
…
You can see the consecutive sum can be representing like that. The nth line will have 2*n+1 consecutive numbers on the left, the first number on the right equal with the second number in last line, and the sum of left numbers equal with two number’s sum on the right.
Your task is that tell me the right numbers in the nth line.
1 = 0 + 1
2+3+4 = 1 + 8
5+6+7+8+9 = 8 + 27
…
You can see the consecutive sum can be representing like that. The nth line will have 2*n+1 consecutive numbers on the left, the first number on the right equal with the second number in last line, and the sum of left numbers equal with two number’s sum on the right.
Your task is that tell me the right numbers in the nth line.
Input
The first integer is T, and T lines will follow.
Each line will contain an integer N (0 <= N <= 2100000).
Each line will contain an integer N (0 <= N <= 2100000).
Output
For each case, output the right numbers in the Nth line.
All answer in the range of signed 64-bits integer.
All answer in the range of signed 64-bits integer.
Sample Input
3 0 1 2
Sample Output
0 1 1 8 8 27AC代码
/************************************************************************/ /* 第n行为n与n+1的立方和 /************************************************************************/ #include <cstdio>int main(int argc, const char* argv[]) {int nCases = 0;scanf("%d", &nCases);while (nCases--){__int64 n;scanf("%I64d", &n);printf("%I64d %I64d\n", n*n*n, (n+1)*(n+1)*(n+1));}return 0; }