Codeforces Round #430 (Div. 2) B. Gleb And Pizza(数论)

B. Gleb And Pizza

time limit per test

2 seconds

memory limit per test

256 megabytes

input

standard input

output

standard output

Gleb ordered pizza home. When the courier delivered the pizza, he was very upset, because several pieces of sausage lay on the crust, and he does not really like the crust.

The pizza is a circle of radius r and center at the origin. Pizza consists of the main part — circle of radius r - d with center at the origin, and crust around the main part of the width d. Pieces of sausage are also circles. The radius of the i -th piece of the sausage is ri, and the center is given as a pair (xi, yi).

Gleb asks you to help determine the number of pieces of sausage caught on the crust. A piece of sausage got on the crust, if it completely lies on the crust.

Input

First string contains two integer numbers r and d (0 ≤ d < r ≤ 500) — the radius of pizza and the width of crust.

Next line contains one integer number n — the number of pieces of sausage (1 ≤ n ≤ 105).

Each of next n lines contains three integer numbers xi, yi and ri ( - 500 ≤ xi, yi ≤ 500, 0 ≤ ri ≤ 500), where xi and yi are coordinates of the center of i-th peace of sausage, ri — radius of i-th peace of sausage.

Output

Output the number of pieces of sausage that lay on the crust.

Examples

input

8 477 8 1-7 3 20 2 10 -2 2-3 -3 10 6 25 3 1

output

2

input

10 840 0 90 0 101 0 11 0 2

output

0

Note

Below is a picture explaining the first example. Circles of green color denote pieces of sausage lying on the crust.

题目大意:以原点为圆心有一个大圆，半径为r，现在给你几个圆和半径，现在问你有几个小圆完整的存在与r-d这个区间内，具体见上图

解题思路:这个题对于每个小圆来说，去check与大圆圆心的距离，然后卡一下d和r-d的长度即可，注意精度

#include <cstdio>#include <cstring>#include <iostream>#include <algorithm>#include <vector>#include <queue>#include <set>#include <map>#include <string>#include <cmath>#include <cstdlib>#include <ctime>using namespace std;typedef long long LL;int r,d,n;bool check(int x,int y,int rr){double cnt = sqrt(x*x+y*y);if(cnt-double(rr)>=double(r-d)&&cnt+double(rr)<=r)return true;elsereturn false;}int main(){int sum,i,x,y,rr;cin>>r>>d;cin>>n;sum=0;for(i=1;i<=n;i++){cin>>x>>y>>rr;if(check(x,y,rr)){sum++;}}cout<<sum<<endl;}