【Codeforces 479D】Long Jumps
【链接】 我是链接,点我呀:)
【题意】
【题解】
设dic1和dic2分别为 能量出长度x和长度y需要添加的点(所有能利用某个a[i]量出来长度为x或y的点) (输入a[i]的话,就把a[i]-x和a[i]+x加入dic1,把a[i]-y和a[i]+y加入dic2 (一开始我只加了a[i]-x......傻逼了) 如果一开始就能量出来x和y(不用这两个集合里面的元素(代码里面用的是map) 则输出0 否则 如果长度x和长度y都一开始不能量出来 那么需要添加点 添加几个点呢? 添加两个点是肯定可以的(x,y) 但是我们可以想办法让他变得更优. 怎么办呢? 我们可以遍历dic1中的所有数字tmp 如果在dic2中也有出现的话 那就说明这个数字tmp可以让x和y都能量出来. 则输出tmp就可以了. 就这点比较特殊 其他的都比较容易想 只需输出x或者y就行【代码】
import java.io.*;
import java.util.*;
public class Main {
static InputReader in;
static PrintWriter out;
public static void main(String[] args) throws IOException{
//InputStream ins = new FileInputStream("E:\\rush.txt");
InputStream ins = System.in;
in = new InputReader(ins);
out = new PrintWriter(System.out);
//code start from here
new Task().solve(in, out);
out.close();
}
static int N = 50000;
static class Task{
int n,l,x,y;
boolean ok1,ok2;
Map<Integer,Integer> dic,dic1,dic2;
public void solve(InputReader in,PrintWriter out) {
dic = new HashMap<Integer,Integer>();
dic1 = new HashMap<Integer,Integer>();
dic2 = new HashMap<Integer,Integer>();
ok1 = false;ok2 = false;
n = in.nextInt();l = in.nextInt();
x = in.nextInt();y = in.nextInt();
for (int i = 1;i <= n;i++) {
int ai;
ai = in.nextInt();
if (dic.containsKey(ai-x)) ok1 = true;
if (dic.containsKey(ai-y)) ok2 = true;
dic1.put(ai-x, 1);
dic1.put(ai+x, 1);
dic2.put(ai-y, 1);
dic2.put(ai+y, 1);
dic.put(ai, 1);
}
if (ok1 && ok2) {
out.println(0);
}else if (!ok1 && !ok2) {
for (Map.Entry<Integer,Integer> it:dic1.entrySet()) {
int x = it.getKey();
if (x<0) continue;
if (x>l) continue;
if (dic2.containsKey(x)) {
out.println(1);
out.println(x);
return;
}
}
out.println(2);
out.println(x+" "+y);
}else {
out.println(1);
if (!ok1) {
out.println(x);
}else {
out.println(y);
}
}
}
}
static class InputReader{
public BufferedReader br;
public StringTokenizer tokenizer;
public InputReader(InputStream ins) {
br = new BufferedReader(new InputStreamReader(ins));
tokenizer = null;
}
public String next(){
while (tokenizer==null || !tokenizer.hasMoreTokens()) {
try {
tokenizer = new StringTokenizer(br.readLine());
}catch(IOException e) {
throw new RuntimeException(e);
}
}
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
}
}