2023年第6届传智杯省赛第二场复赛 解题报告 | 珂学家
发布时间:2023年12月24日
前言
因为OJ的承办方是牛客,除了初赛用的原题有点争议外,复赛用的是原创的新题(点赞)。
说真的,这个难度,超过我的想象,打得非常的吃力。
我其实总共打了两场初赛,一场复赛,外加VP一场复赛,没有一场是AK的,很惭愧。
第二场复赛,T3卡了下,然后T4头痛,T5没找到线索,倒是T6一眼题,最后关头磨出了T4,真的太不容易,感谢自己的坚持。
A.
思路: 模拟
标准的签到题
import java.io.BufferedInputStream;
import java.util.Scanner;
public class Main {
public static void main(String[] args) {
// 需要替换为快读
Scanner sc = new Scanner(new BufferedInputStream(System.in));
int n = sc.nextInt(), x = sc.nextInt();
int res = 0;
int pre = 0;
for (int i = 0; i < n; i++) {
int v = sc.nextInt();
if (i > 0 && pre < x && v >= x) {
res++;
}
pre = v;
}
System.out.println(res);
}
}
B.
思路: 贪心
尽量挑选频数多的字母,尾巴需要额外处理下
因为
x
+
y
=
a
+
b
,
x
<
a
<
b
<
y
x+y=a+b, x<a<b<y
x+y=a+b,x<a<b<y
进而
x
2
+
y
2
>
a
2
+
b
2
x^2 + y^2 > a^2 + b^2
x2+y2>a2+b2
所以大的就让它越大,这样整体就越大
import java.io.BufferedInputStream;
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.Arrays;
import java.util.Scanner;
import java.util.StringTokenizer;
public class Main {
public static void main(String[] args) {
// 需要替换为快读
Scanner sc = new Scanner(new BufferedInputStream(System.in));
int n = sc.nextInt(), k = sc.nextInt();
int[] hash = new int[26];
char[] str = sc.next().toCharArray();
for (int i = 0; i < str.length; i++) {
hash[str[i] - 'a']++;
}
long res = 0;
Arrays.sort(hash);
for (int i = 0; k > 0 && i < 26; i++) {
int d = Math.min(k, hash[i]);
res += (long)d * d;
k -= d;
}
System.out.println(res);
}
}
C.
思路: 枚举
找到所有不满足要求的相邻点
然后枚举被交换的位置,如果操作之后,会消灭点不满足要求的点,那么该点就是解。
这边有个结论
如果不满足的相邻点超过
2
个,那一定无解
如果不满足的相邻点超过2个,那一定无解
如果不满足的相邻点超过2个,那一定无解
这题挺容易错的,出的蛮好,很羡慕哪些秒杀这题的同学。
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.ArrayList;
import java.util.List;
import java.util.StringTokenizer;
import java.util.TreeSet;
public class Main {
public static void main(String[] args) {
// 预处理质数
int MN = 2 * 10_0000;
boolean[] vis = new boolean[MN + 1];
vis[1] = false;
for (int i = 2; i <= MN; i++) {
if (!vis[i]) {
if (i > MN / i) continue;
for (int j = i * i; j <= MN; j+=i) {
vis[j] = true;
}
}
}
AReader sc = new AReader();
int n = sc.nextInt();
int[] arr = new int[n];
for (int i = 0; i < n; i++) {
arr[i] = sc.nextInt();
}
// 收集所有的坏点
List<Integer> bads = new ArrayList<>();
for (int i = 0; i < n - 1; i++) {
if (vis[arr[i] + arr[i + 1]]) bads.add(i);
}
if (bads.size() > 2) {
System.out.println(-1);
} else {
TreeSet<Integer> ans = new TreeSet<>();
for (int v: bads) ans.add(v);
// 模拟统计满足要求的点
int res = -1;
int exp = 0;
for (int i = 0; i < n - 1; i++) {
TreeSet<Integer> tmp = new TreeSet<>(ans);
if (i > 0 && !vis[arr[i + 1] + arr[i - 1]]) tmp.remove(i - 1);
if (i + 2 < n && !vis[arr[i + 2] + arr[i]]) tmp.remove(i + 1);
if (tmp.size() == 0) {
res = i + 1;
exp++;
}
}
System.out.println(exp == 1 ? res : -1);
}
}
static
class AReader {
private BufferedReader reader = new BufferedReader(new InputStreamReader(System.in));
private StringTokenizer tokenizer = new StringTokenizer("");
private String innerNextLine() {
try {
return reader.readLine();
} catch (IOException ex) {
return null;
}
}
public boolean hasNext() {
while (!tokenizer.hasMoreTokens()) {
String nextLine = innerNextLine();
if (nextLine == null) {
return false;
}
tokenizer = new StringTokenizer(nextLine);
}
return true;
}
public String nextLine() {
tokenizer = new StringTokenizer("");
return innerNextLine();
}
public String next() {
hasNext();
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
public long nextLong() {
return Long.parseLong(next());
}
}
}
D.
思路:枚举
有一个特例,就是重合的点数刚好为 n 有一个特例,就是重合的点数刚好为n 有一个特例,就是重合的点数刚好为n
枚举两点(不重合)构建的一条直线,然后利用叉乘计算
- 直线上
- 直线左侧
- 直线右侧
的点个数和分布,满足均分,就是所求的结果
是一道蛮数学化的题
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.HashMap;
import java.util.Map;
import java.util.StringTokenizer;
public class D {
static class Key {
int x, y;
public Key(int x, int y) {
this.x = x;
this.y = y;
}
@Override
public int hashCode() {
return x * 1331 + y;
}
@Override
public boolean equals(Object obj) {
Key d = (Key)obj;
return x == d.x && y == d.y;
}
}
static class Line {
int x, y;
int x2, y2;
int dx, dy;
public Line(int x1, int y1, int x2, int y2) {
// 直线的表达
this.x = x1; this.y = y1;
this.x2 = x2; this.y2 = y2;
this.dx = x2 - x1;
this.dy = y2 - y1;
if (this.dx < 0) {
this.dx = -this.dx;
this.dy = -this.dy;
}
}
boolean inLine(int px, int py) {
int tx = px - x;
int ty = py - y;
if (tx < 0) {
tx = -tx;
ty = -ty;
}
if (dx == 0) {
return tx == 0;
}
if (dy == 0) {
return ty == 0;
}
return (long)dx * ty == (long)dy * tx;
}
boolean isLeft(int px, int py) {
int dx1 = px - x, dy1 = py - y;
int dx2 = x2 - x, dy2 = y2 - y;
return dx1 * dy2 - dx2 * dy1 > 0;
}
long[] expr() {
// y = dy/dx * x + c
// c => y0 - dy/dx * x0
if (dx == 0) {
return new long[] {1, 0, -x};
}
if (dy == 0) {
return new long[] {0, 1, -y};
}
return new long[] {dy, -dx, (long)y * dx - (long)dy * x};
}
}
public static void main(String[] args) {
AReader sc = new AReader();
Map<Key, Integer> hash = new HashMap<>();
int n = sc.nextInt();
int m = 3 * n;
int[][] ps = new int[m][2];
for (int i = 0; i < m; i++) {
ps[i][0] = sc.nextInt();
ps[i][1] = sc.nextInt();
hash.merge(new Key(ps[i][0], ps[i][1]), 1, Integer::sum);
}
Line ans = null;
boolean found = false;
// 这边进行枚举
for (int i = 0; !found && i < m; i++) {
for (int j = i + 1; !found && j < m; j++) {
if (ps[i][0] == ps[j][0] && ps[i][1] == ps[j][1]) continue;
Line line = new Line(ps[i][0], ps[i][1], ps[j][0], ps[j][1]);
int n0 = 2, n1 = 0, n2 = 0;
for (int k = 0; k < m; k++) {
if (k == i || k == j) continue;
if (line.inLine(ps[k][0], ps[k][1])) n0++;
else if (line.isLeft(ps[k][0], ps[k][1])) n1++;
else n2++;
}
if (n0 == n1 && n1 == n2) {
found = true;
ans = line;
}
}
}
if (ans == null) {
// 存在一个特例
for (Map.Entry<Key, Integer> kv : hash.entrySet()) {
if (kv.getValue() == n) {
int sx = kv.getKey().x;
int sy = kv.getKey().y;
// 黑洞点
for (int i = -2000; i <= 2000; i++) {
Line tmp = new Line(sx, sy, sx + 1, sy + i);
int left = 0, right = 0;
for (int k = 0; k < m; k++) {
if (ps[k][0] == sx && ps[k][1] == sy) continue;
if (tmp.isLeft(ps[k][0], ps[k][1])) left++;
else right++;
}
if (left == right) {
ans = tmp;
break;
}
left = 0;
right = 0;
tmp = new Line(sx, sy, sx + i, sy + 1);
for (int k = 0; k < m; k++) {
if (ps[k][0] == sx && ps[k][1] == sy) continue;
if (tmp.isLeft(ps[k][0], ps[k][1])) left++;
else right++;
}
if (left == right) {
ans = tmp;
break;
}
}
break;
}
}
}
if (ans == null) {
System.out.println(-1);
} else {
long[] cur = ans.expr();
System.out.println(cur[0] + " " + cur[1] + " " + cur[2]);
}
}
static
class AReader {
private BufferedReader reader = new BufferedReader(new InputStreamReader(System.in));
private StringTokenizer tokenizer = new StringTokenizer("");
private String innerNextLine() {
try {
return reader.readLine();
} catch (IOException ex) {
return null;
}
}
public boolean hasNext() {
while (!tokenizer.hasMoreTokens()) {
String nextLine = innerNextLine();
if (nextLine == null) {
return false;
}
tokenizer = new StringTokenizer(nextLine);
}
return true;
}
public String nextLine() {
tokenizer = new StringTokenizer("");
return innerNextLine();
}
public String next() {
hasNext();
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
public long nextLong() {
return Long.parseLong(next());
}
}
}
E.
完全没思路,蒙了
F.
思路:字符串hash + 线段树
综合题,但是比较简单
这边可以借助双hash,来构建,避免碰撞带来的WA.
import java.io.BufferedReader;
import java.io.IOException;
import java.io.InputStreamReader;
import java.util.StringTokenizer;
public class F {
static long mod = (long)1e9 + 7;
static long p1 = 13;
static long p2 = 17;
static final int MZ = 100_00000;
static long[] dp1 = new long[MZ + 1];
static long[] dp2 = new long[MZ + 1];
public static void setUp() {
dp1[0] = dp2[0] = 1;
for (int i = 1; i < MZ; i++) {
dp1[i] = dp1[i - 1] * p1 % mod;
dp2[i] = dp2[i - 1] * p2 % mod;
}
}
// 线段树
static class SegTree {
int l, r;
SegTree left, right;
int v;
long h1, h2;
public SegTree(char[] str, int l, int r) {
this.l = l;
this.r = r;
if (l == r) {
this.v = str[l] - 'a';
h1 = v % mod;
h2 = v % mod;
return;
} else {
int m = l + (r - l) / 2;
left = new SegTree(str, l, m);
right = new SegTree(str, m + 1, r);
pushup();
}
}
public void update(int p, char c) {
if (isLeaf()) {
this.v = c - 'a';
h1 = v % mod;
h2 = v % mod;
return;
}
int m = l + (r - l) / 2;
if (p <= m) {
this.left.update(p, c);
} else {
this.right.update(p, c);
}
pushup();
}
long query1(int ql, int qr) {
if (isLeaf()) {
return this.h1;
}
if (ql <= l && qr >= r) {
return this.h1;
}
int m = l + (r - l) / 2;
long lh = 0;
if (ql <= m) {
lh = this.left.query1(ql, Math.min(m, qr));
}
long rh = 0;
if (qr > m) {
rh = this.right.query1(Math.max(m +1, ql), qr);
}
int d = Math.max(0, qr - m);
return (lh * dp1[d] + rh) % mod;
}
long query2(int ql, int qr) {
if (isLeaf()) {
return this.h2;
}
if (ql <= l && qr >= r) {
return this.h2;
}
int m = l + (r - l) / 2;
long lh = 0;
if (ql <= m) {
lh = this.left.query2(ql, Math.min(m, qr));
}
long rh = 0;
if (qr > m) {
rh = this.right.query2(Math.max(m +1, ql), qr);
}
int d = Math.max(0, qr - m);
return (lh * dp2[d] + rh) % mod;
}
public void pushup() {
int m = l + (r - l) / 2;
h1 = (left.h1 * dp1[r - m] % mod + right.h1) % mod;
h2 = (left.h2 * dp2[r - m] % mod + right.h2) % mod;
}
boolean isLeaf() {return l== r;}
}
public static void main(String[] args) {
setUp();
AReader sc = new AReader();
int n = sc.nextInt();
int q = sc.nextInt();
char[] str = sc.next().toCharArray();
SegTree root = new SegTree(str, 0, n - 1);
for (int i = 0; i < q; i++) {
int op = sc.nextInt();
if (op == 1) {
int x = sc.nextInt() - 1;
char c = sc.next().charAt(0);
root.update(x, c);
} else if (op == 2) {
int l1 = sc.nextInt() - 1, r1 = sc.nextInt() - 1;
int l2 = sc.nextInt() - 1, r2 = sc.nextInt() - 1;
if (root.query1(l1, r1) == root.query1(l2, r2) && root.query2(l1, r1) == root.query2(l2, r2)) {
System.out.println("Yes");
} else {
System.out.println("No");
}
}
}
}
static
class AReader {
private BufferedReader reader = new BufferedReader(new InputStreamReader(System.in));
private StringTokenizer tokenizer = new StringTokenizer("");
private String innerNextLine() {
try {
return reader.readLine();
} catch (IOException ex) {
return null;
}
}
public boolean hasNext() {
while (!tokenizer.hasMoreTokens()) {
String nextLine = innerNextLine();
if (nextLine == null) {
return false;
}
tokenizer = new StringTokenizer(nextLine);
}
return true;
}
public String nextLine() {
tokenizer = new StringTokenizer("");
return innerNextLine();
}
public String next() {
hasNext();
return tokenizer.nextToken();
}
public int nextInt() {
return Integer.parseInt(next());
}
public long nextLong() {
return Long.parseLong(next());
}
}
}
写在最后
文章来源:https://blog.csdn.net/m0_66102593/article/details/135184667
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