2015ACM-ICPC亚洲区上海站-重现赛(感谢华东理工) 晓风の个人博客

An Easy Physics Problem

#include <bits/stdc++.h>
using namespace std;
typedef long double lf;
typedef complex<lf> Coord;
#define X real()
#define Y imag()
const lf EPS = 1e-8;
int sgn(lf d) { return (d > EPS) - (d < -EPS); }
struct Line
{
	Coord p, v;
	Coord point(lf t) const { return p + v * t; }
};
struct Circle
{
	Coord c;
	lf r;
	Coord point(lf t) const { return c + polar(r, t); } //t为参数,幅角
};

lf Dot(const Coord &A, const Coord &B) { return A.X * B.X + A.Y * B.Y; }

lf Cross(const Coord &A, const Coord &B) { return A.X * B.Y - B.X * A.Y; }

Coord getLineProjection(const Coord &P, const Line &L) { return L.point(Dot(L.v, P - L.p) / norm(L.v)); } //点在直线上的投影

Coord getSymmetry(const Coord &P, const Coord &O) { return O + O - P; } //P关于O的对称点

Coord getSymmetry(const Coord &P, const Line &L) { return getSymmetry(P, getLineProjection(P, L)); } //P关于L的对称点

bool onSegment(const Coord &P, const Coord &A1, const Coord &A2) { return sgn(Dot(A1 - P, A2 - P)) < 0 && !sgn(Cross(A1 - P, A2 - P)); } //判断点是否在线段上,不包含端点

int getLineCircleIntersection(const Line &L, const Circle &C, vector<Coord> &sol)
{
	lf a = L.v.X,
	   b = L.p.X - C.c.X,
	   c = L.v.Y,
	   d = L.p.Y - C.c.Y,
	   e = a * a + c * c,
	   f = 2 * (a * b + c * d),
	   g = b * b + d * d - C.r * C.r,
	   delta = f * f - 4 * e * g;

	if (sgn(delta) < 0)
		return 0;
	if (!sgn(delta))
		return sol.push_back(L.point(-f / (2 * e))), 1;
	if (sgn((-f - sqrt(delta)) / (2 * e)) > 0)
		sol.push_back(L.point((-f - sqrt(delta)) / (2 * e)));
	if (sgn((-f + sqrt(delta)) / (2 * e)) > 0)
		sol.push_back(L.point((-f + sqrt(delta)) / (2 * e)));
	return 2;
}
int ok(const Circle &C, Coord A, Coord V, const Coord &B)
{
	vector<Coord> sol;
	getLineCircleIntersection(Line{A, V}, C, sol);
	if (sol.size() > 1)
	{
		if (onSegment(sol[1], A, sol[0]))
			swap(sol[0], sol[1]);
		if (onSegment(B, A, sol[0]))
			return 1;
		V = getSymmetry(A, Line{C.c, sol[0] - C.c}) - sol[0];
		A = sol[0];
	}
	return !sgn(Cross(B - A, V)) && sgn((B - A).X) == sgn(V.X) && sgn((B - A).Y) == sgn(V.Y);
}
int t, kase, ox, oy, r, ax, ay, vx, vy, bx, by;
int main()
{
	for (scanf("%d", &t); t--;)
	{
		scanf("%d%d%d%d%d%d%d%d%d", &ox, &oy, &r, &ax, &ay, &vx, &vy, &bx, &by);
		printf("Case #%d: %s\n", ++kase, ok(Circle{Coord(ox, oy), r}, Coord(ax, ay), Coord(vx, vy), Coord(bx, by)) ? "Yes" : "No");
	}
}

Binary Tree

#include <bits/stdc++.h>
#define int long long
using namespace std;
int n, k, t, ii;
vector<pair<int, char>> vec;
void output(int p)
{
	printf("Case #%lld:\n", ii);
	if (p == 1)
	{
		for (int i = 0; i < k - 1; i++)
			printf("%lld %c\n", 1LL << i, '+');
		printf("%lld %c\n", (1LL << k - 1) + 1, '+');
	}
	else
	{
		for (int i = 0; i < vec.size(); i++)
			printf("%lld %c\n", vec[i].first, vec[i].second);
	}
	vec.clear();
}
signed main(void)
{
	scanf("%lld", &t);
	for (ii = 1; ii <= t; ii++)
	{
		scanf("%lld%lld", &n, &k);
		if (n == (1LL << k))
			output(1);
		else
		{
			int t = (1LL << k) - 1 - n;
			if (t % 2 == 0)
			{
				t /= 2;
				for (int i = 0; i < k; i++)
				{
					//printf("%d %c",1LL<<i,t&1?'-':'+');
					vec.push_back({1LL << i, t & 1 ? '-' : '+'});
					t /= 2;
				}
			}

			else
			{
				t /= 2;
				t++;
				for (int i = 0; i < k; i++)
				{
					//printf("%d %c",1LL<<i,t&1?'-':'+');
					vec.push_back({1LL << i, t & 1 ? '-' : '+'});
					t /= 2;
					//t++;
				}
				vec[vec.size() - 1].first++;
			}
			output(2);
		}
	}
}

Friendship of Frog

蛤的友谊。

#include <bits/stdc++.h>
using namespace std;
char a[100000];
vector<int> vec[40];
int t, ans;
int main(void)
{
	scanf("%d", &t);
	for (int ii = 1; ii <= t; ii++)
	{
		scanf("%s", a);
		for (int i = 0; i < 26; i++)
			vec[i].clear();
		for (int j = 0; a[j] != '\0'; j++)
		{
			vec[a[j] - 'a'].push_back(j);
		}
		ans = 1000000;
		for (int i = 0; i < 26; i++)
		{
			for (int j = 1; j < vec[i].size(); j++)
				ans = min(ans, vec[i][j] - vec[i][j - 1]);
		}
		if (ans == 1000000)
			ans = -1;
		printf("Case #%d: %d\n", ii, ans);
	}
}

Kingdom of Black and White

#include <bits/stdc++.h>
using namespace std;
typedef long long LL;

const int maxn = 1e5 + 10;
int T, tot;
LL a[maxn];
char ch[maxn];

int main()
{
	scanf("%d", &T);
	for (int t = 1; t <= T; t++)
	{
		scanf("%s", ch);
		int L = strlen(ch);

		memset(a, 0, sizeof(a));
		tot = 1;
		a[tot] = 1;
		for (int i = 1; i < L; i++)
		{
			if (ch[i] != ch[i - 1])
				tot++;
			a[tot]++;
		}

		LL ans = 0, res = 0;
		for (int i = 1; i <= tot; i++)
			ans += a[i] * a[i];
		LL Lans = ans;
		for (int i = 1; i <= tot; i++)
		{
			if (i > 1)
			{
				if (a[i - 1] - 1ll != 0 || i - 2 <= 0)
				{
					res = ans - a[i] * a[i] + (a[i] + 1ll) * (a[i] + 1ll);
					res = res - a[i - 1] * a[i - 1] + (a[i - 1] - 1ll) * (a[i - 1] - 1ll);
				}
				else
				{
					res = ans - a[i] * a[i] - a[i - 1] * a[i - 1] - a[i - 2] * a[i - 2];
					res = res + (a[i] + a[i - 1] + a[i - 2]) * (a[i] + a[i - 1] + a[i - 2]);
				}
				Lans = max(res, Lans);
			}
			if (i < tot)
			{
				if (a[i + 1] - 1ll != 0 || i + 2 > tot)
				{
					res = ans - a[i] * a[i] + (a[i] + 1ll) * (a[i] + 1ll);
					res = res - a[i + 1] * a[i + 1] + (a[i + 1] - 1ll) * (a[i + 1] - 1ll);
				}
				else
				{
					res = ans - a[i] * a[i] - a[i + 1] * a[i + 1] - a[i + 2] * a[i + 2];
					res = res + (a[i] + a[i + 1] + a[i + 2]) * (a[i] + a[i + 1] + a[i + 2]);
				}
				Lans = max(res, Lans);
			}
		}
		printf("Case #%d: %lld\n", t, Lans);
	}

	return 0;
}

LCM Walk

#include <bits/stdc++.h>
using namespace std;
int deal(int x, int y)
{
	int g = __gcd(x, y);
	if (y % (g + x))
		return 1;
	int k = y / (g + x);
	int t = y - k * x;
	return 1 + deal(min(t, x), max(t, x));
}
int main()
{
	int x, y, t;
	scanf("%d", &t);
	for (int i = 1; i <= t; i++)
	{
		scanf("%d%d", &x, &y);
		printf("Case #%d: %d\n", i, deal(min(x, y), max(x, y)));
	}
}