题目传送门
传送到题目,你会一脸骄傲:这题也太简单了吧!不就是算A+B吗?
但是,你要注意:
- pascal使用integer会爆掉哦!
- 有负数哦!
- c/c++的main函数必须是int类型,而且最后要return 0。这不仅对洛谷其他题目有效,而且也是noip/noi比赛的要求!
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代码:
正常C++版:
#include<iostream>
using namespace std;
int main(){
int a,b;
cin>>a>>b;
cout<<a+b<<endl;
return 0;
}
丧心病狂函数1版:
#include<iostream>
#include<cstring>
#include<cstdio>
#include<cstring>
using namespace std;
struct node
{
int data,rev,sum;
node *son[2],*pre;
bool judge();
bool isroot();
void pushdown();
void update();
void setson(node *child,int lr);
}lct[233];
int top,a,b;
node *getnew(int x)
{
node *now=lct+ ++top;
now->data=x;
now->pre=now->son[1]=now->son[0]=lct;
now->sum=0;
now->rev=0;
return now;
}
bool node::judge(){return pre->son[1]==this;}
bool node::isroot()
{
if(pre==lct)return true;
return !(pre->son[1]==this||pre->son[0]==this);
}
void node::pushdown()
{
if(this==lct||!rev)return;
swap(son[0],son[1]);
son[0]->rev^=1;
son[1]->rev^=1;
rev=0;
}
void node::update(){sum=son[1]->sum+son[0]->sum+data;}
void node::setson(node *child,int lr)
{
this->pushdown();
child->pre=this;
son[lr]=child;
this->update();
}
void rotate(node *now)
{
node *father=now->pre,*grandfa=father->pre;
if(!father->isroot()) grandfa->pushdown();
father->pushdown();now->pushdown();
int lr=now->judge();
father->setson(now->son[lr^1],lr);
if(father->isroot()) now->pre=grandfa;
else grandfa->setson(now,father->judge());
now->setson(father,lr^1);
father->update();now->update();
if(grandfa!=lct) grandfa->update();
}
void splay(node *now)
{
if(now->isroot())return;
for(;!now->isroot();rotate(now))
if(!now->pre->isroot())
now->judge()==now->pre->judge()?rotate(now->pre):rotate(now);
}
node *access(node *now)
{
node *last=lct;
for(;now!=lct;last=now,now=now->pre)
{
splay(now);
now->setson(last,1);
}
return last;
}
void changeroot(node *now)
{
access(now)->rev^=1;
splay(now);
}
void connect(node *x,node *y)
{
changeroot(x);
x->pre=y;
access(x);
}
void cut(node *x,node *y)
{
changeroot(x);
access(y);
splay(x);
x->pushdown();
x->son[1]=y->pre=lct;
x->update();
}
int query(node *x,node *y)
{
changeroot(x);
node *now=access(y);
return now->sum;
}
int main()
{
scanf("%d%d",&a,&b);
node *A=getnew(a);
node *B=getnew(b);
//连边 Link
connect(A,B);
//断边 Cut
cut(A,B);
//再连边orz Link again
connect(A,B);
printf("%d\n",query(A,B));
return 0;
}
丧心病狂函数2版:
#include<iostream>
#include<cstring>
using namespace std;
int lowbit(int a)
{
return a&(-a);
}
int main()
{
int n=2,m=1;
int ans[m+1];
int a[n+1],c[n+1],s[n+1];
int o=0;
memset(c,0,sizeof(c));
s[0]=0;
for(int i=1;i<=n;i++)
{
cin>>a[i];
s[i]=s[i-1]+a[i];
c[i]=s[i]-s[i-lowbit(i)];//树状数组创建前缀和优化
}
for(int i=1;i<=m;i++)
{
int q=2;
//if(q==1)
//{(没有更改操作)
// int x,y;
// cin>>x>>y;
// int j=x;
// while(j<=n)
// {
// c[j]+=y;
// j+=lowbit(j);
// }
//}
//else
{
int x=1,y=2;//求a[1]+a[2]的和
int s1=0,s2=0,p=x-1;
while(p>0)
{
s1+=c[p];
p-=lowbit(p);//树状数组求和操作,用两个前缀和相减得到区间和
}
p=y;
while(p>0)
{
s2+=c[p];
p-=lowbit(p);
}
o++;
ans[o]=s2-s1;//存储答案
}
}
for(int i=1;i<=o;i++)
cout<<ans[i]<<endl;//输出
return 0;
}
数组1版:
#include<iostream>
using namespace std;
int main(){
int a[3]
cin>>a[1]>>a[2];
cout<<a[1]+a[2]<<endl;
return 0;
}
数组2版:
#include<iostream>
using namespace std;
int main(){
int a[3];
int sum=0;
for(int =1;i<=2;i++){
cin>>a[i];
}
for(int i=1;i<=2;i++){
sum+=a[i];
}
cout<<sum<<endl;
return 0;
}
以上是C++可用类型。
下面的是唯一的Scala版。
import scala.io._
object Test
{
def main(args: Array[String])
{
val a = StdIn.readInt()
val b = StdIn.readInt()
println(a+b)
}
}
此文章完。