hdu4933 Miaomiao's Function 数位dp+大数模板
发布时间:2020-12-14 02:24:27 所属栏目:大数据 来源:网络整理
导读:Miaomiao's Function Time Limit: 2000/1000 MS (Java/Others)????Memory Limit: 65536/65536 K (Java/Others) Total Submission(s): 228????Accepted Submission(s): 59 Problem Description Firstly,Miaomiao define two functions f(x),g(x): (K is the s
Miaomiao's FunctionTime Limit: 2000/1000 MS (Java/Others)????Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 228????Accepted Submission(s): 59
Problem Description
Firstly,Miaomiao define two functions f(x),g(x):
(K is the smallest integer which satisfied x + 9 * K > 0) if?
For example f(20140810) = f(2 + 0 + 1 + 4 + 0 + 8 + 1 + 0) = f(16) = f(1 + 6) = f(7) = 7 Then,you are given two integers L,R( L <= R) .? Answer is defined as?
Please caculate (Answer Mod f(Answer) + f(Answer)) Mod f(Answer). Pay attantion ! If f(Answer) = 0,please output "Error!"
?
Input
There are many test cases. In the first line there is a number T ( T <= 50 ) shows the number of test cases.
For each test cases there are two numbers L,R ( 0 <= L,R <= 10^100 ). For your Information,L,R don't have leading zeros.
?
Output
For each opeartion,output the result.
?
Sample Input
?
Sample Output
?
根据题目中的f(x)的定义,求出answer后若answer>0,f(x)=answer%9,如果answer%9==0,f(x)=9;需要判断answer是否为0,就需要用大数来求了。
dp[pos][f][one],pos表示位置,f表示是否受限,one表示是否是第一位。
#include<iostream>
#include<cstring>
#include<cstdio>
#include<ostream>
#include<istream>
#include<algorithm>
#include<queue>
#include<string>
#include<cmath>
#include<set>
#include<map>
#include<stack>
#include<vector>
#define fi first
#define se second
#define pii pair<int,int>
#define inf (1<<30)
#define eps 1e-8
#define ll long long
using namespace std;
const int maxn=510005;
const ll mod=1000000007;
struct bigint //flag表示正负,a数组从低位到高位
{
int flag;
int a[210];
bigint() { flag=1; memset(a,sizeof a); }
};
bigint operator +(bigint a,bigint b);
bigint operator -(bigint a,bigint b);
bigint operator +(bigint a,bigint b)
{
if (a.flag==b.flag)
{
bigint c;
int g=0;
for(int i=1;i<=200;i++)
{
c.a[i]=a.a[i]+b.a[i]+g;
g=c.a[i]/10;
c.a[i]%=10;
}
c.flag=a.flag;
return c;
}
else
{
if (a.flag==1)
{
b.flag=1; return a-b;
}
else
{
a.flag=1; return b-a;
}
}
}
int cmp(const bigint &a,const bigint &b)
{
for(int i=200;i>=1;i--) if (a.a[i]!=b.a[i]) if (a.a[i]<b.a[i]) return -1; else return 1;
return 0;
}
bigint operator -(bigint a,bigint b)
{
if (a.flag==-1 || b.flag==-1)
{
if (a.flag==-1 && b.flag==-1)
{
a.flag=1; b.flag=1;
return b-a;
}
if (a.flag==-1)
{
a.flag=1; a=a+b;
a.flag=-1; return a;
}
if (b.flag==-1)
{
b.flag=1; return a+b;
}
}
if (cmp(a,b)==-1)
{
a=b-a; a.flag=-1;
return a;
}
bigint c; int g=0;
for(int i=1;i<=200;i++)
{
c.a[i]=a.a[i]-b.a[i]-g;
if (c.a[i]<0) c.a[i]+=10,g=1; else g=0;
}
return c;
}
bigint operator *(bigint a,int t)
{
if (t==0) { bigint c; return c; }
if (t<0)
{
a.flag*=-1; t*=-1;
}
int g=0; bigint c; c.flag=a.flag;
for(int i=1;i<=200;i++)
{
c.a[i]=a.a[i]*t+g;
g=c.a[i]/10;
c.a[i]%=10;
}
return c;
}
int iszero(bigint z)
{
for(int i=1;i<=200;i++) if (z.a[i]!=0) return 0;
return 1;
}
bigint toBigint(char *s)
{
int len=strlen(s+1);
bigint c;
for(int i=len;i>=1;i--) c.a[len-i+1]=s[i]-'0';
return c;
}
bigint toBigint(int a)
{
bool flag=true;
if(a<0) {
a=-a;
flag=false;
}
char s[10];
int cnt=1;
while(a) {
s[cnt++]=(a%10+'0');
a/=10;
}
for(int i=1,j=cnt-1;i<j;i++,j--)
swap(s[i],s[j]);
s[cnt]='�';
bigint q=toBigint(s);
if(!flag)
q.flag=-1;
return q;
}
int modd(bigint c,int z)
{
int g=0;
for(int i=200;i>=1;i--) g=(g*10+c.a[i])%z;
if (c.flag==-1) g*=-1;
return g;
}
char l[1005];
char r[1005];
bigint pw[105];
bigint g[105];
bigint dp[105][2];
bool vis[105][2];
bigint dfs(int e,int flag,char* s,int one)
{
if(e==0) {
if(flag==1)
return toBigint(45);
else
return toBigint((s[0]-'0')*(s[0]-'0'+1)/2);
}
if(flag && vis[e][one])
return dp[e][one];
bigint ans;
int mx=(flag?9:s[e]-'0');
for(int i=0;i<=mx;i++) {
int f;
if(flag || (i<mx)) f=1;
else f=0;
if(f) ans=ans+pw[e-1]*i;
else ans=ans+g[e-1]*i;
if(i==0 && one)
ans=ans+dfs(e-1,f,s,1);
else
ans=ans-dfs(e-1,0);
}
if(flag) {
vis[e][one]=1;
dp[e][one]=ans;
}
return ans;
}
bigint cal(char* s)
{
int len=strlen(s);
for(int i=0,j=len-1;i<j;i++,s[j]);
bigint tmp;
memset(g[0].a,sizeof(g[0].a));
tmp.a[1]=1;
g[0].a[1]=(s[0]-'0');
g[0]=g[0]+tmp;
for(int i=1;i<len;i++) {
g[i]=g[i-1]+pw[i-1]*(s[i]-'0');
}
return dfs(len-1,1);
}
void solve()
{
bigint R=cal(r);
bigint L=cal(l);
int u=0;
for(int i=strlen(l)-1,j=1;i>=0;i--,j++) {
if(j&1)
u+=l[i]-'0';
else
u-=l[i]-'0';
}
bigint tmp=toBigint(u);
bigint ans=R-L+tmp;
if(iszero(ans)) {
printf("Error!n");
return;
}
int m=modd(ans,9);
if(m<0) m+=9;
if(m==0) m=9;
int o=modd(ans,m);
if(o<0)
o+=m;
printf("%dn",o);
return;
}
int main()
{
pw[0].a[2]=1;
for(int i=1;i<=100;i++) {
pw[i]=pw[i-1]*10;
}
int t;
scanf("%d",&t);
memset(vis,sizeof(vis));
while(t--) {
scanf("%s%s",l,r);
solve();
}
return 0;
}
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