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  • Codeforces1312E Array Shrinking 区间DP

    题意

    给你一个数组(a),只要满足(a_i=a_{i+1})就可以将这两个元素合并成一个值为(a_i+1)的元素,问数组最小长度。

    解题思路

    记得之前某场的F和这题差不多,当时好像是相邻且相等就可以移除这两个数问最小长度。

    看到(n)的范围就想到区间DP了,感觉是一道挺裸的区间DP板子题。

    AC代码

    #include <bits/stdc++.h>
    using namespace std;
      
    typedef long long ll;
    typedef pair<int,int> pi;
     
    #define x first
    #define y second
      
    #define sz(x) ((int)(x).size())
    #define all(x) (x).begin(),(x).end()
    #define rall(x) (x).rbegin(),(x).rend()
    #define endl '
    '
      
    const double PI=acos(-1.0);
     
    mt19937 rng(chrono::steady_clock::now().time_since_epoch().count());
    int rnd(int l,int r){return l+rng()%(r-l+1);}
      
    namespace IO{
        bool REOF = 1; //为0表示文件结尾
        inline char nc() {
            static char buf[100000], *p1 = buf, *p2 = buf;
            return p1 == p2 && REOF && (p2 = (p1 = buf) + fread(buf, 1, 100000, stdin), p1 == p2) ? (REOF = 0, EOF) : *p1++;
        }
      
        template<class T>
        inline bool read(T &x) {
            char c = nc();bool f = 0; x = 0;
            while (c<'0' || c>'9')c == '-' && (f = 1), c = nc();
            while (c >= '0'&&c <= '9')x = (x << 3) + (x << 1) + (c ^ 48), c = nc();
            if(f)x=-x;
            return REOF;
        }
      
        template<typename T, typename... T2>
        inline bool read(T &x, T2 &... rest) {
            read(x);
            return read(rest...);
        }
      
      
        inline bool need(char &c) { return ((c >= 'a') && (c <= 'z')) || ((c >= '0') && (c <= '9')) || ((c >= 'A') && (c <= 'Z')); }
        // inline bool need(char &c) { return ((c >= 'a') && (c <= 'z')) || ((c >= '0') && (c <= '9')) || ((c >= 'A') && (c <= 'Z')) || c==' '; }
      
        inline bool read_str(char *a) {
            while ((*a = nc()) && need(*a) && REOF)++a; *a = '';
            return REOF;
        }
      
        inline bool read_dbl(double &x){
            bool f = 0; char ch = nc(); x = 0;
            while(ch<'0'||ch>'9')  {f|=(ch=='-');ch=nc();}
            while(ch>='0'&&ch<='9'){x=x*10.0+(ch^48);ch=nc();}
            if(ch == '.') {
                double tmp = 1; ch = nc();
                while(ch>='0'&&ch<='9'){tmp=tmp/10.0;x=x+tmp*(ch^48);ch=nc();}
            }
            if(f)x=-x;
            return REOF;
        }
      
        template<class TH> void _dbg(const char *sdbg, TH h){ cerr<<sdbg<<'='<<h<<endl; }
      
        template<class TH, class... TA> void _dbg(const char *sdbg, TH h, TA... a) {
            while(*sdbg!=',')cerr<<*sdbg++;
            cerr<<'='<<h<<','<<' '; _dbg(sdbg+1, a...);
        }
         
        template<class T> ostream &operator<<(ostream& os, vector<T> V) {
            os << "["; for (auto vv : V) os << vv << ","; return os << "]";
        }
      
        template<class T> ostream &operator<<(ostream& os, set<T> V) {
            os << "["; for (auto vv : V) os << vv << ","; return os << "]";
        }
    
        template<class T> ostream &operator<<(ostream& os, map<T,T> V) {
            os << "["; for (auto vv : V) os << vv << ","; return os << "]";
        }
     
        template<class L, class R> ostream &operator<<(ostream &os, pair<L,R> P) {
            return os << "(" << P.st << "," << P.nd << ")";
        }
         
        #define debug(...) _dbg(#__VA_ARGS__, __VA_ARGS__)
    }
      
    using namespace IO;
    const int maxn=2e5+5;
    const int maxv=2e5+5;
    const int mod=998244353; // 998244353 1e9+7
    const int INF=1e9+7; // 1e9+7 0x3f3f3f3f 0x3f3f3f3f3f3f3f3f
    const double eps=1e-12;
      
    int dx[4]={0,1,0,-1};
    //int dx[8]={1,0,-1,1,-1,1,0,-1};
    int dy[4]={1,0,-1,0};
    //int dy[8]={1,1,1,0,0,-1,-1,-1};
     
    // #define ls (x<<1)
    // #define rs (x<<1|1)
    // #define mid ((l+r)>>1)
    // #define lson ls,l,mid
    // #define rson rs,mid+1,r
    
    // int tot,head[maxn];
    // struct Edge{
    // 	int v,nxt;
    //     Edge(){}
    //     Edge(int _v,int _nxt):v(_v),nxt(_nxt){}
    // }e[maxn<<1];
    // void init(){
    // 	tot=1;
    // 	memset(head,0,sizeof(head));
    // }
    // void addedge(int u,int v){
    // 	e[tot]=Edge(v,head[u]); head[u]=tot++;
    // 	e[tot]=Edge(u,head[v]); head[v]=tot++;
    // }
    // void addarc(int u,int v){
    //     e[tot]=Edge(v,head[u]); head[u]=tot++;
    // }
      
    /**
     * **********     Backlight     **********
     * 仔细读题
     * 注意边界条件
     * 记得注释输入流重定向
     * 没有思路就试试逆向思维
     * 加油,奥利给
     */
    
    int n,a[505],dp[505][505],v[505][505];
    
    void solve(){
        read(n);
        for(int i=1;i<=n;i++)read(a[i]),dp[i][i]=1,v[i][i]=a[i];
    
        for(int l=2;l<=n;l++){
            for(int i=1;i<=n-l+1;i++){
                int j=i+l-1;
                dp[i][j]=INF;
                for(int k=i;k<=j-1;k++){
                    if(dp[i][j]>=dp[i][k]+dp[k+1][j]){
                        dp[i][j]=dp[i][k]+dp[k+1][j];
                        if(dp[i][k]==1 && dp[k+1][j]==1 && v[i][k]==v[k+1][j]){
                            dp[i][j]=1;
                            v[i][j]=v[i][k]+1;
                        }
                    }
                }
            }
        }
    
        printf("%d
    ",dp[1][n]);
    }
     
    int main()
    {
        // freopen("in.txt","r",stdin);
        // ios::sync_with_stdio(false); cin.tie(0); cout.tie(0);
        // int _T; read(_T); for(int _=1;_<=_T;_++)solve();
        // while(read(n))solve();
        solve();
        return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/zengzk/p/12454606.html
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