結果
| 問題 | No.807 umg tours |
| ユーザー |
 Enjapma_kyopro
|
| 提出日時 | 2019-03-23 01:31:10 |
| 言語 | C++11 (gcc 11.4.0) |
| 結果 |
AC
|
| 実行時間 | 692 ms / 4,000 ms |
| コード長 | 3,321 bytes |
| コンパイル時間 | 1,156 ms |
| コンパイル使用メモリ | 94,032 KB |
| 実行使用メモリ | 63,104 KB |
| 最終ジャッジ日時 | 2024-05-02 23:38:37 |
| 合計ジャッジ時間 | 9,640 ms |
|
ジャッジサーバーID (参考情報) |
judge1 / judge3 |
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テストケース
テストケース表示| 入力 | 結果 | 実行時間 実行使用メモリ |
|---|---|---|
| testcase_00 | AC | 20 ms
27,008 KB |
| testcase_01 | AC | 21 ms
26,880 KB |
| testcase_02 | AC | 21 ms
26,880 KB |
| testcase_03 | AC | 21 ms
26,880 KB |
| testcase_04 | AC | 21 ms
26,880 KB |
| testcase_05 | AC | 21 ms
26,880 KB |
| testcase_06 | AC | 21 ms
26,880 KB |
| testcase_07 | AC | 21 ms
26,880 KB |
| testcase_08 | AC | 20 ms
26,880 KB |
| testcase_09 | AC | 21 ms
26,880 KB |
| testcase_10 | AC | 21 ms
26,880 KB |
| testcase_11 | AC | 378 ms
55,340 KB |
| testcase_12 | AC | 389 ms
46,812 KB |
| testcase_13 | AC | 539 ms
55,760 KB |
| testcase_14 | AC | 232 ms
39,044 KB |
| testcase_15 | AC | 178 ms
36,516 KB |
| testcase_16 | AC | 559 ms
58,148 KB |
| testcase_17 | AC | 692 ms
62,376 KB |
| testcase_18 | AC | 684 ms
62,276 KB |
| testcase_19 | AC | 687 ms
61,872 KB |
| testcase_20 | AC | 405 ms
43,120 KB |
| testcase_21 | AC | 416 ms
43,744 KB |
| testcase_22 | AC | 181 ms
34,048 KB |
| testcase_23 | AC | 141 ms
32,768 KB |
| testcase_24 | AC | 378 ms
52,968 KB |
| testcase_25 | AC | 691 ms
63,104 KB |
ソースコード
#include <iostream>
#include <cassert>
#include <climits>
#include <bitset>
#include <stack>
#include <queue>
#include <iomanip>
#include <limits>
#include <string>
#include <cmath>
#include <set>
#include <map>
#include <math.h>
#include <algorithm>
#include <vector>
#include <string.h>
#include <tuple>
using namespace std;
typedef long long ll;
typedef pair<ll,ll> P;
long long int INF = 3e18;
double Pi = 3.1415926535897932384626;
vector<ll> G[500005];
vector<P> tree[500010];
priority_queue <ll> pql;
priority_queue <P> pqp;
//big priority queue
priority_queue <ll,vector<ll>,greater<ll> > pqls;
priority_queue <P,vector<P>,greater<P> > pqps1,pqps2;
//small priority queue
//top pop
int dx[8]={1,0,-1,0,1,1,-1,-1};
int dy[8]={0,1,0,-1,1,-1,-1,1};
char dir[] = "DRUL";
//ll bit[500005];
//↓,→,↑,←
#define p(x) cout<<x<<endl;
#define el cout<<endl;
#define pe(x) cout<<(x)<<" ";
#define ps(x) cout<<fixed<<setprecision(25)<<x<<endl;
#define pu(x) cout<<(x);
#define pd(x) cerr<<"//"<<(x)<<endl;
#define re(i,n) for(i=0;i<n;i++);
#define pb push_back
#define lb lower_bound
#define ub upper_bound
#define deba(x) cout<< #x << " = " << x <<endl
ll mod = 1000000007;
ll rui(ll number1,ll number2){
if(number2 == 0){
return 1;
}else{
ll number3 = rui(number1,number2 / 2);
number3 *= number3;
number3 %= mod;
if(number2%2==1){
number3 *= number1;
number3 %= mod;
}
return number3;
}
}
ll gcd(ll number1,ll number2){
if(number1 > number2){
swap(number1,number2);
}
if(number1 == 0 || number1 == number2){
return number2;
}else{
return gcd(number2 % number1,number1);
}
}
void YES(bool condition){
if(condition){
p("YES");
}else{
p("NO");
}
return;
}
void Yes(bool condition){
if(condition){
p("Yes");
}else{
p("No");
}
return;
}
ll n,m,num,sum,ans,a,b,c,d,e,g,h,i,j,k,w,ok,ng,l,q;
ll x[500005],y[500005],z[500005];
ll cost1[200005],cost2[200005];
char s[500005],t[500005];
bool flag,dame;
int main(){
cin >> n >> m;
for(i=0;i<m;i++){
cin >> a >> b >> c;
tree[a].pb(P(b,c));
tree[b].pb(P(a,c));
tree[a+100000].pb(P(b+100000,c));
tree[b+100000].pb(P(a+100000,c));
tree[a].pb(P(b+100000,0ll));
tree[b].pb(P(a+100000,0ll));
}
for(i=1;i<=n;i++){
cost1[i] = INF;
cost2[i] = INF;
}
for(i=100001;i<=n+100000;i++){
cost1[i] = INF;
cost2[i] = INF;
}
pqps1.push(P(0,1));
cost1[1] = 0;
while(!pqps1.empty()){
P p = pqps1.top();
pqps1.pop();
ll v = p.second;
if(cost1[v] < p.first)continue;
for(i=0;i<tree[v].size();i++){
P x = tree[v][i];
if(cost1[x.first] > cost1[v] + x.second){
cost1[x.first] = cost1[v] + x.second;
pqps1.push(P(cost1[x.first],x.first));
}
}
}
cost2[100001] = 0;
pqps2.push(P(0,100001));
while(!pqps2.empty()){
P p = pqps2.top();
pqps2.pop();
ll v = p.second;
if(cost2[v] < p.first)continue;
for(i=0;i<tree[v].size();i++){
P x = tree[v][i];
if(cost2[x.first] > cost2[v] + x.second){
cost2[x.first] = cost2[v] + x.second;
pqps2.push(P(cost2[x.first],x.first));
}
}
}
for(i=1;i<=n;i++){
if(i == 1){
p(0);
}else{
p(cost1[i + 100000] + cost2[i + 100000]);
}
}
//p(ans);
return 0;
}