ソースコード

# include <bits/stdc++.h>
using namespace std;
using ll = long long;
using ull = unsigned long long;
const double pi = acos(-1);
template<class T>constexpr T inf() { return ::std::numeric_limits<T>::max(); }
template<class T>constexpr T hinf() { return inf<T>() / 2; }
template <typename T_char>T_char TL(T_char cX) { return tolower(cX); }
template <typename T_char>T_char TU(T_char cX) { return toupper(cX); }
template<class T> bool chmin(T& a,T b) { if(a > b){a = b; return true;} return false; }
template<class T> bool chmax(T& a,T b) { if(a < b){a = b; return true;} return false; }
template<class T> bool is_sqare(T a) { if(floor(sqrt(a)) * floor(sqrt(a)) == a){ return true; }return false; }
int popcnt(unsigned long long n) { int cnt = 0; for (int i = 0; i < 64; i++)if ((n >> i) & 1)cnt++; return cnt; }
int d_sum(ll n) { int ret = 0; while (n > 0) { ret += n % 10; n /= 10; }return ret; }
int d_cnt(ll n) { int ret = 0; while (n > 0) { ret++; n /= 10; }return ret; }
ll gcd(ll a, ll b) { if (b == 0)return a; return gcd(b, a%b); };
ll lcm(ll a, ll b) { ll g = gcd(a, b); return a / g*b; };
template<class T> using dijk = priority_queue<T, vector<T>, greater<T>>;
# define all(qpqpq)           (qpqpq).begin(),(qpqpq).end()
# define UNIQUE(wpwpw)        sort(all((wpwpw)));(wpwpw).erase(unique(all((wpwpw))),(wpwpw).end())
# define LOWER(epepe)         transform(all((epepe)),(epepe).begin(),TL<char>)
# define UPPER(rprpr)         transform(all((rprpr)),(rprpr).begin(),TU<char>)
# define rep(i,upupu)         for(ll i = 0, i##_len = (upupu);(i) < (i##_len);(i)++)
# define reps(i,opopo)        for(ll i = 1, i##_len = (opopo);(i) <= (i##_len);(i)++)
# define len(x)                ((int)(x).size())
# define bit(n)               (1LL << (n))
# define pb push_back
#ifdef LOCAL
#  include "_debug_print.hpp"
#  define debug(...) debug_print::multi_print(#__VA_ARGS__, __VA_ARGS__)
#else
#  define debug(...) (static_cast<void>(0))
#endif

struct INIT{
    INIT(){
        std::ios::sync_with_stdio(false);
        std::cin.tie(0);
        cout << fixed << setprecision(20);
    }
}INIT;

template<typename T>struct segment_tree {
    using F = function<T(T, T)>;

    int n;
    vector<T> node;
    F combine; // 区間の演算
    T identify; // 単位元

    //扱う配列がすでにできている場合
    segment_tree(vector<T> v, F _combine, T _identity) : combine(_combine), identify(_identity) {
        int sz = (int)v.size();
        n = 1;
        while(n < sz)n *= 2;
        node.resize(2 * n - 1, identify);

        for(int i = 0;i < sz;i++)node[i + n - 1] = v[i];
        for(int i = n - 2;i >= 0;i--)node[i] = combine(node[2 * i + 1], node[2 * i + 2]);
    }

    //空のものからやっていく場合
    segment_tree(int _n, F _combine, T _identify) : combine(_combine), identify(_identify){
        int sz = _n;
        n = 1;
        while(n < sz)n *= 2;
        node.resize(2 * n - 1, identify);
    }

    T operator[](int x) {return node[x + n - 1]; }

    void set(int x, T val){
        x += (n - 1);

        node[x] = val;
        while(x > 0){
            x = (x - 1) / 2;
            node[x] = combine(node[2 * x + 1], node[2 * x + 2]);
        }
    }

    T fold(int a, int b, int k = 0, int l = 0, int r = -1){
        //最初に呼び出された時の対象区間は [0, n)
        if(r < 0) r = n;

        //要求区間と対象区間が交わらない -> 適当に（単位元を）返す
        if(r <= a || b <= l)return identify;
        
        //要求区間が対象区間と完全被覆 -> 対象区間を答えの計算に使う
        if(a <= l && r <= b)return node[k];

        //要求区間が対象区間の一部を被覆 -> 子についての探索を行う
        T vl = fold(a, b, 2 * k + 1, l, (l + r) / 2);
        T vr = fold(a, b, 2 * k + 2, (l + r) / 2, r);
        return combine(vl, vr);
    }
};


void solve(){
    int n, q;
    cin >> n >> q;
    vector<int> I(q), S(q), T(q);
    vector<double> imos(100000 + 5);
    rep(i, q){
        cin >> I[i] >> S[i] >> T[i];
        I[i]--;
        imos[S[i]] += 1.0;
        imos[T[i]] -= 1.0;
    }
    for(int i = 1;i < 100000 + 5;i++){
        imos[i] += imos[i - 1];
    }
    for(int i = 0;i < 100000 + 5;i++){
        imos[i] = 1.0 / imos[i];
    }

    vector<double> ans(n);
    auto combine_sum = [](double a, double b) {return a + b; };
    segment_tree<double> rsq(imos, combine_sum, 0.0);
    rep(i, q){
        ans[I[i]] += rsq.fold(S[i], T[i]);
    }
    rep(i, n){
        cout << ans[i] << endl;
    }
}

int main(){
    int t = 1;
    //cin >> t;
    while(t--)solve();
}