1399.count-largest-group

Statement

简体中文English

Metadata

• Link: 统计最大组的数目
• Difficulty: Easy
• Tag: 哈希表 数学

给你一个整数 n 。请你先求出从 1 到 n 的每个整数 10 进制表示下的数位和（每一位上的数字相加），然后把数位和相等的数字放到同一个组中。

请你统计每个组中的数字数目，并返回数字数目并列最多的组有多少个。

 

示例 1：

输入：n = 13
输出：4
解释：总共有 9 个组，将 1 到 13 按数位求和后这些组分别是：
[1,10]，[2,11]，[3,12]，[4,13]，[5]，[6]，[7]，[8]，[9]。总共有 4 个组拥有的数字并列最多。

示例 2：

输入：n = 2
输出：2
解释：总共有 2 个大小为 1 的组 [1]，[2]。

示例 3：

输入：n = 15
输出：6

示例 4：

输入：n = 24
输出：5

 

提示：

• 1 <= n <= 10^4

Metadata

• Link: Count Largest Group
• Difficulty: Easy
• Tag: Hash Table Math

You are given an integer n.

Each number from 1 to n is grouped according to the sum of its digits.

Return the number of groups that have the largest size.

 

Example 1:

Input: n = 13
Output: 4
Explanation: There are 9 groups in total, they are grouped according sum of its digits of numbers from 1 to 13:
[1,10], [2,11], [3,12], [4,13], [5], [6], [7], [8], [9].
There are 4 groups with largest size.

Example 2:

Input: n = 2
Output: 2
Explanation: There are 2 groups [1], [2] of size 1.

 

Constraints:

• 1 <= n <= 104

Solution

C++

#include <bits/stdc++.h>
using namespace std;
#define fi first
#define se second
#define SZ(x) int((x).size())
#define endl "\n"
using db = double;
using ll = long long;
using ull = unsigned long long;
using pII = pair<int, int>;
using pLL = pair<ll, ll>;
constexpr int mod = 1e9 + 7;
template <class T1, class T2>
inline void chadd(T1 &x, T2 y, int Mod = mod) {
    x += y;
    while (x >= Mod) x -= Mod;
    while (x < 0) x += Mod;
}
template <class T1, class T2>
inline void chmax(T1 &x, T2 y) {
    if (x < y)
        x = y;
}
template <class T1, class T2>
inline void chmin(T1 &x, T2 y) {
    if (x > y)
        x = y;
}
inline int nextInt() {
    int x;
    cin >> x;
    return x;
}
void rd() {}
template <class T, class... Ts>
void rd(T &arg, Ts &...args) {
    cin >> arg;
    rd(args...);
}
#define dbg(x...)                             \
    do {                                      \
        cout << "\033[32;1m" << #x << " -> "; \
        err(x);                               \
    } while (0)
void err() {
    cout << "\033[39;0m" << endl;
}
template <class T, class... Ts>
void err(const T &arg, const Ts &...args) {
    cout << arg << ' ';
    err(args...);
}
template <template <typename...> class T, typename t, typename... A>
void err(const T<t> &arg, const A &...args) {
    for (auto &v : arg) cout << v << ' ';
    err(args...);
}
void ptt() {
    cout << endl;
}
template <class T, class... Ts>
void ptt(const T &arg, const Ts &...args) {
    cout << ' ' << arg;
    ptt(args...);
}
template <class T, class... Ts>
void pt(const T &arg, const Ts &...args) {
    cout << arg;
    ptt(args...);
}
void pt() {}
template <template <typename...> class T, typename t, typename... A>
void pt(const T<t> &arg, const A &...args) {
    for (int i = 0, sze = arg.size(); i < sze; ++i) cout << arg[i] << " \n"[i == sze - 1];
    pt(args...);
}
inline ll qpow(ll base, ll n) {
    assert(n >= 0);
    ll res = 1;
    while (n) {
        if (n & 1)
            res = res * base % mod;
        base = base * base % mod;
        n >>= 1;
    }
    return res;
}
// head
int n;

int calc(int x) {
    int res = 0;
    while (x) {
        res += x % 10;
        x /= 10;
    }
    return res;
}

class Solution {
public:
    int countLargestGroup(int _n) {
        n = _n;
        map<int, vector<int>> mp;
        int Max = 0;
        for (int i = 1; i <= n; ++i) {
            int t = calc(i);
            mp[t].push_back(i);
            chmax(Max, SZ(mp[t]));
        }
        int res = 0;
        for (auto &it : mp)
            if (SZ(it.se) == Max)
                ++res;
        return res;
    }
};

#ifdef LOCAL

int main() {
    return 0;
}

#endif

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最后更新: October 11, 2023