0. 前言
1. 题解
1.1 5388. 重新格式化字符串(1417. Reformat The String)
class Solution {
public:
bool isNumber(char ch) {
return ch >= '0' && ch <= '9';
}
string reformat(string s) {
char mark = s[0];
int len = s.length(), i = 0, j = len - 1;
while (i < j) {
while (i < j && (isNumber(mark) != isNumber(s[j]))) j--;
while (i < j && (isNumber(mark) == isNumber(s[i]))) i++;
swap(s[i], s[j]);
}
if (abs(len - i - 1 - i - 1) > 1) return "";
// cout << i+1 << " " << len - i -1 << endl;
string ans = "";
if (len - i - 1 > i + 1) {
ans += s[len-1];
for (int p = 0 ; p <= i ; p++) {
ans += s[p];
ans += s[p+i+1];
}
} else if (len - i - 1 < i + 1) {
for (int p = 0 ; p < i ; p++) {
ans += s[p];
ans += s[p+i+1];
}
ans += s[i];
} else {
for (int p = 0 ; p <= i ; p++) {
ans += s[p];
ans += s[p+i+1];
}
}
return ans;
}
};
1.2 5389. 点菜展示表(1418. Display Table of Food Orders in a Restaurant)
class Solution {
public:
vector<vector<string>> displayTable(vector<vector<string>>& orders) {
sort(orders.begin(), orders.end(), [](vector<string>& a, vector<string>& b) {
return a[1] < b[1];
});
map<int, map<string, int>> tables;
map<string, bool> foods;
for (auto o : orders) {
for (int i = 2 ; i < o.size() ; i++) {
int table = atoi(o[1].c_str());
if (tables.find(table) == tables.end()) {
tables[table] = map<string, int>();
}
if (tables[table].find(o[i]) == tables[table].end()) {
tables[table][o[i]] = 0;
}
tables[table][o[i]]++;
foods[o[i]] = true;
// cout << o[i] << endl;
}
}
// cout << tables.size() << endl;
vector<vector<string>> ans = vector<vector<string>>(tables.size()+1, vector<string>());
ans[0].push_back("Table");
for (auto it : foods) {
ans[0].push_back(it.first);
}
int i = 1;
for (auto it : tables) {
ans[i++].push_back(to_string(it.first));
for (auto food : foods) {
if (it.second.find(food.first) == it.second.end()) {
it.second[food.first] = 0;
}
ans[i-1].push_back(to_string(it.second[food.first]));
}
}
return ans;
}
};
1.3 5390. 数青蛙(1419. Minimum Number of Frogs Croaking)
class Solution {
public:
int minNumberOfFrogs(string croakOfFrogs) {
unordered_map<char, int> cnt;
cnt['c'] = cnt['r'] = cnt['o'] = cnt['a'] = cnt['k'];
int len = croakOfFrogs.length(), ans = 0;
for (int i = 0 ; i < len ; i++) {
char cur = croakOfFrogs[i];
cnt[cur]++;
if (cur == 'c') {
if (cnt['k']) cnt['k']--;
else ans++;
} else if (cur == 'r') {
cnt['c']--;
} else if (cur == 'o') {
cnt['r']--;
} else if (cur == 'a') {
cnt['o']--;
} else if (cur == 'k') {
cnt['a']--;
}
if (cnt['a'] < 0 || cnt['r'] < 0 || cnt['o'] < 0 || cnt['a'] < 0) break;
}
if (cnt['a'] != 0 || cnt['r'] != 0 || cnt['o'] != 0 || cnt['a'] != 0) return -1;
return ans;
}
};
1.4 5391. 生成数组(1420. Build Array Where You Can Find The Maximum Exactly K Comparisons)
class Solution {
public:
int numOfArrays(int n, int m, int k) {
long long mod = (long long)1000000007;
vector<vector<vector<long long>>> dp = vector<vector<vector<long long>>>(n+1, vector<vector<long long>>(m+1, vector<long long>(k+2, (long long)0)));
for (int i = 1 ; i <= m ; i++) {
dp[1][i][1] = (long long)1;
}
for (int i = 1 ; i < n ; i++) {
for (int j = 1 ; j <= m ; j++) {
for (int l = 1 ; l <= k ; l++) {
for (int r = 1 ; r <= m ; r++) {
if (r > j) {
dp[i+1][r][l+1] += dp[i][j][l];
dp[i+1][r][l+1] %= mod;
} else {
dp[i+1][j][l] += dp[i][j][l];
dp[i+1][j][l] %= mod;
}
}
}
}
}
long long ans = (long long)0;
for (int i = 1 ; i <= m ; i++) {
ans += dp[n][i][k];
ans %= mod;
}
return (int)ans;
}
};
2. 小结
- 第四题最初陷入试图用组合数学的误区,耽误了好长时间,后来参考其他同学的才解决
3. 参考文献
