| comments | difficulty | edit_url | tags | |||
|---|---|---|---|---|---|---|
true |
中等 |
|
给定一个字符串,对该字符串可以进行 “移位” 的操作,也就是将字符串中每个字母都变为其在字母表中后续的字母,比如:"abc" -> "bcd"。这样,我们可以持续进行 “移位” 操作,从而生成如下移位序列:
"abc" -> "bcd" -> ... -> "xyz"
给定一个包含仅小写字母字符串的列表,将该列表中所有满足 “移位” 操作规律的组合进行分组并返回。
示例:
输入:["abc", "bcd", "acef", "xyz", "az", "ba", "a", "z"]
输出:
[
["abc","bcd","xyz"],
["az","ba"],
["acef"],
["a","z"]
]
解释:可以认为字母表首尾相接,所以 'z' 的后续为 'a',所以 ["az","ba"] 也满足 “移位” 操作规律。
我们用一个哈希表 a' 的字符串。即
我们遍历每个字符串,对于每个字符串,我们计算其移位后的字符串
最后,我们将
时间复杂度
class Solution:
def groupStrings(self, strings: List[str]) -> List[List[str]]:
g = defaultdict(list)
for s in strings:
diff = ord(s[0]) - ord("a")
t = []
for c in s:
c = ord(c) - diff
if c < ord("a"):
c += 26
t.append(chr(c))
g["".join(t)].append(s)
return list(g.values())class Solution {
public List<List<String>> groupStrings(String[] strings) {
Map<String, List<String>> g = new HashMap<>();
for (var s : strings) {
char[] t = s.toCharArray();
int diff = t[0] - 'a';
for (int i = 0; i < t.length; ++i) {
t[i] = (char) (t[i] - diff);
if (t[i] < 'a') {
t[i] += 26;
}
}
g.computeIfAbsent(new String(t), k -> new ArrayList<>()).add(s);
}
return new ArrayList<>(g.values());
}
}class Solution {
public:
vector<vector<string>> groupStrings(vector<string>& strings) {
unordered_map<string, vector<string>> g;
for (auto& s : strings) {
string t;
int diff = s[0] - 'a';
for (int i = 0; i < s.size(); ++i) {
char c = s[i] - diff;
if (c < 'a') {
c += 26;
}
t.push_back(c);
}
g[t].emplace_back(s);
}
vector<vector<string>> ans;
for (auto& p : g) {
ans.emplace_back(move(p.second));
}
return ans;
}
};func groupStrings(strings []string) [][]string {
g := make(map[string][]string)
for _, s := range strings {
t := []byte(s)
diff := t[0] - 'a'
for i := range t {
t[i] -= diff
if t[i] < 'a' {
t[i] += 26
}
}
g[string(t)] = append(g[string(t)], s)
}
ans := make([][]string, 0, len(g))
for _, v := range g {
ans = append(ans, v)
}
return ans
}