算法leetcode|30. 串联所有单词的子串(rust重拳出击)
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30. 串联所有单词的子串:
给定一个字符串 s
和一个字符串数组 words
。 words
中所有字符串 长度相同。
s
中的 串联子串 是指一个包含 words
中所有字符串以任意顺序排列连接起来的子串。
- 例如,如果
words = ["ab","cd","ef"]
, 那么"abcdef"
,"abefcd"
,"cdabef"
,"cdefab"
,"efabcd"
, 和"efcdab"
都是串联子串。"acdbef"
不是串联子串,因为他不是任何words
排列的连接。
返回所有串联字串在 s
中的开始索引。你可以以 任意顺序 返回答案。
样例 1:
输入:
s = "barfoothefoobarman", words = ["foo","bar"]
输出:
[0,9]
解释:
因为 words.length == 2 同时 words[i].length == 3,连接的子字符串的长度必须为 6。
子串 "barfoo" 开始位置是 0。它是 words 中以 ["bar","foo"] 顺序排列的连接。
子串 "foobar" 开始位置是 9。它是 words 中以 ["foo","bar"] 顺序排列的连接。
输出顺序无关紧要。返回 [9,0] 也是可以的。
样例 2:
输入:
s = "wordgoodgoodgoodbestword", words = ["word","good","best","word"]
输出:
[]
解释:
因为 words.length == 4 并且 words[i].length == 4,所以串联子串的长度必须为 16。
s 中没有子串长度为 16 并且等于 words 的任何顺序排列的连接。
所以我们返回一个空数组。
样例 3:
输入:
s = "barfoofoobarthefoobarman", words = ["bar","foo","the"]
输出:
[6,9,12]
解释:
因为 words.length == 3 并且 words[i].length == 3,所以串联子串的长度必须为 9。
子串 "foobarthe" 开始位置是 6。它是 words 中以 ["foo","bar","the"] 顺序排列的连接。
子串 "barthefoo" 开始位置是 9。它是 words 中以 ["bar","the","foo"] 顺序排列的连接。
子串 "thefoobar" 开始位置是 12。它是 words 中以 ["the","foo","bar"] 顺序排列的连接。
提示:
- 1 <= s.length <= 104
- 1 <= words.length <= 5000
- 1 <= words[i].length <= 30
- words[i] 和 s 由小写英文字母组成
分析:
- 面对这道算法题目,二当家的陷入了沉思。
- 由于题干里罗列了所有单词可能的串联出的子串,所以可能理所当然的考虑罗列所有子串,然后再去字符串中查看是否存在,但是这样太慢了,肯定是不对的。
- 由于题干中说所有字符串 长度相同,考虑用单词计数,滑动窗口解决。
- 需要注意的一些点是,首先窗口滑动的大小应该是单词的长度才对,另外,由于窗口的大小是单词的长度,那么起始下标就需要考虑偏移。
题解:
rust
impl Solution
pub fn find_substring(s: String, words: Vec<String>) -> Vec<i32>
let mut ans = Vec::new();
let (m, n, ls) = (words.len(), words[0].len(), s.len());
for i in 0..n
if i + m * n > ls
break;
let mut differ = std::collections::HashMap::new();
for j in 0..m
let word = &s[i + j * n..i + (j + 1) * n];
*differ.entry(word).or_insert(0) += 1;
for word in words.iter()
let count = differ.entry(word).or_insert(0);
if *count == 1
differ.remove(word as &str);
else
*count -= 1;
for start in (i..ls - m * n + 1).step_by(n)
if start != i
let mut word = &s[start + (m - 1) * n..start + m * n];
let mut count = differ.entry(word).or_insert(0);
if *count == -1
differ.remove(word);
else
*count += 1;
word = &s[start - n..start];
count = differ.entry(word).or_insert(0);
if *count == 1
differ.remove(word);
else
*count -= 1;
if differ.is_empty()
ans.push(start as i32);
return ans;
go
func findSubstring(s string, words []string) (ans []int)
m, n, ls := len(words), len(words[0]), len(s)
for i := 0; i < n && i+m*n <= ls; i++
differ := map[string]int
for j := 0; j < m; j++
differ[s[i+j*n:i+(j+1)*n]]++
for _, word := range words
if differ[word] == 1
delete(differ, word)
else
differ[word]--
for start := i; start < ls-m*n+1; start += n
if start != i
word := s[start+(m-1)*n : start+m*n]
if differ[word] == -1
delete(differ, word)
else
differ[word]++
word = s[start-n : start]
if differ[word] == 1
delete(differ, word)
else
differ[word]--
if len(differ) == 0
ans = append(ans, start)
return
c++
class Solution
public:
vector<int> findSubstring(string s, vector<string>& words)
vector<int> ans;
int m = words.size(), n = words[0].size(), ls = s.size();
for (int i = 0; i < n && i + m * n <= ls; ++i)
unordered_map<string, int> differ;
for (int j = 0; j < m; ++j)
++differ[s.substr(i + j * n, n)];
for (string &word: words)
if (--differ[word] == 0)
differ.erase(word);
for (int start = i; start < ls - m * n + 1; start += n)
if (start != i)
string word = s.substr(start + (m - 1) * n, n);
if (++differ[word] == 0)
differ.erase(word);
word = s.substr(start - n, n);
if (--differ[word] == 0)
differ.erase(word);
if (differ.empty())
ans.emplace_back(start);
return ans;
;
python
class Solution:
def findSubstring(self, s: str, words: List[str]) -> List[int]:
ans = []
m, n, ls = len(words), len(words[0]), len(s)
for i in range(n):
if i + m * n > ls:
break
differ = Counter()
for j in range(m):
word = s[i + j * n: i + (j + 1) * n]
differ[word] += 1
for word in words:
if differ[word] == 1:
del differ[word]
else:
differ[word] -= 1
for start in range(i, ls - m * n + 1, n):
if start != i:
word = s[start + (m - 1) * n: start + m * n]
if differ[word] == -1:
del differ[word]
else:
differ[word] += 1
word = s[start - n: start]
if differ[word] == 1:
del differ[word]
else:
differ[word] -= 1
if len(differ) == 0:
ans.append(start)
return ans
java
class Solution
public List<Integer> findSubstring(String s, String[] words)
List<Integer> ans = new ArrayList<Integer>();
int m = words.length, n = words[0].length(), ls = s.length();
for (int i = 0; i < n && i + m * n <= ls; ++i)
Map<String, Integer> differ = new HashMap<String, Integer>();
for (int j = 0; j < m; ++j)
String word = s.substring(i + j * n, i + (j + 1) * n);
differ.put(word, differ.getOrDefault(word, 0) + 1);
for (String word : words)
differ.put(word, differ.getOrDefault(word, 0) - 1);
if (differ.get(word) == 0)
differ.remove(word);
for (int start = i; start < ls - m * n + 1; start += n)
if (start != i)
String word = s.substring(start + (m - 1) * n, start + m * n);
differ.put(word, differ.getOrDefault(word, 0) + 1);
if (differ.get(word) == 0)
differ.remove(word);
word = s.substring(start - n, start);
differ.put(word, differ.getOrDefault(word, 0) - 1);
if (differ.get(word) == 0)
differ.remove(word);
if (differ.isEmpty())
ans.add(start);
return ans;
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