[LeetCode] 139. Word Break 单词拆分

时间:2022-05-13 19:47:20

Given a non-empty string s and a dictionary wordDict containing a list of non-empty words, determine if s can be segmented into a space-separated sequence of one or more dictionary words.

Note:

  • The same word in the dictionary may be reused multiple times in the segmentation.
  • You may assume the dictionary does not contain duplicate words.

Example 1:

Input: s = "leetcode", wordDict = ["leet", "code"]

Output: true

Explanation: Return true because "leetcode" can be segmented as "leet code".

Example 2:

Input: s = "applepenapple", wordDict = ["apple", "pen"]

Output: true

Explanation: Return true because "applepenapple" can be segmented as "apple pen apple".

             Note that you are allowed to reuse a dictionary word.

Example 3:

Input: s = "catsandog", wordDict = ["cats", "dog", "sand", "and", "cat"]

Output: false

给一个字符串,看是否可以由字典中的单词拆分成以空格隔开的单词序列。

用动态规划DP来解,某一个字符前面的字符串的拆分方法可能有多种,后面的拆分要看前面的拆分组合。

State: dp[i],  表示到字符i时,前面1~i的字符串能否拆分

Function: dp[i] = (dp[i - j] + str[j:i] in dict) for j in range(i), 到字符i能否拆分取决于每一个以i结尾的str[j-i]字符 是否在字典里并且j字符之前的字符串可以拆分

Initialize: dp[0] = true

Return: dp[n], 到最后一个字符n是否能拆分

在截取j 到 i 字符串,判断是否在字典中时,可以先判断字典中的字符串最大长度,超出长度就不用再循环了。

此方法可以告诉我们是否能拆分字典中的单词,但不能给出具体拆分内容。如果要知道具体拆分内容要用DFS,见140题。

Java:

public class Solution {

    public boolean wordBreak(String s, Set<String> dict) {

        boolean[] f = new boolean[s.length() + 1];

        f[0] = true;

        for(int i=1; i <= s.length(); i++){

            for(int j=0; j < i; j++){

                if(f[j] && dict.contains(s.substring(j, i))){

                    f[i] = true;

                    break;

                }

            }

        }

        return f[s.length()];

    }

}

Java:

public class Solution {

    public boolean wordBreak(String s, Set<String> dict) {

        boolean[] f = new boolean[s.length() + 1];

        f[0] = true;

        for(int i = 1; i <= s.length(); i++){

            for(String str: dict){

                if(str.length() <= i){

                    if(f[i - str.length()]){

                        if(s.substring(i-str.length(), i).equals(str)){

                            f[i] = true;

                            break;

                        }

                    }

                }

            }

        }

        return f[s.length()];

    }

}  

Java:

public boolean wordBreak(String s, Set<String> dict) {

    if(s==null || s.length()==0)

        return true;

    boolean[] res = new boolean[s.length()+1];

    res[0] = true;

    for(int i=0;i<s.length();i++)

    {

        StringBuilder str = new StringBuilder(s.substring(0,i+1));

        for(int j=0;j<=i;j++)

        {

            if(res[j] && dict.contains(str.toString()))

            {

                res[i+1] = true;

                break;

            }

            str.deleteCharAt(0);

        }

    }

    return res[s.length()];

}

Python:

class Solution(object):

    def wordBreak(self, s, wordDict):

        n = len(s)

        max_len = 0

        for string in wordDict:

            max_len = max(max_len, len(string))

        can_break = [False for _ in xrange(n + 1)]

        can_break[0] = True

        for i in xrange(1, n + 1):

            for j in xrange(1, min(i, max_len) + 1):

                if can_break[i-j] and s[i-j:i] in wordDict:

                    can_break[i] = True

                    break

        return can_break[-1]

Python: wo

class Solution(object):

    def wordBreak(self, s, wordDict):

        """

        :type s: str

        :type wordDict: List[str]

        :rtype: bool

        """

        n = len(s)

        dp = [False] * (n + 1)

        dp[0] = True

        for i in xrange(1, n + 1):

            for j in xrange(0, i):

                if dp[j] and s[j:i] in wordDict:

                    dp[i] = True

                    break

        return dp[-1]   

C++:

class Solution {

public:

    bool wordBreak(string s, unordered_set<string>& wordDict) {

        const int n = s.length();

        size_t max_len = 0;

        for (const auto& str: wordDict) {

            max_len = max(max_len, str.length());

        }

        vector<bool> canBreak(n + 1, false);

        canBreak[0] = true;

        for (int i = 1; i <= n; ++i) {

            for (int l = 1; l <= max_len && i - l >= 0; ++l) {

                if (canBreak[i - l] && wordDict.count(s.substr(i - l, l))) {

                    canBreak[i] = true;

                    break;

                }

            }

        }

        return canBreak[n];

    }

};

Followup: 返回其中的一个解,如果要返回全部解需要用140. Word Break II的方法,一个解要简单很多。F jia

Java:

class Solution {

  public String wordBreak(String s, Set<String> dict) {

      if (s == null || s.isEmpty() || dict == null) {

          return "";

      }

      boolean[] dp = new boolean[s.length() + 1];

      String[] words = new String[s.length() + 1];

      dp[0] = true;

      words[0] = "";

      for (int i = 1; i <= s.length(); i++) {

          for (int j = 0; j < i; j++) {

              if (dp[j] && dict.contains(s.substring(j, i))) {

                  dp[i] = true;

                  if (words[j].isEmpty()) {

                      words[i] = s.substring(j, i);

                  } else {

                      words[i] = words[j] + " " + s.substring(j, i);

                  }

              }

          }

      }

      if (dp[s.length()]) {

          return words[s.length()];

      } else {

          return "";

      }

  }   

  public static void main(String[] args) {

    String s = new String("catsanddog");

    String[] d = {"cat", "cats", "and", "sand", "dog"};

    Set<String> dict = new HashSet<String>();

    dict.addAll(Arrays.asList(d));

    System.out.println(s);

    System.out.println(dict);

    Solution sol = new Solution();

    System.out.println(sol.wordBreak(s, dict));

  }

}

  

类似题目:

[LeetCode] 140. Word Break II 单词拆分II

[LeetCode] 97. Interleaving String 交织相错的字符串

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