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[LeetCode] 290. Word Pattern 单词模式

时间:2018-10-02 14:05:32      阅读:219      评论:0      收藏:0      [点我收藏+]

标签:saving   tle   boolean   ++   not   als   ring   ace   linked   

Given a pattern and a string str, find if str follows the same pattern.

Here follow means a full match, such that there is a bijection between a letter in pattern and a non-empty word in str.

Example 1:

Input: pattern = "abba", str = "dog cat cat dog"
Output: true

Example 2:

Input:pattern = "abba", str = "dog cat cat fish"
Output: false

Example 3:

Input: pattern = "aaaa", str = "dog cat cat dog"
Output: false

Example 4:

Input: pattern = "abba", str = "dog dog dog dog"
Output: false

Notes:
You may assume pattern contains only lowercase letters, and str contains lowercase letters separated by a single space.

给一个模式字符串,又给了一个单词字符串,判断单词字符串中单词出现的规律是否符合模式字符串中的规律。

解法1:哈希表。

解法2: 这个问题相当于同构字符串 205. Isomorphic Strings.

Java:

public boolean wordPattern(String pattern, String str) {
    String[] words = str.split(" ");
    if (words.length != pattern.length())
        return false;
    Map index = new HashMap();
    for (Integer i=0; i<words.length; ++i)
        if (index.put(pattern.charAt(i), i) != index.put(words[i], i))
            return false;
    return true;
}  

Java:

public class Solution {
    public boolean wordPattern(String pattern, String str) {
        String[] words = str.split(" ");
        if (words.length != pattern.length()) return false;
        Map<Character, String> ps = new HashMap<>();
        Map<String, Character> sp = new HashMap<>();
        for (int i = 0; i < pattern.length(); i++) {
            char c = pattern.charAt(i);
            String word = words[i];
            if (!ps.containsKey(c)) ps.put(c, word);
            else if (!ps.get(c).equals(word)) return false;
 
            if (!sp.containsKey(word)) sp.put(word, c);
            else if (sp.get(word) != c) return false;
        }
        return true;
    }
}  

Java:

public boolean wordPattern(String pattern, String str) {
        String [] strArr = str.split(" ");
        LinkedHashMap<String, ArrayList<Integer>> map = new LinkedHashMap<String, ArrayList<Integer>>();
        LinkedHashMap<String, ArrayList<Integer>> map2 = new LinkedHashMap<String, ArrayList<Integer>>();
        for(int i=0; i<pattern.length(); i++){
            map.putIfAbsent(pattern.charAt(i)+"", new ArrayList<Integer>());
            map.get(pattern.charAt(i)+"").add(i);
        }
        for(int i=0; i<strArr.length; i++){
            map2.putIfAbsent(strArr[i], new ArrayList<Integer>());
            map2.get(strArr[i]).add(i);
        }
        return new ArrayList(map.values()).equals(new ArrayList(map2.values()));
    }  

Java:

public class Solution {
    public boolean wordPattern(String pattern, String str) {
        String[] arr= str.split(" ");
        HashMap<Character, String> map = new HashMap<Character, String>();
        if(arr.length!= pattern.length())
            return false;
        for(int i=0; i<arr.length; i++){
            char c = pattern.charAt(i);
            if(map.containsKey(c)){
                if(!map.get(c).equals(arr[i]))
                    return false;
            }else{
                if(map.containsValue(arr[i]))
                    return false;
                map.put(c, arr[i]);
            }    
        }
        return true;
    }
}  

Python:

# Time:  O(n)
# Space: O(n)
class Solution2(object):
    def wordPattern(self, pattern, str):
        """
        :type pattern: str
        :type str: str
        :rtype: bool
        """
        words = str.split()  # Space: O(n)
        if len(pattern) != len(words):
            return False

        w2p, p2w = {}, {}
        for p, w in izip(pattern, words):
            if w not in w2p and p not in p2w:
                # Build mapping. Space: O(c)
                w2p[w] = p
                p2w[p] = w
            elif w not in w2p or w2p[w] != p:
                # Contradict mapping.
                return False
        return True

Python:

from itertools import izip  # Generator version of zip.

class Solution(object):
    def wordPattern(self, pattern, str):
        """
        :type pattern: str
        :type str: str
        :rtype: bool
        """
        if len(pattern) != self.wordCount(str):
            return False

        w2p, p2w = {}, {}
        for p, w in izip(pattern, self.wordGenerator(str)):
            if w not in w2p and p not in p2w:
                # Build mapping. Space: O(c)
                w2p[w] = p
                p2w[p] = w
            elif w not in w2p or w2p[w] != p:
                # Contradict mapping.
                return False
        return True

    def wordCount(self, str):
        cnt = 1 if str else 0
        for c in str:
            if c == ‘ ‘:
                cnt += 1
        return cnt

    # Generate a word at a time without saving all the words.
    def wordGenerator(self, str):
        w = ""
        for c in str:
            if c == ‘ ‘:
                yield w
                w = ""
            else:
                w += c
        yield w

Python:

def wordPattern1(self, pattern, str):
    s = pattern
    t = str.split()
    return map(s.find, s) == map(t.index, t)

def wordPattern2(self, pattern, str):
    f = lambda s: map({}.setdefault, s, range(len(s)))
    return f(pattern) == f(str.split())

def wordPattern3(self, pattern, str):
    s = pattern
    t = str.split()
    return len(set(zip(s, t))) == len(set(s)) == len(set(t)) and len(s) == len(t)  

Python:

class Solution(object):
    def wordPattern(self, pattern, str):
        """
        :type pattern: str
        :type str: str
        :rtype: bool
        """
        x = str.split(‘ ‘)
        lsp = len(set(pattern))
        lsx = len(set(x))
        return len(x)==len(pattern) and lsx==lsp and lsp== len(set(zip(pattern, x)))  

C++:  

bool wordPattern(string pattern, string str) {
    map<char, int> p2i;
    map<string, int> w2i;
    istringstream in(str);
    int i = 0, n = pattern.size();
    for (string word; in >> word; ++i) {
        if (i == n || p2i[pattern[i]] != w2i[word])
            return false;
        p2i[pattern[i]] = w2i[word] = i + 1;
    }
    return i == n;
}

C++:

class Solution {
public:
    bool wordPattern(string pattern, string str) {
        unordered_map<char, int> m1;
        unordered_map<string, int> m2;
        istringstream in(str);
        int i = 0;
        for (string word; in >> word; ++i) {
            if (m1.find(pattern[i]) != m1.end() || m2.find(word) != m2.end()) {
                if (m1[pattern[i]] != m2[word]) return false;
            } else {
                m1[pattern[i]] = m2[word] = i + 1;
            }
        }
        return i == pattern.size();
    }
};

  

  

类似题目:  

[LeetCode] 205. Isomorphic Strings 同构字符串

[LeetCode] 291. Word Pattern II 词语模式 II

 

 

 

 

 

 

 

 

 

[LeetCode] 290. Word Pattern 单词模式

标签:saving   tle   boolean   ++   not   als   ring   ace   linked   

原文地址:https://www.cnblogs.com/lightwindy/p/9736249.html

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