• 30. Substring with Concatenation of All Words


    package LeetCode_30
    
    /**
     * 30. Substring with Concatenation of All Words
     * https://leetcode.com/problems/substring-with-concatenation-of-all-words/
     *
     * You are given a string s and an array of strings words of the same length.
     * Return all starting indices of substring(s) in s that is a concatenation of each word in words exactly once,
     * in any order, and without any intervening characters. You can return the answer in any order.
    
    Example 1:
    Input: s = "barfoothefoobarman", words = ["foo","bar"]
    Output: [0,9]
    Explanation: Substrings starting at index 0 and 9 are "barfoo" and "foobar" respectively.
    The output order does not matter, returning [9,0] is fine too.
    
    Example 2:
    Input: s = "wordgoodgoodgoodbestword", words = ["word","good","best","word"]
    Output: []
    
    Example 3:
    Input: s = "barfoofoobarthefoobarman", words = ["bar","foo","the"]
    Output: [6,9,12]
    
    Constraints:
    1. 1 <= s.length <= 104
    2. s consists of lower-case English letters.
    3. 1 <= words.length <= 5000
    4. 1 <= words[i].length <= 30
    5. words[i] consists of lower-case English letters.
     * */
    class Solution {
        /*
        * solution: HashMap, Time complexity:O(n*l), Space complexity:O(n), l is length of s, n is count of word
        * */
        fun findSubstring(s: String, words: Array<String>): List<Int> {
            if (s == null || s.isEmpty() || words == null || words.isEmpty()) {
                return ArrayList()
            }
            val frequencyMap = HashMap<String, Int>()
            for (word in words) {
                frequencyMap.put(word, frequencyMap.getOrDefault(word, 0) + 1)
            }
            val result = ArrayList<Int>()
            val wordLength = words[0].length
            val totalWordCount = words.size
            var i = 0
            //while (i <= s.length - wordLength * totalWordCount) {
            while (i < s.length) {
                val seedWord = HashMap<String, Int>()
                for (j in 0 until totalWordCount) {
                    //check each word one by one
                    val startIndex = i + j * wordLength
                    var endIndex = startIndex + wordLength
                    if (endIndex > s.lastIndex) {
                        endIndex = s.lastIndex+1
                    }
                    val curWord = s.substring(startIndex, endIndex)
                    if (!frequencyMap.contains(curWord)) {
                        break
                    }
                    seedWord.put(curWord, seedWord.getOrDefault(curWord, 0) + 1)
                    println(seedWord)
                    if (seedWord.get(curWord) ?: 0 > frequencyMap.getOrDefault(curWord, 0)) {
                        //handle case: capcapmap,cap's frequency in frequencyMap is 1, so just need the second 'cap'
                        break
                    }
                    //if j can go through the length of word
                    if (j + 1 == totalWordCount) {
                        result.add(i)
                    }
                }
                i++
            }
            return result
        }
    }
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  • 原文地址:https://www.cnblogs.com/johnnyzhao/p/13878793.html
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