题目描述
给定一个段落 (paragraph) 和一个禁用单词列表 (banned)。返回出现次数最多,同时不在禁用列表中的单词。题目保证至少有一个词不在禁用列表中,而且答案唯一。
禁用列表中的单词用小写字母表示,不含标点符号。段落中的单词不区分大小写。答案都是小写字母。
示例:
输入:
paragraph = “Bob hit a ball, the hit BALL flew far after it was hit.”
banned = [“hit”]
输出: “ball”
解释:
“hit” 出现了3次,但它是一个禁用的单词。
“ball” 出现了2次 (同时没有其他单词出现2次),所以它是段落里出现次数最多的,且不在禁用列表中的单词。
注意,所有这些单词在段落里不区分大小写,标点符号需要忽略(即使是紧挨着单词也忽略, 比如 “ball,”),
"hit"不是最终的答案,虽然它出现次数更多,但它在禁用单词列表中。
说明:
1 <= 段落长度 <= 1000.
1 <= 禁用单词个数 <= 100.
1 <= 禁用单词长度 <= 10.
答案是唯一的, 且都是小写字母 (即使在 paragraph 里是大写的,即使是一些特定的名词,答案都是小写的。)
paragraph 只包含字母、空格和下列标点符号!?’,;.
不存在没有连字符或者带有连字符的单词。
单词里只包含字母,不会出现省略号或者其他标点符号。
首先我们要把所有的标点符号都去掉,我就是卡在这个地方了,看看别人写的代码吧,效率不高
class Solution {
public String mostCommonWord(String p, String[] banned) {
Set<String> ban = new HashSet<>(Arrays.asList(banned));
Map<String, Integer> count = new HashMap<>();
String[] words = p.replaceAll("\\pP" , " ").toLowerCase().split("\\s+");
for (String w : words) if (!ban.contains(w)) count.put(w, count.getOrDefault(w, 0) + 1);
return Collections.max(count.entrySet(), Map.Entry.comparingByValue()).getKey();
}
}
排名靠前的代码
class Solution {
public String mostCommonWord(String paragraph, String[] banned) {
Set<String> ban = new HashSet<String>();
for (String b : banned) {
ban.add(b);
}
String res = "";
int max = 0;
Map<String, Integer> dict = new HashMap<String, Integer>();
char[] words = paragraph.toCharArray();
int cur = 0;
while (cur < words.length) {
StringBuilder sb = new StringBuilder();
while (words[cur] >= 'a' && words[cur] <= 'z' ||
words[cur] >= 'A' && words[cur] <= 'Z') {
if (words[cur] >= 'A' && words[cur] <= 'Z') {
sb.append(Character.toLowerCase(words[cur++]));
} else {
sb.append(words[cur++]);
}
if (cur == words.length) {
break;
}
}
String word = sb.toString();
if (word.length() == 0) {
cur++;
continue;
}
if (!ban.contains(word)) {
int time = dict.getOrDefault(word, 0) + 1;
dict.put(word, time);
if (max < time) {
res = word;
max = time;
}
}
cur++;
}
return res;
}
}
自己实现了一遍排名靠前的代码
思路很简单,遇见了字符才算是单词,否则不算
代码如下,不得不说自己还是有点依赖API
class Solution {
public String mostCommonWord(String paragraph, String[] banned) {
Set<String> banSet = new HashSet<>();
String result = null;
for (String string : banned) {
banSet.add(string);
}
char [] tem = paragraph.toLowerCase().toCharArray();
int i = 0;
// int cur = 0;
Map<String, Integer> map = new HashMap<>();
int max = 0;
while (i < tem.length) {
StringBuilder sb = new StringBuilder();
while (tem[i] <='z' && tem[i] >= 'a'){
sb.append(tem[i]);
i ++;
if(i == tem.length ){
break;
}
}
String word = sb.toString();
if(word.length() != 0 ){
if(!banSet.contains(word)){
int j = map.getOrDefault(word, 0) + 1;
map.put(word, j);
if(max < j){
max = j;
result = word;
}
}
}
i ++;
}
return result;
}
}