题目
Given a string s and a dictionary of words dict, add spaces in s to construct a sentence where each word is a valid dictionary word.
Return all such possible sentences.
For example, given
s = "catsanddog",
dict = ["cat", "cats", "and", "sand", "dog"].
A solution is ["cats and dog", "cat sand dog"].
直接的思路就是用动态规划,实现中要注意:
1. 需要加上备忘录,避免超时;
2. 需要判断句子是否能正确分割,下述代码中,利用null来标识不能分割的子句;
3. 下述代码中,没有在意空间,备忘录中直接纪录了各个子句的字符串分割结果;如果空间上有所限制的话,可以在备忘录中纪录分割点的索引,最后再生成结果;
4. 进一步提升性能的话,可以左右同时开工,建立二维的备忘录。
代码
import java.util.ArrayList;
import java.util.HashMap;
import java.util.Map;
import java.util.Set;
public class WordBreakII {
private Map<Integer, ArrayList<String>> records = new HashMap<Integer, ArrayList<String>>();
private Set<String> dict = null;
private String s = null;
private int N = 0;
public ArrayList<String> wordBreak(String s, Set<String> dict) {
// Note: The Solution object is instantiated only once and is reused by
// each test case.
if (s == null || s.length() <= 0 || dict == null || dict.size() <= 0) {
return new ArrayList<String>();
}
records.clear();
this.dict = dict;
this.s = s;
N = s.length();
ArrayList<String> list = solve(0);
if (list == null) {
list = new ArrayList<String>();
}
return list;
}
private ArrayList<String> solve(int i) {
if (records.containsKey(i)) {
return records.get(i);
}
ArrayList<String> list = new ArrayList<String>();
if (i >= N) {
records.put(i, list);
return list;
}
for (int j = i + 1; j <= N; ++j) {
String word = s.substring(i, j);
if (dict.contains(word)) {
ArrayList<String> subList = solve(j);
ArrayList<String> newList = new ArrayList<String>();
if (subList == null) {
continue;
} else if (subList.size() == 0) {
newList.add(word);
} else {
for (String result : subList) {
newList.add(word + " " + result);
}
}
list.addAll(newList);
}
}
if (list.size() == 0) {
list = null;
}
records.put(i, list);
return list;
}
}原文:http://blog.csdn.net/perfect8886/article/details/19136753