Word Ladder II [leetcode]
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本题有几个注意点:
1. 回溯找路径时。依据路径的最大长度控制回溯深度
2. BFS时,在找到end单词后,给当前层做标记find=true,遍历完当前层后结束。不须要遍历下一层了。
3. 能够将字典中的单词删除。替代visited的set,这样优化以后时间从1700ms+降到800ms+
代码例如以下:
class Solution {
public:
vector<vector<string>> findLadders(string start, string end, unordered_set<string> &dict) {
set<string> queue[2];
queue[0].insert(start);
vector<vector<string>> res;
bool find = false;
int length = 1;
bool cur = false;
map<string, set<string>> mapping;
//bfs
while (queue[cur].size() && !find)
{
length++;
for (set<string>::iterator i = queue[cur].begin(); i != queue[cur].end(); i++)//delete from dictionary
dict.erase(*i);
for (set<string>::iterator i = queue[cur].begin(); i != queue[cur].end(); i++)
{
for (int l = 0; l < (*i).size(); l++)
{
string word = *i;
for (char c = ‘a‘; c <= ‘z‘; c++)
{
word[l] = c;
if (dict.find(word) != dict.end())
{
if (mapping.find(word) == mapping.end()) mapping[word] = set<string>();
mapping[word].insert(*i);
if (word == end) find = true;
else queue[!cur].insert(word);
}
}
}
}
queue[cur].clear();
cur = !cur;
}
if (find)
{
vector<string> temp;
temp.push_back(end);
getRes(mapping, res, temp, start, length);
}
return res;
}
void getRes(map<string, set<string>> & mapping, vector<vector<string>> & res, vector<string> temp, string start, int length)
{
if (temp[0] == start)
{
res.push_back(temp);
return;
}
if (length == 1) return;//recursion depth
string word = temp[0];
temp.insert(temp.begin(), "");
for (set<string>::iterator j = mapping[word].begin(); j != mapping[word].end(); j++)
{
temp[0] = *j;
getRes(mapping, res, temp, start, length - 1);
}
}
};
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