标签:red getting open minimum str ssi ast nat amp
You have a lock in front of you with 4 circular wheels. Each wheel has 10 slots: ‘0‘, ‘1‘, ‘2‘, ‘3‘, ‘4‘, ‘5‘, ‘6‘, ‘7‘, ‘8‘, ‘9‘
. The wheels can rotate freely and wrap around: for example we can turn ‘9‘
to be ‘0‘
, or ‘0‘
to be ‘9‘
. Each move consists of turning one wheel one slot.
The lock initially starts at ‘0000‘
, a string representing the state of the 4 wheels.
You are given a list of deadends
dead ends, meaning if the lock displays any of these codes, the wheels of the lock will stop turning and you will be unable to open it.
Given a target
representing the value of the wheels that will unlock the lock, return the minimum total number of turns required to open the lock, or -1 if it is impossible.
Example 1:
Input: deadends = ["0201","0101","0102","1212","2002"], target = "0202" Output: 6 Explanation: A sequence of valid moves would be "0000" -> "1000" -> "1100" -> "1200" -> "1201" -> "1202" -> "0202". Note that a sequence like "0000" -> "0001" -> "0002" -> "0102" -> "0202" would be invalid, because the wheels of the lock become stuck after the display becomes the dead end "0102".
Example 2:
Input: deadends = ["8888"], target = "0009" Output: 1 Explanation: We can turn the last wheel in reverse to move from "0000" -> "0009".
Example 3:
Input: deadends = ["8887","8889","8878","8898","8788","8988","7888","9888"], target = "8888" Output: -1 Explanation: We can‘t reach the target without getting stuck.
Example 4:
Input: deadends = ["0000"], target = "8888" Output: -1
Note:
deadends
will be in the range [1, 500]
.target
will not be in the list deadends
.deadends
and the string target
will be a string of 4 digits from the 10,000 possibilities ‘0000‘
to ‘9999‘
.关键词"...return the minimum total number of turns...", 需要用BFS,用两个queue,queue1当前层,queue2下一层。为避免重复,需要用哈希表存visited。
1 class Solution { 2 public: 3 int openLock(vector<string>& deadends, string target) { 4 unordered_set<string>deads(deadends.begin(),deadends.end()); 5 if(deads.find("0000")!=deads.end()){ 6 return -1; 7 } 8 int length = 0; 9 queue<string> queue1; 10 queue<string> queue2; 11 unordered_set<string> visited; 12 queue1.push("0000"); 13 visited.insert("0000"); 14 while(!queue1.empty()){ 15 string curr = queue1.front(); 16 queue1.pop(); 17 if(curr==target){ 18 return length; 19 } 20 for(int i=0;i<4;i++){ 21 char old = curr[i]; 22 //next code by changing on ith digit 23 curr[i] = (old-‘0‘+1)%10+‘0‘; 24 if(visited.find(curr)==visited.end()&&deads.find(curr)==deads.end()){ // new code 25 queue2.push(curr); 26 visited.insert(curr); 27 } 28 29 //previous code by changing on ith digit 30 curr[i] = (old-‘0‘+9)%10+‘0‘; 31 if(visited.find(curr)==visited.end()&&deads.find(curr)==deads.end()){ // new code 32 queue2.push(curr); 33 visited.insert(curr); 34 } 35 36 //restore current code 37 curr[i]=old; 38 } 39 40 if(queue1.empty()){ 41 queue1=queue2; 42 queue<string> tmp; 43 queue2=tmp; 44 length++; 45 } 46 } 47 48 return -1; 49 } 50 };
标签:red getting open minimum str ssi ast nat amp
原文地址:https://www.cnblogs.com/ruisha/p/9222513.html