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There are N gas stations along a circular route, where the amount of gas at station i is gas[i].
You have a car with an unlimited gas tank and it costs cost[i] of gas to travel from station i to its next station (i+1). You begin the journey with an empty tank at one of the gas stations.
Return the starting gas station‘s index if you can travel around the circuit once, otherwise return -1.
Note:
The solution is guaranteed to be unique.
思路:
1. 循环遍历每个起点,计算是否满足要求。时间复杂度为O(n^2);
2. 假设从i->j-1,剩余的汽油量都够行驶,而从j-1行驶到j时,汽油不够了,即从i开始无法行驶到j。
此时,按照第1种思路,是从i+1作为新的起点开始遍历。
但是在第i个加油站一定有gas[i] >= cost[i],则从i+1到j同样不能完成;
并且gas[i]+gas[i+1]-cost[i]-cost[i+1] >= 0,则从i+2到j也不能完成;
以此类推,i到j之间的所有点都不能完成要求,则直接从j+1作为新的节点开始遍历。
当i到n满足条件时,需要判断i到j的剩余油量是否够0到i-1的路程使用。
代码如下:
public int canCompleteCircuit(int[] gas, int[] cost) { int left = 0;//汽油剩余量 int pass = 0;//从0->i-1的汽油不足量 int start = 0; for(int i=0; i<gas.length; i++) { left = gas[i] - cost[i] + left; if(left < 0) { pass = left + pass; start = i + 1; left = 0; } } if(pass + left >= 0) return start; else return -1; }
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原文地址:http://www.cnblogs.com/linxiong/p/4298408.html
