Find Min In Rotated Sorted Array2,包含重复数字的反转序列找最小值。

时间:2023-03-08 23:43:54
Find Min In Rotated Sorted Array2,包含重复数字的反转序列找最小值。 
 public int findMin(int[] nums)

     {

         return findMin(nums, 0, nums.length - 1);

     }

     public int findMin(int[] nums, int left, int right)

     {

         int mid = (left + right)/2;

         if(left == right)

         {

             return nums[left];

         }

         if(nums[left] < nums[right])

         {

             return nums[left];

         }

         if((left - right) == 1)//这一步必须要有,因为会涉及到left+1,right-1,例如序列为11.

         {

             return Math.min(nums[left], nums[right]);

         }

         if(nums[left] == nums[mid] && nums[mid] == nums[right])

         {

             return findMin(nums, left + 1, right - 1);

         }

         else if(nums[left] <= nums[mid])

         {

             return findMin(nums, mid+1, right);

         }

         else

         {

             return findMin(nums, left, mid);

         }

     }

     //迭代方法

     public int findMin2(int[] nums, int left, int right)

     {

         while(left <= right)

         {

             int mid = (left + right)/2;

             if(left == right)

             {

                 return nums[left];

             }

             if(nums[left] < nums[right])

             {

                 return nums[left];

             }

             if(nums[right] == nums[mid] && nums[mid] == nums[right])

             {

                 left ++;

                 right --;

             }

             else if(nums[left] <= nums[mid])

             {

                 left = mid + 1;

             }

             else

             {

                 right = mid;

             }

         }

         return nums[left];

     }