Given a sorted (in ascending order) integer array nums of n elements and a target value, write a function to search target in nums. If target exists, then return its index, otherwise return -1.

Example 1:

Input: nums = [-1,0,3,5,9,12], target = 9

Output: 4

Explanation: 9 exists in nums and its index is 4

Example 2:

Input: nums = [-1,0,3,5,9,12], target = 2

Output: -1

Explanation: 2 does not exist in nums so return -1

Note:

1. You may assume that all elements in nums are unique.
2. n will be in the range [1, 10000].
3. The value of each element in nums will be in the range [-9999, 9999].

因为是常规的没有duplicates的binary search, 所以参考[LeetCode] questions conclusion_ Binary Search1.1的思路和code即可.

Code

class Solution:

    def search(self, nums, target):

        l, r = 0, len(nums)-1

        if target < nums[0] or target > nums[-1]: return -1

        while l + 1 < r:

            mid = l + (r-l)//2   # l + r maybe overflow, above 2**32

            if nums[mid] > target:

                r = mid

            elif nums[mid] < target:

                l = mid

            else:

                return mid

        if nums[l] == target:

            return l

        if nums[r] == target:

            return r

        return -1