Solution

Approach #1 (Two Pointers) [Accepted]

Algorithm

Since the array is already sorted, we can keep two pointers $$i$$ and $$j$$ , where $$i$$ is the slow-runner while $$j$$ is the fast-runner. As long as $$nums[i] = nums[j]$$ , we increment $$j$$ to skip the duplicate.

When we encounter $$nums[j] \\neq nums[i]$$ , the duplicate run has ended so we must copy its value to $$nums[i + 1]$$ . $$i$$ is then incremented and we repeat the same process again until $$j$$ reaches the end of array.

public int removeDuplicates(int[] nums) {\n    if (nums.length == 0) return 0;\n    int i = 0;\n    for (int j = 1; j < nums.length; j++) {\n        if (nums[j] != nums[i]) {\n            i++;\n            nums[i] = nums[j];\n        }\n    }\n    return i + 1;\n}\n

Complexity analysis

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  Time complextiy : $$O(n)$$ .\nAssume that $$n$$ is the length of array. Each of $$i$$ and $$j$$ traverses at most $$n$$ steps.

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  Space complexity : $$O(1)$$ .

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