Given an integer array nums
and an integer val
, remove all occurrences of val
in nums
in-place. The order of the elements may be changed. Then return the number of elements in nums
which are not equal to val
.
Consider the number of elements in nums
which are not equal to val
be k
, to get accepted, you need to do the following things:
- Change the array
nums
such that the firstk
elements ofnums
contain the elements which are not equal toval
. The remaining elements ofnums
are not important as well as the size ofnums
. - Return
k
.
Custom Judge:
The judge will test your solution with the following code:
int[] nums = [...]; // Input array int val = ...; // Value to remove int[] expectedNums = [...]; // The expected answer with correct length. // It is sorted with no values equaling val. int k = removeElement(nums, val); // Calls your implementation assert k == expectedNums.length; sort(nums, 0, k); // Sort the first k elements of nums for (int i = 0; i < actualLength; i++) { assert nums[i] == expectedNums[i]; }
If all assertions pass, then your solution will be accepted.
Example 1:
Input: nums = [3,2,2,3], val = 3 Output: 2, nums = [2,2,_,_] Explanation: Your function should return k = 2, with the first two elements of nums being 2. It does not matter what you leave beyond the returned k (hence they are underscores).
Example 2:
Input: nums = [0,1,2,2,3,0,4,2], val = 2 Output: 5, nums = [0,1,4,0,3,_,_,_] Explanation: Your function should return k = 5, with the first five elements of nums containing 0, 0, 1, 3, and 4. Note that the five elements can be returned in any order. It does not matter what you leave beyond the returned k (hence they are underscores).
Constraints:
0 <= nums.length <= 100
0 <= nums[i] <= 50
0 <= val <= 100
My Solution :
My Planning is to choose two pointers and check four conditions:
- If the element at index
i
is the target value while the element at the indexj
is not, we swap them. - If the element at index
i
is not the target value and the element at the indexj
is the target value, we incrementi
andk
, and decrementj
. This condition is optimal, indicating correct positioning. - If both elements are the target values, we simply decrease the index
j
since it’s positioned correctly. - If neither element is the target value, we increment the index
i
, as it’s in the correct position.
class Solution {
public:
int removeElement(vector<int>& nums, int val) {
int i=0, j= nums.size()-1;
int k=0;
if(j == -1){
return 0;
}
while(i<=j){
if(nums[i] == val && nums[j] != val){
nums[i] ^= nums[j];
nums[j] ^= nums[i];
nums[i] ^= nums[j];
}
else if(nums[i]!=val && nums[j]== val){
i++;
j--;
k++;
}
else if(nums[i] == val && nums[j] == val){
j--;
}
else{
i++;
k++;
}
}
return k;
}
};
Time Complexity : O(n)
Space Complexity : O(1)
Optimal Solution
How Does It Work?
- Iterating Through the List:
- The method starts by initializing two variables:
i
andn
. i
is used to keep track of where we should place elements that we want to keep after removingval
.n
stores the total number of elements in the list.
- The method starts by initializing two variables:
- Removing Elements:
- Next, we loop through each element of the list using a
for
loop. We use a variablej
to keep track of the current position in the list. - Inside the loop, we check if the current element
nums[j]
is not equal to the value we want to remove (val
). - If
nums[j]
is not equal toval
, we copy this element to the position indicated byi
and then incrementi
. - This effectively means we’re skipping over the elements we want to remove and copying only the elements we want to keep to the beginning of the list.
- Next, we loop through each element of the list using a
- Returning the Result:
- Finally, we return the value of
i
, which indicates the new length of the list after removingval
.
- Finally, we return the value of
class Solution {
public:
int removeElement(vector<int>& nums, int val) {
int i = 0;
int n = nums.size();
for (int j = 0; j < n; ++j) {
if (nums[j] != val) {
nums[i] = nums[j];
i++;
}
}
return i;
}
};
Time Complexity : O(n)
Space Complexity : O(1)