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moveZeroes.cpp
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moveZeroes.cpp
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// Source : https://leetcode.com/problems/move-zeroes/
// Author : Calinescu Valentin, Hao Chen
// Date : 2015-10-21
/***************************************************************************************
*
* Given an array nums, write a function to move all 0's to the end of it while
* maintaining the relative order of the non-zero elements.
*
* For example, given nums = [0, 1, 0, 3, 12], after calling your function, nums should
* be [1, 3, 12, 0, 0].
*
* Note:
* You must do this in-place without making a copy of the array.
* Minimize the total number of operations.
*
* Credits:
* Special thanks to @jianchao.li.fighter for adding this problem and creating all test cases.
*
***************************************************************************************/
class Solution {
public:
/*
* Solution (Calinescu Valentin)
* ==============================
*
* One solution would be to store the position of the next non-zero element of the array.
* Every position of the array, starting with position 0, must store this next non-zero
* element until we can no more do that, case in which we need to add the remaining zeros
* that we skipped.
*
*
* Time Complexity: O(N)
* Space Complexity: O(1)
*
*/
void moveZeroes(vector<int>& nums) {
int i = 0, poz = 0;
for(i = 0; i < nums.size() && poz < nums.size(); i++)
{
while(nums[poz] == 0)
poz++;
if(poz < nums.size())
nums[i] = nums[poz];
else
i--; // we need 0 on position i, but i is increasing one last time
poz++;
}
for(; i < nums.size(); i++)
nums[i] = 0;
}
/*
* Another implemtation which is easy to understand (Hao Chen)
* ===========================================================
*
* We have two pointers to travel the array, assume they named `p1` and `p2`.
*
* 1) `p1` points the tail of current arrays without any ZEROs.
* 2) `p2` points the head of the rest array which skips the ZEROs.
*
* Then we can just simply move the item from `p2` to `p1`.
*
*/
void moveZeroes(vector<int>& nums) {
int p1=0, p2=0;
// Find the first ZERO, where is the tail of the array.
// (Notes: we can simply remove this!)
for (; nums[p1]!=0 && p1<nums.size(); p1++);
// copy the item from p2 to p1, and skip the ZERO
for (p2=p1; p2<nums.size(); p2++) {
if ( nums[p2] == 0 ) continue;
nums[p1++] = nums[p2];
}
//set ZERO for rest items
while ( p1<nums.size() ) nums[p1++] = 0;
}
};