[LeetCode] 900. RLE Iterator RLE迭代器
Write an iterator that iterates through a run-length encoded sequence.
The iterator is initialized by RLEIterator(int[] A)
, where A
is a run-length encoding of some sequence. More specifically, for all even i
, A[i]
tells us the number of times that the non-negative integer value A[i+1]
is repeated in the sequence.
The iterator supports one function: next(int n)
, which exhausts the next n
elements (n >= 1
) and returns the last element exhausted in this way. If there is no element left to exhaust, next
returns -1
instead.
For example, we start with A = [3,8,0,9,2,5]
, which is a run-length encoding of the sequence [8,8,8,5,5]
. This is because the sequence can be read as "three eights, zero nines, two fives".
Example 1:
Input: ["RLEIterator","next","next","next","next"], [[[3,8,0,9,2,5]],[2],[1],[1],[2]]
Output: [null,8,8,5,-1]
Explanation:
RLEIterator is initialized with RLEIterator([3,8,0,9,2,5]).
This maps to the sequence [8,8,8,5,5].
RLEIterator.next is then called 4 times:
.next(2) exhausts 2 terms of the sequence, returning 8. The remaining sequence is now [8, 5, 5].
.next(1) exhausts 1 term of the sequence, returning 8. The remaining sequence is now [5, 5].
.next(1) exhausts 1 term of the sequence, returning 5. The remaining sequence is now [5].
.next(2) exhausts 2 terms, returning -1. This is because the first term exhausted was 5,
but the second term did not exist. Since the last term exhausted does not exist, we return -1.
Note:
0 <= A.length <= 1000
A.length
is an even integer.0 <= A[i] <= 10^9
- There are at most
1000
calls toRLEIterator.next(int n)
per test case. - Each call to
RLEIterator.next(int n)
will have1 <= n <= 10^9
.
这道题给了我们一种 Run-Length Encoded 的数组,就是每两个数字组成一个数字对儿,前一个数字表示后面的一个数字重复出现的次数。然后有一个 next 函数,让我们返回数组的第n个数字,题目中给的例子也很好的说明了题意。那么最暴力的方法肯定是直接还原整个数组,然后直接用坐标n去取数,但是直觉告诉我这种方法会跪,而且估计是 Memory Limit Exceeded 之类的。所以博主最先想到的是将每个数字对儿抽离出来,放到一个新的数组中。这样我们就只要遍历这个只有数字对儿的数组,当出现次数是0的时候,直接跳过当前数字对儿。若出现次数大于等于n,那么现将次数减去n,然后再返回该数字。否则用n减去次数,并将次数赋值为0,继续遍历下一个数字对儿。若循环退出了,直接返回 -1 即可,参见代码如下:
解法一:
class RLEIterator {
public:
RLEIterator(vector<int> A) {
for (int i = 0; i < A.size(); i += 2) {
if (A[i] != 0) seq.push_back({A[i + 1], A[i]});
}
}
int next(int n) {
for (auto &p : seq) {
if (p.second == 0) continue;
if (p.second >= n) {
p.second -= n;
return p.first;
}
n -= p.second;
p.second = 0;
}
return -1;
}
private:
vector<pair<int, int>> seq;
};
其实我们根本不用将数字对儿抽离出来,直接用输入数组的形式就可以,再用一个指针 cur,指向当前数字对儿的次数即可。那么在 next 函数中,我们首先来个 while 循环,判读假如 cur 没有越界,且当n大于当前当次数了,则n减去当前次数,cur 自增2,移动到下一个数字对儿的次数上。当 while 循环结束后,判断若此时 cur 已经越界了,则返回 -1,否则当前次数减去n,并且返回当前数字即可,参见代码如下:
解法二:
class RLEIterator {
public:
RLEIterator(vector<int>& A): nums(A), cur(0) {}
int next(int n) {
while (cur < nums.size() && n > nums[cur]) {
n -= nums[cur];
cur += 2;
}
if (cur >= nums.size()) return -1;
nums[cur] -= n;
return nums[cur + 1];
}
private:
int cur;
vector<int> nums;
};
Github 同步地址:
https://github.com/grandyang/leetcode/issues/900
参考资料:
https://leetcode.com/problems/rle-iterator/
[LeetCode All in One 题目讲解汇总(持续更新中...)](https://www.cnblogs.com/grandyang/p/4606334.html)