Peeking Iterator
Problem Statement
Design an iterator that supports the peek operation on an existing iterator in addition to the hasNext and the next operations.
Implement the PeekingIterator class:
PeekingIterator(Iterator<int> nums)Initializes the object with the given integer iteratoriterator.int next()Returns the next element in the array and moves the pointer to the next element.boolean hasNext()Returnstrueif there are still elements in the array.int peek()Returns the next element in the array without moving the pointer.
Note: Each language may have a different implementation of the constructor and Iterator, but they all support the int next() and boolean hasNext() functions.
Example 1:
Input
["PeekingIterator", "next", "peek", "next", "next", "hasNext"]
[[[1, 2, 3]], [], [], [], [], []]
Output
[null, 1, 2, 2, 3, false]
Explanation
PeekingIterator peekingIterator = new PeekingIterator([1, 2, 3]); // [1,2,3]
peekingIterator.next(); // return 1, the pointer moves to the next element [1,2,3].
peekingIterator.peek(); // return 2, the pointer does not move [1,2,3].
peekingIterator.next(); // return 2, the pointer moves to the next element [1,2,3]
peekingIterator.next(); // return 3, the pointer moves to the next element [1,2,3]
peekingIterator.hasNext(); // return False
Contraints:
- 1 <= nums.length <= 1000
- 1 <= nums[i] <= 1000
- All the calls to next and peek are valid.
- At most 1000 calls will be made to next, hasNext, and peek.
Code
Python
class PeekingIterator:
def __init__(self, iterator):
self.iterator = iterator
self.buffer = self.iterator.next() if self.iterator.hasNext() else None
def peek(self):
return self.buffer
def next(self):
tmp = self.buffer
self.buffer = self.iterator.next() if self.iterator.hasNext() else None
return tmp
def hasNext(self):
return self.buffer != None