716. Max Stack
Easy
Design a max stack data structure that supports the stack operations and supports finding the stack's maximum element.
Implement the MaxStack
class:
MaxStack()
Initializes the stack object.void push(int x)
Pushes elementx
onto the stack.int pop()
Removes the element on top of the stack and returns it.int top()
Gets the element on the top of the stack without removing it.int peekMax()
Retrieves the maximum element in the stack without removing it.int popMax()
Retrieves the maximum element in the stack and removes it. If there is more than one maximum element, only remove the top-most one.
Example 1:
Input ["MaxStack", "push", "push", "push", "top", "popMax", "top", "peekMax", "pop", "top"] [[], [5], [1], [5], [], [], [], [], [], []] Output [null, null, null, null, 5, 5, 1, 5, 1, 5] Explanation MaxStack stk = new MaxStack(); stk.push(5); // [5] the top of the stack and the maximum number is 5. stk.push(1); // [5, 1] the top of the stack is 1, but the maximum is 5. stk.push(5); // [5, 1, 5] the top of the stack is 5, which is also the maximum, because it is the top most one. stk.top(); // return 5, [5, 1, 5] the stack did not change. stk.popMax(); // return 5, [5, 1] the stack is changed now, and the top is different from the max. stk.top(); // return 1, [5, 1] the stack did not change. stk.peekMax(); // return 5, [5, 1] the stack did not change. stk.pop(); // return 1, [5] the top of the stack and the max element is now 5. stk.top(); // return 5, [5] the stack did not change.
Constraints:
-107 <= x <= 107
- At most
104
calls will be made topush
,pop
,top
,peekMax
, andpopMax
. - There will be at least one element in the stack when
pop
,top
,peekMax
, orpopMax
is called.
Follow up: Could you come up with a solution that supports
O(1)
for each top
call and O(logn)
for each other call? 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 | class MaxStack { Stack<Integer> stk = new Stack<>(); Stack<Integer> stkM = new Stack<>(); /** initialize your data structure here. */ public MaxStack() { } public void push(int x) { stk.add(x); if(stkM.isEmpty()) stkM.add(x); else{ if(stkM.peek()<=x) stkM.add(x); } } public int pop() { int x = stk.pop(); if(x==stkM.peek()) stkM.pop(); return x; } public int top() { return stk.peek(); } public int peekMax() { return stkM.peek(); } public int popMax() { Stack<Integer> stkT = new Stack<>(); int max = stkM.peek(); while(stk.peek()!=max){ stkT.add(stk.pop()); } stk.pop(); stkM.pop(); while(!stkT.isEmpty()){ int t = stkT.pop(); stk.add(t); if(stkM.isEmpty() || t>=stkM.peek()) stkM.add(t); } return max; } } /** * Your MaxStack object will be instantiated and called as such: * MaxStack obj = new MaxStack(); * obj.push(x); * int param_2 = obj.pop(); * int param_3 = obj.top(); * int param_4 = obj.peekMax(); * int param_5 = obj.popMax(); */ |
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