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Kotlin-based LeetCode algorithm problem solutions, regularly updated
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1172\. Dinner Plate Stacks

Hard

You have an infinite number of stacks arranged in a row and numbered (left to right) from `0`, each of the stacks has the same maximum capacity.

Implement the `DinnerPlates` class:

*   `DinnerPlates(int capacity)` Initializes the object with the maximum capacity of the stacks `capacity`.
*   `void push(int val)` Pushes the given integer `val` into the leftmost stack with a size less than `capacity`.
*   `int pop()` Returns the value at the top of the rightmost non-empty stack and removes it from that stack, and returns `-1` if all the stacks are empty.
*   `int popAtStack(int index)` Returns the value at the top of the stack with the given index `index` and removes it from that stack or returns `-1` if the stack with that given index is empty.

**Example 1:**

**Input** 

["DinnerPlates", "push", "push", "push", "push", "push", "popAtStack", "push", "push", "popAtStack", "popAtStack", "pop", "pop", "pop", "pop", "pop"] 

[[2], [1], [2], [3], [4], [5], [0], [20], [21], [0], [2], [], [], [], [], []]

**Output:** [null, null, null, null, null, null, 2, null, null, 20, 21, 5, 4, 3, 1, -1]

**Explanation:** 

    DinnerPlates D = DinnerPlates(2); // Initialize with capacity = 2
    D.push(1); 
    D.push(2); 
    D.push(3); 
    D.push(4); 
    D.push(5);          // The stacks are now: 2 4 
                                              1 3 5 
                                              ﹈ ﹈ ﹈ 
    D.popAtStack(0);    // Returns 2. The stacks are now:   4 
                                                       1 3 5 
                                                      ﹈ ﹈ ﹈ 
    D.push(20);         // The stacks are now: 20 4 
                                                1 3 5 
                                               ﹈ ﹈ ﹈ 
    D.push(21);         // The stacks are now: 20 4 21 
                                                1 3 5 
                                                ﹈ ﹈ ﹈ 
    D.popAtStack(0);    // Returns 20. The stacks are now: 4 21 
                                                           1 3 5 
                                                          ﹈ ﹈ ﹈ 
    D.popAtStack(2);    // Returns 21. The stacks are now: 4 
                                                         1 3 5 
                                                        ﹈ ﹈ ﹈ 
    D.pop()             // Returns 5. The stacks are now: 4 
                                                         1 3 
                                                         ﹈ ﹈ 
    D.pop()             // Returns 4. The stacks are now: 1 3 
                                                         ﹈ ﹈ 
    D.pop()             // Returns 3. The stacks are now: 1 
                                                          ﹈ 
    D.pop()             // Returns 1. There are no stacks. 
    D.pop()             // Returns -1. There are still no stacks.

**Constraints:**

*   1 <= capacity <= 2 * 10⁴
*   1 <= val <= 2 * 10⁴
*   0 <= index <= 10⁵
*   At most 2 * 10⁵ calls will be made to `push`, `pop`, and `popAtStack`.