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Stack Data Structure in Java: The Complete In-Depth Guide

1. What Is a Stack?A Stack is a linear data structure that stores elements in a sequential order, but with one strict rule — you can only insert or remove elements from one end, called the top.It is one of the simplest yet most powerful data structures in computer science. Its strength comes from its constraint. Because everything happens at one end, the behavior of a stack is completely predictable.The formal definition: A Stack is a linear data structure that follows the Last In, First Out (LIFO) principle — the element inserted last is the first one to be removed.Here is what a stack looks like visually: ┌──────────┐ │ 50 │ ← TOP (last inserted, first removed) ├──────────┤ │ 40 │ ├──────────┤ │ 30 │ ├──────────┤ │ 20 │ ├──────────┤ │ 10 │ ← BOTTOM (first inserted, last removed) └──────────┘When you push 60 onto this stack, it goes on top. When you pop, 60 comes out first. That is LIFO.2. Real-World AnalogiesBefore writing a single line of code, it helps to see stacks in the real world. These analogies will make the concept permanently stick.A Pile of Plates In a cafeteria, clean plates are stacked on top of each other. You always pick the top plate. You always place a new plate on top. You never reach into the middle. This is a stack.Browser Back Button Every time you visit a new webpage, it gets pushed onto a history stack. When you press the Back button, the browser pops the most recent page off the stack and takes you there. The page you visited first is at the bottom — you only reach it after going back through everything else.Undo Feature in Text Editors When you type in a document and press Ctrl+Z, the most recent action is undone first. That is because every action you perform is pushed onto a stack. Undo simply pops from that stack.Call Stack in Programming When a function calls another function, the current function's state is pushed onto the call stack. When the inner function finishes, it is popped off and execution returns to the outer function. This is the literal stack your programs run on.A Stack of Books Put five books on a table, one on top of another. You can only take the top book without knocking the pile over. That is a stack.3. The LIFO Principle ExplainedLIFO stands for Last In, First Out.It means whatever you put in last is the first thing to come out. This is the exact opposite of a Queue (which is FIFO — First In, First Out).Let us trace through an example step by step:Start: Stack is empty → []Push 10 → [10] (10 is at the top)Push 20 → [10, 20] (20 is at the top)Push 30 → [10, 20, 30] (30 is at the top)Pop → returns 30 (30 was last in, first out) Stack: [10, 20]Pop → returns 20 Stack: [10]Peek → returns 10 (just looks, does not remove) Stack: [10]Pop → returns 10 Stack: [] (stack is now empty)Every single operation happens only at the top. The bottom of the stack is never directly accessible.4. Stack Operations & Time ComplexityA stack supports the following core operations:OperationDescriptionTime Complexitypush(x)Insert element x onto the top of the stackO(1)pop()Remove and return the top elementO(1)peek() / top()Return the top element without removing itO(1)isEmpty()Check if the stack has no elementsO(1)isFull()Check if the stack has reached its capacity (Array only)O(1)size()Return the number of elements in the stackO(1)search(x)Find position of element from top (Java built-in only)O(n)All primary stack operations — push, pop, peek, isEmpty — run in O(1) constant time. This is what makes the stack so efficient. It does not matter whether the stack has 10 elements or 10 million — these operations are always instant.Space complexity for a stack holding n elements is O(n).5. Implementation 1 — Using a Static ArrayThis is the most fundamental way to implement a stack. We use a fixed-size array and a variable called top to track where the top of the stack currently is.How it works:top starts at -1 (stack is empty)On push: increment top, then place the element at arr[top]On pop: return arr[top], then decrement topOn peek: return arr[top] without changing it// StackUsingArray.javapublic class StackUsingArray { private int[] arr; private int top; private int capacity; // Constructor — initialize with a fixed capacity public StackUsingArray(int capacity) { this.capacity = capacity; arr = new int[capacity]; top = -1; } // Push: add element to the top public void push(int value) { if (isFull()) { System.out.println("Stack Overflow! Cannot push " + value); return; } arr[++top] = value; System.out.println("Pushed: " + value); } // Pop: remove and return top element public int pop() { if (isEmpty()) { System.out.println("Stack Underflow! Stack is empty."); return -1; } return arr[top--]; } // Peek: view the top element without removing public int peek() { if (isEmpty()) { System.out.println("Stack is empty."); return -1; } return arr[top]; } // Check if stack is empty public boolean isEmpty() { return top == -1; } // Check if stack is full public boolean isFull() { return top == capacity - 1; } // Return current size public int size() { return top + 1; } // Display all elements public void display() { if (isEmpty()) { System.out.println("Stack is empty."); return; } System.out.print("Stack (top → bottom): "); for (int i = top; i >= 0; i--) { System.out.print(arr[i] + " "); } System.out.println(); } // Main method to test public static void main(String[] args) { StackUsingArray stack = new StackUsingArray(5); stack.push(10); stack.push(20); stack.push(30); stack.push(40); stack.push(50); stack.push(60); // This will trigger Stack Overflow stack.display(); System.out.println("Peek: " + stack.peek()); System.out.println("Pop: " + stack.pop()); System.out.println("Pop: " + stack.pop()); stack.display(); System.out.println("Size: " + stack.size()); }}```**Output:**```Pushed: 10Pushed: 20Pushed: 30Pushed: 40Pushed: 50Stack Overflow! Cannot push 60Stack (top → bottom): 50 40 30 20 10Peek: 50Pop: 50Pop: 40Stack (top → bottom): 30 20 10Size: 3Key Points about Array Implementation:Fixed size — you must declare capacity upfrontVery fast — direct array index accessStack Overflow is possible if capacity is exceededMemory is pre-allocated even if stack is not full6. Implementation 2 — Using an ArrayListAn ArrayList-based stack removes the fixed-size limitation. The ArrayList grows dynamically, so you never have to worry about stack overflow due to capacity.How it works:The end of the ArrayList acts as the topadd() is used for pushremove(size - 1) is used for popget(size - 1) is used for peek// StackUsingArrayList.javaimport java.util.ArrayList;public class StackUsingArrayList { private ArrayList<Integer> list; // Constructor public StackUsingArrayList() { list = new ArrayList<>(); } // Push: add to the end (which is our top) public void push(int value) { list.add(value); System.out.println("Pushed: " + value); } // Pop: remove and return the last element public int pop() { if (isEmpty()) { System.out.println("Stack Underflow! Stack is empty."); return -1; } int top = list.get(list.size() - 1); list.remove(list.size() - 1); return top; } // Peek: view the last element public int peek() { if (isEmpty()) { System.out.println("Stack is empty."); return -1; } return list.get(list.size() - 1); } // Check if stack is empty public boolean isEmpty() { return list.isEmpty(); } // Return size public int size() { return list.size(); } // Display elements from top to bottom public void display() { if (isEmpty()) { System.out.println("Stack is empty."); return; } System.out.print("Stack (top → bottom): "); for (int i = list.size() - 1; i >= 0; i--) { System.out.print(list.get(i) + " "); } System.out.println(); } // Main method to test public static void main(String[] args) { StackUsingArrayList stack = new StackUsingArrayList(); stack.push(5); stack.push(15); stack.push(25); stack.push(35); stack.display(); System.out.println("Peek: " + stack.peek()); System.out.println("Pop: " + stack.pop()); System.out.println("Pop: " + stack.pop()); stack.display(); System.out.println("Is Empty: " + stack.isEmpty()); System.out.println("Size: " + stack.size()); }}```**Output:**```Pushed: 5Pushed: 15Pushed: 25Pushed: 35Stack (top → bottom): 35 25 15 5Peek: 35Pop: 35Pop: 25Stack (top → bottom): 15 5Is Empty: falseSize: 2Key Points about ArrayList Implementation:Dynamic size — grows automatically as neededNo overflow riskSlight overhead compared to raw array due to ArrayList internalsExcellent for most practical use cases7. Implementation 3 — Using a LinkedListA LinkedList-based stack is the most memory-efficient approach when you do not know the stack size in advance. Each element (node) holds data and a pointer to the next node. The head of the LinkedList acts as the top of the stack.How it works:Each node stores a value and a reference to the node below itPush creates a new node and makes it the new headPop removes the head node and returns its valuePeek returns the head node's value without removing it// StackUsingLinkedList.javapublic class StackUsingLinkedList { // Inner Node class private static class Node { int data; Node next; Node(int data) { this.data = data; this.next = null; } } private Node top; // Head of the linked list = top of stack private int size; // Constructor public StackUsingLinkedList() { top = null; size = 0; } // Push: create new node and link it to top public void push(int value) { Node newNode = new Node(value); newNode.next = top; // new node points to current top top = newNode; // new node becomes the new top size++; System.out.println("Pushed: " + value); } // Pop: remove and return top node's data public int pop() { if (isEmpty()) { System.out.println("Stack Underflow! Stack is empty."); return -1; } int value = top.data; top = top.next; // move top pointer to next node size--; return value; } // Peek: return top node's data without removing public int peek() { if (isEmpty()) { System.out.println("Stack is empty."); return -1; } return top.data; } // Check if empty public boolean isEmpty() { return top == null; } // Return size public int size() { return size; } // Display elements from top to bottom public void display() { if (isEmpty()) { System.out.println("Stack is empty."); return; } System.out.print("Stack (top → bottom): "); Node current = top; while (current != null) { System.out.print(current.data + " "); current = current.next; } System.out.println(); } // Main method to test public static void main(String[] args) { StackUsingLinkedList stack = new StackUsingLinkedList(); stack.push(100); stack.push(200); stack.push(300); stack.push(400); stack.display(); System.out.println("Peek: " + stack.peek()); System.out.println("Pop: " + stack.pop()); System.out.println("Pop: " + stack.pop()); stack.display(); System.out.println("Size: " + stack.size()); }}```**Output:**```Pushed: 100Pushed: 200Pushed: 300Pushed: 400Stack (top → bottom): 400 300 200 100Peek: 400Pop: 400Pop: 300Stack (top → bottom): 200 100Size: 2Key Points about LinkedList Implementation:Truly dynamic — each node allocated only when neededNo wasted memory from pre-allocationSlightly more memory per element (each node carries a pointer)Ideal for stacks where size is completely unknown8. Java's Built-in Stack ClassJava provides a ready-made Stack class inside java.util. It extends Vector and is thread-safe by default.// JavaBuiltinStack.javaimport java.util.Stack;public class JavaBuiltinStack { public static void main(String[] args) { Stack<Integer> stack = new Stack<>(); // Push elements stack.push(10); stack.push(20); stack.push(30); stack.push(40); System.out.println("Stack: " + stack); // Peek — look at top without removing System.out.println("Peek: " + stack.peek()); // Pop — remove top System.out.println("Pop: " + stack.pop()); System.out.println("After pop: " + stack); // Search — returns 1-based position from top System.out.println("Search 20: position " + stack.search(20)); // isEmpty System.out.println("Is Empty: " + stack.isEmpty()); // Size System.out.println("Size: " + stack.size()); }}```**Output:**```Stack: [10, 20, 30, 40]Peek: 40Pop: 40After pop: [10, 20, 30]Search 20: position 2Is Empty: falseSize: 3Important Note: In modern Java development, it is often recommended to use Deque (specifically ArrayDeque) instead of Stack for better performance, since Stack is synchronized and carries the overhead of Vector.// Using ArrayDeque as a stack (modern preferred approach)import java.util.ArrayDeque;import java.util.Deque;public class ModernStack { public static void main(String[] args) { Deque<Integer> stack = new ArrayDeque<>(); stack.push(10); // pushes to front stack.push(20); stack.push(30); System.out.println("Top: " + stack.peek()); System.out.println("Pop: " + stack.pop()); System.out.println("Stack: " + stack); }}9. Comparison of All ImplementationsFeatureArrayArrayListLinkedListJava StackArrayDequeSizeFixedDynamicDynamicDynamicDynamicStack Overflow RiskYesNoNoNoNoMemory UsagePre-allocatedAuto-growsPer-node overheadAuto-growsAuto-growsPush TimeO(1)O(1) amortizedO(1)O(1)O(1)Pop TimeO(1)O(1)O(1)O(1)O(1)Peek TimeO(1)O(1)O(1)O(1)O(1)Thread SafeNoNoNoYesNoBest ForKnown size, max speedGeneral useUnknown/huge sizeLegacy codeModern Java10. Advantages & DisadvantagesAdvantagesAdvantageExplanationSimple to implementVery few rules and operations to worry aboutO(1) operationsPush, pop, and peek are all constant timeMemory efficientNo extra pointers needed (array-based)Supports recursionThe call stack is itself a stackEasy undo/redoNatural fit for reversible action trackingBacktrackingPerfectly suited for maze, puzzle, and game solvingExpression evaluationPowers compilers and calculatorsDisadvantagesDisadvantageExplanationLimited accessCannot access elements in the middle directlyFixed size (array)Array-based stacks overflow if size is exceededNo random accessYou cannot do stack[2] — only top is accessibleMemory waste (array)Pre-allocated array wastes space if underusedNot suitable for all problemsMany problems need queues, trees, or graphs insteadStack overflow in recursionVery deep recursion can overflow the JVM call stack11. Real-World Use Cases of StackUnderstanding when to use a stack is just as important as knowing how to implement one. Here is where stacks show up in real software:Function Call Management (Call Stack) Every time your Java program calls a method, the JVM pushes that method's frame onto the call stack. When the method returns, the frame is popped. This is why you see "StackOverflowError" when you write infinite recursion.Undo and Redo Operations Text editors, image editors (Photoshop), and IDEs use two stacks — one for undo history and one for redo history. Every action pushes onto the undo stack. Ctrl+Z pops from it and pushes to the redo stack.Browser Navigation Your browser maintains a back-stack and a forward-stack. Visiting a new page pushes to the back-stack. Pressing Back pops from it and pushes to the forward-stack.Expression Evaluation and Conversion Compilers use stacks to evaluate arithmetic expressions and convert between infix, prefix, and postfix notations. For example: 3 + 4 * 2 must be evaluated considering operator precedence — this is done with a stack.Balanced Parentheses Checking Linters, compilers, and IDEs use stacks to check if brackets are balanced: {[()]} is valid, {[(])} is not.Backtracking Algorithms Maze solving, N-Queens, Sudoku solvers, and depth-first search all use stacks (explicitly or via recursion) to backtrack to previous states when a path fails.Syntax Parsing Compilers parse source code using stacks to match opening and closing constructs like if/else, try/catch, { and }.12. Practice Problems with Full SolutionsHere is where things get really interesting. These problems will sharpen your stack intuition and prepare you for coding interviews.Problem 1 — Reverse a String Using a StackDifficulty: EasyProblem: Write a Java program to reverse a string using a Stack.Approach: Push every character of the string onto a stack, then pop them all. Since LIFO reverses the order, the characters come out reversed.// ReverseString.javaimport java.util.Stack;public class ReverseString { public static String reverse(String str) { Stack<Character> stack = new Stack<>(); // Push all characters for (char c : str.toCharArray()) { stack.push(c); } // Pop all characters to build reversed string StringBuilder reversed = new StringBuilder(); while (!stack.isEmpty()) { reversed.append(stack.pop()); } return reversed.toString(); } public static void main(String[] args) { System.out.println(reverse("hello")); // olleh System.out.println(reverse("java")); // avaj System.out.println(reverse("racecar")); // racecar (palindrome) System.out.println(reverse("datastructure")); // erutcurtasatad }}Problem 2 — Check Balanced ParenthesesDifficulty: Easy–MediumProblem: Given a string containing (, ), {, }, [, ], determine if the brackets are balanced.Approach: Push every opening bracket onto the stack. When you see a closing bracket, check if it matches the top of the stack. If it does, pop. If it does not, the string is unbalanced.// BalancedParentheses.javaimport java.util.Stack;public class BalancedParentheses { public static boolean isBalanced(String expr) { Stack<Character> stack = new Stack<>(); for (char c : expr.toCharArray()) { // Push all opening brackets if (c == '(' || c == '{' || c == '[') { stack.push(c); } // For closing brackets, check the top of stack else if (c == ')' || c == '}' || c == ']') { if (stack.isEmpty()) return false; char top = stack.pop(); if (c == ')' && top != '(') return false; if (c == '}' && top != '{') return false; if (c == ']' && top != '[') return false; } } // Stack must be empty at the end for a balanced expression return stack.isEmpty(); } public static void main(String[] args) { System.out.println(isBalanced("{[()]}")); // true System.out.println(isBalanced("{[(])}")); // false System.out.println(isBalanced("((()))")); // true System.out.println(isBalanced("{]")); // false System.out.println(isBalanced("")); // true (empty is balanced) }}Problem 3 — Reverse a Stack (Without Extra Data Structure)Difficulty: Medium–HardProblem: Reverse all elements of a stack using only recursion — no array or extra stack allowed.Approach: This is a classic recursion problem. You need two recursive functions:insertAtBottom(stack, item) — inserts an element at the very bottom of the stackreverseStack(stack) — pops all elements, reverses, and uses insertAtBottom to rebuild// ReverseStack.javaimport java.util.Stack;public class ReverseStack { // Insert an element at the bottom of the stack public static void insertAtBottom(Stack<Integer> stack, int item) { if (stack.isEmpty()) { stack.push(item); return; } int top = stack.pop(); insertAtBottom(stack, item); stack.push(top); } // Reverse the stack using insertAtBottom public static void reverseStack(Stack<Integer> stack) { if (stack.isEmpty()) return; int top = stack.pop(); reverseStack(stack); // reverse the remaining stack insertAtBottom(stack, top); // insert popped element at bottom } public static void main(String[] args) { Stack<Integer> stack = new Stack<>(); stack.push(1); stack.push(2); stack.push(3); stack.push(4); stack.push(5); System.out.println("Before: " + stack); // [1, 2, 3, 4, 5] reverseStack(stack); System.out.println("After: " + stack); // [5, 4, 3, 2, 1] }}Problem 4 — Evaluate a Postfix ExpressionDifficulty: MediumProblem: Evaluate a postfix (Reverse Polish Notation) expression. Example: "2 3 4 * +" should return 14 because it is 2 + (3 * 4).Approach: Scan left to right. If you see a number, push it. If you see an operator, pop two numbers, apply the operator, and push the result.// PostfixEvaluation.javaimport java.util.Stack;public class PostfixEvaluation { public static int evaluate(String expression) { Stack<Integer> stack = new Stack<>(); String[] tokens = expression.split(" "); for (String token : tokens) { // If it's a number, push it if (token.matches("-?\\d+")) { stack.push(Integer.parseInt(token)); } // If it's an operator, pop two and apply else { int b = stack.pop(); // second operand int a = stack.pop(); // first operand switch (token) { case "+": stack.push(a + b); break; case "-": stack.push(a - b); break; case "*": stack.push(a * b); break; case "/": stack.push(a / b); break; } } } return stack.pop(); } public static void main(String[] args) { System.out.println(evaluate("2 3 4 * +")); // 14 → 2 + (3*4) System.out.println(evaluate("5 1 2 + 4 * + 3 -")); // 14 → 5+((1+2)*4)-3 System.out.println(evaluate("3 4 +")); // 7 }}Problem 5 — Next Greater ElementDifficulty: MediumProblem: For each element in an array, find the next greater element to its right. If none exists, output -1.Example: Input: [4, 5, 2, 10, 8] → Output: [5, 10, 10, -1, -1]Approach: Iterate right to left. Maintain a stack of candidates. For each element, pop all stack elements that are smaller than or equal to it — they can never be the answer for any element to the left. The top of the stack (if not empty) is the next greater element.// NextGreaterElement.javaimport java.util.Stack;import java.util.Arrays;public class NextGreaterElement { public static int[] nextGreater(int[] arr) { int n = arr.length; int[] result = new int[n]; Stack<Integer> stack = new Stack<>(); // stores elements, not indices // Traverse from right to left for (int i = n - 1; i >= 0; i--) { // Pop elements smaller than or equal to current while (!stack.isEmpty() && stack.peek() <= arr[i]) { stack.pop(); } // Next greater element result[i] = stack.isEmpty() ? -1 : stack.peek(); // Push current element for future comparisons stack.push(arr[i]); } return result; } public static void main(String[] args) { int[] arr1 = {4, 5, 2, 10, 8}; System.out.println(Arrays.toString(nextGreater(arr1))); // [5, 10, 10, -1, -1] int[] arr2 = {1, 3, 2, 4}; System.out.println(Arrays.toString(nextGreater(arr2))); // [3, 4, 4, -1] int[] arr3 = {5, 4, 3, 2, 1}; System.out.println(Arrays.toString(nextGreater(arr3))); // [-1, -1, -1, -1, -1] }}Problem 6 — Sort a Stack Using RecursionDifficulty: HardProblem: Sort a stack in ascending order (smallest on top) using only recursion — no loops, no extra data structure.// SortStack.javaimport java.util.Stack;public class SortStack { // Insert element in correct sorted position public static void sortedInsert(Stack<Integer> stack, int item) { if (stack.isEmpty() || item > stack.peek()) { stack.push(item); return; } int top = stack.pop(); sortedInsert(stack, item); stack.push(top); } // Sort the stack public static void sortStack(Stack<Integer> stack) { if (stack.isEmpty()) return; int top = stack.pop(); sortStack(stack); // sort remaining sortedInsert(stack, top); // insert top in sorted position } public static void main(String[] args) { Stack<Integer> stack = new Stack<>(); stack.push(34); stack.push(3); stack.push(31); stack.push(98); stack.push(92); stack.push(23); System.out.println("Before sort: " + stack); sortStack(stack); System.out.println("After sort: " + stack); // smallest on top }}13. Summary & Key TakeawaysA stack is a simple, elegant, and powerful data structure. Here is everything in one place:What it is: A linear data structure that follows LIFO — Last In, First Out.Core operations: push (add to top), pop (remove from top), peek (view top), isEmpty — all in O(1) time.Three ways to implement it in Java:Array-based: fast, fixed size, risk of overflowArrayList-based: dynamic, easy, slightly more overheadLinkedList-based: truly dynamic, memory-efficient per-element, best for unknown sizesWhen to use it:Undo/redo systemsBrowser navigationBalancing brackets and parenthesesEvaluating mathematical expressionsBacktracking problemsManaging recursive function callsDepth-first searchWhen NOT to use it:When you need random access to elementsWhen insertion/deletion is needed from both ends (use Deque)When you need to search efficiently (use HashMap or BST)Modern Java recommendation: Prefer ArrayDeque over the legacy Stack class for non-thread-safe scenarios. Use Stack only when you need synchronized access.The stack is one of those data structures that once you truly understand, you start seeing it everywhere — in your browser, in your IDE, in recursive algorithms, and deep within the operating system itself.This article covered everything from the fundamentals of the Stack data structure to multiple Java implementations, time complexity analysis, real-world applications, and six practice problems of increasing difficulty. Bookmark it as a reference and revisit the practice problems regularly — they are the real test of your understanding.

DataStructuresJavaStackDataStructureLIFO

Queue Data Structure Complete Guide - Java Explained With All Operations

IntroductionIf you have been learning Data Structures and Algorithms, you have probably already spent time with arrays, linked lists, and stacks. Now it is time to meet one of the most important and widely used data structures in computer science — the Queue.Queue is not just a theoretical concept. It powers some of the most critical systems you use every day — from how your printer handles jobs, to how your CPU schedules tasks, to how Google Maps finds the shortest path between two locations. Understanding Queue deeply means understanding how real systems work.In this complete guide we will cover absolutely everything — what a Queue is, how it differs from a Stack, every type of Queue, all operations with code, Java implementations, time and space complexity, common interview questions, and the most important LeetCode problems that use Queue.What Is a Queue?A Queue is a linear data structure that follows the FIFO principle — First In First Out. This means the element that was added first is the one that gets removed first.Think of it exactly like a real-world queue (a line of people). The person who joined the line first gets served first. No cutting in line, no serving from the back — strict order from front to back.This is the fundamental difference between a Queue and a Stack:Stack → LIFO (Last In First Out) — like a stack of plates, you take from the topQueue → FIFO (First In First Out) — like a line of people, you serve from the frontReal Life Examples of QueueBefore writing a single line of code, let us understand where queues appear in real life. This will make every technical concept feel natural.Printer Queue — when you send multiple documents to print, they print in the order they were sent. The first document sent prints first.CPU Task Scheduling — your operating system manages running processes in a queue. Tasks get CPU time in the order they arrive (in basic scheduling).Customer Service Call Center — when you call a helpline and are put on hold, you are placed in a queue. The first caller on hold gets connected first.WhatsApp Messages — messages are delivered in the order they are sent. The first message sent is the first one received.BFS (Breadth First Search) — every time you use Google Maps or any navigation app to find the shortest path, it uses BFS internally which is entirely powered by a Queue.Ticket Booking Systems — online booking portals process requests in the order they arrive. First come first served.Queue Terminology — Key Terms You Must KnowBefore diving into code, let us get the vocabulary right:Front — the end from which elements are removed (dequeued). This is where the "first person in line" stands.Rear (or Back) — the end at which elements are added (enqueued). New arrivals join here.Enqueue — the operation of adding an element to the rear of the queue. Like joining the back of a line.Dequeue — the operation of removing an element from the front of the queue. Like the first person in line being served and leaving.Peek (or Front) — looking at the front element without removing it. Like seeing who is first in line without serving them yet.isEmpty — checking whether the queue has no elements.isFull — relevant for fixed-size queues, checking whether no more elements can be added.Types of QueuesThis is where most beginners get confused. There is not just one type of Queue — there are several variations each designed to solve specific problems.1. Simple Queue (Linear Queue)The most basic form. Elements enter from the rear and leave from the front. Strict FIFO, nothing fancy.Enqueue → [ 1 | 2 | 3 | 4 | 5 ] → Dequeue rear frontProblem with Simple Queue: In array-based implementation, once elements are dequeued from the front, those slots cannot be reused even if there is space. This wastes memory. This is why Circular Queue was invented.2. Circular QueueIn a Circular Queue, the rear wraps around to the front when it reaches the end of the array. The last position connects back to the first, forming a circle. This solves the wasted space problem of simple queues. [1] [2] [3] / \ [6] [4] \ / [5] ← rearUsed in: CPU scheduling, memory management, traffic light systems, streaming buffers.3. Double Ended Queue (Deque)A Deque (pronounced "deck") allows insertion and deletion from both ends — front and rear. It is the most flexible queue type.Enqueue Front → [ 1 | 2 | 3 | 4 | 5 ] → Dequeue FrontEnqueue Rear → [ 1 | 2 | 3 | 4 | 5 ] → Dequeue RearTwo subtypes:Input Restricted Deque — insertion only at rear, deletion from both endsOutput Restricted Deque — deletion only at front, insertion at both endsUsed in: browser history (back and forward), undo-redo operations, sliding window problems.4. Priority QueueElements are not served in FIFO order — instead each element has a priority and the element with the highest priority is served first regardless of when it was added.Think of an emergency room. A patient with a critical injury jumps ahead of someone with a minor cut even if they arrived later.Two types:Max Priority Queue — highest value = highest priorityMin Priority Queue — lowest value = highest priorityUsed in: Dijkstra's shortest path, Huffman encoding, A* search algorithm, task scheduling with priorities.5. Blocking QueueA thread-safe queue used in multi-threading. If the queue is empty, a thread trying to dequeue will wait (block) until an element is available. If the queue is full, a thread trying to enqueue will wait until space is available.Used in: Producer-Consumer problems, thread pool implementations, Java's java.util.concurrent package.Queue Operations and Time ComplexityEvery queue operation has a specific time complexity that you must know cold for interviews.OperationDescriptionTime ComplexityEnqueueAdd element to rearO(1)DequeueRemove element from frontO(1)Peek/FrontView front elementO(1)isEmptyCheck if queue is emptyO(1)SizeNumber of elementsO(1)SearchFind a specific elementO(n)Space Complexity: O(n) — where n is the number of elements stored.All core queue operations are O(1). This is what makes Queue so powerful — no matter how many elements are in the queue, adding and removing always takes constant time.Implementing Queue in Java — All WaysJava gives you multiple ways to use a Queue. Let us go through each one.Way 1: Using LinkedList (Most Common)LinkedList implements the Queue interface in Java. This is the most commonly used Queue implementation.import java.util.LinkedList;import java.util.Queue;Queue<Integer> queue = new LinkedList<>();// Enqueue — add to rearqueue.offer(10);queue.offer(20);queue.offer(30);// Peek — view front without removingSystem.out.println(queue.peek()); // 10// Dequeue — remove from frontSystem.out.println(queue.poll()); // 10System.out.println(queue.poll()); // 20// Check emptySystem.out.println(queue.isEmpty()); // false// SizeSystem.out.println(queue.size()); // 1offer() vs add() — both add to the queue. add() throws an exception if the queue is full (for bounded queues). offer() returns false instead. Always prefer offer().poll() vs remove() — both remove from front. remove() throws an exception if queue is empty. poll() returns null. Always prefer poll().peek() vs element() — both view the front. element() throws exception if empty. peek() returns null. Always prefer peek().Way 2: Using ArrayDeque (Fastest)ArrayDeque is faster than LinkedList for Queue operations because it uses a resizable array internally with no node allocation overhead.import java.util.ArrayDeque;import java.util.Queue;Queue<Integer> queue = new ArrayDeque<>();queue.offer(1);queue.offer(2);queue.offer(3);System.out.println(queue.peek()); // 1System.out.println(queue.poll()); // 1System.out.println(queue.size()); // 2When to use ArrayDeque over LinkedList? Use ArrayDeque whenever possible for Queue or Stack operations. It is faster because it avoids the overhead of node objects that LinkedList creates for every element. In competitive programming and interviews, ArrayDeque is the preferred choice.Way 3: Using Deque (Double Ended Queue)import java.util.ArrayDeque;import java.util.Deque;Deque<Integer> deque = new ArrayDeque<>();// Add to frontdeque.offerFirst(10);// Add to reardeque.offerLast(20);deque.offerLast(30);// Remove from frontSystem.out.println(deque.pollFirst()); // 10// Remove from rearSystem.out.println(deque.pollLast()); // 30// Peek front and rearSystem.out.println(deque.peekFirst()); // 20System.out.println(deque.peekLast()); // 20Way 4: Using PriorityQueueimport java.util.PriorityQueue;// Min Heap — smallest element has highest priorityPriorityQueue<Integer> minPQ = new PriorityQueue<>();minPQ.offer(30);minPQ.offer(10);minPQ.offer(20);System.out.println(minPQ.poll()); // 10 — smallest comes out first// Max Heap — largest element has highest priorityPriorityQueue<Integer> maxPQ = new PriorityQueue<>((a, b) -> b - a);maxPQ.offer(30);maxPQ.offer(10);maxPQ.offer(20);System.out.println(maxPQ.poll()); // 30 — largest comes out firstWay 5: Implementing Queue From Scratch Using ArrayUnderstanding the underlying implementation helps you in interviews when asked to build one from scratch.class MyQueue { private int[] arr; private int front; private int rear; private int size; private int capacity; public MyQueue(int capacity) { this.capacity = capacity; arr = new int[capacity]; front = 0; rear = -1; size = 0; } public void enqueue(int val) { if (size == capacity) { System.out.println("Queue is full!"); return; } rear = (rear + 1) % capacity; // circular wrapping arr[rear] = val; size++; } public int dequeue() { if (isEmpty()) { System.out.println("Queue is empty!"); return -1; } int val = arr[front]; front = (front + 1) % capacity; // circular wrapping size--; return val; } public int peek() { if (isEmpty()) return -1; return arr[front]; } public boolean isEmpty() { return size == 0; } public int size() { return size; }}Notice the % capacity in enqueue and dequeue — that is what makes it a Circular Queue. Without this, once the rear reaches the end of the array, you cannot add more even if front has moved forward and freed up space.Way 6: Implementing Queue Using Two StacksThis is a very popular interview question — implement a Queue using two stacks. The idea is to use one stack for enqueue and another for dequeue.class QueueUsingTwoStacks { Stack<Integer> s1 = new Stack<>(); // for enqueue Stack<Integer> s2 = new Stack<>(); // for dequeue public void enqueue(int val) { s1.push(val); // always push to s1 } public int dequeue() { if (s2.isEmpty()) { // transfer all elements from s1 to s2 // this reverses the order, giving FIFO behavior while (!s1.isEmpty()) { s2.push(s1.pop()); } } return s2.pop(); } public int peek() { if (s2.isEmpty()) { while (!s1.isEmpty()) { s2.push(s1.pop()); } } return s2.peek(); } public boolean isEmpty() { return s1.isEmpty() && s2.isEmpty(); }}Why does this work?When you transfer elements from s1 to s2, the order reverses. The element that was added first to s1 ends up on top of s2 — which means it gets dequeued first. FIFO achieved using two LIFOs!Amortized time complexity: Each element is pushed and popped at most twice (once in s1, once in s2). So dequeue is O(1) amortized even though individual calls might take O(n).This is LeetCode 232 — Implement Queue using Stacks.Queue vs Stack — Side by SideFeatureQueueStackPrincipleFIFO — First In First OutLIFO — Last In First OutInsert atRearTopRemove fromFrontTopReal lifeLine of peopleStack of platesJava classLinkedList, ArrayDequeStack, ArrayDequeMain useBFS, schedulingDFS, backtracking, parsingPeekFront elementTop elementBFS — The Most Important Application of QueueBreadth First Search (BFS) is the single most important algorithm that uses a Queue. Understanding BFS is why Queue matters so much in DSA.BFS explores a graph or tree level by level — all nodes at distance 1 first, then all at distance 2, and so on. A Queue naturally enforces this level-by-level behavior.public void bfs(int start, List<List<Integer>> graph) { Queue<Integer> queue = new LinkedList<>(); boolean[] visited = new boolean[graph.size()]; queue.offer(start); visited[start] = true; while (!queue.isEmpty()) { int node = queue.poll(); // process front node System.out.print(node + " "); for (int neighbor : graph.get(node)) { if (!visited[neighbor]) { visited[neighbor] = true; queue.offer(neighbor); // add unvisited neighbors to rear } } }}Why Queue and not Stack for BFS? Queue ensures you process all neighbors of a node before going deeper. Stack would take you deep into one path first — that is DFS, not BFS. The FIFO property is what guarantees level-by-level exploration.BFS with Queue is used in:Shortest path in unweighted graphsLevel order traversal of treesFinding connected componentsWord ladder problemsRotten oranges, flood fill, and matrix BFS problemsLevel Order Traversal — BFS on TreesOne of the most common Queue problems in interviews is Level Order Traversal of a binary tree.public List<List<Integer>> levelOrder(TreeNode root) { List<List<Integer>> result = new ArrayList<>(); if (root == null) return result; Queue<TreeNode> queue = new LinkedList<>(); queue.offer(root); while (!queue.isEmpty()) { int levelSize = queue.size(); // number of nodes at current level List<Integer> level = new ArrayList<>(); for (int i = 0; i < levelSize; i++) { TreeNode node = queue.poll(); level.add(node.val); if (node.left != null) queue.offer(node.left); if (node.right != null) queue.offer(node.right); } result.add(level); } return result;}The key trick here is using queue.size() at the start of each while loop iteration to know exactly how many nodes belong to the current level. Process exactly that many nodes, then move to the next level.This is LeetCode 102 — Binary Tree Level Order Traversal.Sliding Window Maximum — Monotonic DequeOne of the most impressive Queue applications is the Sliding Window Maximum problem using a Monotonic Deque. This is the queue equivalent of the Monotonic Stack pattern you saw in stack problems.The idea — maintain a deque that stores indices of elements in decreasing order. The front always holds the index of the maximum element in the current window.public int[] maxSlidingWindow(int[] nums, int k) { Deque<Integer> deque = new ArrayDeque<>(); // stores indices int[] result = new int[nums.length - k + 1]; int idx = 0; for (int i = 0; i < nums.length; i++) { // remove indices that are out of the current window while (!deque.isEmpty() && deque.peekFirst() < i - k + 1) { deque.pollFirst(); } // remove indices whose values are smaller than current // they can never be the maximum for any future window while (!deque.isEmpty() && nums[deque.peekLast()] < nums[i]) { deque.pollLast(); } deque.offerLast(i); // window is fully formed, record maximum (front of deque) if (i >= k - 1) { result[idx++] = nums[deque.peekFirst()]; } } return result;}This gives O(n) time for what would otherwise be an O(n×k) problem. This is LeetCode 239 — Sliding Window Maximum.Java Queue Interface — Complete Method ReferenceHere is every method you will ever need from Java's Queue and Deque interfaces:Queue Methods:offer(e) — add to rear, returns false if full (preferred over add) poll() — remove from front, returns null if empty (preferred over remove) peek() — view front without removing, returns null if empty (preferred over element) isEmpty() — returns true if no elements size() — returns number of elements contains(o) — returns true if element existsDeque Additional Methods:offerFirst(e) — add to front offerLast(e) — add to rear pollFirst() — remove from front pollLast() — remove from rear peekFirst() — view front peekLast() — view rearPriorityQueue Specific:offer(e) — add with natural ordering or custom comparator poll() — remove element with highest priority peek() — view highest priority element without removingCommon Interview Questions About QueueThese are the questions interviewers ask to test your understanding of queues conceptually — not just coding.Q1. What is the difference between Queue and Stack? Queue is FIFO — elements are removed in the order they were added. Stack is LIFO — the most recently added element is removed first. Queue removes from the front, Stack removes from the top.Q2. Why is ArrayDeque preferred over LinkedList for Queue in Java? ArrayDeque uses a resizable array internally and has better cache locality and no node allocation overhead. LinkedList creates a new node object for every element added, which means more garbage collection pressure. ArrayDeque is faster in practice for most Queue use cases.Q3. When would you use a PriorityQueue instead of a regular Queue? When the order of processing depends on priority rather than arrival order. For example in a hospital, critical patients are treated before minor cases regardless of when they arrived. Or in Dijkstra's algorithm, always processing the shortest known distance first.Q4. How is Queue used in BFS? BFS uses a Queue to explore nodes level by level. The starting node is enqueued first. Each time a node is dequeued, all its unvisited neighbors are enqueued. Since Queue is FIFO, all neighbors of a node are processed before going deeper — guaranteeing level-by-level exploration.Q5. What is the difference between poll() and remove() in Java Queue? Both remove the front element. remove() throws NoSuchElementException if the queue is empty. poll() returns null instead of throwing. Always use poll() for safer code.Q6. Can a Queue have duplicates? Yes. Queue does not have any restriction on duplicate values unlike Sets. The same value can appear multiple times in a Queue.Q7. What is a Blocking Queue and when is it used? A Blocking Queue is a thread-safe Queue used in multi-threaded applications. When a thread tries to dequeue from an empty queue, it blocks (waits) until an element is available. When a thread tries to enqueue into a full queue, it blocks until space is available. Used in Producer-Consumer patterns.Top LeetCode Problems on QueueHere are the most important LeetCode problems that use Queue — organized from beginner to advanced:Beginner Level:232. Implement Queue using Stacks — implement Queue with two stacks, classic interview question225. Implement Stack using Queues — reverse of 232, implement Stack using Queue933. Number of Recent Calls — sliding window with QueueIntermediate Level:102. Binary Tree Level Order Traversal — BFS on tree, must know107. Binary Tree Level Order Traversal II — same but bottom up994. Rotting Oranges — multi-source BFS on grid1091. Shortest Path in Binary Matrix — BFS shortest path542. 01 Matrix — multi-source BFS, distance to nearest 0127. Word Ladder — BFS on word graph, classicAdvanced Level:239. Sliding Window Maximum — monotonic deque, must know862. Shortest Subarray with Sum at Least K — monotonic deque with prefix sums407. Trapping Rain Water II — 3D BFS with priority queue787. Cheapest Flights Within K Stops — BFS with constraintsQueue Cheat Sheet — Everything at a GlanceCreate a Queue:Queue<Integer> q = new LinkedList<>(); // standardQueue<Integer> q = new ArrayDeque<>(); // faster, preferredDeque<Integer> dq = new ArrayDeque<>(); // double endedPriorityQueue<Integer> pq = new PriorityQueue<>(); // min heapPriorityQueue<Integer> pq = new PriorityQueue<>((a,b) -> b-a); // max heapCore Operations:q.offer(x); // enqueueq.poll(); // dequeueq.peek(); // front elementq.isEmpty(); // check emptyq.size(); // number of elementsDeque Operations:dq.offerFirst(x); // add to frontdq.offerLast(x); // add to reardq.pollFirst(); // remove from frontdq.pollLast(); // remove from reardq.peekFirst(); // view frontdq.peekLast(); // view rearBFS Template:Queue<Integer> queue = new LinkedList<>();queue.offer(start);visited[start] = true;while (!queue.isEmpty()) { int node = queue.poll(); for (int neighbor : graph.get(node)) { if (!visited[neighbor]) { visited[neighbor] = true; queue.offer(neighbor); } }}ConclusionQueue is one of those data structures that appears simple on the surface but has incredible depth once you start exploring its variations and applications. From the basic FIFO concept to Circular Queues, Deques, Priority Queues, Monotonic Deques, and BFS — each layer adds a new tool to your problem-solving arsenal.Here is the learning path to follow based on everything covered in this guide:Start with understanding FIFO vs LIFO and when each applies. Then get comfortable with Java's Queue interface — offer, poll, peek. Practice the BFS template until it feels automatic. Then move to Level Order Traversal problems. Once BFS clicks, tackle multi-source BFS problems like Rotting Oranges. Finally learn the Monotonic Deque pattern for sliding window problems.Master these and you will handle every Queue problem in any coding interview with confidence.

QueueData StructureJavaBFSDequePriority QueueCircular Queue

LeetCode 682 Baseball Game - Java Solution Explained

IntroductionLeetCode 682 Baseball Game is one of the cleanest and most beginner-friendly stack simulation problems on LeetCode. It does not require any fancy algorithm or deep insight — it purely tests whether you can carefully read the rules and simulate them faithfully using the right data structure.But do not let "Easy" fool you. This problem is a great place to practice thinking about which data structure fits best and why. We will solve it three different ways — Stack, ArrayList, and Deque — so you can see the tradeoffs and pick the one that makes most sense to you.You can find the problem here — LeetCode 682 Baseball Game.What Is the Problem Really Asking?You are keeping score for a baseball game with four special rules. You process a list of operations one by one and maintain a record of scores. At the end, return the total sum of all scores in the record.The four operations are:A number (like "5" or "-2") — just add that number as a new score to the record."C" — the last score was invalid, remove it from the record."D" — add a new score that is double the most recent score."+" — add a new score that is the sum of the two most recent scores.That is it. Four rules, simulate them in order, sum up what is left.Real Life Analogy — A Scoreboard With CorrectionsImagine a scoreboard operator at a sports event. They write scores on a whiteboard as the game progresses:A player scores 5 points → write 5Another player scores 2 → write 2Referee says last score was invalid → erase the last number (C)Special bonus rule kicks in → double the last valid score (D)Two scores combine → add the last two scores as one entry (+)At the end, add up everything on the whiteboard. The stack is your whiteboard — you write on top and erase from the top.Why Stack Is the Natural FitAll four operations only ever look at or modify the most recently added scores. C removes the last one. D doubles the last one. + uses the last two. This "most recent first" access pattern is the definition of LIFO — Last In First Out — which is exactly what a Stack provides.Any time a problem says "the previous score" or "the last two scores," your brain should immediately think Stack.Approach 1: Stack (Your Solution) ✅The IdeaUse a Stack of integers. For each operation:Number → parse and pushC → pop the topD → peek the top, push doubled value+ → pop top two, push both back, push their sumpublic int calPoints(String[] operations) { Stack<Integer> st = new Stack<>(); for (int i = 0; i < operations.length; i++) { String op = operations[i]; if (op.equals("C")) { st.pop(); // remove last score } else if (op.equals("D")) { st.push(st.peek() * 2); // double of last score } else if (op.equals("+")) { int prev1 = st.pop(); // most recent score int prev2 = st.pop(); // second most recent score int sum = prev1 + prev2; st.push(prev2); // put them back st.push(prev1); st.push(sum); // push the new score } else { st.push(Integer.parseInt(op)); // regular number } } // sum all remaining scores int total = 0; while (!st.empty()) { total += st.pop(); } return total;}One small improvement over your original solution — using op.equals("C") instead of op.charAt(0) == 'C'. This is cleaner and handles edge cases better since negative numbers like "-2" also start with - not a digit, so charAt(0) comparisons can get tricky. Using equals is always safer for string operations.Why the + Operation Needs Pop-Push-PopThe trickiest part is the + operation. You need the two most recent scores. Stack only lets you see the top. So you pop the first, then the second, compute the sum, then push both back before pushing the sum. This restores the record correctly — the previous two scores stay, and the new sum score is added on top.Detailed Dry Run — ops = ["5","2","C","D","+"]Let us trace every step carefully:"5" → number, parse and push Stack: [5]"2" → number, parse and push Stack: [5, 2]"C" → remove last score, pop Stack: [5]"D" → double last score, peek=5, push 10 Stack: [5, 10]"+" → sum of last two:pop prev1 = 10pop prev2 = 5sum = 15push prev2=5, push prev1=10, push sum=15 Stack: [5, 10, 15]Sum all: 5 + 10 + 15 = 30 ✅Detailed Dry Run — ops = ["5","-2","4","C","D","9","+","+"]"5" → push 5. Stack: [5]"-2" → push -2. Stack: [5, -2]"4" → push 4. Stack: [5, -2, 4]"C" → pop 4. Stack: [5, -2]"D" → peek=-2, push -4. Stack: [5, -2, -4]"9" → push 9. Stack: [5, -2, -4, 9]"+" → prev1=9, prev2=-4, sum=5. Push -4, 9, 5. Stack: [5, -2, -4, 9, 5]"+" → prev1=5, prev2=9, sum=14. Push 9, 5, 14. Stack: [5, -2, -4, 9, 5, 14]Sum: 5 + (-2) + (-4) + 9 + 5 + 14 = 27 ✅Approach 2: ArrayList (Most Readable)The IdeaArrayList gives you index-based access which makes the + operation much cleaner — no need to pop and push back. Just access the last two elements directly using size()-1 and size()-2.public int calPoints(String[] operations) { ArrayList<Integer> record = new ArrayList<>(); for (String op : operations) { int n = record.size(); if (op.equals("C")) { record.remove(n - 1); // remove last element } else if (op.equals("D")) { record.add(record.get(n - 1) * 2); // double last } else if (op.equals("+")) { // sum of last two — no need to remove and re-add! record.add(record.get(n - 1) + record.get(n - 2)); } else { record.add(Integer.parseInt(op)); } } int total = 0; for (int score : record) { total += score; } return total;}See how the + operation becomes a single line with ArrayList? record.get(n-1) + record.get(n-2) directly accesses the last two elements without any pop-push gymnastics.Dry Run — ops = ["5","2","C","D","+"]"5" → add 5. List: [5]"2" → add 2. List: [5, 2]"C" → remove last. List: [5]"D" → 5×2=10, add 10. List: [5, 10]"+" → get(0)+get(1) = 5+10=15, add 15. List: [5, 10, 15]Sum: 30 ✅Time Complexity: O(n) — single pass through operations Space Complexity: O(n) — ArrayList stores at most n scoresThe one tradeoff — remove(n-1) on an ArrayList is O(1) for the last element (no shifting needed). And get() is O(1). So this is fully O(n) overall and arguably the cleanest solution to read and understand.Approach 3: Deque (ArrayDeque — Fastest in Java)The IdeaArrayDeque is faster than Stack in Java because Stack is synchronized (thread-safe overhead) and ArrayDeque is not. For single-threaded LeetCode problems, ArrayDeque is always the better choice over Stack.public int calPoints(String[] operations) { Deque<Integer> deque = new ArrayDeque<>(); for (String op : operations) { if (op.equals("C")) { deque.pollLast(); // remove last } else if (op.equals("D")) { deque.offerLast(deque.peekLast() * 2); // double last } else if (op.equals("+")) { int prev1 = deque.pollLast(); int prev2 = deque.pollLast(); int sum = prev1 + prev2; deque.offerLast(prev2); // restore deque.offerLast(prev1); // restore deque.offerLast(sum); // new score } else { deque.offerLast(Integer.parseInt(op)); } } int total = 0; for (int score : deque) { total += score; } return total;}The logic is identical to the Stack approach. The only difference is the method names — offerLast instead of push, pollLast instead of pop, peekLast instead of peek.Time Complexity: O(n) Space Complexity: O(n)For iterating a Deque to sum, you can use a for-each loop directly — no need to pop everything out like with Stack.Approach ComparisonApproachTimeSpaceBest ForStackO(n)O(n)Classic interview answer, clear LIFO intentArrayListO(n)O(n)Cleanest code, easiest to readArrayDequeO(n)O(n)Best performance, preferred in productionAll three approaches have identical time and space complexity. The difference is purely in code style and readability. In an interview, any of these is perfectly acceptable. Mention that ArrayDeque is preferred over Stack in Java for performance if you want to impress.Why op.equals() Is Better Than op.charAt(0)Your original solution uses operations[i].charAt(0) == 'C' to check operations. This works but has a subtle risk — the + character check with charAt(0) is fine, but imagine if a future test had a number starting with C or D (it will not in this problem but defensive coding is a good habit). More importantly, "-2".charAt(0) is '-' which is fine, but using equals is semantically clearer — you are comparing the whole string, not just the first character. This shows cleaner coding habits in interviews.Edge Cases to KnowNegative numbers like "-2" Integer.parseInt("-2") handles negatives perfectly. The D operation on -2 gives -4. The + operation works correctly with negatives too. No special handling needed."C" after a "+" that added a score The problem guarantees C always has at least one score to remove. So after + adds a score, a C removes just that one new score — the previous two scores that + used remain intact. This is correct behavior and our solution handles it automatically.All scores removed If all operations are numbers followed by C operations removing every score, the stack ends up empty and the sum is 0. Our while loop handles this correctly — it simply never executes and returns 0.Only one operation A single number like ["5"] → push 5, sum is 5. Works fine.Common Mistakes to AvoidIn the + operation, forgetting to push both numbers back When you pop prev1 and prev2 to compute the sum, you must push them back onto the stack before pushing the sum. If you only push the sum without restoring prev1 and prev2, those scores disappear from the record permanently — which is wrong. The + operation only adds a new score, it does not remove the previous ones.Using charAt(0) comparison for detecting numbers Negative numbers start with -, not a digit. If you check charAt(0) >= '0' && charAt(0) <= '9' to detect numbers, you will miss negatives. The safest approach is to check for C, D, and + explicitly using equals, and fall through to the else for everything else (which covers both positive and negative numbers).Calling st.peek() or st.pop() without checking empty The problem guarantees valid operations — C always has something to remove, + always has two previous scores, D always has one. But in real code and defensive interview solutions, adding empty checks shows good habits even when the constraints guarantee safety.FAQs — People Also AskQ1. Why is Stack a good choice for LeetCode 682 Baseball Game? Because all four operations only access the most recently added scores — the last score for C and D, the last two for +. This "most recent first" access pattern is exactly what LIFO (Last In First Out) provides. Stack's push, pop, and peek all run in O(1) making it perfectly efficient.Q2. What is the time complexity of LeetCode 682? O(n) time where n is the number of operations. Each operation performs a constant number of stack operations (at most 3 pushes/pops for the + case). Space complexity is O(n) for storing scores.Q3. Why does the + operation need to pop and push back in the Stack approach? Stack only gives direct access to the top element. To get the second most recent score, you must pop the first one, peek/pop the second, then push the first one back. The ArrayList approach avoids this by using index-based access directly.Q4. What is the difference between Stack and ArrayDeque in Java for this problem? Both work correctly. ArrayDeque is faster because Stack is a legacy class that extends Vector and is synchronized (thread-safe), adding unnecessary overhead for single-threaded use. ArrayDeque has no synchronization overhead. For LeetCode and interviews, either is acceptable but ArrayDeque is technically better.Q5. Is LeetCode 682 asked in coding interviews? It appears occasionally as a warmup or screening problem. Its main value is testing whether you can carefully simulate rules without making logical errors — a skill that matters in systems programming, game development, and any domain with complex state management.Similar LeetCode Problems to Practice Next71. Simplify Path — Medium — stack simulation with path operations1047. Remove All Adjacent Duplicates In String — Easy — stack simulation735. Asteroid Collision — Medium — stack simulation with conditions150. Evaluate Reverse Polish Notation — Medium — stack with arithmetic operations, very similar pattern227. Basic Calculator II — Medium — stack with operator precedenceConclusionLeetCode 682 Baseball Game is a perfect problem to build confidence with stack simulation. The four operations are clearly defined, the rules are unambiguous, and the stack maps naturally to every operation. Once you understand why pop-push-back is needed for + in the stack approach and how ArrayList simplifies that with index access, you have genuinely understood the tradeoffs between these data structures.If you are newer to stacks, start with the ArrayList solution for clarity. Once that clicks, rewrite it with Stack to understand the LIFO mechanics. Then try ArrayDeque to understand why it is preferred in modern Java code.

LeetCodeJavaStackArrayListDequeEasy

Reverse a Stack — GFG Problem Solved (3 Approaches Explained)

What Is This Problem About?This is a classic stack problem from GeeksForGeeks — "Reverse a Stack" (Medium | 4 Points). You can find it on GFG by Reverse a Stack.You are given a stack. Your job is simple — reverse it. The element that was at the bottom should now be at the top, and vice versa.Example:Input: [1, 2, 3, 4] → bottom to top, so 4 is on topOutput: [1, 2, 3, 4] → after reversal, 1 is on topWait — the input and output look the same? That is because GFG displays the result top to bottom after reversal. So after reversing, 1 comes to the top, and printing top to bottom gives [1, 2, 3, 4]. The stack is indeed reversed internally.Approach 1 — Using Two Extra StacksIntuition: Pop everything from the original stack into Stack 1 — this reverses the order once. Then pop everything from Stack 1 into Stack 2 — this reverses it again, back to original order. Now push everything from Stack 2 back into the original stack. The result? The original stack is reversed.Why does this work? Two reversals cancel each other out to give you... wait, that sounds wrong. Let us trace it:Original: [1, 2, 3, 4] → top is 4After → S1: [4, 3, 2, 1] → top is 1After → S2: [1, 2, 3, 4] → top is 4Push S2 back → st: [1, 2, 3, 4] → top is 4Hmm, that brings it back to the same thing. This approach with two stacks actually does NOT work correctly — it ends up restoring the original order. This is why the approach was commented out in the original code. Good observation to catch in an interview.Lesson: Two full reversals = no change. One reversal = what we want. Keep this in mind.Approach 2 — Using an ArrayList (Clean & Simple) ✅Intuition: Pop all elements from the stack into an ArrayList. At this point, the ArrayList holds elements in reverse order (because popping reverses). Then push them back from index 0 to end. This is the clean, working solution.Stack: [1, 2, 3, 4] → top is 4Pop into ArrayList: [4, 3, 2, 1]Push back index 0→end: push 4 → st: [4] push 3 → st: [4, 3] push 2 → st: [4, 3, 2] push 1 → st: [4, 3, 2, 1] → top is now 1 ✓The stack is now reversed. 1 is on top.public static void reverseStack(Stack<Integer> st) { if (st.empty()) return; ArrayList<Integer> list = new ArrayList<>(); // Pop all elements — goes in reverse order into list while (!st.empty()) { list.add(st.pop()); } // Push back from index 0 — restores in reversed order for (int i = 0; i < list.size(); i++) { st.push(list.get(i)); }}Time Complexity: O(n) — one pass to pop, one pass to push.Space Complexity: O(n) — for the ArrayList.Why this works: When you pop all elements into a list, the top element (last inserted) goes to index 0. When you push back from index 0, that element goes in first and ends up at the bottom. The bottom element (first inserted) was popped last, sits at the end of the list, and gets pushed last — ending up on top. That is a perfect reversal.Approach 3 — Using Recursion (No Extra Space) ✅This is the most elegant approach and the one interviewers love to ask about.Intuition: Use two recursive functions:reverseStack — pops the top element, recursively reverses the rest, then inserts the popped element at the bottom.insertAtBottom — holds all elements out while inserting one element at the very bottom, then restores everything.// Insert an item at the bottom of the stackstatic void insertAtBottom(Stack<Integer> st, int item) { if (st.empty()) { st.push(item); return; } int top = st.pop(); insertAtBottom(st, item); st.push(top);}// Reverse the stackpublic static void reverseStack(Stack<Integer> st) { if (st.empty()) return; int top = st.pop(); reverseStack(st); // reverse remaining stack insertAtBottom(st, top); // put popped element at the bottom}```**Dry Run with [1, 2, 3]:**```reverseStack([1,2,3]) → pop 3, reverseStack([1,2]) reverseStack([1,2]) → pop 2, reverseStack([1]) reverseStack([1]) → pop 1, reverseStack([]) base case → return insertAtBottom([], 1) → push 1 → [1] insertAtBottom([1], 2) → 2 < 1? no → pop 1, insert 2, push 1 → [2,1]insertAtBottom([2,1], 3) → pop 1, pop 2, push 3, push 2, push 1 → [3,2,1]Final stack top → 3... wait, let us recheck display.Top is 3, which was originally at bottom. ✓ Reversed!Time Complexity: O(n²) — for each of n elements, insertAtBottom takes O(n).Space Complexity: O(n) — recursive call stack.Which Approach Should You Use?ApproachTimeSpaceSimplicityInterview ValueTwo Extra Stacks❌ Does not workO(n)SimpleLowArrayListO(n)O(n)Very EasyMediumRecursionO(n²)O(n)ModerateHighFor a coding interview, always mention the recursive approach — it shows you understand stack mechanics deeply. For production code, the ArrayList approach is cleaner and faster.Key TakeawayReversing a stack is fundamentally about understanding LIFO. Because a stack only allows access from the top, you need a systematic way to invert the order — whether that is using auxiliary storage like an ArrayList, or using the call stack itself via recursion. Both are valid. Both teach you something different about how stacks behave.The next time you see a problem that involves reversing, reordering, or inserting at the bottom of a stack — your first instinct should be recursion with insertAtBottom. It is a pattern that appears again and again in DSA.And if you want to understand Stack from Scratch?If you are just getting started with stacks or want a complete reference — I have written a detailed in-depth guide on the Stack Data Structure in Java covering everything from what a stack is, how LIFO works, all three implementations (Array, ArrayList, LinkedList), every operation explained with code, time complexity, advantages, disadvantages, real-world use cases, and six practice problems with full solutions.Check it out here → Stack Data Structure in Java: The Complete GuideIt is the perfect companion to this problem walkthrough — start there if you want the full picture, then come back here for the problem-solving side.

StackProblemsJavaMediumGeeksForGeeksReverseStack

LeetCode 2390: Removing Stars From a String — Java Solution With All Approaches Explained

Introduction: What Is LeetCode 2390 Removing Stars From a String?If you are preparing for coding interviews at companies like Google, Amazon, or Microsoft, LeetCode 2390 Removing Stars From a String is a must-solve problem. It tests your understanding of the stack data structure and string manipulation — two of the most frequently tested topics in technical interviews.In this article, we will cover:What the problem is asking in plain English3 different Java approaches (Brute Force, Stack, StringBuilder)Step-by-step dry run with examplesTime and space complexity for each approachCommon mistakes to avoidFAQs that appear in Google's People Also AskLet's dive in!Problem Statement SummaryYou are given a string s containing lowercase letters and stars *. In one operation:Choose any * in the stringRemove the * itself AND the closest non-star character to its leftRepeat until all stars are removed and return the final string.Example:Input: s = "leet**cod*e"Output: "lecoe"Real Life Analogy — Think of It as a Backspace KeyImagine you are typing on a keyboard. Every * acts as your backspace key — it deletes itself and the character just before it.You type "leet" and press backspace twice:Backspace 1 → deletes t → "lee"Backspace 2 → deletes e → "le"That is exactly what this problem simulates! Once you see it this way, the solution becomes very obvious.Approach 1: Brute Force Simulation (Beginner Friendly)IdeaDirectly simulate the process the problem describes:Scan the string from left to rightFind the first *Remove it and the character just before itRepeat until no stars remainJava Codepublic String removeStars(String s) {StringBuilder sb = new StringBuilder(s);int i = 0;while (i < sb.length()) {if (sb.charAt(i) == '*') {sb.deleteCharAt(i); // remove the starif (i > 0) {sb.deleteCharAt(i - 1); // remove closest left characteri--;}} else {i++;}}return sb.toString();}Time and Space ComplexityComplexityValueReasonTimeO(n²)Each deletion shifts all remaining charactersSpaceO(n)StringBuilder storage⚠️ Important WarningThis problem has n up to 100,000. Brute force will get Time Limit Exceeded (TLE) on LeetCode. Use this only to understand the concept, never in production or interviews.Approach 2: Stack Based Solution (Interview Favorite)IdeaA stack is the perfect data structure here because:We always remove the most recently added letter when a * appearsThat is the definition of Last In First Out (LIFO) — exactly what a stack doesAlgorithm:Letter → push onto stack* → pop from stack (removes closest left character)At the end, build result from stack contentsJava Codepublic String removeStars(String s) {Stack<Character> st = new Stack<>();for (int i = 0; i < s.length(); i++) {char c = s.charAt(i);if (c == '*') {if (!st.empty()) {st.pop();}} else {st.push(c);}}StringBuilder sb = new StringBuilder();while (!st.empty()) {sb.append(st.pop());}return sb.reverse().toString();}Step-by-Step Dry Run — "leet**cod*e"StepCharacterActionStack State1lpush[l]2epush[l,e]3epush[l,e,e]4tpush[l,e,e,t]5*pop t[l,e,e]6*pop e[l,e]7cpush[l,e,c]8opush[l,e,c,o]9dpush[l,e,c,o,d]10*pop d[l,e,c,o]11epush[l,e,c,o,e]✅ Final Answer: "lecoe"Time and Space ComplexityComplexityValueReasonTimeO(n)Single pass through the stringSpaceO(n)Stack holds up to n charactersApproach 3: StringBuilder as Stack (Optimal Solution) ✅IdeaThis is the best and most optimized approach. A StringBuilder can act as a stack:append(c) → works like pushdeleteCharAt(sb.length() - 1) → works like popNo reverse needed at the end unlike the Stack approachJava Codepublic String removeStars(String s) {StringBuilder sb = new StringBuilder();for (int i = 0; i < s.length(); i++) {char c = s.charAt(i);if (c == '*') {if (sb.length() > 0) {sb.deleteCharAt(sb.length() - 1);}} else {sb.append(c);}}return sb.toString();}Step-by-Step Dry Run — "erase*****"StepCharacterActionStringBuilder1eappend"e"2rappend"er"3aappend"era"4sappend"eras"5eappend"erase"6*delete last"eras"7*delete last"era"8*delete last"er"9*delete last"e"10*delete last""✅ Final Answer: ""Why StringBuilder Beats Stack in JavaFactorStack<Character>StringBuilderMemoryBoxes char → Character objectWorks on primitives directlyReverse neededYesNoCode lengthMore verboseCleaner and shorterPerformanceSlightly slowerFasterTime and Space ComplexityComplexityValueReasonTimeO(n)One pass, each character processed onceSpaceO(n)StringBuilder storageAll Approaches Comparison TableApproachTimeSpacePasses LeetCode?Best ForBrute ForceO(n²)O(n)❌ TLEUnderstanding conceptStackO(n)O(n)✅ YesInterview explanationStringBuilderO(n)O(n)✅ YesBest solutionHow This Relates to LeetCode 3174 Clear DigitsIf you have already solved LeetCode 3174 Clear Digits, you will notice this problem is nearly identical:Feature3174 Clear Digits2390 Removing StarsTriggerDigit 0-9Star *RemovesClosest left non-digitClosest left non-starDifficultyEasyMediumBest approachStringBuilderStringBuilderThe exact same solution pattern works for both. This is why learning patterns matters more than memorizing individual solutions!Common Mistakes to Avoid1. Not checking sb.length() > 0 before deleting Even though the problem guarantees valid input, always add this guard. It shows clean, defensive coding in interviews.2. Forgetting to reverse when using Stack Stack gives you characters in reverse order. If you forget .reverse(), your answer will be backwards.3. Using Brute Force for large inputs With n up to 100,000, O(n²) will time out. Always use the O(n) approach.FAQs — People Also AskQ1. What data structure is best for LeetCode 2390? A Stack or StringBuilder used as a stack is the best data structure. Both give O(n) time complexity. StringBuilder is slightly more optimal in Java because it avoids object boxing overhead.Q2. Why does a star remove the closest left character? Because the problem defines it that way — think of * as a backspace key on a keyboard. It always deletes the character immediately before the cursor position.Q3. What is the time complexity of LeetCode 2390? The optimal solution runs in O(n) time and O(n) space, where n is the length of the input string.Q4. Is LeetCode 2390 asked in Google interviews? Yes, this type of stack simulation problem is commonly asked at Google, Amazon, Microsoft, and Meta interviews as it tests understanding of LIFO operations and string manipulation.Q5. What is the difference between LeetCode 2390 and LeetCode 844? Both use the same backspace simulation pattern. In 844 Backspace String Compare, # is the backspace character and you compare two strings. In 2390, * is the backspace and you return the final string.Similar LeetCode Problems to Practice NextProblemDifficultyPattern844. Backspace String CompareEasyStack simulation1047. Remove All Adjacent Duplicates In StringEasyStack simulation3174. Clear DigitsEasyStack simulation20. Valid ParenthesesEasyClassic stack735. Asteroid CollisionMediumStack simulationConclusionLeetCode 2390 Removing Stars From a String is a classic stack simulation problem that every developer preparing for coding interviews should master. The key insight is recognizing that * behaves exactly like a backspace key, which makes a stack or StringBuilder the perfect tool.Quick Recap:Brute force works conceptually but TLEs on large inputsStack solution is clean and great for explaining in interviewsStringBuilder solution is the most optimal in Java — no boxing, no reversal

StringStackMediumLeetCode

LeetCode 20: Valid Parentheses — Java Solution Explained

IntroductionLeetCode 20 Valid Parentheses is arguably the single most asked Easy problem in coding interviews. It appears at Google, Amazon, Microsoft, Meta, and virtually every company that does technical interviews. It is the textbook introduction to the Stack data structure and teaches you a pattern that shows up in compilers, code editors, HTML parsers, and mathematical expression evaluators.Here is the Link of Question -: LeetCode 20In this article we cover plain English explanation, real life analogy, the optimal stack solution with detailed dry run, all tricky edge cases, complexity analysis, common mistakes, and FAQs.What Is the Problem Really Asking?You are given a string containing only bracket characters — (, ), {, }, [, ]. You need to check if the brackets are correctly matched and nested.Three rules must hold:Every opening bracket must be closed by the same type of closing bracketBrackets must be closed in the correct order — the most recently opened must be closed firstEvery closing bracket must have a corresponding opening bracketReal Life Analogy — Russian Nesting DollsThink of Russian nesting dolls. You open the biggest doll first, then a medium one inside it, then a small one inside that. To close them back, you must close the smallest first, then medium, then biggest. You cannot close the biggest doll while the smallest is still open inside.That is exactly how brackets work. The last opened bracket must be the first one closed. This Last In First Out behavior is precisely what a Stack is built for.Another analogy — think of a text editor like VS Code. When you type (, it automatically adds ). If you try to close with ] instead, the editor highlights an error. This problem is essentially building that validation logic.The Only Approach You Need: StackThe IdeaScan the string left to rightIf you see an opening bracket → push it onto the stackIf you see a closing bracket → check the top of the stack. If the top is the matching opening bracket, pop it. Otherwise the string is invalid.At the end, if the stack is empty → all brackets matched → return true. If stack still has elements → some brackets were never closed → return false.public boolean isValid(String s) {if (s.length() == 1) return false; // single char can never be validStack<Character> st = new Stack<>();for (int i = 0; i < s.length(); i++) {char c = s.charAt(i);if (c == '(' || c == '{' || c == '[') {st.push(c); // opening bracket — push and wait for its match} else {if (!st.empty()) {// check if top of stack is the matching openerif ((c == ')' && st.peek() != '(') ||(c == '}' && st.peek() != '{') ||(c == ']' && st.peek() != '[')) {return false; // wrong type of closing bracket} else {st.pop(); // matched! remove the opener}} else {return false; // closing bracket with nothing open}}}return st.empty(); // true only if all openers were matched}Detailed Dry Run — s = "([)]"This is the trickiest example. Looks balanced at first glance but is actually invalid.( → opening, push → stack: [(][ → opening, push → stack: [(, []) → closing, peek is [, but ) needs ( → mismatch → return false ✅The stack correctly catches that [ was opened after ( but we tried to close ( before closing [ — wrong order!Dry Run — s = "([{}])"( → push → stack: [(][ → push → stack: [(, []{ → push → stack: [(, [, {]} → peek is {, match! pop → stack: [(, []] → peek is [, match! pop → stack: [(]) → peek is (, match! pop → stack: []Stack is empty → return true ✅Dry Run — s = "(["( → push → stack: [(][ → push → stack: [(, []Loop ends. Stack is NOT empty → return false ✅Two brackets were opened but never closed.All the Edge Cases You Must KnowSingle character like "(" or ")" A single character can never be valid — an opener has nothing to close it, a closer has nothing before it. The early return if (s.length() == 1) return false handles this cleanly.Only closing brackets like "))" The stack is empty when the first ) arrives → return false immediately.Only opening brackets like "(((" All get pushed, nothing gets popped, stack is not empty at end → return false.Interleaved wrong types like "([)]" Caught by the mismatch check when the closing bracket does not match the stack top.Empty string Stack stays empty → st.empty() returns true → returns true. An empty string is technically valid since there are no unmatched brackets. The constraints say length ≥ 1 so this is just good to know.A Cleaner Variation Using HashMapSome developers prefer using a HashMap to store bracket pairs, making the matching condition more readable:public boolean isValid(String s) {Stack<Character> st = new Stack<>();Map<Character, Character> map = new HashMap<>();map.put(')', '(');map.put('}', '{');map.put(']', '[');for (char c : s.toCharArray()) {if (map.containsKey(c)) {// closing bracketif (st.empty() || st.peek() != map.get(c)) {return false;}st.pop();} else {st.push(c); // opening bracket}}return st.empty();}The HashMap maps each closing bracket to its expected opening bracket. This makes adding new bracket types trivial — just add one line to the map. Great for extensibility in real world code.Both versions are O(n) time and O(n) space. Choose whichever feels more readable to you.Time Complexity: O(n) — single pass through the string Space Complexity: O(n) — stack holds at most n/2 opening bracketsWhy Stack Is the Perfect Data Structure HereThe key property this problem exploits is LIFO — Last In First Out. The most recently opened bracket must be the first one closed. That is literally the definition of a stack's behavior.Any time you see a problem where the most recently seen item determines what comes next — think Stack immediately. Valid Parentheses is the purest example of this principle.How This Fits Into the Bigger Stack PatternLooking at everything you have solved so far, notice the pattern evolution:844 Backspace String Compare — # pops the last character 1047 Remove Adjacent Duplicates — matching character pops itself 2390 Removing Stars — * pops the last character 3174 Clear Digits — digit pops the last character 20 Valid Parentheses — closing bracket pops its matching openerAll of these are stack simulations. The difference here is that instead of any character being popped, only the correct matching opener is popped. This matching condition is what makes Valid Parentheses a step up in logic from the previous problems.Common Mistakes to AvoidNot checking if stack is empty before peeking If a closing bracket arrives and the stack is empty, calling peek() throws an EmptyStackException. Always check !st.empty() before peeking or popping.Returning true without checking if stack is empty Even if the loop completes without returning false, unclosed openers remain on the stack. Always return st.empty() at the end, not just true.Pushing closing brackets onto the stack Only push opening brackets. Pushing closing brackets gives completely wrong results and is the most common beginner mistake.Not handling odd length strings If s.length() is odd, it is impossible for all brackets to be matched — you can add if (s.length() % 2 != 0) return false as an early exit for a small optimization.FAQs — People Also AskQ1. Why is a Stack used to solve Valid Parentheses? Because the problem requires LIFO matching — the most recently opened bracket must be the first one closed. Stack's Last In First Out behavior maps perfectly to this requirement, making it the natural and optimal data structure choice.Q2. What is the time complexity of LeetCode 20? O(n) time where n is the length of the string. We make a single pass through the string, and each character is pushed and popped at most once. Space complexity is O(n) in the worst case when all characters are opening brackets.Q3. Can LeetCode 20 be solved without a Stack? Technically yes for simple cases using counters, but only when dealing with a single type of bracket. With three types of brackets that can be nested, a Stack is the only clean solution. Counter-based approaches break down on cases like "([)]".Q4. Is LeetCode 20 asked in FAANG interviews? Absolutely. It is one of the most commonly asked problems across all major tech companies. It tests understanding of the Stack data structure and is often used as a warmup before harder stack problems like Largest Rectangle in Histogram or Decode String.Q5. What happens if the input string has an odd length? An odd-length string can never be valid since brackets always come in pairs. You can add if (s.length() % 2 != 0) return false as an early optimization, though the stack logic handles this correctly on its own.Similar LeetCode Problems to Practice Next1047. Remove All Adjacent Duplicates In String — Easy — stack pattern with characters394. Decode String — Medium — nested brackets with encoding678. Valid Parenthesis String — Medium — wildcards added32. Longest Valid Parentheses — Hard — longest valid substring1249. Minimum Remove to Make Valid Parentheses — Medium — remove minimum brackets to make validConclusionLeetCode 20 Valid Parentheses is the definitive introduction to the Stack data structure in competitive programming and technical interviews. The logic is elegant — push openers, pop on matching closers, check empty at the end. Three rules, one data structure, one pass.Master this problem thoroughly, understand every edge case, and you will have a rock-solid foundation for every stack problem that follows — from Decode String to Largest Rectangle in Histogram.

StringStackEasyLeetCode

LeetCode 144: Binary Tree Preorder Traversal – Java Recursive & Iterative Solution Explained

IntroductionLeetCode 144 – Binary Tree Preorder Traversal is one of the most important beginner-friendly tree traversal problems in Data Structures and Algorithms.This problem helps you understand:Binary Tree TraversalDepth First Search (DFS)RecursionStack-based traversalTree traversal patternsPreorder traversal is widely used in:Tree copyingSerializationExpression treesDFS-based problemsHierarchical data processingIt is also one of the most commonly asked tree problems in coding interviews.Problem Link🔗 ProblemLeetCode 144: Binary Tree Preorder TraversalOfficial Problem:LeetCode Problem LinkProblem StatementGiven the root of a binary tree, return the preorder traversal of its nodes' values.What is Preorder Traversal?In preorder traversal, nodes are visited in this order:Root → Left → RightThe root node is processed first before traversing subtrees.ExampleInputroot = [1,null,2,3]Tree Structure:1\2/3Preorder TraversalTraversal order:1 → 2 → 3Output:[1,2,3]Recursive Approach (Most Common)IntuitionIn preorder traversal:Visit current nodeTraverse left subtreeTraverse right subtreeThis naturally fits recursion because trees themselves are recursive structures.Recursive DFS VisualizationTraversal pattern:Root → Left → RightRecursive function:visit(node)preorder(node.left)preorder(node.right)Java Recursive Solution/*** Definition for a binary tree node.* public class TreeNode {* int val;* TreeNode left;* TreeNode right;* }*/class Solution {public void solve(List<Integer> list, TreeNode root) {if(root == null) return;list.add(root.val);solve(list, root.left);solve(list, root.right);}public List<Integer> preorderTraversal(TreeNode root) {List<Integer> list = new ArrayList<>();solve(list, root);return list;}}Dry Run – Recursive ApproachTree:1\2/3Step 1Start at:1Add:1Move right to:2Step 2Add:2Move left to:3Step 3Add:3Final Answer[1,2,3]Time Complexity – RecursiveTime ComplexityO(N)Every node is visited once.Space ComplexityO(H)Where:H = height of treeRecursive call stack uses extra spaceWorst case:O(N)for skewed trees.Iterative Approach (Interview Follow-Up)The follow-up asks:Can you solve it iteratively?Yes.We use a stack to simulate recursion.Iterative Preorder IntuitionPreorder traversal order is:Root → Left → RightUsing a stack:Process current node immediatelyPush right child firstPush left child secondWhy?Because stacks follow:Last In First Out (LIFO)So left subtree gets processed first.Stack-Based Iterative LogicAlgorithmPush root into stack.Pop node.Add node value.Push right child.Push left child.Repeat until stack becomes empty.Java Iterative Solutionclass Solution {public List<Integer> preorderTraversal(TreeNode root) {List<Integer> ans = new ArrayList<>();if(root == null) return ans;Stack<TreeNode> stack = new Stack<>();stack.push(root);while(!stack.isEmpty()) {TreeNode node = stack.pop();ans.add(node.val);if(node.right != null) {stack.push(node.right);}if(node.left != null) {stack.push(node.left);}}return ans;}}Dry Run – Iterative ApproachTree:1\2/3Step 1Push:1Step 2Pop:1Add:[1]Push right child:2Step 3Pop:2Add:[1,2]Push left child:3Step 4Pop:3Add:[1,2,3]Final Answer[1,2,3]Comparison of ApproachesApproachAdvantagesDisadvantagesRecursiveEasy to understandUses recursion stackIterativeBetter interview practiceSlightly harder logicInterview ExplanationIn interviews, explain:Preorder traversal processes nodes in Root → Left → Right order. Recursion naturally handles this traversal. Iteratively, we use a stack and push the right child before the left child so the left subtree gets processed first.This demonstrates strong DFS and stack understanding.Common Mistakes1. Wrong Traversal OrderIncorrect:Left → Root → RightThat is inorder traversal.Correct preorder:Root → Left → Right2. Forgetting Null Base CaseAlways check:if(root == null) return;3. Wrong Stack Push OrderFor iterative traversal:Push right firstPush left secondOtherwise traversal order becomes incorrect.FAQsQ1. Why is preorder traversal useful?It is heavily used in:Tree cloningSerializationDFS traversalExpression treesQ2. Which approach is preferred in interviews?Recursive is simpler.Iterative is often asked as a follow-up.Q3. Can preorder traversal be done without stack or recursion?Yes.Using Morris Traversal.Q4. What is the difference between preorder, inorder, and postorder?TraversalOrderPreorderRoot → Left → RightInorderLeft → Root → RightPostorderLeft → Right → RootBonus: Morris Preorder TraversalMorris traversal performs preorder traversal using:O(1)extra space.This is considered an advanced interview topic.ConclusionLeetCode 144 is one of the most fundamental binary tree traversal problems.It teaches:DFS traversalRecursionStack simulationBinary tree fundamentalsThe key preorder pattern is:Root → Left → RightMastering this traversal builds a strong foundation for advanced tree problems such as:Tree serializationDFS-based problemsTree reconstructionExpression treesMorris traversal

LeetCodeBinary Tree Preorder TraversalBinary TreeTree TraversalJavaDFSStackRecursionEasy

Delete Middle Element of Stack Without Extra Space | Java Recursive Solution

IntroductionStack-based problems are a core part of data structures and algorithms (DSA) interviews. One such interesting and frequently asked question is deleting the middle element of a stack without using any additional data structure.At first glance, this problem may seem tricky because stacks only allow access to the top element. However, with the help of recursion, it becomes an elegant and intuitive solution.In this article, we will break down the problem, build the intuition, and implement an efficient recursive approach step by step.Link of Problem: GeeksforGeeks – Delete Middle of a StackProblem StatementGiven a stack s, delete the middle element of the stack without using any additional data structure.Definition of Middle ElementThe middle element is defined as:floor((size_of_stack + 1) / 2)Indexing starts from the bottom of the stack (1-based indexing)ExamplesExample 1Input:s = [10, 20, 30, 40, 50]Output:[50, 40, 20, 10]Explanation:Middle index = (5+1)/2 = 3Middle element = 30 → removedExample 2Input:s = [10, 20, 30, 40]Output:[40, 30, 10]Explanation:Middle index = (4+1)/2 = 2Middle element = 20 → removedKey InsightStacks follow LIFO (Last In, First Out), meaning:You can only access/remove the top elementYou cannot directly access the middleSo how do we solve it?We use recursion to:Pop elements until we reach the middleRemove the middle elementPush back all other elementsThis way, no extra data structure is used—just the recursion call stack.Approach: Recursive SolutionIdeaCalculate the middle positionRecursively remove elements from the topWhen the middle is reached → delete itWhile returning, push elements backCode (Java)import java.util.Stack;class Solution {void findMid(Stack<Integer> s, int mid) {// When current stack size equals middle positionif (s.size() == mid) {s.pop(); // delete middle elementreturn;}int temp = s.pop(); // remove top element// Recursive callfindMid(s, mid);// Push element back after recursions.push(temp);}// Function to delete middle element of a stackpublic void deleteMid(Stack<Integer> s) {int mid = (s.size() + 1) / 2;findMid(s, mid);}}Step-by-Step Dry RunLet’s take:Stack (bottom → top): [10, 20, 30, 40, 50]Middle index = 3Recursion pops: 50 → 40Now stack size = 3 → remove 30Push back: 40 → 50Final Stack:[10, 20, 40, 50]Complexity AnalysisTime Complexity: O(n)Each element is removed and added onceAuxiliary Space: O(n)Due to recursion call stackWhy This Approach WorksRecursion simulates stack behaviorNo extra data structures like arrays or lists are usedMaintains original order after deletionEfficient and interview-friendly solutionKey TakeawaysDirect access to middle is not possible in a stackRecursion is the key to solving such constraintsAlways think of breaking + rebuilding for stack problemsThis pattern is useful in many stack-based interview questionsWhen This Problem Is AskedThis problem is commonly seen in:Technical interviewsCoding platforms like GeeksforGeeksStack and recursion-based problem setsIt evaluates:Understanding of stack operationsRecursive thinkingProblem-solving under constraintsConclusionDeleting the middle element of a stack without extra space is a classic example of using recursion effectively. While the problem may seem restrictive, the recursive approach provides a clean and optimal solution.Mastering this concept will help you tackle more advanced stack and recursion problems with confidence.Frequently Asked Questions (FAQs)1. Can this be solved without recursion?Not efficiently without using another data structure. Recursion is the best approach under given constraints.2. Why not use an array or list?The problem explicitly restricts the use of additional data structures.3. What is the best approach?The recursive approach is optimal with O(n) time and space complexity.

GeeksofGeeksEasyStackRecursionJava

LeetCode 735: Asteroid Collision — Java Solution Explained

IntroductionIf you have been building your stack skills through problems like Valid Parentheses, Next Greater Element, and Backspace String Compare, then LeetCode 735 Asteroid Collision is the problem where everything comes together. It is one of the most satisfying Medium problems on LeetCode because it feels like a real simulation — you are literally modelling asteroids flying through space and crashing into each other.You can find the problem here — LeetCode 735 Asteroid Collision.This article breaks everything down in plain English so that anyone — beginner or experienced — can understand exactly what is happening and why the stack is the perfect tool for this problem.What Is the Problem Really Asking?You have a row of asteroids moving through space. Each asteroid has a size and a direction:Positive number → asteroid moving to the rightNegative number → asteroid moving to the leftAll asteroids move at the same speed. When a right-moving asteroid and a left-moving asteroid meet head-on, they collide:The smaller one explodesIf they are the same size, both explodeThe bigger one survives and keeps movingTwo asteroids moving in the same direction never meet, so they never collide.Return the final state of all surviving asteroids after every possible collision has happened.Real Life Analogy — Cars on a HighwayImagine a highway with cars driving in both directions. Cars going right are in one lane, cars going left are in another lane. Now imagine the lanes overlap at some point.A small car going right crashes into a big truck going left — the car gets destroyed, the truck keeps going. Two equally sized cars crash — both are destroyed. A massive truck going right demolishes everything coming from the left until it meets something bigger or nothing at all.That is exactly the asteroid problem. The stack helps us track which asteroids are still "alive" and moving right, waiting to potentially collide with the next left-moving asteroid that comes along.Why Stack Is the Perfect Data Structure HereThe key observation is this — only a right-moving asteroid followed by a left-moving asteroid can collide. A left-moving asteroid might destroy several right-moving ones in a chain before it either survives or gets destroyed itself.This chain reaction behavior — where the outcome of one collision immediately triggers the possibility of another — is exactly what a stack handles naturally. The stack holds right-moving asteroids that are still alive and waiting. When a left-moving asteroid arrives, it battles the top of the stack repeatedly until either it is destroyed or no more collisions are possible.All Possible Collision ScenariosBefore looking at code it is important to understand every case that can happen:Case 1 — Right-moving asteroid (ast[i] > 0) No collision possible immediately. Push it onto the stack and move on.Case 2 — Left-moving asteroid, stack is empty Nothing to collide with. Push it onto the stack.Case 3 — Left-moving asteroid, top of stack is also left-moving (negative) Two asteroids going the same direction never meet. Push it onto the stack.Case 4 — Left-moving asteroid meets right-moving asteroid (collision!) Three sub-cases:Stack top is bigger → left-moving asteroid explodes, stack top survivesStack top is smaller → stack top explodes, left-moving asteroid continues (loop again)Same size → both explodeThe Solution — Stack Simulationpublic int[] asteroidCollision(int[] ast) { Stack<Integer> st = new Stack<>(); for (int i = 0; i < ast.length; i++) { boolean survived = true; // assume current asteroid survives // collision only happens when stack top is positive // and current asteroid is negative while (!st.empty() && st.peek() > 0 && ast[i] < 0) { if (st.peek() > Math.abs(ast[i])) { // stack top is bigger — current asteroid explodes survived = false; break; } else if (st.peek() < Math.abs(ast[i])) { // current asteroid is bigger — stack top explodes // current asteroid keeps going, check next stack element st.pop(); } else { // equal size — both explode st.pop(); survived = false; break; } } if (survived) { st.push(ast[i]); } } // build result array from stack (stack gives reverse order) int[] ans = new int[st.size()]; for (int i = ans.length - 1; i >= 0; i--) { ans[i] = st.pop(); } return ans;}Step-by-Step Dry Run — asteroids = [10, 2, -5]Let us trace exactly what happens:Processing 10:Stack is empty, no collision possiblesurvived = true → push 10Stack: [10]Processing 2:Stack top is 10 (positive), current is 2 (positive) — same direction, no collisionsurvived = true → push 2Stack: [10, 2]Processing -5:Stack top is 2 (positive), current is -5 (negative) — collision!2 < 5 → stack top smaller, pop 2. survived stays trueStack: [10]Stack top is 10 (positive), current is -5 (negative) — collision again!10 > 5 → stack top bigger, current asteroid destroyed. survived = false, breakStack: [10]survived = false → do not push -5Final stack: [10] → output: [10] ✅Step-by-Step Dry Run — asteroids = [3, 5, -6, 2, -1, 4]Processing 3: stack empty → push. Stack: [3]Processing 5: both positive, same direction → push. Stack: [3, 5]Processing -6:Collision with 5: 5 < 6 → pop 5. Stack: [3]Collision with 3: 3 < 6 → pop 3. Stack: []Stack empty → survived = true → push -6Stack: [-6]Processing 2: stack top is -6 (negative), current is 2 (positive) — same direction check fails, no collision → push. Stack: [-6, 2]Processing -1:Collision with 2: 2 > 1 → stack top bigger, -1 explodes. survived = falseStack: [-6, 2]Processing 4: stack top is 2 (positive), current is 4 (positive) — same direction → push. Stack: [-6, 2, 4]Final stack: [-6, 2, 4] → output: [-6, 2, 4] ✅Understanding the survived FlagThe survived boolean flag is the most important design decision in this solution. It tracks whether the current asteroid makes it through all collisions.It starts as true — we assume the asteroid survives until proven otherwise. It only becomes false in two situations — when the stack top is bigger (current asteroid destroyed) or when both are equal size (mutual destruction). If survived is still true after the while loop, the asteroid either won all its battles or never had any — either way it gets pushed onto the stack.This flag eliminates the need for complicated nested conditions and makes the logic clean and readable.Building the Result ArrayOne important detail — when you pop everything from a stack to build an array, the order is reversed. The stack gives you elements from top to bottom (last to first). So we fill the result array from the end to the beginning using i = ans.length - 1 going down to 0. This preserves the original left-to-right order of surviving asteroids.Time and Space ComplexityTime Complexity: O(n) — each asteroid is pushed onto the stack at most once and popped at most once. Even though there is a while loop inside the for loop, each element participates in at most one push and one pop across the entire run. Total operations stay linear.Space Complexity: O(n) — in the worst case (all asteroids moving right, no collisions) all n asteroids sit on the stack simultaneously.Common Mistakes to AvoidForgetting that same-direction asteroids never collide The collision condition is specifically st.peek() > 0 && ast[i] < 0. Two positive asteroids, two negative asteroids, or a negative followed by a positive — none of these collide. Only right then left.Not using a loop for chain collisions A single left-moving asteroid can destroy multiple right-moving ones in sequence. If you only check the stack top once instead of looping, you will miss chain destructions like in the [3, 5, -6] example.Forgetting the survived flag and always pushing Without the flag, a destroyed asteroid still gets pushed onto the stack, giving wrong results.Wrong array reconstruction from stack Forgetting that stack order is reversed and filling the array from left to right gives a backwards answer. Always fill from the last index downward.How This Problem Differs From Previous Stack ProblemsEvery previous stack problem in this series had a simple push-or-pop decision per character. Asteroid Collision introduces something new — a while loop inside the for loop. This is because one incoming asteroid can trigger multiple consecutive pops (chain collisions). The stack is no longer just storing history — it is actively participating in a simulation where multiple stored elements can be affected by a single incoming element.This is the defining characteristic of harder stack problems and is exactly what appears in problems like Largest Rectangle in Histogram and Trapping Rain Water.FAQs — People Also AskQ1. Why is a Stack used to solve LeetCode 735 Asteroid Collision? Because right-moving asteroids wait on the stack until a left-moving asteroid arrives. The left-moving asteroid battles the top of the stack repeatedly — this LIFO chain reaction behavior is exactly what a stack handles naturally and efficiently.Q2. What is the time complexity of LeetCode 735? O(n) time because each asteroid is pushed and popped at most once regardless of how many chain collisions happen. Space complexity is O(n) for the stack in the worst case.Q3. When do two asteroids NOT collide in LeetCode 735? Two asteroids never collide when both move right (both positive), both move left (both negative), or when a left-moving asteroid comes before a right-moving one — they move away from each other in that case.Q4. Is LeetCode 735 asked in coding interviews? Yes, it is commonly asked at companies like Amazon, Google, and Microsoft as a Medium stack problem. It tests whether you can handle simulation problems with multiple conditional branches and chain reactions — skills that translate directly to real world system design thinking.Q5. What is the difference between LeetCode 735 and LeetCode 496 Next Greater Element? Both use a stack and involve comparing elements. In Next Greater Element, you search forward for something bigger. In Asteroid Collision, collisions happen between the current element and stack contents, and the current element might destroy multiple previous elements in a chain before settling. The collision logic in 735 is more complex.Similar LeetCode Problems to Practice Next496. Next Greater Element I — Easy — monotonic stack pattern739. Daily Temperatures — Medium — next greater with index distance1047. Remove All Adjacent Duplicates In String — Easy — chain removal with stack84. Largest Rectangle in Histogram — Hard — advanced stack simulation503. Next Greater Element II — Medium — circular array with monotonic stackConclusionLeetCode 735 Asteroid Collision is a wonderful problem that takes the stack simulation pattern to the next level. The key insight is recognizing that only right-then-left asteroid pairs can collide, that chain collisions require a while loop not just an if statement, and that the survived flag keeps the logic clean across all cases.Work through every dry run in this article carefully — especially the [3, 5, -6, 2, -1, 4] example — because seeing chain collisions play out step by step is what makes this pattern click permanently.Once this problem makes sense, you are genuinely ready for the harder stack problems that follow. Keep going!

LeetCodeJavaStackArrayMedium

Stack Problems Explained: NGR, NGL, NSR, NSL — The Four-Problem Family You Must Master

IntroductionAmong all the problems built around the Stack data structure, four stand out as a family — they appear repeatedly in coding interviews, competitive programming, and real-world software systems. These four are the Next Greater to the Right (NGR), Next Greater to the Left (NGL), Next Smaller to the Right (NSR), and Next Smaller to the Left (NSL).What makes them special is not just their individual solutions — it is the fact that all four are solved by a single elegant technique called the Monotonic Stack. Learn the pattern once, and you have all four in your toolkit permanently.This guide breaks down each problem with a full solution, step-by-step dry run, edge cases, and the exact reasoning behind every decision in the code. Whether you are preparing for a technical interview or simply want to deeply understand this pattern — you are in the right place.The Story That Makes This ClickBefore any code, let us understand this family of problems with one real-world story.Imagine you are standing in a queue at a cricket stadium. Everyone in the queue has a different height. You are standing somewhere in the middle. You look to your right and ask — who is the first person taller than me? That is your Next Greater Element to the Right (NGR).Now you look to your left — who is the first person taller than me on this side? That is your Next Greater to the Left (NGL).Now instead of taller, you ask shorter — who is the first shorter person to my right? That is Next Smaller to the Right (NSR).And shorter to your left? That is Next Smaller to the Left (NSL).Same queue. Same people. Four different questions. Four different answers. This is exactly what these four problems are about — and they all share the same solution pattern.What Is a Monotonic Stack?A monotonic stack is just a regular stack with one rule — elements inside it are always maintained in a specific order, either always increasing or always decreasing from bottom to top.You never enforce this rule explicitly. It happens naturally as you pop elements that violate the order before pushing a new one. This popping step is the key insight — the moment you pop an element, you have found its answer for the current element being processed.This one pattern solves all four problems. Only two small details change between them — the direction of traversal and the comparison condition inside the while loop.The Four Problems — Quick ReferenceProblemDirectionWhat You WantProblem LinksNGRTraverse Right to LeftFirst greater on right"Next Greater Element GFG"NGLTraverse Left to RightFirst greater on left"Previous Greater Element GFG"NSRTraverse Right to LeftFirst smaller on right"Next Smaller Element GFG"NSLTraverse Left to RightFirst smaller on left"Previous Smaller Element GFG"Problem 1 — Next Greater Element to Right (NGR)GFG Problem: Search "Next Greater Element" on GeeksForGeeks Difficulty: Medium | Accuracy: 32.95% | Submissions: 515K+The QuestionFor each element in the array, find the first element to its right that is strictly greater than it. If none exists, return -1.Input: [1, 3, 2, 4] Output: [3, 4, 4, -1]Input: [6, 8, 0, 1, 3] Output: [8, -1, 1, 3, -1]Real World ExampleThink of the stock market. You have daily closing prices: [1, 3, 2, 4]. For each day, you want to know — on which future day will the price first exceed today's price? Day 1 has price 1, first exceeded on Day 2 with price 3. Day 2 has price 3, first exceeded on Day 4 with price 4. Day 3 has price 2, also first exceeded on Day 4 with price 4. Day 4 has no future day, so -1. This is exactly NGR — and it is literally used in financial software to detect price breakout points.The IntuitionThe brute force is obvious — for every element, scan everything to its right and find the first greater one. That works but it is O(n²). For an array of 10⁶ elements that becomes 10¹² operations. It will time out on any large input.The stack insight is this — traverse right to left. As you move left, the stack always holds elements you have already seen on the right side. These are the candidates for being the next greater element. Before pushing the current element, pop all stack elements that are smaller than or equal to it. Why? Because the current element is blocking them — for any future element to the left, the current element will always be encountered first, so those smaller popped elements can never be an answer for anything. Whatever remains on top of the stack after popping is the answer for the current element.Step-by-Step Dry RunArray: [1, 3, 2, 4], traversing right to left.i=3, element is 4. Stack is empty. Answer for index 3 is -1. Push 4. Stack: [4]i=2, element is 2. Top of stack is 4, which is greater than 2. Answer for index 2 is 4. Push 2. Stack: [4, 2]i=1, element is 3. Top of stack is 2, which is not greater than 3. Pop 2. Top is now 4, which is greater than 3. Answer for index 1 is 4. Push 3. Stack: [4, 3]i=0, element is 1. Top of stack is 3, which is greater than 1. Answer for index 0 is 3. Push 1. Stack: [4, 3, 1]Answers collected right to left: [-1, 4, 4, 3] After Collections.reverse(): [3, 4, 4, -1] ✓The Code// NGR — Next Greater Element to Rightclass Solution {public ArrayList<Integer> nextLargerElement(int[] arr) {ArrayList<Integer> result = new ArrayList<>();Stack<Integer> st = new Stack<>();// Traverse from RIGHT to LEFTfor (int i = arr.length - 1; i >= 0; i--) {// Pop all elements smaller than or equal to current// They can never be the answer for any element to the leftwhile (!st.empty() && arr[i] >= st.peek()) {st.pop();}// Whatever is on top now is the next greater elementif (st.empty()) {result.add(-1);} else {result.add(st.peek());}// Push current — it is a candidate for elements to the leftst.push(arr[i]);}// Collected answers right to left, so reverse before returningCollections.reverse(result);return result;}}Edge CasesAll elements decreasing — Input: [5, 4, 3, 2, 1] Output: [-1, -1, -1, -1, -1] Every element has no greater element to its right. Traversing right to left, each new element is larger than everything already in the stack, so the stack gets cleared and the answer is always -1.All elements increasing — Input: [1, 2, 3, 4, 5] Output: [2, 3, 4, 5, -1] Each element's next greater is simply the next element in the array. The last element always gets -1 since nothing exists to its right.All elements equal — Input: [3, 3, 3, 3] Output: [-1, -1, -1, -1] Equal elements do not count as greater. The pop condition uses >= so equals get removed from the stack, ensuring duplicates never answer each other.Single element — Input: [7] Output: [-1] Nothing to the right, always -1.Why only 32.95% accuracy on GFG? Most people either forget to reverse the result at the end, use the wrong comparison in the while loop, or submit a brute force O(n²) solution that times out on large inputs.Problem 2 — Next Greater Element to Left / Previous Greater Element (NGL)GFG Problem: Search "Previous Greater Element" on GeeksForGeeks Difficulty: Medium | Accuracy: 68.93% | Submissions: 7K+The QuestionFor each element in the array, find the first element to its left that is strictly greater than it. If none exists, return -1.Input: [10, 4, 2, 20, 40, 12, 30] Output: [-1, 10, 4, -1, -1, 40, 40]Real World ExampleImagine you are a junior employee at a company. For each person in the office, you want to know — who is the first senior person sitting to their left who earns more? This is NGL. It is used in organizational hierarchy systems, salary band analysis tools, and even in database query optimizers to find the nearest dominant record on the left side.The IntuitionThis is the mirror image of NGR. Instead of traversing right to left, we traverse left to right. The stack holds elements we have already seen from the left side — these are candidates for being the previous greater element. For each new element, pop everything from the stack that is smaller than or equal to it. Whatever remains on top is the first greater element to its left. Then push the current element for future use.No reverse is needed here because we are already going left to right and building the result in order.Step-by-Step Dry RunArray: [10, 4, 2, 20, 40, 12, 30], traversing left to right.i=0, element is 10. Stack is empty. Answer is -1. Push 10. Stack: [10]i=1, element is 4. Top is 10, greater than 4. Answer is 10. Push 4. Stack: [10, 4]i=2, element is 2. Top is 4, greater than 2. Answer is 4. Push 2. Stack: [10, 4, 2]i=3, element is 20. Top is 2, not greater than 20. Pop 2. Top is 4, not greater. Pop 4. Top is 10, not greater. Pop 10. Stack is empty. Answer is -1. Push 20. Stack: [20]i=4, element is 40. Top is 20, not greater. Pop 20. Stack empty. Answer is -1. Push 40. Stack: [40]i=5, element is 12. Top is 40, greater than 12. Answer is 40. Push 12. Stack: [40, 12]i=6, element is 30. Top is 12, not greater than 30. Pop 12. Top is 40, greater than 30. Answer is 40. Push 30. Stack: [40, 30]Result: [-1, 10, 4, -1, -1, 40, 40] ✓ No reverse needed.The Code// NGL — Next Greater Element to Left (Previous Greater Element)class Solution {static ArrayList<Integer> preGreaterEle(int[] arr) {Stack<Integer> st = new Stack<>();ArrayList<Integer> result = new ArrayList<>();// Traverse LEFT to RIGHT — no reverse neededfor (int i = 0; i <= arr.length - 1; i++) {// Pop all elements smaller than or equal to currentwhile (!st.empty() && arr[i] >= st.peek()) {st.pop();}// Top of stack is the previous greater elementif (!st.empty() && st.peek() > arr[i]) {result.add(st.peek());} else {result.add(-1);}// Push current for future elementsst.push(arr[i]);}return result;}}Edge CasesStrictly increasing array — Input: [10, 20, 30, 40] Output: [-1, -1, -1, -1] Each new element is larger than everything before it, so the stack always gets fully cleared. No previous greater exists for any element.First element is always -1 — regardless of its value, the first element has nothing to its left. The stack is empty at i=0, so the answer is always -1 for index 0. This is guaranteed by the logic.Duplicate values — Input: [5, 5, 5] Output: [-1, -1, -1] Equal elements do not qualify as greater. The pop condition uses >= so duplicates get removed from the stack and never answer each other.Problem 3 — Next Smaller Element to Right (NSR)GFG Problem: Search "Next Smaller Element" on GeeksForGeeks Difficulty: Medium | Accuracy: 36.26% | Submissions: 225K+The QuestionFor each element in the array, find the first element to its right that is strictly smaller than it. If none exists, return -1.Input: [4, 8, 5, 2, 25] Output: [2, 5, 2, -1, -1]Input: [13, 7, 6, 12] Output: [7, 6, -1, -1]Real World ExampleYou work at a warehouse. Shelves have items of weights: [4, 8, 5, 2, 25] kg. For each item, the system needs to find the first lighter item sitting to its right on the shelf — this is used to optimize load balancing and shelf arrangement algorithms. Item of 4 kg — first lighter to the right is 2 kg. Item of 8 kg — first lighter is 5 kg. Item of 5 kg — first lighter is 2 kg. Items of 2 kg and 25 kg have no lighter item to their right, so -1.The IntuitionNSR is structurally identical to NGR — we traverse right to left and collect answers, then reverse. The only change is the pop condition. In NGR we popped elements smaller than or equal to current because we wanted greater. Here we want smaller, so we pop elements greater than or equal to current. After popping, whatever remains on top is the first smaller element to the right.Step-by-Step Dry RunArray: [4, 8, 5, 2, 25], traversing right to left.i=4, element is 25. Stack is empty. Answer is -1. Push 25. Stack: [25]i=3, element is 2. Top is 25, which is greater than or equal to 2. Pop 25. Stack is empty. Answer is -1. Push 2. Stack: [2]i=2, element is 5. Top is 2, which is less than 5. Answer is 2. Push 5. Stack: [2, 5]i=1, element is 8. Top is 5, which is less than 8. Answer is 5. Push 8. Stack: [2, 5, 8]i=0, element is 4. Top is 8, which is greater than or equal to 4. Pop 8. Top is 5, which is greater than or equal to 4. Pop 5. Top is 2, which is less than 4. Answer is 2. Push 4. Stack: [2, 4]Answers collected right to left: [-1, -1, 2, 5, 2] After Collections.reverse(): [2, 5, 2, -1, -1] ✓The Code// NSR — Next Smaller Element to Rightclass Solution {static ArrayList<Integer> nextSmallerEle(int[] arr) {Stack<Integer> st = new Stack<>();ArrayList<Integer> result = new ArrayList<>();// Traverse RIGHT to LEFTfor (int i = arr.length - 1; i >= 0; i--) {// Pop elements greater than or equal to current// Opposite of NGR — we want smaller, so clear the bigger oneswhile (!st.empty() && arr[i] <= st.peek()) {st.pop();}// Top is now the next smaller elementif (!st.empty() && st.peek() < arr[i]) {result.add(st.peek());} else {result.add(-1);}st.push(arr[i]);}Collections.reverse(result);return result;}}Edge CasesStrictly decreasing array — Input: [5, 4, 3, 2, 1] Output: [4, 3, 2, 1, -1] Each element's next smaller is simply the next element in the array. Last element is always -1.Strictly increasing array — Input: [1, 2, 3, 4, 5] Output: [-1, -1, -1, -1, -1] No element has a smaller element to its right since the array only grows.Last element is always -1 — nothing exists to its right regardless of its value.Single element — Input: [42] Output: [-1]Why 36.26% accuracy on GFG? The most common mistake is keeping the NGR pop condition (arr[i] >= st.peek()) and only changing the problem description in your head. The pop condition must flip to arr[i] <= st.peek() for NSR. Forgetting this gives completely wrong answers that look plausible, which makes the bug hard to spot.Problem 4 — Next Smaller Element to Left / Previous Smaller Element (NSL)GFG Problem: Search "Previous Smaller Element" on GeeksForGeeksThe QuestionFor each element in the array, find the first element to its left that is strictly smaller than it. If none exists, return -1.Input: [4, 8, 5, 2, 25] Output: [-1, 4, 4, -1, 2]Real World ExampleSame warehouse. Now the system looks left instead of right. For the item weighing 8 kg, the first lighter item to its left is 4 kg. For 25 kg, the first lighter to its left is 2 kg. For 4 kg, nothing lighter exists to its left so -1. For 2 kg, nothing lighter to its left so -1. This kind of lookback query appears in time-series analysis, price history tracking, and sensor data processing.The IntuitionNSL is the mirror of NSR, exactly as NGL was the mirror of NGR. We traverse left to right (no reverse needed). We maintain a stack of candidates from the left. For each element, pop all elements greater than or equal to it — they cannot be the answer since they are not smaller. Whatever remains on top is the first smaller element to the left. Push current and move on.Step-by-Step Dry RunArray: [4, 8, 5, 2, 25], traversing left to right.i=0, element is 4. Stack is empty. Answer is -1. Push 4. Stack: [4]i=1, element is 8. Top is 4, which is less than 8. Answer is 4. Push 8. Stack: [4, 8]i=2, element is 5. Top is 8, which is greater than or equal to 5. Pop 8. Top is 4, which is less than 5. Answer is 4. Push 5. Stack: [4, 5]i=3, element is 2. Top is 5, greater than or equal to 2. Pop 5. Top is 4, greater than or equal to 2. Pop 4. Stack is empty. Answer is -1. Push 2. Stack: [2]i=4, element is 25. Top is 2, which is less than 25. Answer is 2. Push 25. Stack: [2, 25]Result: [-1, 4, 4, -1, 2] ✓ No reverse needed.The Code// NSL — Next Smaller Element to Left (Previous Smaller Element)class Solution {static ArrayList<Integer> prevSmallerEle(int[] arr) {Stack<Integer> st = new Stack<>();ArrayList<Integer> result = new ArrayList<>();// Traverse LEFT to RIGHT — no reverse neededfor (int i = 0; i < arr.length; i++) {// Pop elements greater than or equal to currentwhile (!st.empty() && arr[i] <= st.peek()) {st.pop();}// Top is the previous smaller elementif (!st.empty() && st.peek() < arr[i]) {result.add(st.peek());} else {result.add(-1);}st.push(arr[i]);}return result;}}Edge CasesFirst element is always -1 — nothing exists to its left. Stack is empty at i=0 every time.All same elements — Input: [5, 5, 5, 5] Output: [-1, -1, -1, -1] Equal elements do not qualify as smaller. The condition arr[i] <= st.peek() ensures equals are popped and never answer each other.Single element — Input: [9] Output: [-1]The Master Cheat SheetThis is the one table to save and refer to whenever you encounter any of these four problems.VariantTraverse DirectionPop ConditionReverse Result?NGR — Next Greater RightRight to Leftarr[i] >= st.peek()YesNGL — Next Greater LeftLeft to Rightarr[i] >= st.peek()NoNSR — Next Smaller RightRight to Leftarr[i] <= st.peek()YesNSL — Next Smaller LeftLeft to Rightarr[i] <= st.peek()NoTwo rules to remember forever:Rule 1 — Direction. If you are looking to the right, traverse right to left and reverse at the end. If you are looking to the left, traverse left to right and no reverse is needed.Rule 2 — Pop Condition. If you want a greater element, pop when arr[i] >= st.peek() to clear out smaller useless candidates. If you want a smaller element, pop when arr[i] <= st.peek() to clear out bigger useless candidates.Mix these two rules and you derive all four variants instantly without memorizing anything separately.Common Mistakes to AvoidWrong pop condition — Using > instead of >= in the while loop. This causes duplicate values to wrongly answer each other. Always use >= for greater problems and <= for smaller problems inside the while loop.Forgetting to reverse — For right-to-left traversals (NGR and NSR), you collect answers from right to left. You must call Collections.reverse() before returning. Skipping this is the single most common reason for wrong answers on these problems.Not checking empty stack before peek — Always check !st.empty() before calling st.peek(). An empty stack peek throws EmptyStackException at runtime and will crash your solution.Wrong if-condition after the while loop — After the while loop, the if-condition must use strict comparison. For NGR use st.peek() > arr[i]. For NSR use st.peek() < arr[i]. These must be strict — no equals sign here.Confusing traversal direction with answer direction — You traverse right to left for NGR but the answer array is filled left to right. The reverse at the end handles this. Do not try to index directly into the result array to compensate — just use reverse.Time and Space ComplexityAll four problems run in O(n) time and use O(n) space.Even though there is a while loop nested inside the for loop, each element is pushed into the stack exactly once and popped from the stack at most once. So across the entire traversal, the total number of push and pop operations combined is at most 2n — which gives O(n) overall. This is the beauty of the monotonic stack.Why These Four Problems Matter Beyond GFGThese four patterns are not just textbook exercises. They appear as the hidden sub-problem inside some of the hardest stack questions:-Largest Rectangle in Histogram uses NSR and NSL to find the left and right boundaries of each bar.Trapping Rain Water uses NGR and NGL to determine the water level above each position.Stock Span Problem is literally NGL applied directly to stock prices.Sum of Subarray Minimums uses NSR and NSL together to count contributions of each element.Once you master these four patterns deeply, a whole family of hard problems that previously seemed unapproachable suddenly becomes a matter of recognizing the pattern and applying it.Also on This BlogIf you are building your stack foundation from scratch, check out the complete deep-dive here → Stack Data Structure in Java: The Complete Guide — covering everything from what a stack is, LIFO principle, all three implementations, every operation with code, and six practice problems.

MonotonicStackNextGreaterElementStackProblemsJavaGeeksForGeeksStackPattern