PDA Design Practice Problem Part - 1
Duration: 8 min
This video lesson is available to enrolled students.
Inside: a video lesson and guided study material.
Module outline
- Discrete Mathematics: Set Theory, Relations, Functions, Graph Theory, Group Theory, Propositional and Predicate Logic
- DataBase Management System/DBMS: Basics of DBMS, ER Diagram, Relational Model & Functional Dependencies, Keys & Integrity Constraints, Normalization (1NF - BCNF), Decomposition Properties & 4NF, File Organization & Indexing, Relational Algebra, SQL, Relational Calculus, Transaction Management, Concurrency Control
- Digital Electronics: Digital Systems & Boolean Basics, Logic Gates & Hardware, Boolean Expression, Boolean Minimization, Combinational Circuit, Sequential Circuits, Number System, Number Representation
- Computer Architecture: Floating Point Rep, Cache Memory Organization, Input Output Organisation, Pipelining, Instr Formats & Modes, Control Unit Design
- Operating System: Introduction to OS, Process Management, CPU Scheduling, Process Synchronization, Threads & Process Creation, Deadlock, Memory Management, Virtual Memory, Disc Scheduling, File Management
- C Language: C Fundamentals, Control Flow, Functions, Arrays & Pointers, Storage Classes, Structures & Enums, DMA, Macros, Scoping & File Handling
- Data Structures: Introduction to DS, Array, Stack, Queue, Linked List, Tree, Graphs, Hashing
- Algorithms: Algorithm Analysis, Time Complexity Analysis, Sorting Algorithms, Greedy Algorithms, Dynamic Programming, Minimum Spanning Trees, Shortest Path Algos
- Computer Networks: Introduction to CN, DLL: Access Control, DLL: Flow Control, DLL: Error Control, DLL: Framing, Data Link Layer - Ethernet, Net Layer: IPv4 & Proto, Net Layer: IP Addressing, Net Layer:Routing Protocol, Transport Layer Services, TL: Congestion & UDP, Application Layer, Hardware Basics
- Theory Of Computation/Automata Theory: Introduction to TOC, Deterministic FA (DFA), Non-Deterministic FA, Regular Expressions, Grammar, Regular Language Properties, Moore & Mealy Machines, Pushdown Automata & CFG, Turing Machines, Complexity Theory
- Compiler Design: Intro to Compilers, Lexical Analysis, Grammar & CFG, Syntax Analysis: Top-Down, Syntax Analysis: Bottom-Up, Semantic Analysis & SDT, Intermediate Code Gen, Code Optimization, Run Time Environment
- Engineering Mathematics: Permutation and Combination, Linear Algebra, Calculus, Probability, Statistics
- General Aptitude: Ratio and Proportion (Ratios), Divisibility Rules, Data Interpretation, Logarithm, Number System, HCF LCM, Sequence and Series (Series), Speed Time and Distance, Series (Number and Letter Series) (Numerical Relations and Reasoning), Coding Decoding, Data Sufficiency, Non Verbal Reasoning (Spatial Aptitude) (Spatial Reasoning) (Visual Reasoning), Percentage, Mensuration and Geometry, Mental Ability, Arithmetic, Profit and Loss, Powers and Exponents (Surds and Indices), Average, Deductive and Inductive Reasoning (Logical Deduction and Induction) (Prepositional Reasoning), Syllogisms, Venn Diagram, Seating Arrangements, Blood Relations, Directions (Direction Test), Analogy, Algebra, Time and Work, Analytical Reasoning (Counting Figures Reasoning), Puzzle Solving (Puzzles), Cubes & Dices, Ranking, Order and Sequence, Mixture and Alligation, Age Problems, Clock, Selection Decision Table (Decision Making), Data Arrangement
- English (Verbal Aptitude): Vocabulary, Noun, Subject Verb Agreement (Verb Noun Agreement), Adjectives, Tenses, Pronoun, Preposition, Direct and Indirect Speech, Sentence Re-arrangements (Para Jumbles) (Narrative Sequencing), Sentence Completion (Fill in the blanks), Comprehension / Reading Comprehension / Unseen Passages (Critical Reasoning) (Paragraph Questions), Sentence Correction (Error Correction), Verbal Analogy (Word Based Analogy), Conjunction, Interjection, Verb, Articles, Adverb, Modals, Sentence Construction
- Live Classes Recordings(Earlier Batch): GATE 2026 Live Class
- Full Mock Test:
- Previous Year Papers:
- GATE 2026 Counselling: Counselling and Guidance Sessions
AI summary & chapters
AI Summary
An AI-generated summary of this video lecture.
This educational video features Sanchit Jain Sir from Knowledge Gate explaining how to design a Deterministic Push Down Automata (DPDA) for the specific finite language L = {a, ab}. The lecture begins with the problem statement displayed clearly on the screen. The instructor systematically constructs the state diagram, starting with the initial state and defining transitions for the input symbols 'a' and 'b'. He carefully marks the states that correspond to valid strings in the language. A key part of the lesson involves distinguishing between acceptance by final state and acceptance by empty stack. The instructor draws two separate diagrams to illustrate these distinct acceptance criteria, annotating each transition with the necessary input symbol and stack operation. The visual progression helps students understand how stack symbols like Z0 are managed during the processing of the input string. The video concludes with a complete view of both automata designs, providing a comprehensive reference for exam preparation.
Chapters
0:00 – 2:00 00:00-02:00
The video opens with the instructor introducing the problem: 'Design a Deterministic Push Down Automata for L = {a, ab}?'. He begins drawing the state diagram in red ink. He starts with a state labeled q0, indicating the start of the automaton. He draws a transition arrow to a new state q1 labeled with the input 'a'. He marks q1 with a double circle to signify it is a final state, acknowledging that 'a' is a valid string in the language. Next, he draws a transition from q1 to a state q2 labeled with the input 'b'. He marks q2 as a final state as well, since 'ab' is also in the language. He annotates the transition from q0 to q1 with the stack operation 'a, Z0/Z0', meaning read 'a' and push Z0 (or keep it). He annotates the transition from q1 to q2 with 'b, Z0/Z0'. He then adds epsilon transitions from q1 and q2 to a state qf, labeling them 'epsilon, Z0/Z0', to handle the acceptance logic. The 'Knowledge Gate' logo is visible in the background.
2:00 – 5:00 02:00-05:00
The instructor writes 'final state' next to the first diagram to clarify the acceptance method. He then introduces a second approach, writing 'empty stack' below the first diagram. He begins sketching a second diagram in green ink. He draws state q0 again and transitions to q1 on 'a, Z0/Z0' and to q2 on 'b, Z0/Z0'. He draws epsilon transitions from q1 and q2 to a state q3. He writes 'epsilon, Z0/Z' on these transitions, indicating stack manipulation. He draws a stack symbol Z0 on the right side to visualize the stack content. He explains that for empty stack acceptance, the stack must be empty at the end of the input. He draws a stack diagram on the right showing Z0 being popped. He emphasizes that the machine accepts if the stack is empty. He concludes the lecture by reviewing the complete diagrams for both acceptance methods.
5:00 – 7:42 05:00-07:42
The instructor finalizes the second diagram by ensuring the stack operations are correct for empty stack acceptance. He draws epsilon transitions from q1 and q2 to q3, labeling them 'epsilon, Z0/e' or similar to pop the stack. He draws a stack diagram on the far right showing Z0 being removed. He emphasizes that the machine accepts if the stack is empty. He concludes the lecture by reviewing the complete diagrams for both acceptance methods. The video ends with the full DPDA construction visible on the screen.
The lesson effectively demonstrates the construction of a DPDA for a finite language by contrasting two acceptance criteria. By first drawing a standard final state acceptance model and then modifying it for empty stack acceptance, the instructor clarifies how stack operations and state transitions interact. The visual progression from simple state transitions to annotated stack operations provides a comprehensive understanding of DPDA mechanics for finite sets.