Important Practice Questions & Short Tricks
Duration: 6 min
This video lesson is available to enrolled students.
Inside: a video lesson and guided study material.
Module outline
- Course Overview: About the Course
- Paper - 1 | Unit - 1 | Teaching Aptitude: Nature, Objectives & Characteristics of Teaching, Learners & Learning Process, Factors Affecting Teaching, Methods of Teaching, Teaching-Learning Aids & ICT Integration, Evaluation, Assessment & Measurement
- Paper - 1 | Unit - 2 | Research Aptitude: Introduction to Research, Validity & Reliability, Research Paradigms & Types of Research, Research Process Steps, Research Ethics, Writing & Publication
- Paper - 1 | Unit - 3 | Comprehension: Comprehension / Reading Comprehension / Unseen Passages (Critical Reasoning) (Paragraph Questions)
- Paper - 1 | Unit - 4 | Communication: Communication Basics, Language and Semiotics, Types of Communication, Communication Models, Mass Communication, Mass Media, Journalism, General Knowledge and General Studies related to Communication
- Paper - 1 | Unit - 5 | Mathematical Reasoning and Aptitude: Series (Number and Letter Series) (Numerical Relations and Reasoning), Coding Decoding, Number System, Percentage, Ratio and Proportion (Ratios), Simple Interest and Compound Interest, Speed Time and Distance, Powers and Exponents (Surds and Indices), Profit and Loss, Average, Blood Relations, Directions (Direction Test), Analytical Reasoning (Counting Figures Reasoning), Verbal Analogy (Word Based Analogy), Divisibility Rules, Calendar, Miscellaneous, Time and Work, Algebra
- Paper - 1 | Unit - 6 | Logical Reasoning: Syllogisms, Non Verbal Reasoning (Spatial Aptitude) (Spatial Reasoning) (Visual Reasoning), Deductive and Inductive Reasoning (Logical Deduction and Induction) (Prepositional Reasoning), Venn Diagram, School Of Thoughts, Fallacy, Western Logic
- Paper - 1 | Unit - 7 | Data Interpretation: Data Interpretation
- Paper - 1 | Unit - 8 | Information and Communication Technology: MS Office Applications, Cyber Threats and Malware Attacks, Role of Internet and Web Services, Electronic Data Interchange and E-Commerce, Internet Fundamentals, Web Design & Development, Web Publishing & Hosting, Emerging Technologies, Terms & Abbreviations, Artificial Intelligence, Society, Law & Ethics, Keyboard Shortcuts, Website, Browser & Services
- Paper - 1 | Unit - 9 | People Development and Environment: Ecosystem, Biomes & Environmental Issues, MDG & SDG, Air Pollution, Water Pollution, Soil, Noise Pollution and Waste Management, Natural Resources, Energy & Disaster Management, Global Environmental Conventions – COP, Protocols & ISA
- Paper - 1 | Unit - 10 | Higher Education System: Vedic Education, Jainism & Buddhism, Ancient Universities, Pre-Independence Commissions, Post-Independence Policy, Higher Education Structure & Accreditation, Universities & Learning Programmes, Types of Education & NEP 2020
- Paper 2 | Unit 1 | Discrete Structures and Optimization: Propositional and Predicate Logic, Set Theory, Relations, Functions, Permutation and Combination, Probability, Graph Theory, Group Theory, Digital Systems & Boolean Basics, Boolean Expression, Boolean Minimization, Optimization
- Paper 2 | Unit 2 | Computer System Architecture: Logic Gates & Hardware, Combinational Circuit, Sequential Circuits, Number System, Number Representation, Floating Point Rep, Basics of COA, Register Transfer and Microoperations, Programming the Basic Computer, Instr Formats & Modes, Control Unit Design, Pipelining, Input Output Organisation, Cache Memory Organization, Multiprocessors
- Paper 2 | Unit 3 | Programming Languages and Computer Graphics: Language Design, C Fundamentals, Control Flow, Functions, Arrays & Pointers, Storage Classes, Structures & Enums, DMA, Macros, Scoping & File Handling, HTML Basics, XML, JavaScript-Basics, Java, Basics of Computer Graphics, 2-D Geometrical Transforms and Viewing, 3-D Object Representation, Geometric Transformations and Viewing, OOPS with C++, Java Fundamentals
- Paper 2 | Unit 4 | Database Management Systems: 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, Database Recovery, ORDBMS, Database Security & Authorization, Query Processing & Optimization, Enhanced Data Models, Data Warehousing & Mining, Big Data Systems, NoSQL
- Paper 2 | Unit 5 | System Software and Operating System: Introduction to OS, Process Management, CPU Scheduling, Process Synchronization, Threads & Process Creation, Deadlock, Memory Management, Virtual Memory, Disc Scheduling, File Management, Windows OS, Linux OS, Security, Distributed Systems, Virtual Machines
- Paper 2 | Unit 6 | Software Engineering: Fundamentals of Software Engineering, Software Requirements and Quality Assurance, Software Design, Estimation and Metrics, Software Testing, Software Maintenance and Configuration Management
- Paper 2 | Unit 7 | Data Structures and Algorithms: Introduction to DS, Array, Stack, Queue, Linked List, Tree, Graphs, Hashing, Algorithm Analysis, Time Complexity Analysis, Sorting Algorithms, Greedy Algorithms, Dynamic Programming, Minimum Spanning Trees, Shortest Path Algos, Advanced Algorithms
- Paper 2 | Unit 8 | Theory of Computation and Compilers: 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, 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
- Paper 2 | Unit 9 | Data Communication and Computer Networks: Introduction to CN, Data Communication, 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, Network Security, Mobile Technology, Cloud Computing and IoT, Cloud Computing
- Paper 2 | Unit 10 | Artificial Intelligence: Approaches to AI, Search Algorithms, Game Playing, Knowledge Representation, Planning, Multi Agent Systems, Fuzzy Sets, Natural Language Processing, Artificial Neural Networks, Genetic Algorithms
- Live Classes: NTA UGC NET 2025 Live Class
- Paper 1 | Full Mock Tests:
- Paper 2 | Full Mock Tests:
- Paper 1 | Previous Year Papers:
- Paper 2 | Previous Year Papers:
AI summary & chapters
AI Summary
An AI-generated summary of this video lecture.
The video is a lecture on solving logical reasoning problems related to calendars, presented by an instructor from Knowledge Gate. The first problem, asked in a TCS interview, is a riddle about age: 'The day before yesterday, I was 25 years old, and next year I will turn 28.' The instructor explains that this is possible if the person's birthday is on December 31st and the current date is January 1st of a new year. On December 30th of the previous year, the person was 25. On December 31st, they turned 26. On January 1st of the current year, they are still 26, but they will turn 27 in the current year and 28 in the following year. The second problem asks for the maximum gap between two successive leap years, which is 8 years, as demonstrated by the sequence 1896, 1904, 1908, 1912, 1920, etc. The final problem asks how many weekends are in a year, with the instructor calculating that a year has 52 weeks and 1 or 2 extra days, leading to 52 or 53 weekends, with 53 being the maximum possible. The video uses a digital blackboard for calculations and includes on-screen text for the questions and options.
Chapters
0:00 – 2:00 00:00-02:00
The video opens with a title card for a 'CALENDAR' topic, followed by a lecture screen. The instructor, Yash Jain, introduces a logical puzzle: 'The day before yesterday, I was 25 years old, and next year I will turn 28. How is it possible?' The question is displayed on a green bar at the top. The instructor begins to analyze the problem, setting up the context of a TCS interview question from 2019. The background is a black digital board with white chalk-style drawings of school supplies. The instructor is visible in a small window in the bottom right corner.
2:00 – 5:00 02:00-05:00
The instructor begins to solve the age riddle on the digital blackboard. He writes 'DOB: 31st December' and then uses a timeline to explain the logic. He writes '31st December 2007 -> 25' and '30th December 2008 -> 26', showing that the person was 25 on December 30, 2007. He then writes '1st Jan 2008 -> 26' and '31st Dec 2009 -> 28', explaining that on January 1, 2008, the person is 26, and they will turn 27 in 2008 and 28 in 2009. The key insight is that the 'day before yesterday' was December 30, 2007, and 'next year' refers to 2009, when they will turn 28. The instructor uses arrows and dates to clearly illustrate the timeline.
5:00 – 6:27 05:00-06:27
The video transitions to a new problem: 'The maximum gap between two successive leap year is?'. The options are a) 4, b) 8, c) 2, d) 1. The instructor explains that a leap year occurs every 4 years, but century years are not leap years unless divisible by 400. He provides the example of 1896 and 1904, showing a gap of 8 years. He then moves to the next problem: 'How many weekends are there in a year?'. He explains that a year has 365 days, which is 52 weeks and 1 day, or 52 weeks and 2 days in a leap year. Since a weekend consists of 2 days (Saturday and Sunday), there are at least 52 weekends. In a non-leap year, the extra day could be a Saturday or Sunday, making it 53 weekends. In a leap year, the two extra days could be a Saturday and Sunday, also making it 53 weekends. The maximum is 53. The video ends with a 'THANKS FOR WATCHING' screen.
The video presents a structured lesson on calendar-based logical reasoning, progressing from a complex riddle to two more direct calculation problems. The core teaching method involves breaking down each problem into a clear, step-by-step logical process, often using a timeline or a digital blackboard to visualize the sequence of events. The first problem highlights the importance of carefully interpreting the temporal context of a statement, particularly the ambiguity of 'next year'. The second problem demonstrates the application of the rules for leap years, showing that the maximum gap is 8 years due to the century rule. The final problem applies basic division and understanding of the week cycle to determine the maximum number of weekends in a year. The synthesis of these problems is the application of logical deduction and fundamental calendar rules to solve seemingly paradoxical or quantitative questions.