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Summary: IIT Roorkee is organizing the GATE examination for 2025, and the Data Science and Artificial Intelligence (DA) paper was recently announced for GATE 2024. The GATE DA syllabus 2025 covers a wide range of topics, including Probability, statistics, linear algebra, algorithms, Programming, Data Structures, database management systems, warehousing, machine learning, and Artificial intelligence.
GATE DA syllabus 2025: Candidates who are planning to attempt the exam must be familiar with the GATE Syllabus for Data Science and Artificial Intelligence. We have included detailed topics in this article to help readers better understand the syllabus and make a well-planned study schedule.
Read more: How To Prepare For GATE Exam – Common Challenges And How To Overcome Them
GATE DA syllabus 2025 is divided into seven sections. These sections include topics such as Probability and Statistics, Linear Algebra, Calculus and Optimization, as well as Machine Learning and Artificial Intelligence among others.
The detailed table provided below provides a more detailed look at the GATE DA Syllabus 2025.
Read more: GATE Syllabus: GATE Subject Wise Syllabus
Probability and Statistics | Counting (permutation and combinations), probability axioms, Sample space, events, independent events, mutually exclusive events, marginal, conditional and joint probability, Bayes Theorem, conditional expectation and variance, mean, median, mode and standard deviation, correlation, and covariance, random variables, discrete random variables and probability mass functions, uniform, Bernoulli, binomial distribution, Continuous random variables and probability distribution function, uniform, exponential, Poisson, normal, standard normal, t-distribution, chi-squared distributions, cumulative distribution function, Conditional PDF, Central limit theorem, confidence interval, z-test, t-test, chi-squared test. |
Linear Algebra | . Vector space, subspaces, linear dependence and independence of vectors, matrices, projection matrix, orthogonal matrix, idempotent matrix, partition matrix and their properties, quadratic forms, systems of linear equations and solutions; Gaussian elimination, eigenvalues and eigenvectors, determinant, rank, nullity, projections, LU decomposition, singular value decomposition. |
Calculus and Optimization | Functions of a single variable, limit, continuity and differentiability, Taylor series, maxima and minima, optimization involving a single variable. |
Programming, Data Structures and Algorithms | Programming in Python, basic data structures: stacks, queues, linked lists, trees, hash tables; Search algorithms: linear search and binary search; basic sorting algorithms: selection sort, bubble sort and insertion sort; divide and conquer: merge sort, quicksort; introduction to graph theory; basic graph algorithms: traversals and shortest path. |
Database Management and Warehousing | ER-model, relational model: relational algebra, tuple calculus, SQL, integrity constraints, normal form, file organization, indexing, data types, data transformation such as normalization, discretization, sampling, compression; data warehouse modelling: schema for multidimensional data models, concept hierarchies, measures: categorization and computations. |
Machine Learning |
2. Unsupervised Learning: clustering algorithms, k-means/k-medoid, hierarchical clustering, top-down, bottom-up: single-linkage, multiple linkages, dimensionality reduction, principal component analysis. |
AI | Search: informed, uninformed, adversarial; logic, propositional, predicate; reasoning under uncertainty topics – conditional independence representation, exact inference through variable elimination, and approximate inference through sampling |
GATE DA syllabus: The Data Science and AI GATE exam is not just an examination; it’s a gateway to a future powered by innovation, insight, and intelligence. The rewards are abundant for engineering graduates who dare to step into this dynamic world – from lucrative career prospects to the thrill of shaping the future. So, if you are an engineering graduate with a thirst for knowledge and a passion for technology, consider taking the Data Science and AI GATE exam – your pathway to unlocking a world of limitless opportunities.
Read More: GATE Eligibility Criteria 2025 – Age Limit, Qualification, Marks, Documents Required
To prepare effectively for the GATE 2025 with a focus on AI and DS, it’s important to have a strategic approach. Here’s a breakdown of some smart strategies:
By following these tailored strategies, you are not only preparing for GATE 2025 but also setting a foundation for success in AI and DS fields.
By following these planned strategies, you are not only preparing for GATE 2025 but also setting a foundation for success in the AI and DS fields.
Read More: GATE Marking Scheme 2025: Subject Wise Paper Pattern
GATE Data Science & Artificial Intelligence (DA) Analysis 2024