DAV Unit 4 Important Questions AKTU (BCDS501)
AKTU · BTECH · Semester 5 · Introduction to Data Analytics and Visualization · Unit 4 · Important Question
AKTU Introduction to Data Analytics and Visualization (BCDS501) Unit 4 important questions for B.Tech Semester 5 – Frequent Itemsets and Clustering. Topics…
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Unit 4: Frequent Itemsets and Clustering – AKTU syllabus topics
- Frequent Itemsets: Mining Frequent Itemsets, Market Based Modelling, Apriori Algorithm
- Large Data Handling: Main Memory Handling, Limited Pass Algorithm, Frequent Itemsets In Stream
- Clustering Techniques: Hierarchical Clustering, K Means
- High Dimensional Clustering: High Dimensional Data, CLIQUE And ProCLUS
- Advanced Clustering: Pattern Based Clustering, Non Euclidean Clustering, Streams And Parallelism
Most asked AKTU PYQ questions from Unit 4
- Q6b. What do you mean by k-means clustering? How does the k-means algorithm work? Write k-meansalgorithm for partitioning. (10 marks, 2022-23)
- Q6a. Explain clustering techniques used in data mining. (7 marks, 2025-26)
- Q6b. Analyze the working of K-means clustering with an example. (7 marks, 2025-26)
- Q6a. For the given data, find the association rule using apriori algorithm. Given: Minimum Support= 2, Minimum Confidence= 50% (10 marks, 2022-23)
- Q2d. Explain Apriori algorithm and its role in frequent itemset mining. (7 marks, 2025-26)
- Q2d. Compare and contrast hierarchical clustering and K-means clustering. What are the advantages and disadvantages of each? (7 marks, 2024-25)
- Q6b. Explain the following- i. Apriori Algorithm ii. Market based modeling (7 marks, 2023-24)
- Q5b. Discuss k-means clustering? Explain its working. Write k-means algorithm for partitioning. (7 marks, 2023-24)
- Q1f. What is frequent itemset mining? (2 marks, 2025-26)
- Q2d. Illustrate with examples CLIQUE and ProCLUS. (7 marks, 2023-24)
AKTU paper codes: BCDS501, KDS501
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