Printed Pages: 02
Paper Id: 110714
Sub Code: NCS702
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Roll No.
B. TECH.
(SEM VII) THEORY EXAMINATION 2018-19
ARTIFICIAL INTELLIGENCE
Total Marks: 100
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Time: 3 Hours
Note: 1. Attempt all Sections. If require any missing data; then choose suitably.
SECTION A
- Attempt all questions in brief. 2 x10 = 20
- Define learning agent with the help of architecture.
- What is Computer vision?
- Write down the time and space complexity of DFS search strategies.
- State soundness property of Inference.
- Design the PEAS measure for "Satellite Agent".
- List out the application area of machine learning.
- Define Supervised and Unsupervised Learning in machine learning?
- What is decision tree?
- Differentiate between classification and regression?
- Discuss the features of Support vector machine.
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SECTION B
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- Attempt any three of the following: 10 x 3
- State the various properties of environment.
- What is the role of NLP in AI? Illustrate the various phases in NLP.
- Discuss the problems of Hill climbing algorithm?
- Apply K-means algorithm for clustering data with the help of example.
- Analysis the various feature extraction and selection methods in pattern recognition.
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SECTION C
- Attempt any one part of the following: 10 x 1
- Describe briefly the evolution of artificial intelligence.
- List the criteria to measure the performance of different search strategies.
- Attempt any one part of the following: 10 x 1
- Differentiate between forward and backward chaining of Inference with the help of an example.
- What is heuristic function? Differentiate Blind search and Heuristic Search strategies.
- Attempt any one part of the following: 10 x 1
- What is prepositional logic? Define the various inference rules with the help of example.
- What is reinforcement learning? Differentiate between active and passive reinforcement learning.
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- Attempt any one part of the following: 10 x 1
- What do you understand by Information Gain? How it is calculated?
- What is regression? Compare between linear regression and non-linear regression?
- Attempt any one part of the following: 10 x 1
- What do you mean by dimension reduction? Discuss principal component analysis (PCA) for dimension reduction.
- What is Bayesian Theory? Explain the role of prior probability and posterior probability in Bayesian Classification?
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