Class CBSE Class 12 Mathematics Inverse Trigonometric Functions Q #863
KNOWLEDGE BASED
APPLY
2 Marks 2023 VSA
21. (b) OR: Evaluate : $\cos^{-1}[\cos(-\frac{7\pi}{3})]$
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Step-by-Step Solution

First, we simplify the argument of the inverse cosine function:

$\cos(-\frac{7\pi}{3}) = \cos(\frac{7\pi}{3})$ (Since cosine is an even function, cos(-x) = cos(x))

$\cos(\frac{7\pi}{3}) = \cos(2\pi + \frac{\pi}{3}) = \cos(\frac{\pi}{3})$ (Since cosine has a period of $2\pi$)

$\cos(\frac{\pi}{3}) = \frac{1}{2}$

Now, we evaluate the inverse cosine:

$\cos^{-1}[\cos(-\frac{7\pi}{3})] = \cos^{-1}[\frac{1}{2}]$

Since $\cos(\frac{\pi}{3}) = \frac{1}{2}$, we have $\cos^{-1}(\frac{1}{2}) = \frac{\pi}{3}$

Correct Answer: $\frac{\pi}{3}$

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Pedagogical Audit
Bloom's Analysis: This is an APPLY question because it requires the student to apply their knowledge of inverse trigonometric functions and their properties to simplify and evaluate the given expression.
Knowledge Dimension: PROCEDURAL
Justification: The question requires the student to follow a specific procedure to simplify the expression using properties of trigonometric and inverse trigonometric functions.
Syllabus Audit: In the context of CBSE Class 12, this is classified as KNOWLEDGE. The question directly tests the student's understanding and application of trigonometric identities and inverse trigonometric functions, which are core concepts covered in the textbook.

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