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Test: Maxima and Minima of a Function(15 Sep) - JEE MCQ


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10 Questions MCQ Test Daily Test for JEE Preparation - Test: Maxima and Minima of a Function(15 Sep)

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Test: Maxima and Minima of a Function(15 Sep) - Question 1
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The maximum and minimum values of f(x) =  are

Detailed Solution for Test: Maxima and Minima of a Function(15 Sep) - Question 1

f(x) = sinx + 1/2cos2x  
⇒ f'(x) = cos x – sin2x 
Now, f'(x) = 0 gives cosx – sin2x = 0 
⇒ cos x (1 – 2 sinx) = 0 
⇒ cos x = 0, (1 – 2 sinx) = 0 
⇒ cos x = 0, sinx = 1/2 
⇒ x = π/6 , π/2 
Now, f(0) = 1/2, 
f(π/6) = 1/2 + 1/4 = 3/4, 
f(π/2) = 1 – 1/2 = 1/2 
Therefore, the absolute max value = 3/4 and absolute min = 1/2

Test: Maxima and Minima of a Function(15 Sep) - Question 2
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The maximum value of f (x) = sin x in the interval [π,2π] is​

Detailed Solution for Test: Maxima and Minima of a Function(15 Sep) - Question 2

f(x) = sin x
f’(x) =cosx 
f”(x) = -sin x
f”(3pi/2) = -sin(3pi/2)
= -(-1)
=> 1 > 0 (local minima)
f(pi) = sin(pi) = 0
f(2pi) = sin(2pi) = 0 
Hence, 0 is the maxima.

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Test: Maxima and Minima of a Function(15 Sep) - Question 3
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The maximum value of  is​

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For every real number (or) valued function f(x), the values of x which satisfies the equation f1(x)=0 are the point of it's local and global maxima or minima.
This occurs due to the fact that, at the point of maxima or minima, the curve of the function has a zero slope.
We have function f(x) = (1/x)x
We will be using the equation, y = (1/x)x 
Taking in both sides we get
ln y = −xlnx
Differentiating both sides with respect to x.y. 
dy/dx = −lnx−1
dy/dx =−y(lnx+1)
Equating  dy/dx to 0, we get
−y(lnx+1)=0
Since y is an exponential function it can never be equal to zero, hence
lnx +1 = 0
lnx = −1
x = e(−1)
So, for the maximum value we put x = e^(−1)in f(x) to get the value of f(x) at the point.
f(e^−1) = e(1/e).
Hence the maximum value of the function is (e)1/e

Test: Maxima and Minima of a Function(15 Sep) - Question 4
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Find the maximum profit that a company can make, if the profit function is given by P(x) = 41 + 24 x – 18x2
Detailed Solution for Test: Maxima and Minima of a Function(15 Sep) - Question 4

p’(x) = -24 - 36x
p”(x) = -36
Now, p’(x) = 0  ⇒ x = (-24)/36
x = -⅔
Also, p”(-⅔) = -36 < 0
By the second derivative test,  x = -⅔
Therefore, maximum profit = p(-⅔)
= 41 - 24(-⅔) - 18(-⅔)^2 
= 41 +16 - 8  
⇒ 49

Test: Maxima and Minima of a Function(15 Sep) - Question 5
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If f (x) = a log |x| + bx2 + x has extreme values at x = –1 and at x = 2, then values of a and b are
Detailed Solution for Test: Maxima and Minima of a Function(15 Sep) - Question 5

f(x) = alog|x| + bx2 + x
f’(x) = a/x + 2bx + 1
f’(-1) = - a - 2b + 1
-a - 2b + 1 = 0
a = 1 - 2b
f’(2) = a/2 + 4b + 1 = 0
a + 8b = -2
Put the value of a in eq(1)
(1 - 2b) + 8b = - 2
6b = -3
b = -½, a = 2

Test: Maxima and Minima of a Function(15 Sep) - Question 6
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Find the maximum and minimum values of f (x) = 2x3 – 24x + 107 in the interval [1, 3].​
Detailed Solution for Test: Maxima and Minima of a Function(15 Sep) - Question 6

f(x)=2x³-24x+107 x ∈ [1, 3]
f'(x) = 6x^2 - 24
To find the points equate f'(x) = 0
in closed interval x= -2 doesn't lies,so discard x = -2
now find the value of function at x = 1, 2 ,3
f(1) =2(1)³-24(1)+107
= 2-24+107 = 85
f(2) =2(2)³-24(2)+107
= 16-48+107 = 75
f(3) =2(3)³-24(3)+107
= 54-72+107 = 89
So, the function has maximum value in close interval at x= 3, Maximum value= 89.
minimum value at x= 2, minimum value = 75

Test: Maxima and Minima of a Function(15 Sep) - Question 7
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Give the correct order of initials T or F for following statements. Use T if statement is true and F if it is false.

Statement-1: If f : R → R and c ∈ R is such that f is increasing in (c – δ, c) and f is decreasing in (c, c + δ) then f has a local maximum at c. Where δ is a sufficiently small positive quantity.

Statement-2 : Let f : (a, b) → R, c ∈ (a, b). Then f can not have both a local maximum and a point of inflection at x = c. 

Statement-3 : The function f (x) = x2 | x | is twice differentiable at x = 0.

Statement-4 : Let f : [c – 1, c + 1] → [a, b] be bijective map such that f is differentiable at c then f–1 is also differentiable at f (c).
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Test: Maxima and Minima of a Function(15 Sep) - Question 9
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Test: Maxima and Minima of a Function(15 Sep) - Question 10
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A right triangle is drawn in a semicircle of radius 1/2 with one of its legs along the diameter. The maximum area of the triangle is
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