Exams › JEE Main › Maths

The region enclosed between y = a/(4 + x²) (with a > 0) and the line y = c (with c <= 0) has an area equal to the only even prime number. Find [a] + [c], where [.] is the greatest integer function.

1. 1
2. 0
3. -1
4. 3

Correct answer: 1

Solution

Since the curve is positive and c <= 0, the only finite enclosed area uses c = 0, giving area (a*pi)/2 = 2, so a = 4/pi (about 1.27); then [a] = 1 and [c] = 0, summing to 1.

Related JEE Main Maths questions

• For every b > 1, the area enclosed by the x-axis, the graph of y = f(x), and the vertical lines x = 1 and x = b is given by √(b² + 1) − √2. Then f(x) must be:
• The graphs of y = sin x and y = cos x meet at infinitely many points, forming repeated bounded regions of equal area. The area of one such region is
• Find the area bounded by the parametric curve x = a cos³ t, y = b sin³ t together with the positive x-axis and positive y-axis.
• Find the area enclosed by the curves y = e^x, y = e^(-x), and the vertical line x = 1, measured in square units.
• A straight line of the form y = mx divides into two equal parts the region bounded by the y-axis, the horizontal line y = 3/2, and the parabola y = 1 + 4x - x². What is the value of m?
• Find the area enclosed by the curve y = cos² x, the x-axis, and the vertical lines x = 0 and x = π over the interval (0, π).

⚔️ Practice JEE Main Maths free + battle 1v1 →