Question ID: #885
Let the image of parabola $x^{2}=4y$ in the line $x-y-1=0$ be $(y+a)^{2}=b(x-c)$, where $a, b, c \in \mathbb{N}$. Then $a+b+c$ is equal to
- (1) 12
- (2) 4
- (3) 6
- (4) 8
Solution:
Let $P(2t, t^2)$ be a general point on the parabola $x^2 = 4y$.
Let $(h, k)$ be the image of $P$ in the line $x – y – 1 = 0$.
$$\frac{h – 2t}{1} = \frac{k – t^2}{-1} = -2 \frac{(2t – t^2 – 1)}{1^2 + (-1)^2}$$
$$\frac{h – 2t}{1} = \frac{k – t^2}{-1} = -(2t – t^2 – 1)$$
$h – 2t = t^2 – 2t + 1 \Rightarrow h = t^2 + 1$
$k – t^2 = -(t^2 – 2t + 1)(-1) \Rightarrow k – t^2 = 2t – t^2 – 1 \Rightarrow k = 2t – 1$
From $k = 2t – 1$, we get $t = \frac{k+1}{2}$.
Substitute $t$ in equation for $h$:
$$h = \left(\frac{k+1}{2}\right)^2 + 1$$
$$x = \frac{(y+1)^2}{4} + 1$$
$$4(x-1) = (y+1)^2$$
Comparing with $(y+a)^2 = b(x-c)$:
$a = 1, b = 4, c = 1$.
$$a + b + c = 1 + 4 + 1 = 6$$
Ans. (3)
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