Harvard University Admission Interview Tricks | Find x=?

My solution is way easier (it took less than a minute): 1) I rewrote the equation as 1/x+sqrt(1/x+1)=5. 2) Then, I added 1 to both sides of the equation 1/x+1+sqrt(1/x+1)=6. 3) Then, by simply substituting t=sqrt(1/x+1), we get a simple quadratic equation of t^2+t-6=0. The solution of which are -3 and 2. 4) When we plug in the value of sqrt(1/x+1)=-3 has no real solutions ( by the way, if it did not violate the laws of mathematics, the answer choice of 1/8 would be correct). 5) sqrt(1/x+1)=2 1/x+1=4 x=1/3

1/x=y
y+rt(1+y)=5
rt(1+y)=5-y
y

X=1/8, or 1/3
^=read as to the power
*=read as square root
As per the question the 2nd term is
*{(x+1)/x}
=*{(x/x)+(1/x)}
=*{1+(1/x)}
As per question
(1/x)+*{1+(1/x)}=5
Let (1/x)=R
R+*(1+R)=5
*(1+R)=5-R
Take the square
{*(1+R)}^2=(5-R)^2
1+R=R^2+25-10R
R^2-10R-R+25-1=0
R^2-11R+24=0
R^2-8R-3R-24=0
R(R-8)-3(R-8)=0
(R-8(R-3)=0
R-8=0 or R-3=0
R=8 or R=3
1/x=8 or 1/x=3
X=1/8 or x=1/3

1 + √{ x(x+1) } = 5x
x(x+1) > 0 ( because x can't be zero and x = - 1 does not satisfy the equation)
either x < - 1 or x > 0
also 5x > 1
finally x > 1/5
now x(x+1) = 25 x^2 - 10 x + 1
24 x^2 - 11 x + 1 = 0
(8 x-1) (3x-1) = 0
x = 1/8 , 1/3
but x > 1/5
hence only solution is x = 1/3
we can verify it.

t=1/x...t+√(1+t)=5...1+t=25+t^2-10t...t^2-11t+24=0...t=(11+5)/2=8...t=(11-5)/2=3..x=1/8,1/3..1/8ko

How is it possible that sometimes a solution has to be rejected (in this case x=1/8)? You followed all the right steps...

Lo hice asignando t=✓(1+1/x) lo que conduce a la ecuación t^2+t-6=0 con t1=-3 y t2=2 se descarta el valor -3 dando como única solución t2=2, y regresando a la variable original en x, y reemplazando t=2 nos queda la ecuación ✓(1/x+1) =2 dónde nos da que x=1/3 es la única solución 😊

Square root of 9 =minus -3 and +3 isnt it? So if we take X=equal to minus 3 ,it verifies the equation

Harvard University Admission Interview Tricks: 1/x + √[(x + 1)/x] = 5; x =?
1 > x > 0; 1/x + √[(x + 1)/x] = 1/x + 1 + √[(x + 1)/x] = 5 + 1
(x + 1)/x + √[(x + 1)/x] = 6, Let: y = √[(x + 1)/x]; y > 0
(x + 1)/x + √[(x + 1)/x] = y² + y = 6, y² + y - 6 (y - 2)(y + 3) = 0, y > 0, y + 3 > 0
y - 2 = 0, y = 2 = √[(x + 1)/x], (x + 1)/x = 2² = 4, 4x = x + 1; x = 1/3
Answer check:
x = 1/3, 1/x = 3: 1/x + √[(x + 1)/x] = 3 + √[3(1/3 + 1)] = 3 + 2 = 5; Confirmed
Final answer:
x = 1/3

1/X + [(X+2)/X]^1/2 = 5
[(X+1)/X]^1/2 = 5 - 1/X
[[(X+1)/X]^1/2]^2 = (5 - 1/X)^2
(X+1)/X = [(5X -1)/X]^2
(X+1)/X=(25X^2 -2×5X×1+1^2)/X^2
Умножим обе стороны уравнения на X^2
X(X+1)=25X^2 - 10X + 1
X^2 +X = 25X^2 -10X + 1
25X^2- 10X + 1 - X^2 -X = 0
24X^2 - 11X + 1 = 0
D= (-11)^2 - 4×24×1= 25
D^1/2= 5
X=(11+5)/(24×2)=1/3
X=(11-5)/48=1/8
Ответ: 1/3 и 1/8
D

Sir you are very very very slow