Maths questions (1 Viewer)

Smile12345 · Nov 27, 2013

Hello All...

Not sure how to do the following:

"X is a point on the curve $y = x^2 - 2x + 5$ . Point Y lies directly below X and is on the curve $y = 4x - x^2$ ."

a) Show that the distance d between X and Y is given by $d = 2x^2 - 6x + 5$ .

b) Find the minimum distance between X and Y.

AND

'Points A (-a, 0), B (0,b) and O (0,0) form a triangle and AB always passes through the point (-1,2)'

a) Show that b = $\frac{2a}{a - 1}$ .
b) Find values of a and b that give the minimum area of triangle OAB.

Thanks.

Squar3root · Nov 27, 2013

1)
a) perpendicular distance formula

b) differentate a) and equate it with zero then solve

2)
a) no idea

HeroicPandas · Nov 27, 2013

Q1
a) Y is directly below X, so to find distance XY, just get top point minus bottom point (y-values) (XY is a vertical distance)
Before this is all done, tell me what point X and Y are

b) Calculus

Q2
a) U can do this, use what they gave u, the point (-1,2) lies on AB --> what does this mean...?

b) To find 2 unknowns, u need 2 equations. Make another equation with 'a' and 'b' (i.e. a relation between a and b) somehow...
If (-1,2) lies on the line AB, what else can u deduce besides that (-1,2) satisfies eqn AB? (it'll be helpful if you can produce a diagram to inspect)

QZP · Nov 27, 2013

Not quite shadow...

HeroicPandas · Nov 27, 2013

^delete ur post really quickly QZP, hurry up!

obliviousninja · Nov 27, 2013

2a) Find equation of AB. Sub in (-2,1), then make b the subject.

Squar3root · Nov 27, 2013

QZP said:
Not quite shadow...

are you sure?

HeroicPandas said:
^delete ur post really quickly QZP, hurry up!

lol

QZP · Nov 27, 2013

Shadow642761 said:
are you sure?

lol

Mhm... why are you using perpendicular distance :S

Squar3root · Nov 27, 2013

QZP said:
Mhm... why are you using perpendicular distance :S

my bad, the maths has fallen out of my head

1)a)
since they have the same x ordinate
$x^2 -2x +5 = 4x -x^2$
$\therefore d = 2x^2 - 6x + 5$

b) $d = 2x^2 - 6x + 5$
$d(d)/dx = 4x -6$
$min/max values when d(d)/dx = 0$
$\therefore 4x -6 = 0$

lol dont know how to use latex

anomalousdecay · Nov 28, 2013

Squar3root said:
my bad, the maths has fallen out of my head

1)a)
since they have the same x ordinate
$x^2 -2x +5 = 4x -x^2$
$\therefore d = 2x^2 - 6x + 5$

b) $d = 2x^2 - 6x + 5$
$\frac{d(d)/dx} = 4x -6$
$\text{min/max values when:} \frac{d(d)/dx} = 0$
$\therefore 4x -6 = 0$

lol dont know how to use latex

Fixed it for you. Just put \frac{numerator}{denominator} and put \text{your text here}
These text wrappings make the difference.

HeroicPandas · Nov 28, 2013

Squar3root said:
my bad, the maths has fallen out of my head

1)a)
since they have the same x ordinate
$x^2 -2x +5 = 4x -x^2$
$\therefore d = 2x^2 - 6x + 5$

b) $d = 2x^2 - 6x + 5$
$d(d)/dx = 4x -6$
$min/max values when d(d)/dx = 0$
$\therefore 4x -6 = 0$

lol dont know how to use latex

i dont understand your working out for part (a)...how is d = 'blah' when their x-coordinates are the same? (d is the distance between X and Y)

Squar3root · Nov 28, 2013

anomalousdecay said:
Fixed it for you. Just put \frac{numerator}{denominator} and put \text{your text here}
These text wrappings make the difference.

Thanks for that. +1

HeroicPandas said:
i dont understand your working out for part (a)...how is d = 'blah' when their x-coordinates are the same? (d is the distance between X and Y)

If the x coordinate is the same (given) then we can equate the 2 functions. I hope this makes sense

HeroicPandas · Nov 28, 2013

Squar3root said:
If the x coordinate is the same (given) then we can equate the 2 functions. I hope this makes sense

nah, i'm asking how did u deduce that d = 'blah' with that equivalency (x^2-2x+5 = 4x-x^2)

Below is invisible because i dont want Smile12345 to see it yet:

so, say the x-coord of point X and Y is x = x₁, now the points X and Y become: (taking into account that they have the same x-coord)

Then X(x₁, 4x₁ - x₁^2)

Then Y(x₁, x₁^2 - 2x₁ + 5)

By the looks of it, u equated the y-coordinates!! And if they ALSO have the same y-coord, then X and Y are the same point and so the distance between X and Y is 0

Squar3root · Nov 28, 2013

HeroicPandas said:
nah, i'm asking how did u deduce that d = 'blah' with that equivalency (x^2-2x+5 = 4x-x^2)

Below is invisible because i dont want Smile12345 to see it yet:

so, say the x-coord of point X and Y is x = x₁, now the points X and Y become: (taking into account that they have the same x-coord)

Then X(x₁, 4x₁ - x₁^2)

Then Y(x₁, x₁^2 - 2x₁ + 5)

By the looks of it, u equated the y-coordinates!! And if they ALSO have the same y-coord, then X and Y are the same point and so the distance between X and Y is 0

Umm, algebra. I just moved everything to one side and that's the distance function

RealiseNothing · Nov 29, 2013

Squar3root said:
If the x coordinate is the same (given) then we can equate the 2 functions. I hope this makes sense

No you can't.

Squar3root · Nov 29, 2013

RealiseNothing said:
No you can't.

Why not?

omgiloverice · Nov 29, 2013

Squar3root · Nov 29, 2013

omgiloverice said:
$$Because the $y$ values are not the same.$

$they don't have to be?$ #400th post

nerdasdasd · Nov 29, 2013

Squar3root said:
$they don't have to be?$ #400th post

I guess you have two roots now ay

, 20 and -20.

Squar3root · Nov 29, 2013

nerdasdasd said:
I guess you have two roots now ay , 20 and -20.

Lol, I see what you did there

Maths questions (1 Viewer)

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