math doubts [NEW]

[zara]

Q3)Given that the equation


[sin(theta) - cos(theta)]/[sin(theta)+cos(theta)] =6sin(theta)/cos(theta),

find the exact values of tan(theta).Hence find (theta) for 0<=(theta)<=360

some one solve this ques plz...

[falafail]

some one solve this ques plz...

i believe this is how it's done.
feel free to ask if you need me to explain anything, or to correct me if i'm wrong XD

oh, the picture's too small. here: http://i33.tinypic.com/308wg0p.jpg

[nid404]

yaa...that's that

By the way if you don't want to confuse urself bt taking tan2theta and then substituting

assume tan theta=x and then solve. Get value for x then sub tan theta in it

and yeah use periodic property to get the answer within the given range

[zara]

Q5)The straight line y=x-1 meets the curve y=x²-5x-8 at the points A and B. The curve y=p+qx-2x² also passes through the points A and B. Find the values of p and q.

[zara]

n yea whats the equation of a circle that has say 8cm as diameter? O_o

[Ghost Of Highbury]

first find where they intersect

x-1 = x² - 5x -8

simplifies to

-x² + 6x + 7 =0

x = -1                 x = 7
y = -2                 y= 6

------------------------------

y = -2x² + qx + p

substitute the values

x = -1 ; u get p=q

substitute x=7 and 'q' for 'p' (because they are equal) ; u get q = 13

so the curve is

-2x² + 13q + 13

@Z.J - equation of a circle?..or  area

[zara]

yea aadi its equation of a circle as mentioned in my worksheet.:\

[Ghost Of Highbury]

yea aadi its equation of a circle as mentioned in my worksheet.:\

ok..check this

http://www.analyzemath.com/CircleEq/CircleEq.html

so the answer wud be




By the way--did u understand the other question?

[nid404]

she means equation addiii...

yeah It's

r=8cm....let centre be (h,k)
let point P be a point on the circumference of a circle with coordinates (x,y)

then

(x-h)² + (y-k)²=r²

(x-h)²+(y-k)²=16(4²)

I assume centre is (0,0) since it is not given

assuming....h and k become 0

x²+y²=16
equation is  x²+y²-16=0

[nid404]

equation of the circle has the general form

x²+y²+2gx+2fy+c=0

where centre is (-g,-f) and radius is root of (g²+f²-c)

@adi...how do u use the square root sign??

[Ghost Of Highbury]

equation of the circle has the general form

x²+y²+2gx+2fy+c=0

where centre is (-g,-f) and radius is root of (g²+f²-c)

@adi...how do u use the square root sign??

its latex

click that "pi" symbol next to "sub" "sup" and others..

for square root type ... sqrt(type here) in the latex form.. i.e after clicking "pi"

like this

[zara]

first find where they intersect

x-1 = x² - 5x -8

simplifies to

-x² + 6x + 7 =0

x = -1                 x = 7
y = -2                 y= 6

------------------------------

y = -2x² + qx + p

substitute the values

x = -1 ; u get p=q

substitute x=7 and 'q' for 'p' (because they are equal) ; u get q = 13

so the curve is

-2x² + 13q + 13

@Z.J - equation of a circle?..or  area

wait....hows p=q?
im stuck..

[Ghost Of Highbury]

wait....hows p=q?
im stuck..

wen u substitute x=-1 ad y=-2 in the equation

y = -2x² + qx + p

u get

-2 = -2 -q + p

-2 + 2 = p - q

p-q =0

p=q

[astarmathsandphysics]

The equation of a curcle with centre and radius r is (a,b) is (x-1)^2+(y-b)^2=r^2
r=4 if the diameter is 8

[nid404]

I modified my post sir.....thought radius was 8