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2(2x-1/x+3)-3(x+3/2x-1)=5or, {2(2x-1)²-3(x+3)²}/(x+3)(2x-1)=5or, {2(4x²-4x+1)-3(x²+6x+9)}/(2x²+6x-x-3)=5or, 8x²-8x+2-3x²-18x-27=5(2x²+5x-3)or, 5x²-26x-25=10x²+25x-15or, 5x²-10x²-26x-25x-25+15=0or, -5x²-51x-10=0or, 5x²+50x+x+10=0or, 5x(x+10)+1(x+10)=0or, (x+10)(5x+1)=0Either, x+10=0or, x=-10Or, 5x+1=0or, 5x=-1or, x=-1/5∴, x=10,-1/5

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140 = 2×2×5×7 156 = 2×2×3×13 3825 = 3×3×5×5×17 5005 = 5×7×11×13

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quadratic equations2x + py = - 5 and 3x + 3y = - 6have unique solution

Then,a1/a2 = b1/b2a1 = 2, b1 = p, a2 = 3, b2 = 3

2/3 = p/36 = 3pp = 6/3 = 2

Value of p = 2

nice

Sides of the triangle are 13m,14m, and 15m.

semiperimeter of the triangle = (13+14+15)/2 = 42/2 = 21.

Area of the triangle = √21(21–13)(21–14)(21–15) m² = √ 21*8*7*6 m²= √ 7056 m²= 84m²

Rate of painting = ₹8.75/m²

Cost of painting the board = ₹8.75*84= ₹735.

875/4=218 so remainder will be 3 so hence when 21 power 875 will be 3

Option ASin theta = cos theta

It can be written as

sin theta = sin(90 - theta)

theta = 90 - theta

90 = 2 theta

theta = 45 degrees.

the answer is 14 because the common difference was 12

14 is correct answer your question

Answer : B) sinAExplanation :

(i) 150°(ii) 90°(iii) 70°

Prime numbers bet. 60 and 90 are 61,67,71,73,79,83,89first we will add these no. and then divide it by 7 because the prime no. between.60to90 is 7 so the answer would be 7.42.

Let pocket money be = xX -3/4x is amount remaining with him after spending money. X -3/4x= x/4 (on solving) now he gave 4/5of remaining amount to his sister. = x/4 - 4/5 of x/4= x/4 - x/5= x/20amount remaining with him is =40x/20=40x=800his pocket money is 800

397.50rs is the price of 15m

3 m cloth = 79.50 rs.1 m cloth = 79.50 ÷ 3 = 26.50 rs15 m cloth = 26.50 × 15 = 397.50 rs.therefore price 15 meters of such cloth is 397.50 rs.

397.5 is the exact answer

if x²-1 is a factor of ax⁴+bx³+cx²+dx+e=>x = +1 and -1 are the rootsof ax⁴+bx³+cx²+dx+e

Now if f(x) = ax⁴+bx³+cx²+dx+ethan f(+1)=f(-1)=0so a+b+c+d+e=0 ….….….(1)and a-b+c-d+e = 0 ….…....(2)

Hence from (1) and (2),a+c+e=b+d=0

f(3) = 3a+1

also f(3) = 3b+3

for continuous , both the values should be equal so, 3a+1 = 3b +3 => 3a=3b+2=> 3(a-b) = 2 => (a-b) = 2/3

If (x + 1) is HCF of (ax^2 + bx + c) and (bx^2 + ax + c)

Then,For x = - 1 both these equations should be equal to 0

Hence,a - b + c = 0..... (1)b - a + c = 0......(2)

Add eq(1) and eq(2)2c = 0c = 0

(a) is correct option

(235440 ) is answer of this question

235440 is the correct answer of the given question

☺️235440 is your answer. BYE

235440 is right answer

981× 240 ________ 000 39240196200__________235440your answer is 2,35,440

235440 is the best answer

980×240=355440rait an.

235440 is correct answer

235440 is the correct answer

235440 is correct answer

235440 is correct answer.

because of acceleration the distance is 660 m

your answer is because of acceleration the distance is 660m

because of acceleration the distance is 660 m

Find the prime factorization of 186186 = 2 × 3 × 31Find the prime factorization of 196196 = 2 × 2 × 7 × 7To find the gcf, multiply all the prime factors common to both numbers:

Therefore, GCF = 2

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The answer is of H.C.F is

The answer of H.C.F. is 2

20 miteres clothesright ans like this answer

20 m is the right answer

20 meter is the right answer

the cost of 15 meter of a cloth is ₹981.what length ofof cloth can be purchased for₹1308?

15 metres = 9811 metres = 981/15=65.4 rsfor rs 1308,1 rs = 1/65.4 metres1308 rs = 1/65.4× 1308 = 20 metre

180 = 90 + 48+ aa = 42°

180 = 90 + 48+ aa = 42°

7m + 19/2 = 13

7m = 13 - 19/2

7m = (26-19)/2

7m = 7/2

m = 1/2

cost of one toy=192/8=24rupeeshence of 14 toys will be 336rupees

cost of 10 toys = 10*117/13

= 90 rupees

=(sinA/1+cosA) + (1+cosA/sinA )= [sin^2A + (1 + cosA)^2]/sinA(1 + cosA)= (sin^2A + 1 + cos^2A + 2cosA)/sinA(1 + cosA) = (1 + 1 + 2cosA)/sinA(1 + cosA) [since,sin^2A + cos^2A = 1] = (2 + 2cosA)/sinA(1 + cosA) = 2(1 + cosA)/sinA(1 + cosA) = 2/sinA = 2 cosecA [since 1/sinA = cosecA] = R.H.S.

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it's option 3

CosA +sinA =√2cosAsquaring⇒(cosA + sin A)² = (√2cosA)²⇒cos²A + sin²A+ 2sinAcosA = 2cos²A⇒1-sin²A+ 1 -cos²A+ 2sinAcosA= 2cos²A⇒2 - 2cos²A =cos²A + sin²A -2sinAcosA⇒2(1 - cos²A)= (cosA - sinA)²⇒cosA - sinA =√[2sin²A]⇒cosA-sinA =√2sinA

tq

a^2=tan^2x+cot^2xb=tanx-cotxso b^2=tan^2x-2tanxcotx+cot^2xso a^2-b^2=tan^2x+cot^2x-tan^2x+2-cot^2x=2Hence Proved

Tana=sina/cosasquare both sidestan^2a=(1-cos^2a)/cos^2atan^ 2 a=(1/cos^2a)-(1)tan^2a +1=(1/cos^2a)cosa=1/√[tan^2 a+1]

1 - sinx/ 1+ sinx , 1- sinx / 1 + sinx × 1-sinx/ 1- sinx= (1- sinx)^2/(1+sinx)( 1- sinx)= ( 1 + sinx^2 -2sinx)/ 1 - sinx^2= (1 + sinx^2 -2 sinx)/ cosx^2 = 1/ cosx^2 + sinx^2/ cosx^2 -2sinx/ cosx^2 = secx^2 + tanx^2-2secxtanx = ( secx - tanx)^2