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-1 power 6 will be 1-1 power 3 will be -1-1 power 2 will be 1so their product will be -1

8/(3×3)+6/(3×4)=(8×4+6×3)/(3×3×4)=50/36=25/18

99 because 90 ka 10% 9 hai so 90+9=99

10% of 90=9. 90+9=99

(x-1)= 0 therefore x = 1

=x^99-1=1^91-1=1-1=0

and

=x^100-1=1^100-1=1-1=0

So, it is proved that (x-1) is a factor of these two .

(5×5×5×5×5×5×(-12)×(-12)×(-12)×(-12))/(36×36×15×15×15) = (5×5×5×12×12)/(3×3×3×3×3) = 18000/243

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answer will be 74.07

thanks

(x-b-c)/a+(x-a-b)/c+(x-c-a)/b=3bc(x-b-c)+ab(x-a-b)+ac(x-c-a)=3abcbcx-b²c-bc² +abx- a²b -ab² +acx -a²c -ac²=3 abcabx+bcx +cax=3 abc+ a²b +ab²+ b²c+ bc²+ a²c+ ac²X(ab+bc+ac)= abc+ a²b +ab²+ abc+ b²c +bc²+ abc +a²c +ac²X(ab+bc+ac)=ab(c+a+b)+bc(a+b+c)+ac(b+a+c)X(ab+bc+ac) =(a+b+c) (ab +bc+ ac)X =(a+b+c) (ab+bc+ac)/(ab+bc+ac)X=a+b+c

We know that SinA/a=SinB/b=SInc/cso heresina/2=sinb/2root 3=sinc/4sina/sinb=1/root 3

36÷(10+2)+5×6-4×8=36÷12+30-32=3+30-32=1

36×1=36 is the simple mulitiplication

36*1 equal to 36 it is right

Data is x/5, x/4, x/3, x/2,xMedian =x/38=x/3

x=24

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As, OPQ forms another triangle in PQR,..as per the rule for formation of triangles,length of a side of a triangle < sum of the other two sides,

In triangle OPQ,

OQ<PQ+OPOP<PQ+OQhence, PQ<OP+OQ

root7+root3/root7-root3 x root7 - root 3/root7-root3=(root7+root3)(root7-root3)/(root 7- root3)^2=(root49-root 21+root21+root 9)/7-3=(root 49+root 9)/4=(7+3)/4=10/4

x/a + y/b = 2ay + xb = 2ab----------( 1 )

ax - by = a² - b²---------( 2 )

from-----( 1 ) &-------( 2 )multiply ( 1 ) by "a" ( 2 ) by "b"

abx + a²y = 2a²babx - b²y = ba² - b³-------------------------------------------------y(a² + b²) = 2a²b - ba² + b³

y(a² + b²) = a²b + b³

y(a² + b²) = b(a² + b²)

y = b [ put in -----( 1 )]

we get,

ay + xb = 2ab

a(b) + xb = 2ab

xb = 2ab - ab

x = ab/b

x = a

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ax=a-b-byx=a-b-by/a←

bx-ay=a+bsubstitutingb(a-b-by/a)-ay=a+bab-b²-b²y/a-ay=a+bab-b²-b²y-a²y/a=a+bab-b²-(b²+a²)y=a²+ab-(b²+a²)y=a²+ab-ab+b²(b²+a²)y=-(a²+b²)y=-(a²+b²)/a²+b²y=-1←

substituting value of yx=a-b-b(-1)/ax=a-b+b/ax=a/ax=1

125 =5*5*5

125.3333333.........

24×36=864 is the correct answer

sin^-1(3/5) + sin^-1(36/85) = π/2- cos^-1(15/17)

=> sin^-1(3/5*√1-(36/85)² + 36/85*√1-(3/5)²) = π/2 - cos^-1(15/17)

=> sin^-1(3/5*77/85 + 36/85*4/5) = sin^-1(15/17)=> sin^-1(375/425) = sin^-1(15/17)=> sin^-1(15/17) = sin^-1(15/17) => L.H.S = R.H.S

As it's a 0/0 formwe diffrentiated it as after diffrentiation it is not a 0/0 then we put the limits

((36×5+4)/5)×(5/(24×5+4))=(36×5+4)/(24×5+4)=184×124= 22816

substitute values in given equation answer is 0

a=2, b=4, c=1a^2-3bc+4ac2^2-3×4×1+4×2×14-12+8-8+80

a=2,b=4,c=1a^2-3bc+4ac2^2-3×4×1+4×2×14-12+8-8+80

a=2, b= 4, c= 1a^2 -3bc+4ac= (2)^2-3(4)(1)+4(1)(2)= 4-12+8= 12 -12= 0

a=2, b=4 ,c=1=a^2-3bc + 4ac=2^2-3×4×1+4×2×1=4-12+8=-8+8=0is the correct answer

Ans=(2×2)-(3×4×1)+(4×2×1)=4-12+8=12-12Answer =0

sin€ iss lye hum bol rhe h

1- cos^2A/1+sinA=1- (1-sin^2A)/(1+sinA){a^2-b^2=(a+b)(a-b)}=1- (1+sinA)(1-sinA)/(1+sinA)= 1-(1-sinA)= 1-1+sinA=sinA

A=,p(1+r/100)ⁿA=3750(1+6/100)^3A=3750×53/50×53/50×53/50A=4428.81 answer

A= 3750×53/50×53/50×53/50A= 4428.82

sin^-1(sin3pie/4)=3pie/4

please specify your question.

population = 98,00,00,000

98,00,00,000 + 2*98,00,00,000/100

= 98,00,00,000 + 1,96,00,000

= 99,96,00,000

thanks but its wrong answer

sorry its right answer

q(p^2-1) = 2p

=>LHS = q(p^2-1)

=>sec +cosec [(sin + cos)^2-1

=> (sec+cosec) [sin^2+cos^2+2sin.cos -1]

= >(1/cos +1/sin) [1+2sin.cos-1]

{{identity: sin^2+cos^2=1}}

taking LCM of 1/sin + 1/cos=> (sin+cos/sin.cos)[2sin.cos]

= >sin + cos /sin.cos* 2sin.cos

=> 2(sin + cos)

= >2(p) {{sin + cos = p

:(given in question)}}

Therefore 2p i.e. = RHS

√(125+√3+(-5√5-√3)5√5+√3-5√5-√3=0

Let sin^-1 (3/5) = Q sinQ =3/5 cosQ = 4/5

sin^-1 (8/17) = BsinB = 8/17cos B = 15/17

now ,Q + B = T (let )take both side sin sin (Q + B) = sinT SinQ .cosB +cosQ.sinB =sinTput value ,3/5 x 15/17 + 4/5 x 8/17 = sinT (45 + 32) /85 = sinT sinT = 77/85

T = sin^-1(77/85)

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i) 0.0912, ii) 0.802,

thnx