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This section includes 7 InterviewSolutions, each offering curated multiple-choice questions to sharpen your Current Affairs knowledge and support exam preparation. Choose a topic below to get started.
| 1. |
9x+3y+12=018x+6y+24=0 |
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Answer» Explain Explain As equation 2 is just double of equation 1. If we multiple eq. 1 with 2 we get the same result. |
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| 2. |
9x+y+12 =0 or 18x +ky+24 =0 |
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| 3. |
\begin{array} { l } { \text { Evaluate } } \\ { \text { (i) } \frac { \log _ { 2 } 81 } { \log _ { 2 } 9 } } \\ { \text { (iii) } \frac { \log _ { 4 } 7 } { \log _ { 4 } 5 } \times \frac { \log _ { 9 } 5 } { \log _ { 9 } 7 } } \end{array} |
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| 4. |
(ii) 9x + 3y +12=018x+6y + 24 = 0 |
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Answer» multiply 1st equation by 2 then we will get 2nd equationmeans both line coincide or both are same equation so for this we will say ( infinite soultion is possible) Comparing the given equations with the standard form of linear equations a₁x + b₁y + c₁ = 0 and a₂x + b₂y + c₂ = 0, a₁/a₂ = 9/18 = 1/2b₁/b₂ = 3/6 = 1/2c₁/c₂ = 12/24 = 1/2 => a₁/a₂ = b₁/b₂ = c₁/c₂=> Lines are coincident=> The system of equations have infinite solutions. 𝙞𝙣𝙛𝙞𝙣𝙞𝙩𝙚 𝙨𝙤𝙡𝙪𝙩𝙞𝙤𝙣 𝙞𝙨 𝙥𝙤𝙨𝙨𝙞𝙗𝙡𝙚 |
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| 5. |
2 \log 3 + 3 \log 5 - 5 \log 2\text { write as a single logarithm }\ |
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| 6. |
3.1 (2x-3)1x²–2x = 0(2x-3)* (27-3then p.q are roots of2 x +x-2=0 3 x -3x+2=04) x² + 2x=0 |
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Answer» Multiply the given equation throughout with (2x - 3)² px + q = (2x - 3) + 3px + q = 2x(p - 2)x + q = 0Comparing coeficients of x on both sides,p - 2 = 0 p = 2Comparing constant terms on both sides, q = 0 From the given options find out the quadratic equation whose zeroes are 0 and 2. x² - 2x = 0=> x(x - 2) = 0=> x = 0, x = 2 Thus, p and q are the roots of x² - 2x = 0 |
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| 7. |
3x+2y = 12, 12-9x-2y |
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Answer» 3x + 2y = 12 9x - 2y = 12 3x + 2y + 9x - 2y = 12 + 12 12x = 24 x = 2 6 + 2y = 12 2y = 6 y = 3 |
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| 8. |
log(2, 10)^2 %2B log(5*log(20, 10), 10) |
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Answer» answer is I think it is 104 no |
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| 9. |
( \operatorname { log } _ { 2 } 10 ) \cdot ( \operatorname { log } _ { 2 } 80 ) - ( \operatorname { log } _ { 2 } 5 ) \cdot ( \operatorname { log } _ { 2 } 160 ) |
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Answer» not seen clearly |
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| 10. |
A car uses 20 litre of petrol for a journey of 115km. how much petrol will be needed for the journey of 345km?can you suggest some benefits of the reduced consumption of petrol ? |
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Answer» Petrol used inOne km of distance =115/20=5.75.Therefore petrol used in covering 345km =5.75×345=1983.75 1983.75 is the best best answer The answer is given by step by step..kilometers. litres of petrol.115. 20345. ?by cross multiplication it we get answer.345×20÷115=60hope this answer will help you..... Plz like my answer and accepted as best Plz Sex Jeff for fudged Fri ddhc fjcdhbvf fhjxcb petrol in one km of distance =115/20=5.75, petrol in covering 345 km = 5.75 x 345= 1983. 75 |
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| 11. |
without actual division prove that x^4+2x^3-2x^2-3 is actually divisible by x^2+2x-3 |
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| 12. |
solve for x ,2(2x+3÷x-3)-25(x-3÷2x+3)=5 |
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| 13. |
Example 2 : Check whether the following are quadratic equations:(i) (x-2)2+1 = 2x-3(in x (2x +3)x+1(iv) (x + 2)' =x3-4 |
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| 14. |
x -3solve for x, 2 2x +325X -32x +3 |
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| 15. |
2x +3Solve for x 2)2x +3 |
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| 16. |
Resolve 2x +3 / x^2 - 2x - 3into Partial Fractions. |
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| 17. |
3x-2 2x +3 23o)43(3(5x-2)-(4x-1-3x)=5x211equations: |
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| 18. |
2x-5y=4 3x-8y=5 |
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| 19. |
2x-5y=4 3x-8y=5 |
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Answer» 2x-5y=4.........equation(1)3x-8y=5..............equation(2) Equation(1) 2x-5y=42x=4+5y x=(4+5y)/2............equation(A) Equation(2)3x-8y=5.........equa.(2) Put value of (A) in (2) 3[(4+5y)/2]-8y=5(12+15y)/2-8y=5(12+15y-16y)/2=5..........(BY TAKING LCM)12-y=5×212-y=10y=12-10y=2Equation(1)2x-5y=4 Put value of y in any equation. 2x-5y=42x-5×2=42x-10=42x=4+102x=14x=14/2x=7 |
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| 20. |
2x+5y=-43x-2y=13 (by elimination method) |
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| 21. |
3x-5y-4=09x = 2y + 7(i) |
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| 22. |
3x-5y-4= 0 and 9x= 2y+7 |
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| 23. |
(iii)3x-5y-4=0m3 9x =.2y + 7 |
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| 24. |
3x-5y-4=09x = 2y + 72(i) |
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Answer» 3x -5y=4)×2(9x-2y= 7)×5 6x-10y=845-10y= 35 now , subtract.so , we get39x= 27x = 27/39 = 9/13so , y = -5/13 . |
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| 25. |
fa car uses 20 litres of petrol to cover a distance of 500 km, what is the distance that the car can travelin 24 litres of petrol?7. I |
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Answer» Using unitary method;20 litres of petrol is used to cover 500 km∴24 litres of petrol is used to cover distance x. ∴x=(24×500)/20=600 km. |
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| 26. |
The distance covered in 1 hour 432+9 48 km.The distance covered in 12 hours 48x 12 576kmAns. 576 km.EXERCISE 7factory manufactures 1200 scooters in 16 days. How many scermanufacture in 1 day?A cycle factory produces 2500 cycles in 20 days. How many cproduce in a month? (1 month 30 days)A truck uses 14 litres of diesel for 98 kilometres. How far wil20 litres? |
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Answer» 1. 1200 scooter in 16 daysSo number of scooters in 1 day = 1200/16 = 75 2. 2500 cycles in 20 daysSo in one day it produce 2500/20 = 125 cycles So in 30 days it produce 125*30 = 3750 cycles. |
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| 27. |
If a car runs 57.5 km in 5 litres of petrol, how muchdistance will it cover in 11 litres of petrol? |
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Answer» In 5 Litre 57.5 km is covered so in 1 Litre it will cover 57.5 km /5 L= 11.5 Km/Lso in 11 litres it will cover 11.5 × 11 = 126.5 km |
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| 28. |
27% 5. R R - fl gl %5 0x 3=297 5 [ ७— |
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| 29. |
6. If a car travels 67.5 km in 4.5 litres of petrol, how many kilometres will it travel i26.4 litres of petrol? |
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Answer» distance travelled per K.M = 67.5/4.5 = 15 K.M so, with 26.4 L Petrol , distance covered will be 15*(26.4) = 396 KM |
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| 30. |
r \text { if } \quad 5 ^ { 4 } P _ { r } = 6 ^ { 5 } P _ { r - 1 } |
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| 31. |
If22-1|=|z~2|, find|z|. |
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Answer» thnks bro 😎for answering |
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| 32. |
5. Let R (2,3), (3,3), (2, 2), (5, 5), (2, 4), (4, 4), (4,3) be a relation on the set (2,3,4,5),then(A) R is reflexive and symmetric but not transitive(B) R is reflexive and transitive but not symmetric(C) R is symmetric and transitive but not reflexive(D) R is an equivalence relation |
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| 33. |
4 simplify(2 x 5- 4 |
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| 34. |
Simplify(i) 5^4 x 5^3 |
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| 35. |
ExpresstheStalelmentasmedlequationintwovariablesdraw the graph of the linearequation.0. A field is in the shape of a trapezium whose parallel sides are 25m & 10mf threnon parallel sidesare 14m & 13m. find the arenof the ficld. |
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| 36. |
\left. \begin{array} { l } { ( p + q + r ) ( p - q + r ) + p q - q r } \\ { ( a ^ { 2 } - 5 ) ( a + 5 ) + 25 } \end{array} \right. |
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| 37. |
The product of two fractions is 9 3/5. lfone of the fraction is 3 4/10, find the other fraction. |
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Answer» suppose other fraction is x 9 3/5 = 48/5 3 4/10 = 34/10 so 34/10 * x = 48/5 17/2 * x = 24 so x = 48/17 = 2 14/17 |
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| 38. |
Find the area of a trapezium whose parallel sides are20 cm and 10 cm. Its non-parallel sides are both equal,each being 13cm. |
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| 39. |
G.K. grocery shop KhararParticularsRate per Kilo320SugarTea leavesWheat FlourRicePulsesCost of 2 kilogram sugarCost of 500 g of tea leaves. |
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Answer» sugar = 2×60= 120tea leaves = 0.5×320= 160 sugar cost 2×60=120tea leaves cost 1/2×320=160 1 kilogram sugar = 60then, 2 kilogram sugar = 2×60 = 120 1000 gram or 1 kg of tea leaves = 320therefore, 500 gram of tea leaves = 320÷2 = 170 1 kilogram sugar =60than, 2 kilogram sugar=2×60=12 1000 gram or 1 kg of tea leaves =320there fore 500 gram of tea leaves =320÷2 sugar= 2×60=120 tea leaves=0.5×320=160 |
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| 40. |
\operatorname { cosec } ^ { 6 } A - \operatorname { cot } ^ { 6 } A = 3 \operatorname { cot } ^ { 2 } A \operatorname { cosec } ^ { 2 } A + 1 |
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Answer» cosec^6 A = cot^6 A + 3cot^2 A cosec^2 A + 1 Then, we will prove it as : To Prove: cosec^6 A = cot^6 A + 3 cot^2 A cosec^2 A + 1 i.e. cosec^6A – cot^6A – 3 cot^2 A cosec^2A = 1 Taking L.H.S. , cosec^6A – cot^6A – 3 cot^2 A cosec^2 A =(cosec^2 A)^3– (cot^2 A)^3– 3 cot^2 A cosec^2 A ={(cosec^2 A – cot^2 A) ((cosec^2 A)^2+ (cot^2 A)^2+ cosec^2 A cot^2 A)} ={1 ((cosec^2 A)^2+ (cot^2 A)^2– 2 cosec^2 A cot^2 A + 2 cosec^2 A cot^2 A + cosec^2A cot^2 A)} – 3 cot^2 A cosec^2 A ={(cosec^2 A – cot^2 A)^2+ 3 cosec^2Acot^2A} – 3 cosec^2A cot^2 A =(cosec^2 A – cot^2 A)^2 =(1)2 = 1 Hence, cosec^2 A – cot^6A – 3 cot^2A cosec^2 A = 1 ⇒ cosec^2 A -cot^6 A =3 cot^2A cosec^2A + 1 thats not the question |
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| 41. |
\frac { \operatorname { cot } \theta + \operatorname { cosec } \theta - 1 } { \operatorname { cot } \theta - \operatorname { cosec } \theta + 1 } |
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Answer» Cosec A + cot A - 1 / cot A - cosec A + 1we know that,cosec ² A - cot ² A = 1substituting this in the numeratorcosec A + cot A -(cosec ² A - cot ² A) / (cot A - cosec A + 1)x²-y²= (x+y)(x-y)cosec A + cot A - (cosec A + cot A) (cosec A - cot A) / (cot A - cosec A + 1)taking common(cosec A + cot A)(1-cosec A + cot A) / (cot A - cosec A + 1)cancelling like terms in numerator and denominatorwe are left with cosec A + cot A= 1/sin A + cos A/sin A= (1+cos A) / sin A |
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| 42. |
15)By investingて7,500 in a company paying 10percent dividend, an annual income o500 is received. Whatpace is paid for eachof 100 share?- |
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Answer» Total investment = Rs. 7500rate of dividend = 10%annual income = Rs. 500nominal value = Rs. 100 therefore,no. of shares = 500 × (100/10) × (1/100)= 50 shares market value = 7500/50= Rs. 150 |
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| 43. |
received25 By investing í¨ 1440 in a company paying 10% dividend, an annual income on520 is50 share?What is the market value of each |
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Answer» Total investment = Rs. 11440rate of dividend = 10%annual income = Rs. 520nominal value = Rs. 50 therefore, no. of shares = 520 × (100/10) × (1/50)= 104 shares market value = 11440/104= Rs. 110 |
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| 44. |
17 A company with 4000 shares of nominal value of 110 declares annual dividendof 15%. Calculate:(0 the total amount of dividend paid by the company(ii) the annual income of Shah Rukh who holds 88 shares in the company(iii)if he received only 10% on his investment, find the price Shah Rukh paid for eachshare(2008) |
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Answer» Total dividend = r/100*N.V*no. of shares = 15/100*110*4000 Rs.66,000 Annual Income = r/100 * N.V * No. of shares = 15/100 * 110 * 88 Rs.1,452 Return Percent = 10% Rate of dividend/100* N.V = Rate of Return/100 * M.V 15/100 * 110 = 10/100 * x x = Rs.165 |
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| 45. |
19. A company with 10,000 shares ofnominal value 2 100 declares anannual dividend of 8% to the shareholders. Find the arnount of dividendpaid by the comparny: |
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Answer» Thankzz a lot. |
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| 46. |
ofJE)450000A company having a capital stock of 45declares a dividend of 4% semi-annually.(1) What is the annual income of a stockholdeowning 135 shares at par-value of 10?ii) What is the total amount of dividend paidannually by the company? |
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Answer» Total capital of stock = 450000 Rs. dividend = 4%(1) Number of share = 135Value of each share = 10 Rs.value of 135 shares = 135 x 10 = 1350 Rs. dividend he earn = 4% of 1350 = (4 x 1350) / 100 = 54 Rs.. total capital stock = 450000 number is share = 135 value each share = Rs. 10; 135 shares =135 ×10=1350 rs. divided 4°/• of 1350= 4 x1350/100=Rs. 54 |
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| 47. |
5. A company declares 8 percent dividend to theshare holders. If a man receives * 2,840 as hisdividend, find the nominal value of his shares. |
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| 48. |
CUIUcolondWrite the fa the fraction for each of the fractional numbers in the blantb) one third =c) half =a) one fourth=d) two fifth =e) two fourths =f) two thirds =2) five ninths =M-47 |
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Answer» a. 0.25b. 0.3333333c.0.5d.0.4e.2/4=1/2=0.5f.0. 6666666g.0. 5555555 |
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| 49. |
The H. C. F. and the L. C. M. of two numbers are 36 andrespectIfone of the numbers is 1044, find the other number. |
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| 50. |
\left[5\left(8^{1 / 3}+27^{1 / 3}\right)^{3}\right]^{1 / 4} |
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