Online Aptitude Test - Aptitude Test - Random

Sum of digits = (5 + 1 + 7 + x + 3 + 2 + 4) = (22 + x), which must be divisible by 3.

  x = 2.

Largest 5-digit number = 99999

 91) 99999 (1098
     91
     ---
     899
     819
     ----
      809
      728
      ---
       81
      ---
 
 Required number = (99999 - 81)
                 = 99918.      

Required sum = (2 + 4 + 6 + ... + 30)

This is an A.P. in which a = 2, d = (4 - 2) = 2 and l = 30.

Let the number of terms be n. Then,

t_n = 30    a + (n - 1)d = 30

2 + (n - 1) x 2 = 30

n - 1 = 14

n = 15

Sn =	n	(a + l)	=	15	x (2 + 30)   = 240.
	2			2

20 x x = (64 + 36)(64 - 36) = 100 x 28

x =	100 x 28	= 140
	20

Let the numbers be 2x and 3x.

Then, their L.C.M. = 6x.

So, 6x = 48 or x = 8.

The numbers are 16 and 24.

Hence, required sum = (16 + 24) = 40.

2 x 5 = 10.

Sum of decimal places = 4

0.002 x 0.5 = 0.001

   1|1.5625( 1.25
    |1
    |-------
  22| 56
    | 44
    |-------
 245| 1225
    | 1225
    |-------
    |    X
    |-------     

1.5625 = 1.25.

Let the ten's digit be x.

Then, unit's digit = x + 2.

Number = 10x + (x + 2) = 11x + 2.

Sum of digits = x + (x + 2) = 2x + 2.

(11x + 2)(2x + 2) = 144

22x² + 26x - 140 = 0

11x² + 13x - 70 = 0

(x - 2)(11x + 35) = 0

x = 2.

Hence, required number = 11x + 2 = 24.

x^z = y²       10^(0.48z) = 10^{(2 x 0.70)} = 10^1.40

0.48z = 1.40

z =	140	=	35	= 2.9 (approx.)
	48		12

S.P. = 85% of Rs. 1400 = Rs.		85	x 1400		= Rs. 1190
		100

Video Explanation: https://youtu.be/jn0XIafQvAc

Part filled by (A + B) in 1 minute =		1	+	1		=	1	.
		60		40			24

Suppose the tank is filled in x minutes.

Then,	x		1	+	1		= 1
	2		24		40

	x	x	1	= 1
	2		15

x = 30 min.

Suppose pipe A alone takes x hours to fill the tank.

	1	+	2	+	4	=	1
	x		x		x		5

	7	=	1
	x		5

x = 35 hrs.

Let the actual speed be x km/hr.

x =		42 x 7 x 75		= 35 km/hr.
		5 x 126

Let the distance travelled on foot be x km.

Then, distance travelled on bicycle = (61 -x) km.

9x + 4(61 -x) = 9 x 36

5x = 80

x = 16 km.

Let the length of the train be x metres and its speed by y m/sec.

Then,	x	= 15         y =	x	.
	y		15

	x + 100	=	x
	25		15

15(x + 100) = 25x

15x + 1500 = 25x

1500 = 10x

x = 150 m.

Thus, I and II together give the answer.

Correct answer is (E).

Amount	= Rs. 1600 x 1 + 5 2 + 1600 x 1 + 5 2 x 100 2 x 100
	= Rs. 1600 x 41 x 41 + 1600 x 41 40 40 40
	= Rs. 1600 x 41 41 + 1 40 40
	= Rs. 1600 x 41 x 81 40 x 40
	= Rs. 3321.

C.I. = Rs. (3321 - 3200) = Rs. 121

A's speed =		5 x	5	m/sec	=	25	m/sec.
			18			18

Time taken by A to cover 100 m =		100 x	18	sec	= 72 sec.
			25

Time taken by B to cover 92 m = (72 + 8) = 80 sec.

B's speed =		92	x	18	kmph	= 4.14 kmph.
		80		5

Here S = {TTT, TTH, THT, HTT, THH, HTH, HHT, HHH}

Let E = event of getting at most two heads.

Then E = {TTT, TTH, THT, HTT, THH, HTH, HHT}.

P(E) =	n(E)	=	7	.
	n(S)		8

Go on dividing by 4 to get the next number.

So, 200 is wrong.