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P.W. = Rs.		100 x 2310		= Rs. 1680.
		100 + 15 x 5 2

By the rule of alligation:

Cost of 1 kg of 1st kind Cost of 1 kg of 2nd kind
720 p	Mean Price 630 p	570 p
60		90

Required ratio = 60 : 90 = 2 : 3.

1	+	1	=	1  +  1 1 + an am 1 + am an
1 + a(n - m)		1 + a(m - n)

=	am	+	an
	(am + an)		(am + an)

=	(am + an)
	(am + an)

   = 1.

II. Part of the tank filled by A in 1 hour =	1
	4

III. Part of the tank filled by B in 1 hour =	1
	6

(A + B)'s 1 hour's work =		1	+	1		=	5
		4		6			12

A and B will fill the tank in	12	hrs = 2 hrs 24 min.
	5

So, II and III are needed.

Correct answer is (B).

Cost of x metres = Rs. d.

Cost of 1 metre = Rs.		d
		x

Cost of y metres = Rs.		d	. y		= Rs.		yd	.
		x					x

99 = 1 x 3 x 3 x 11

101 = 1 x 101

176 = 1 x 2 x 2 x 2 x 2 x 11

182 = 1 x 2 x 7 x 13

So, divisors of 99 are 1, 3, 9, 11, 33, .99

Divisors of 101 are 1 and 101

Divisors of 176 are 1, 2, 4, 8, 11, 16, 22, 44, 88 and 176

Divisors of 182 are 1, 2, 7, 13, 14, 26, 91 and 182.

Hence, 176 has the most number of divisors.

The year 2007 is an ordinary year. So, it has 1 odd day.

1^st day of the year 2007 was Monday.

1^st day of the year 2008 will be 1 day beyond Monday.

Hence, it will be Tuesday.

Angle traced by hour hand in	17	hrs =		360	x	17		º	= 255.
	2			12		2

Angle traced by min. hand in 30 min. =		360	x 30		º	= 180.
		60

Required angle = (255 - 180)º = 75º.

Let each edge be a metres. Then,

I. a² = 64       a = 8 m       Volume = (8 x 8 x 8) m³ = 512 m³.

Thus, I alone gives the answer.

II. a = 8 m       Volume = (8 x 8 x 8) m³ = 512 m³.

Thus, II alone gives the answer.

Correct answer is (C).

Originally, let the number of boys and girls in the college be 7x and 8x respectively.

Their increased number is (120% of 7x) and (110% of 8x).

		120	x 7x		and		110	x 8x
		100					100

	42x	and	44x
	5		5

The required ratio =		42x	:	44x		= 21 : 22.
		5		5

Suppose commodity X will cost 40 paise more than Y after z years.

Then, (4.20 + 0.40z) - (6.30 + 0.15z) = 0.40

0.25z = 0.40 + 2.10

z =	2.50	=	250	= 10.
	0.25		25

X will cost 40 paise more than Y 10 years after 2001 i.e., 2011.

P		1 +	20		n	> 2P			6		n	> 2.
			100						5

Now,		6	x	6	x	6	x	6		> 2.
		5		5		5		5

So, n = 4 years.

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.

Part filled in 4 minutes = 4		1	+	1		=	7	.
		15		20			15

Remaining part =		1 -	7		=	8	.
			15			15

Part filled by B in 1 minute =	1
	20

	1	:	8	:: 1 : x
	20		15

x =		8	x 1 x 20		= 10	2	min = 10 min. 40 sec.
		15				3

The tank will be full in (4 min. + 10 min. + 40 sec.) = 14 min. 40 sec.

.__________.______________________________________.
A     x    C            (100 - x)                 B       

Let AC = x km. Then, CB = (100 -x) km.

 I. AB = 125% of CB

100 =	125	x (100 - x)
	100

100 - x =	100 x 100	= 80
	125

x = 20 km.

AC = 20 km.

Thus, I alone gives the answer.

II. AC =	1	CB
	4

x =	1	(100 - x)
	4

5x = 100

x = 20.

AC = 20 km.

Thus, II alone gives the answer.

Correct answer is (C).

logx		9		= -	1
		16			2

x-1/2	=	9
		16

	1	=	9
	x		16

x =	16
	9

x =		16		2
		9

x =	256
	81

Let savings in N.S.C and P.P.F. be Rs. x and Rs. (150000 - x) respectively. Then,

1	x =	1	(150000 - x)
3		2

	x	+	x	= 75000
	3		2

	5x	= 75000
	6

x =	75000 x 6	= 90000
	5

Savings in Public Provident Fund = Rs. (150000 - 90000) = Rs. 60000

  I. Let C.P. be Rs. x.

Then, M.P. = 130% of x = Rs.		13x	.
		10

III. S.P. = 90% of M.P.

Thus, I and III give, S.P. = Rs.		90	x	13x		= Rs.		117x
		100		10				100

Gain = Rs.		117x	- x		= Rs.	17x
		100				100

Thus, from I and III, gain % can be obtained.

Clearly, II is redundant.