logo



student ONLINE CANDIDATES : 63




PAYMENT FOR WAEC AND JAMB EXPO HAS STARTED, PAY NOW!!!



neco runs

WAEC / NECO / NABTEB /GCE SUBSCRIPTION PAYMENT EXPO


HOW TO PAY FOR WAEC/ NECO/ NABTEB /GCE ANSWER:

ALL SCIENCE ANSWERS + PRACTICAL COST: N5,500

ALL ART OR COMMERICAIL ANSWERS COST #4,500

 

WHATSAPP US AND SEND:- EXAM TYPE + MTN-CARD + PHONE NUMBER + SUBJECT TO 09055986588 (ONLY ON WHATSAPP)

UPDATE: Our Waec, Neco and Nabteb Exam Runs Payment is on, Earlyanswer is 100% Legit (Invite Your Classmates,Friends Here)

Answer Page

Answer Page

Confirmation page

Verify NECO / WAEC Payment

EARLYANSWER OFFICIAL WHATSAPP GROUP

JOIN OUR GENERAL WHATSAPP GROUP




« PREVIOUS POST:

| NEXT POST:

»

2020 NABTEB MATHEMATICS OBJ AND ESSAY QUESTIONS AND ANSWERS

 

 

Maths+Obj

1CBBCBDDACC

11ABDBABDBCB

21CABBCBAACD

31BCABDABBDB

41CBCBACCBAA

==========================

(1a)
214base5 and 23base5

214base5 = 2×5² + 1×5¹ + 4×5⁰ = 2×25 + 5 + 4
= 59base10

23base5 = 2×5¹ + 3×5⁰ = 10 + 3 = 13base10

59base10 × 13base10 = 767
Convert to base Five

5| 767
5| 153 > 2
5| 30 > 3
5| 6 > 0
5| 1 > 1
5| 0 > 1

11032base5

(1b)
20+3 – x/3 = x+7
20+3-7= x+x/3 = 3x+x/3

16 = 4x/3
x =16×3/4
x=12
=====================================

(2a)
Draw an equilateral triangle

A
/
m+n / (3m-5n)
/
B ——– C
(m-2n+3)

Since the triangle is equilateral
m+n=3m-5n=m-2n+3
m+n=m-2n+3
Collect Like terms
m-m+n+2n=3
3n=3
n=3/3
n=1

Also,
m+n=3m-5n
Collect like terms
n+5n=3m-m
6n=2m
6(1)=2m
2m=6
m=6/2
m=3

Length=m+n
=3+1
=4

(2b)
Perimeter=3L
L=m+n=3m-5n=m-2n+3
L=4
P=3L
P=3×4
:. Perimeter=12 unit
=====================================

(3a)
√0.81×10-⁵/√2.25×10⁷

= √81×10-²×10-⁵/√225×10⁷×10-²

= √81×10-⁵/225×10⁷

= √81/225 × √10-⁵-⁷
= √81/√225 × √10-¹²
= (9²)½/(15²)½ × (10-¹²)½
= 9/15 ×10-⁶

Multiply through by 3
9/15×10-⁶
3/5×10-⁶
0.6×10-¹×10-⁶
= 6×10-⁷

(3b)
3/√3(2/√3 – 12/√6)
= 3/√3(2/√3) – 3/√3(12/√6)
=6/√9 – 36/√18 = 6/3 – 36/√9×√2
= 6/3 – 36/3√2
= 2 – 12√2 = 2-12√2 × √2/√2
= 2 – 12√2/2
= 2-6√2
=====================================

(4a)
U=80
n(P)=40
n(C)=45
n(B)=30
n(PΠC)=20
n(PΠB)=12
n(P’ΠC’ΠB’)=3
n(PΠCΠB)=x
n(BΠC)=y

Draw a Venn diagram

Number of student offering physics only = 40–(20 – x + x + 12 – x)
=8 + x

Number of student offering Chemistry only = 45 –(20 – x + x + y – x)
= 25 + x – y

Number of student offering Biology only = 30 –(12 – x + x + y – x)
=18 + x – y

:. 8 + x + 25 + x – y + 18 + x – y + 20 – x + 12 – x + y – x + x + 3 = 80

x = y – 6

(ii)
Students offering one subject = 8 + y – 6 + 25 + y – 6 – y + 18 + y – 6 – y = 33 + y
=====================================

(5a)
20pencils = ₦55
440pencils= X
X=55×440/20 = ₦1210

Unsaleable = 10/100 ×440 = 44pencils
Saleable = 440 – 44= 396pencils
Total expenses = 1210+150+200= ₦1560 = c.p

Sold
12pencils = ₦60
326pencils = X
X= 60×396/12= ₦1980 = s.p

Profit = s.p – c.p = 1980-1560 = ₦420

(5b)
% Profit = Profit/c.p ×100%
= 420/1560 ×100
= 26.92%
=====================================

(6)
Area of triangle FBD =1/2 × base × height
= 1/2 × 8 × 3
=12cm²

Area of ABCD = L × B
=8×6
=48cm²

Area of CDIH = L×B
=12 × 6
=72cm²

Area of FDGH= L × B
=12 × 5
=60cm²

:. Total surface Area = 2(12) + 2(48) + 2(72) + 2(60)

=24 + 96 + 144 + 120

=384cm²
=====================================

(7a)
y= 5x – 2x² , –2 ≤ x ≤ 4

TABULATE

x | -2 | -1 | 0 | 1 | 2 | 3 | 4 |

x² | 4 | 1 | 0 | 1 | 4 | 9 | 16 |

5x | -10 | -5 | 0 | 5 | 10 | 15 | 20 |

-2x² | -8 | -2 | 0 | -2 | -8 | -18 | -32 |

y | -18 | -7 | 0 | 3 | 2 | -3 | -12 |

(7b)

===

(7ci)
The line of symmetry is at point (1,3).
:. The lube is x=1

(7cii)
The solution of the equation 5 + 5x – 2x² = 0, From the graph can be obtained as follow;

y=5x – 2x²
y=5 + 5x – 2x²
5x – 2x² = 5 + 5x – 2x²
y= -5.

y= -5 is traced from the graph and the values are -0.75 and 3.25

(7ciii)
The maximum turning point is y=3

(7civ)
Gradient at point x=1
Gradient=∆y/∆x
=4 – 2.2 ÷ 2.3 – 0
=1.8/2.3
=0.78
=====================================

(8a)
TABULATE

Class interval | Class mark | Frequency | Tally | Cummulative frequency | Class Boundaries |

UNDER Class interval
21-30
31-40
41-50
51-60
61-70
71-80
81-90
91-100

UNDER Class mark
25.5
35.5
45.5
55.5
65.5
75.5
85.5
95.5

UNDER Frequency
2
5
7
9
11
8
5
3

UNDER Tally
//
~////~
~////~ //
~////~ ////
~////~ ~////~ /
~////~ ///
~////~
///

UNDER Cummulative Frequency
2
7
14
23
34
42
47
50

UNDER Class boundaries
20.5 – 30.5
30.5 – 40.5
40.5 – 50.5
50.5 – 60.5
60.5 – 70.5
70.5 – 80.5
80.5 – 90.5
90.5 – 100.5

(8bi)
Median = 1/2 of N
=N/2
=50/2
25th Cummulative Frequency

Median = 62.5

(8bii)
Semi interquantite Range = Q3 – Q1 ÷ 2

Q3= 3N/4
=30 × 50 ÷ 4
37.5th Cummulative Frequency

Q3= 74.5

Q1= N/4
=50/4
12.5th Cummulative Frequency
Q1=48.5

Semi Interquantite Range= 74.5 – 48.5 ÷ 2
=26/2
=13

(8biii)
Graph.

(8c)
The percentage of the students that passed the examination. If 45% is the passed mark = 7 + 9 + 11 + 8 + 5 + 3 × 100 ÷ 50
= 43/50 × 100
=86%
=====================================

(9)
t∝v
t∝1/p
t∝v/p1= >t=kv/p
P=5,t=10minutes
V=20
10=20k/5
10*5=20k
50=20k
K=50/20=5/2

(9ai)
t=5/2v/p
t=5v/2p

(9aii)
V=50,t=?,p=2
t=5/2*50/2
=125/2 = 62.5minutes

(9aiii)
V=40, t=20minutes, p=?
20=5/2*40/p
20p=100
P=100/20=5

(9bi)
A=P(1+r/100)^n
(A/P)^1/n =(1+r/100)^n*1/n
(A=P)^1/n =1+r/100
(A=P)^1/n – 1 =r/100
100[(A/P)]^1/n – 1 ] =r

(9bii)
100[(506.19/450.0)^⅓-1]=r
r=100(1.040-1)
r=100(0.04)
=4
=====================================

(10ai)
X²-10/X²+4x-5. =0
X²-10=0
X=±√10
X=+√10 or
X=-√10

(10aii)
X²+4X-5=0
X²-X+5X-5=0
X(X-1)+5(X-1)=0
X+5=0. or X-1=0
X=-5 or X=1

(10b)
(i)r=a+b
=7i + 2j-k
(ii)r=a+b+c
=2c+3j
R1=√(7)² + (2)² (-1)²
=√49 + 4 + 1
=√54
=7.35 units

R2=√(2)² + (3)²
=√4 + 9
=√13
=3.6 units
=====================================

(11ai)
Given
x² – 10 / x² + 4x – 5
The value of x for which the above fraction is zero is
x² – 10 = 0
x² = 10
x² = ±√10

(11aii)
The value of x for which the above fraction is undefined is
x² + 4x – 5 = 0
(x² – x) + (5x – 5) = 0
x(x–1) +5(x–1)=0
(x+5)(x–1)=0
x+5=0 or x–1=0
x=–5 or x=1

(11bi)
The resultant of the vectors
a=3i + j + 2k
And
b=4i + j – 3k

Resultant = | a + b |
a + b = (3i + j + 2k) + (4i + j – 3k)
=7i + 2j – k
:. The resultant
R=√(7)² + (2)² + (-1)²
R=√49+4+2
R=√54
R=7.35 units.

(11bii)
a=3i, b= -2i – j
c= i + 4j
Resultant = | a + b + c |
a + b + c = 3i + ( -2i – j) + i + 4j
=3i – i + 3j
=2i – 3j

Resultant = √(2)² + (3)²
=√4+9
=√13
=3.6 units
=====================================

(12a)
Five montly moving average

0.3 +0.3+2.8 + 8.6+20.3/5= 32.8/5 = 6.46

0.3+2.8 +8.6+20.3+22.6/5 = 54.6/5 = 10.92

2.8+8.6+20.3+22.6+33.0/5 = 87.3/5 = 17.46

8.6+20.3+22.6+33.0 +29.2/5 = 113.7/5 = 22.74

(12b)
Deposite = ₦10,250

Instalment payment = ₦3600 per week

Total numbers of Week = 6*4 = 24 Weeks

Total instalment payment=24*3600 = ₦86,400

Total cost of motor bike = Intial deposit +
Total instalment = 10,250 +86,400= ₦96,650

(12c)
Worth of goods 7,000,000
custom duty = 25/100*7000,000 = 1750,000
profit made = 35/100*7000,000 = 2,450,000
selling price = Worth of goods & Custom dutyt
proft made 7,000,000 + 1,750,000 + 2,450,000= ₦11,200,000
=====================================

(14)
Flat fee = ₦1000
Distance charge = ₦250 per km
Neight charge = ₦100 per gram
If weight =₦75g
Weight Charge = 75*100 = ₦7,500
If distance = 900KM
distance Charge = 900*250 = ₦225,000

(14ai)
Company charge = flat feet distance Changet
Weight charge =
1000 + 7500 +225000= ₦233,500

(14aii)
Customer’s bill = company charge + VAT
Stree VAT=5/100 * 233,500=₦11,675
Customer’s bill = 233,500 +11675
= ₦235,175

(14bi)
Personal allowance = ₦18,000

(14bii)
Sponse allowance = ₦5000

(14biii)
children allowance = ₦4,000 per child

(14biv)
Dependent relative = ₦6000 each

(14bv)
Given gross per annum= ₦1,020,000
INHIS insurance = 1/100 * 1,020,000 = ₦10,200
Union dues = 2/100*1,020,000 = ₦20,400
pension scheme = 7.5/100 * 1,020,000 =₦76,500
Tax paid =10/100*1020,000 = ₦102,000

(14ci)
monthly tax; 116700/12 ₦9,725.50

(14cii)
Total monthly pay =1167000/12= 97,250.00

Monthly net pay = 97,250 -9725=₦87,525.00
=====================================

(1)

=====================================

(2)

=====================================

(3)

=====================================

(4)

=====================================

(5)

=====================================

(6)

(6 continue)

=====================================

(7a)

(7b)

=====================================

(8)

(8b)

=====================================

(9)

=====================================

(10)

=====================================

(11)

=====================================

(12)

=====================================

(14)

=====================================

Posted by on 13th September 2020.

Tags:

Categories: NABTEB

HOW TO WIN MTN CARD FROM EARLYANSWER
 
CLICK HERE TO SHARE THIS WEBSITE TO YOUR WHATSAPP FRIENDS / GROUPS AND WIN MTN CARD NOW

Chat Admin After You Share To 20 People On Whatsapp to Redeem The Price

Click here to submit your phone number for free updates about WAEC, NECO, NABTEB, GCE.

2023/2024 EXAM RUNS UPDATES👇

CLICK HERE TO GET WAEC 2023 EXAM RUNS


CLICK HERE TO GET NECO 2023 EXAM RUNS


CLICK HERE TO GET NABTEB 2023 EXAM RUNS


Our Answer Page for All Examination

0 Responses

Leave a Reply

« PREVIOUS POST:

| NEXT POST:

»