The NOR gate output will be high if the two inputs are
Transcript of The NOR gate output will be high if the two inputs are
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The NOR gate output will be high if the two inputs are __________
a) 00
b) 01
c) 10
d) 11
Answer: a
Explanation: In 01, 10 or 11 output is low if any of the I/P is high. So, the correct option will
be 00.
How many two-input AND and OR gates are required to realize Y = CD+EF+G?
a) 2, 2
b) 2, 3
c) 3, 3
d) 3, 2
Answer: a
Explanation: Y = CD + EF + G
The number of two input AND gate = 2
The number of two input OR gate = 2.
A universal logic gate is one which can be used to generate any logic function. Which of
the following is a universal logic gate?
a) OR
b) AND
c) XOR
d) NAND
Answer: d
Explanation: An Universal Logic Gate is one which can generate any logic function and also
the three basic gates: AND, OR and NOT. Thus, NOR and NAND can generate any logic
function and are thus Universal Logic Gates.
A full adder logic circuit will have __________
a) Two inputs and one output
b) Three inputs and three outputs
c) Two inputs and two outputs
d) Three inputs and two outputs
Answer: d
Explanation: A full adder circuit will add two bits and it will also accounts the carry input
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generated in the previous stage. Thus three inputs and two outputs (Sum and Carry) are
there. In case of half adder circuit, there are only two inputs bits and two outputs (SUM and
CARRY).
How many two input AND gates and two input OR gates are required to realize Y = BD
+ CE + AB?
a) 3, 2
b) 4, 2
c) 1, 1
d) 2, 3
Answer: a
Explanation: There are three product terms. So, three AND gates of two inputs are required.
As only two input OR gates are available, so two OR gates are required to get the logical sum
of three product terms.
Which of the following are known as universal gates?
a) NAND & NOR
b) AND & OR
c) XOR & OR
d) EX-NOR & XOR
Answer: a
Explanation: The NAND & NOR gates are known as universal gates because any digital
circuit can be realized completely by using either of these two gates, and also they can
generate the 3 basic gates AND, OR and NOT.
The gates required to build a half adder are __________
a) EX-OR gate and NOR gate
b) EX-OR gate and OR gate
c) EX-OR gate and AND gate
d) EX-NOR gate and AND gate
Answer: c
Explanation: The gates required to build a half adder are EX-OR gate and AND gate. EX-OR
outputs the SUM of the two input bits whereas AND outputs the CARRY of the two input
bits.
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The inverter is ……………
1. NOT gate
2. OR gate
3. AND gate
4. None of the above
Ans. 1
The inputs of a NAND gate are connected together. The resulting circuit is ………….
1. OR gate
2. AND gate
3. NOT gate
4. None of the above
Ans. 3
The NOR gate is OR gate followed by ………………
1. AND gate
2. NAND gate
3. NOT gate
4. None of the above
Ans. 3
The NAND gate is AND gate followed by …………………
1. NOT gate
2. OR gate
3. AND gate
4. None of the above
Ans. 1
Digital circuit can be made by the repeated use of ………………
1. OR gates
2. NOT gates
3. NAND gates
4. None of the above
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Ans. 3
The only function of NOT gate is to ……………..
1. Stop signal
2. Invert input signal
3. Act as a universal gate
4. None of the above
Ans. 2
When an input signal 1 is applied to a NOT gate, the output is ………………
1. 0
2. 1
3. Either 0 & 1
4. None of the above
Ans. 1
In Boolean algebra, the bar sign (-) indicates ………………..
1. OR operation
2. AND operation
3. NOT operation
4. None of the above
Ans. 3
An OR gate has 4 inputs. One input is high and the other three are low. The output
is …….
1. Low
2. High
3. alternately high and low
4. may be high or low depending on relative magnitude of inputs
Ans. 2
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Both OR and AND gates can have only two inputs.
1. True
2. False
Ans. 2
The output will be a LOW for any case when one or more inputs are zero in a/an
…………
1. OR Gate
2. NOT Gate
3. AND Gate
4. NAND Gate
Ans. 3
A single transistor can be used to build ………….. gates .
1. OR Gate
2. NOT Gate
3. AND Gate
4. NAND Gate
Ans. 3
The logic gate that will have HIGH or “1” at its output when any one of its inputs is
HIGH is a/an …………… gate.
1. OR Gate
2. NOT Gate
3. AND Gate
4. NAND Gate
Ans. 1
…………. NAND circuits are contained in a 7400 NAND IC.
1. 1
2. 2
3. 4
4. 8
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Ans. 3
Exclusive-OR (XOR) logic gates can be constructed from ………..logic gates.
1. OR gates only
2. AND gates and NOT gates
3. AND gates, OR gates, and NOT gates
4. OR gates and NOT gates
Ans. 3
……….. truth table entries are necessary for a four-input circuit.
1. 4
2. 8
3. 12
4. 16
Ans. 4
A NAND gate has …….. inputs and ……. output.
1. LOW inputs and LOW outputs
2. HIGH inputs and HIGH outputs
3. LOW inputs and HIGH outputs
4. None of these
Ans. 3
The basic logic gate whose output is the complement of the input is ………….
1. OR gate
2. AND gate
3. INVERTER gate
4. Comparator
Ans. 3
……….. input values will cause an AND logic gate to produce a HIGH output.
1. At least one input is HIGH
2. At least one input is LOW
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3. All inputs are HIGH
4. All inputs are LOW
Ans. 3
The binary number 10101 is equivalent to decimal number …………..
1. 19
2. 12
3. 27
4. 21
Answer : 4
2’s complement of binary number 0101 is ………..
1. 1011
2. 1111
3. 1101
4. 1110
Answer : 1
Explanation: 1’s complement of 0101 is 1010 and 2’s complement is 1010+1 = 1011
Decimal number 10 is equal to binary number ……………
1. 1110
2. 1010
3. 1001
4. 1000
Answer : 2
Explanation: 1010 = 8 + 2 = 10 in decimal.
A device which converts BCD to seven segments is called ……..
1. Encoder
2. Decoder
3. Multiplexer
4. None of these
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Answer : 2
Explanation: Decoder converts binary/BCD to alphanumeric.
In 2’s complement representation the number 11100101 represents the decimal number
……………
1. +37
2. -31
3. +27
4. -27
Answer : 4
Explanation:
A = 11100101. Therefore Ā = 00011010 and A’ = Ā + 1 = 00011011 = 16 + 8 + 2 + 1 = 27.
Therefore A = -27.
For the gate in the given figure the output will be ………..
1. 0
2. 1
3. A
4. Ā
Answer : 4
Explanation: If A = 0, Y = 1 and A = 1, Y = 0 Therefore Y = Ā.
The number of digits in octal system is ………
1. 8
2. 7
3. 9
4. 10
Answer : 1
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Explanation: The octal system has 8 digits 0 to 7.
Decimal 43 in hexadecimal and BCD number system is respectively……. and ……..
1. B2 and 01000011
2. 2B and 01000011
3. 2B and 00110100
4. B2 and 01000100
Answer : 2
Explanation:
The greatest negative number which can be stored is 8 bit computer using 2’s
complement arithmetic is ……..
1. -256
2. -128
3. -255
4. -127
Answer: 2
Explanation: The largest negative number is 1000 0000 = -128.
The basic storage element in a digital system is ………….
1. flipflop
2. counter
3. multiplexer
4. encoder
Answer : 1
Explanation: Storing can be done only in memory and flip-flop is a memory element.
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The output of a half adder is ……….
1. Sum
2. Sum and Carry
3. Carry
4. none of these
Answer: 2
7BF16 = __________ 2
1. 0111 1011 1110
2. 0111 1011 1111
3. 0111 1011 0111
4. 0111 1011 0011
Answer : 2
Explanation:
7BF16 = 0111 1011 1111 in binary.
(= 7 x 162 + 11 x 16
1 + 15 x 16
0 = 1983 in decimal )
The hexadecimal number (3E8)16 is equal to decimal number ………
1. 1000
2. 982
3. 768
4. 323
Answer : 1
Explanation: 3 x 162 + 14 x 16
1 + 8 = 1000
The number of distinct Boolean expression of 4 variables is …….
1. 16
2. 256
3. 1024
4. 65536
Answer : 4
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Explanation:
1’s complement of 11100110 is ……………….
1. 00011001
2. 10000001
3. 00011010
4. 00000000
Answer: 1
Explanation: By replacing 1 by 0 and 0 by 1.
An inverter gates can be developed using
a. Two diodes
b. Resistance and capacitance
c. Transistor
d. Inductance and capacitance
Answer: (c) Transistor
The truth table for an S-R flip-flop has how many VALID entries?
a) 1
b) 2
c) 3
d) 4
View Answer
Answer: c
Explanation: The SR flip-flop actually has three inputs, Set, Reset and its current state. The
Invalid or Undefined State occurs at both S and R being at 1.
The logic circuits whose outputs at any instant of time depends only on the present
input but also on the past outputs are called ________________
a) Combinational circuits
b) Sequential circuits
c) Latches
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d) Flip-flops
View Answer
Answer: b
Explanation: In sequential circuits, the output signals are fed back to the input side. So, The
circuits whose outputs at any instant of time depends only on the present input but also on the
past outputs are called sequential circuits. Unlike sequential circuits, if output depends only
on the present state, then it’s known as combinational circuits.
The basic latch consists of ___________
a) Two inverters
b) Two comparators
c) Two amplifiers
d) Two adders
Answer: a
Explanation: The basic latch consists of two inverters. It is in the sense that if the output Q =
0 then the second output Q’ = 1 and vice versa.
In S-R flip-flop, if Q = 0 the output is said to be ___________
a) Set
b) Reset
c) Previous state
d) Current state
Answer: b
Explanation: In S-R flip-flop, if Q = 0 the output is said to be reset and set for Q = 1.
The output of latches will remain in set/reset untill ___________
a) The trigger pulse is given to change the state
b) Any pulse given to go into previous state
c) They don’t get any pulse more
d) The pulse is edge-triggered
Answer: a
Explanation: The output of latches will remain in set/reset untill the trigger pulse is given to
change the state.
What is a trigger pulse?
a) A pulse that starts a cycle of operation
b) A pulse that reverses the cycle of operation
c) A pulse that prevents a cycle of operation
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d) A pulse that enhances a cycle of operation
Answer: a
Explanation: Trigger pulse is defined as a pulse that starts a cycle of operation.
In a J-K flip-flop, if J=K the resulting flip-flop is referred to as _____________
a) D flip-flop
b) S-R flip-flop
c) T flip-flop
d) S-K flip-flop
Answer: c
Explanation: In J-K flip-flop, if both the inputs are same then it behaves like T flip-flop.
The flip-flop is only activated by _____________
a) Positive edge trigger
b) Negative edge trigger
c) Either positive or Negative edge trigger
d) Sinusoidal trigger
Answer: c
Explanation: Flip flops can be activated with either a positive or negative edge trigger.
Both the J-K & the T flip-flop are derived from the basic _____________
a) S-R flip-flop
b) S-R latch
c) D latch
d) D flip-flop
Answer: b
Explanation: The SR latch is the basic block for the D latch/flip flop from which the JK and T
flip flops are derived. A latch is similar to a flip-flop, only without a clock input.
The flip-flops which has not any invalid states are _____________
a) S-R, J-K, D
b) S-R, J-K, T
c) J-K, D, S-R
d) J-K, D, T
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Answer: d
Explanation: Unlike the SR latch, these circuits have no invalid states. The SR latch or flip-
flop has an invalid or forbidden state where no output could be determined.
What does the triangle on the clock input of a J-K flip-flop mean?
a) Level enabled
b) Edge triggered
c) Both Level enabled & Edge triggered
d) Level triggered
Answer: b
Explanation: The triangle on the clock input of a J-K flip-flop mean edge triggered. Whereas
the absence of triangle symbol implies that the flip-flop is level-triggered.
What does the circle on the clock input of a J-K flip-flop mean?
a) Level enabled
b) Positive edge triggered
c) negative edge triggered
d) Level triggered
Answer: c
Explanation: The circle on the clock input of a J-K flip-flop mean negative edge triggered.
Whereas the absence of triangle symbol implies that the flip-flop is level-triggered.
What does the direct line on the clock input of a J-K flip-flop mean?
a) Level enabled
b) Positive edge triggered
c) negative edge triggered
d) Level triggered
Answer: d
Explanation: The direct line on the clock input of a J-K flip-flop mean level triggered.
Whereas the presence of triangle symbol implies that the flip-flop is edge-triggered.
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The given hexadecimal number (1E.53)16 is equivalent to ____________
a) (35.684)8
b) (36.246)8
c) (34.340)8
d) (35.599)8
Answer: b
Explanation: First, the hexadecimal number is converted to it’s equivalent binary form, by
writing the binary equivalent of each digit in form of 4 bits. Then, the binary equivalent bits
are grouped in terms of 3 bits and then for each of the 3-bits, the respective digit is written.
Thus, the octal equivalent is obtained.
(1E.53)16 = (0001 1110.0101 0011)2
= (00011110.01010011)2
= (011110.010100110)2
= (011 110.010 100 110)2
= (36.246)8.
The octal number (651.124)8 is equivalent to ______
a) (1A9.2A)16
b) (1B0.10)16
c) (1A8.A3)16
d) (1B0.B0)16
Answer: a
Explanation: First, the octal number is converted to it’s equivalent binary form, by writing the
binary equivalent of each digit in form of 3 bits. Then, the binary equivalent bits are grouped
in terms of 4 bits and then for each of the 4-bits, the respective digit is written. Thus, the
hexadecimal equivalent is obtained.
(651.124)8 = (110 101 001.001 010 100)2
= (110101001.001010100)2
= (0001 1010 1001.0010 1010)2
= (1A9.2A)16.
The octal equivalent of the decimal number (417)10 is _____
a) (641)8
b) (619)8
c) (640)8
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d) (598)8
Answer: a
Explanation: Octal equivalent of decimal number is obtained by dividing the number by 8
and collecting the remainders in reverse order.
8 | 417
8 | 52 — 1
8 | 6 – 4
So, (417)10 = (641)8.
Convert the hexadecimal number (1E2)16 to decimal.
a) 480
b) 483
c) 482
d) 484
Answer: c
Explanation: Hexadecimal to Decimal conversion is obtained by multiplying 16 to the power
of base index along with the value at that index position.
(1E2)16 = 1 * 162 + 14 * 16
1 + 2 * 16
0 (Since, E = 14)
= 256 + 224 + 2 = (482)10.
(170)10 is equivalent to ____________
a) (FD)16
b) (DF)16
c) (AA)16
d) (AF)16
Answer: c
Explanation: Hexadecimal equivalent of decimal number is obtained by dividing the number
by 16 and collecting the remainders in reverse order.
16 | 170
16 | 10 – 10
Hence, (170)10 = (AA)16.
Convert (214)8 into decimal.
a) (140)10
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b) (141)10
c) (142)10
d) (130)10
Answer: a
Explanation: Octal to Decimal conversion is obtained by multiplying 8 to the power of base
index along with the value at that index position.
(214)8 = 2 * 8v + 1 * 81 + 4 * 8
0
= 128 + 8 + 4 = (140)10.
Convert (0.345)10 into an octal number.
a) (0.16050)8
b) (0.26050)8
c) (0.19450)8
d) (0.24040)8
Answer: b
Explanation: Converting decimal fraction into octal number is achieved by multiplying the
fraction part by 8 everytime and collecting the integer part of the result, unless the result is 1.
0.345*8 = 2.76 2
0.760*8 = 6.08 6
00.08*8 = 0.64 0
0.640*8 = 5.12 5
0.120*8 = 0.96 0
So, (0.345)10 = (0.26050)8.
Convert the binary number (01011.1011)2 into decimal.
a) (11.6875)10
b) (11.5874)10
c) (10.9876)10
d) (10.7893)10
Answer: a
Explanation: Binary to Decimal conversion is obtained by multiplying 2 to the power of base
index along with the value at that index position.
(01011)2 = 0 * 24 + 1 * 2
3 + 0 * 2
2 + 1 * 2
1 + 1 * 2
0 = 11
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(1011)2 = 1 * 2-1
+ 0 * 2-2
+ 1 * 2-3
+ 1 * 2-4
= 0.6875
So, (01011.1011)2 = (11.6875)10.
Octal to binary conversion: (24)8 =?
a) (111101)2
b) (010100)2
c) (111100)2
d) (101010)2
Answer: b
Explanation: Each digit of the octal number is expressed in terms of group of 3 bits. Thus, the
binary equivalent of the octal number is obtained.
(24)8 = (010100)2.
Convert binary to octal: (110110001010)2 =?
a) (5512)8
b) (6612)8
c) (4532)8
d) (6745)8
Answer: b
Explanation: The binary equivalent is segregated into groups of 3 bits, starting from left. And
then for each group, the respective digit is written. Thus, the octal equivalent is obtained.
(110110001010)2 = (6612)8.
Any signed negative binary number is recognised by its ________
a) MSB
b) LSB
c) Byte
d) Nibble
Answer: a
Explanation: Any negative number is recognized by its MSB (Most Significant Bit).
If it’s 1, then ít’s negative, else if it’s 0, then positive.
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An important drawback of binary system is ________
a) It requires very large string of 1’s and 0’s to represent a decimal number
b) It requires sparingly small string of 1’s and 0’s to represent a decimal number
c) It requires large string of 1’s and small string of 0’s to represent a decimal number
d) It requires small string of 1’s and large string of 0’s to represent a decimal number
Answer: a
Explanation: The most vital drawback of binary system is that it requires very large string of
1’s and 0’s to represent a decimal number. Hence, Hexadecimal systems are used by
processors for calculation purposes as it compresses the long binary strings into small parts.
Representation of hexadecimal number (6DE)H in decimal:
a) 6 * 162 + 13 * 16
1 + 14 * 16
0
b) 6 * 162 + 12 * 16
1 + 13 * 16
0
c) 6 * 162 + 11 * 16
1 + 14 * 16
0
d) 6 * 162 + 14 * 16
1 + 15 * 16
0
Answer: a
Explanation: Hexadecimal to Decimal conversion is obtained by multiplying 16 to the power
of base index along with the value at that index position.
In hexadecimal number D & E represents 13 & 14 respectively.
So, 6DE = 6 * 162 + 13 * 16
1 + 14 * 16
0.
The quantity of double word is ________
a) 16 bits
b) 32 bits
c) 4 bits
d) 8 bits
Answer: b
Explanation: One word means 16 bits, Thus, the quantity of double word is 32 bits.
How many entries will be in the truth table of a 4-input NAND gate?
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1. 6
2. 8
3. 32
4. 16
Answer: d
Explanation:
A NAND gate is a universal logic gate that performs the negation (NOT) of an AND logic
operations in digital circuits.
As we know,
Y = 2n Y number of Entries in the truth table
Where , n = number of inputs.
What is the addition of the binary number 101001+ 010011=?
1. 010100
2. 111100
3. 000111
4. 101110
Answer: b
Explanation: If you want to add any binary number, first, you need to know the binary
addition rules.
0 + 1 = 1
1 + 0 = 1
0 + 0 = 0
1 + 1 = 0 (with carry 1)
101001+ 010011 = 111100
What is the binary subtraction of 101001 - 010110 =?
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1. 010011
2. 100110
3. 011001
4. 010010
Answer: a
Explanation: If you want to subtract any binary number, first, you need to know the binary
subtraction rules.
1 - 0 = 1
0 - 1 = 1 (With borrow 1)
0 - 0 = 0
1 - 1 = 0
therefore, the subtraction of 101001 - 010110 = 010011
DeMorgan's Law states that
1. (A+B)' = A'*B
2. (AB)' = A' + B'
3. (AB)' = A' + B
4. (AB)' = A + B
Answer: b
Explanation: DeMorgan's theorems play a vital role in digital electronics. It gives an
equivalency between the logic gates. There are two distinct types of DeMorgan's theorems:
the first gives the equivalent of the NAND gate, and the other gives the equivalent of the
NOR gate. As per the dual property of DeMorgan's theorem (AB)' = A' + B' & (A+B) = A' *
B'
One nibble is equal to how many bits
1. 4
2. 2
3. 16
4. 8
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Answer: a
Explanation: In digital electronics, the smallest unit of storage consisting of either 0 or 1 is
called a bit. The arrangement of such 4 bits is known as a nibble. The arrangement of such 8
bits is known as a byte.
Suppose the output of an XNOR gate is 1. Which of the given input combination is
correct?
1. A = 0, B' = 1
2. A = 1, B = 1
3. A = 0, B = 1
4. A = 0, B = 0
Answer: d
Explanation:
An XNOR refers to a digital logic gate with two or more inputs and one output that executes
logical equality. The output of an XNOR gate is true either all of its inputs are true, or all of
its inputs are false. When one of its inputs is false, and others are true, then the output is false.
The output of the XNOR gate is given by the following equation.
AB + A'B,' For A = 0 AND B = 0 the output will be 1.
The number of inputs in a half adder is?
1. 8
2. 2
3. 11
4. 32
Answer: b
Explanation: The total number of inputs in a half adder is 2. The half adder circuit has two
inputs: P and Q, which add two input digits and generate a carry and sum. With the help of
half Adder, we can design circuits capable of performing simple addition with the help of
logic gates. An EXOR gate has two inputs and carries links to input EXOR gates. The output
of the half added is also two, SUM and CARRY.
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What is the radix of the octal number system?
1. 2
2. 10
3. 8
4. 16
Answer: c
Explanation: A radix of a number system refers to the number of base digits, including zero,
that are used to represent large values. In the binary number system, that would be 2 (0,1). In
the octal number system, that would be 8 (0 to 7). In the decimal number system, that would
be 10 (0 to 9). In the hexadecimal number system, that would be 16 (0 to 15).
8051 microcontrollers are manufactured by which of the following companies?
a) Atmel
b) Philips
c) Intel
d) All of the mentioned
Answer: d
Explanation: 8051 microcontrollers are manufactured by Intel, Atmel, Philips/Signetics,
Infineon, Dallas Semi/Maxim.
8051 series has how many 16 bit registers?
a) 2
b) 3
c) 1
d) 0
Answer: a
Explanation: It has two 16 bit registers DPTR and PC.
What is the bit size of the 8051 microcontroller?
a) 8-bit
b) 4-bit
c) 16-bit
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d) 32-bit
Answer: a
Explanation: It is an 8-bit microcontroller which means most of the operations are limited to
8 bit only
Name the architecture and the instruction set for microcontroller?
a) Van- Neumann Architecture with CISC Instruction Set
b) Harvard Architecture with CISC Instruction Set
c) Van- Neumann Architecture with RISC Instruction Set
d) Harvard Architecture with RISC Instruction Set
Answer: b
Explanation: Harvard architecture has different memory spaces for both program memory
and data memory with Complex Instruction Set Computer(CISC). The difference between
CISC and RISC is RISC has few instructions than CISC. Where as in Van- Neumann,
program and data memory are same. Van- Neumann is also called as Princeton architecture.
Program counter stores what?
a) Address of before instruction
b) Address of the next instruction
c) Data of the before execution to be executed
d) Data of the execution instruction
Answer: b
Explanation: Points to the address of the next instruction to be executed from ROM. It is 16
bit register means the 8051 can access program address from 0000H to FFFFH. Total 64KB
of code.
8085 microprocessor is an 8-bit microprocessor designed by?
A. IBM
B. Dell
C. Intel
D. VAX
Ans : C
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Explanation: 8085 is pronounced as "eighty-eighty-five" microprocessor. It is an 8-bit
microprocessor designed by Intel in 1977.
What is true about Program counter?
A. It is an 8-bit register, which holds the temporary data of arithmetic and logical operations.
B. When an instruction is fetched from memory then it is stored in the program counter
C. It provides timing and control signal to the microprocessor
D. It is a 16-bit register used to store the memory address location of the next instruction to
be executed.
Ans : D
Explanation: Program counter : It is a 16-bit register used to store the memory address
location of the next instruction to be executed.