EBK ACTIVITIES MANUAL FOR PROGRAMMABLE
5th Edition
ISBN: 8220102795983
Author: Petruzella
Publisher: YUZU
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Chapter 9, Problem 1RQ
Program Plan Intro
a.
Master Control Reset (MCR) instructions:
- The MCR instruction is used to clear all set outputs within the fenced zone.
- In other words, it turns off all the non-retentive outputs in the fenced zone.
- Non-retentive outputs cannot retain their memory when they are de-energized.
- The MCR instruction within the zone are still scanned, but the scan time is reduced due to the false state of non-retentive outputs.
Expert Solution
Explanation of Solution
- In order to control a program section, two MCR output instructions are programmed.
- The fenced zone which needs to be controlled begins with one MCR instruction and the other MCR instruction at the end.
- An MCR rung with conditional inputs is placed at the beginning of the program section to be controlled.
- An MCR rung with no conditional inputs is placed at the end of the program section to be controlled.
- If the first MCR instruction becomes true, then all the outputs present in between the two MCR instructions will act according to the logic.
- If the MCR instruction becomes false, then all the non-retentive outputs will be de-energized and all the retentive outputs will retain their previous state.
Explanation of Solution
b.
False-to-true transition:
- When the MCR instruction makes a false-to-true transition, all rung outputs within the program section will be controlled by their respective input conditions.
- Initially, when the MCR instruction in the rung is false, all the rungs within the zone are made inactive and de-energizes all non-retentive outputs.
- Hence, all retentive devices such as latches will remain in their previous state.
Explanation of Solution
c.
True-to-false transition:
- When the MCR instruction makes a true-to-false transition, all non-retentive outputs within the program section will be de-energized.
- At the same time, all the retentive outputs within the fenced zone will remain in their previous state.
- Initially, when the MCR instruction in the rung is true, all the rungs within the zone are scanned and the outputs are energized and updated based on their logic.
- When the MCR instruction undergoes a transition from true-to-false, the scan ignores the input and de-energizes all the non-retentive outputs.
- Hence, all the retentive devices like latches, timers will remain in their previous state.
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make corrections of this program based on the errors shown. this is CIS 227 .
Create 6 users: Don, Liz, Shamir, Jose, Kate, and Sal.
Create 2 groups: marketing and research.
Add Shamir, Jose, and Kate to the marketing group.
Add Don, Liz, and Sal to the research group.
Create a shared directory for each group.
Create two files to put into each directory:
spreadsheetJanuary.txt
meetingNotes.txt
Assign access permissions to the directories:
Groups should have Read+Write access
Leave owner permissions as they are
“Everyone else” should not have any access
Submit for grade:
Screenshot of /etc/passwd contents showing your new users
Screenshot of /etc/group contents showing new groups with their members
Screenshot of shared directories you created with files and permissions
⚫ your circuit diagrams for your basic bricks, such as AND, OR, XOR gates and 1 bit multiplexers,
⚫ your circuit diagrams for your extended full adder, designed in Section 1 and
⚫ your circuit diagrams for your 8-bit arithmetical-logical unit, designed in Section 2.
1 An Extended Full Adder
In this Section, we are going to design an extended full adder circuit (EFA). That EFA takes 6 one bit inputs: aj, bj,
Cin, Tin, t₁ and to. Depending on the four possible combinations of values on t₁ and to, the EFA produces 3 one bit
outputs: sj, Cout and rout.
The EFA can be specified in principle by a truth table with 26 = 64 entries and 3 outputs. However, as the EFA
ignores certain inputs in certain cases, it is easier to work with the following overview specification, depending only
on t₁ and to in the first place:
t₁ to Description
00
Output Relationship
Ignored
Inputs
Addition Mode
2 Coutsjaj + bj + Cin, Tout= 0
Tin
0 1
Shift Left Mode
Sj = Cin,
Cout=bj, rout = 0
rin, aj
10
1 1
Shift Right…
Chapter 9 Solutions
EBK ACTIVITIES MANUAL FOR PROGRAMMABLE
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