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Question.5580 - John is an electronics enthusiast who loves designing and building digital circuits using Boolean algebra and logic gates. He has been tasked with creating a simple circuit that can turn on a light bulb using a switch. John wants to utilize his knowledge of Boolean algebra and logic gates to design an efficient and reliable circuit for this purpose. Using Boolean algebra and logic gates, design a digital circuit that can control a light bulb with a switch. The circuit should meet the following conditions: The light bulb should turn on when the switch is closed (ON position) and turn off when the switch is open (OFF position). Use the fewest number of logic gates possible to keep the circuit simple and efficient. Clearly depict the logic gates you choose to use and explain the reasoning behind your choices. Please provide a step-by-step explanation of your circuit design based on the following steps below. Identification of input and output signals. Application of Boolean algebra laws, and The depiction of the final circuit.

Answer Below:

Assignment xxxxxxxx Unit xxxxxxxxxx of xxxxxxxx - xxxxxxx Electronics xxxxxxxx ArchitectureAssignment xxxxxxxx Unit xxxxxxxx input xxx outputInput x the xxxxxx binary x when xxxxxx is xxxxxx ON x when xxxx OFF xxxxxx L xxx light xxxxxx L xx L xxx Boolean xxxxxxxxxx and xxxxxxxxx the xxxxxx is xx want xxx bulb xx exactly xxxxxxxx the xxxxxx is xxxxxx while xxxxxxxx Boolean xxxxxxxxxx that xxxx this xx L x where x S xxxxxxxx for xxx and x S xxxxxxxx for xx in xxxxxxxx if xx are xxxxxxxx with x more xxxxxxx express xxxx L x now xx applying xxxxxxxx laws xxxxxxx it xx L x that xx already xxxxxxx to xxxxxxx Truth xxxxxxx Minimal xxxxxxxxxx implementation xxx diagram xx terms xx minimum xxxxxx of xxxxx gates xxxx being xxxx - xxxxxxx in xxxxxxxx where xxx system xxxxxx the xxxxxxxx switch xx directly xxxxxxx the xxxx that xxxxx the xxxxxx electrical xxxxxxxxxx with xx logic xxxx being xxxxxxxx the xxxxxx wire xxxxxx the xxxx Wherein xxx minimal xxxxxx gate xxxxxxxxxxxxxx is x buffer xxxxxxxx gate x ASCII xxxxxxx no xxxx direct xxxxxxxxxx V xxx Switch x ----- xxxx L xxxx GND xxxx employingg x digital xxxx buffer x switch xxx BUFFER xxx L xxxx and xx scenario xx the xxxxxx is xxx available xxx only xxxx inverters xx can xxxxxxx a xxxxxx with xxx NOT xxxx like x --- xxx --- xxx --- x while xxx important xxxxx is xxxx it xxxxxxxx gates xxxxxx gate xx better xxxxxx Harris xxxxxxxxx for xxxx choice xxxxxxxxxxxxx required xxxxxxxx is xxxxxxxx output xxxxxxxx input xxxx No xxxxx combination xx inversion xxxxx necessary xxxxx adding xxxxx only xxxx to xxxxxxxx underlying xxxxxxxxxx propagation xxxxx and xxxxx cost xxxxxxx the xxxxxx logic xxxxx being xxxxxx wire xx a xxxxx symbol xx required xx the xxxxxxxxx then xxxxxxxxx buffer xxxx be xxxxxxxxxx Harris xxxxxx Practical xxxx world xxxxx things xxxx John xxx considerFirstly xxxxxxxxxxx current xxxxxxx where xxxx often xxxxx much xxxx content xxxx a xxxxx gate xxx supply xx utilizing xxx switch xx control x power xxxxxx like xxxxxx or xx placing xxx lamp xxxxx on xxx switch xxxx as xxxxx above xxxxxxxx by xxxxxxxxxxx debouncing xxxxx a xxxxxxxxxx switch xxxxx to xxxxxx - xx scenario x signal xx read xx digital xxxxx and xx adding x debounce xxxxxxx or xxxxxxx RC xxxxxxx trigger xxxxxx Harris xxxxxxx if xxxxxxx an xxxxxxxxx load xxxx relay xxxxx by xxxxxx a xxxxxxx diode xxxxx larger xxxx currents xxxxxxx a xxxxxxxx transistor xxxxxx or xxxxx driver xxxxxx Logic-level xxxxxxxxx if xxx switch xx wired xxxxxxxxxx with xxxxxx then x S xxx they x need x NOT xxxx inverter xxxxxx Harris xx conclusion xxxxx on xx understanding xxxxxxxxxxxx the xxxxxxxx design xxxx be x S xxxx minimal xxxxxxxxxxxxxx utilizing xxxxx gates xxxx is xxxxxx lamp xxx in xxxxxxxx a xxxx symbol xx required xxxxxxxxx single xxxxxx that xx one xxxx meets xxx condition xxxxx bulb xx when xxxxxx closed xxx whenever xxxx utilizing xxx fewest xxxxx ReferencesHarris x Harris x Digital xxxxxx and xxxxxxxx Architecture xxxxxx Edition xxxxxx Kaufmann

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