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This deck focuses on Compare Digital And Analog Signals, giving you a quick way to review the definitions, rules, and examples that matter most for Physics.
Study Compare Digital And Analog Signals in Physics with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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What is meant by attenuation in signal transmission?
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A reduction in signal amplitude as it propagates. Signal weakens due to resistance and energy loss in the medium.
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This deck focuses on Compare Digital And Analog Signals, giving you a quick way to review the definitions, rules, and examples that matter most for Physics.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: A reduction in signal amplitude as it propagates. Signal weakens due to resistance and energy loss in the medium.
Answer: Rounding amplitudes to the nearest discrete level. Converts continuous amplitudes to nearest allowed discrete value.
Answer: Noise adds directly to the signal and accumulates with distance. Cannot separate noise from signal; both amplify together.
Answer: Digital systems can use error detection and correction codes. Extra bits can detect and fix transmission errors mathematically.
Answer: Sample at fs≥2fmax. Must sample at least twice the highest frequency to avoid aliasing.
Answer: Aliasing. High frequencies appear as false low frequencies when undersampled.
Answer: A continuous-time signal with continuously varying amplitude. Amplitude can take any value within a range at any instant.
Answer: Analog. Sound waves create continuous voltage variations in microphones.
Answer: A signal that uses discrete amplitude levels (often 0 and 1). Only specific amplitude values are allowed, typically binary.
Answer: Discrete symbols (bits). Uses binary digits to represent information as 0s and 1s.
Answer: A digital signal. Speakers need continuous voltages, not discrete bits.
Answer: Digital. Small noise won't flip bits if below decision threshold.
Answer: Thresholded (small noise often does not change the bit). Noise below threshold doesn't flip bits between levels.
Answer: Digital. Discrete levels allow parity bits and checksums.
Answer: Digital data. Perfect copies possible since only discrete values are stored.
Answer: High-frequency content appears as a lower frequency due to undersampling. Frequencies above fs/2 fold back into the sampled spectrum.
Answer: Additive (noise directly changes the amplitude). Noise voltage adds to signal voltage, distorting it.
Answer: A signal with discrete amplitude levels (often binary). Amplitude can only take specific values, typically 0 or 1 for binary.
Answer: Higher data rate (more bandwidth/storage needed). More samples per second means more data to transmit/store.
Answer: 2N quantization levels. Each bit doubles the number of possible amplitude levels.
Answer: Digital. Can detect and recreate original discrete levels.
Answer: Digital often requires higher bandwidth for the same information rate. Multiple bits needed to represent each analog sample value.
Answer: Amplifier. Increases all signal components equally, including unwanted noise.
Answer: It can be regenerated, so noise does not accumulate as much. Repeaters can restore original discrete levels, removing noise.
Answer: The number of quantization levels and amplitude resolution. More bits allow finer amplitude distinctions.
Answer: Discrete values. Amplitude is restricted to specific levels like 0 and 1.
Answer: 2n levels. Each bit doubles the number of possible amplitude levels.
Answer: Digital. CPUs process binary data using logic gates and transistors.
Answer: Regenerator (digital repeater). Detects bit values and outputs clean digital pulses.
Answer: Analog. Continuous signals have no amplitude restrictions.
Answer: Continuous values. Can take any value within a range, like voltage or temperature.
Answer: N=8 bits. Fewer bits means fewer levels, so larger rounding errors.
Answer: Measuring the signal amplitude at discrete times. Takes snapshots of the signal at regular time intervals.
Answer: Noise adds directly to the signal and accumulates with distance. Each amplifier adds more noise, degrading signal quality progressively.
Answer: Repeaters can regenerate bits, limiting cumulative noise effects. Clean bits can be perfectly restored at each repeater station.
Answer: An analog signal. Computers process discrete values, not continuous ones.
Answer: Rounding sampled amplitudes to the nearest allowed discrete level. Converts continuous amplitudes to discrete steps, introducing error.
Answer: Sampling frequency must satisfy fs≥2fmax. Prevents aliasing by sampling at least twice the highest frequency.
Answer: Continuous values. Amplitude can smoothly vary between any values.