Class 12 Exam  >  Class 12 Videos  >  L10 : Modulation - Physics Communication Systems, Physics, Class 12

L10 : Modulation - Physics Communication Systems, Physics, Class 12 Video Lecture

FAQs on L10 : Modulation - Physics Communication Systems, Physics, Class 12 Video Lecture

1. What is modulation in the context of physics communication systems?
Ans. Modulation in the context of physics communication systems refers to the process of varying one or more properties of a high-frequency carrier signal in accordance with the instantaneous value of the message signal. This is done to transmit information efficiently over long distances.
2. Why is modulation necessary in communication systems?
Ans. Modulation is necessary in communication systems to overcome the limitations of long-distance transmission. By modulating the carrier signal, we can effectively convey information without significant loss or distortion. Modulation allows for efficient use of bandwidth and enhances the signal's resistance to noise and interference.
3. What are the different types of modulation techniques used in physics communication systems?
Ans. There are several types of modulation techniques used in physics communication systems, including amplitude modulation (AM), frequency modulation (FM), and phase modulation (PM). AM varies the amplitude of the carrier signal, FM varies the frequency, and PM varies the phase. Each technique has its own advantages and applications.
4. How does amplitude modulation (AM) work in communication systems?
Ans. Amplitude modulation (AM) works by varying the amplitude of the carrier signal in proportion to the instantaneous value of the message signal. This modulation technique allows the transmission of audio signals over long distances. The receiver then demodulates the signal to recover the original message.
5. What are the advantages of frequency modulation (FM) over amplitude modulation (AM)?
Ans. Frequency modulation (FM) offers several advantages over amplitude modulation (AM). FM is less susceptible to noise and interference, resulting in better signal quality. It also provides a wider bandwidth, allowing for higher fidelity and the transmission of more complex signals. FM is commonly used in radio broadcasting and other applications where high-quality audio transmission is required.
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