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This section includes 25 Mcqs, each offering curated multiple-choice questions to sharpen your Optical Communication knowledge and support exam preparation. Choose a topic below to get started.
1. |
Compute the gain of parametric amplifier having signal power of 1.6W, length of 500, non-linear coefficient of 10.19 * 10-3W-1km-1. |
A. | 34.89 |
B. | 19.15 |
C. | 18.22 |
D. | 16.11 |
Answer» D. 16.11 | |
2. |
Compute signal power for parametric amplifier having length of 500, nonlinear gain coefficient 12.6×10-3 W-1km-1 and parametric peak gain of 63.9 dB. |
A. | 0.245 W |
B. | 0.012 W |
C. | 0.19 W |
D. | 0.342 W |
Answer» C. 0.19 W | |
3. |
In _____________ Rayleigh scattering can be reduced. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
4. |
In ___________ the ASE contributes most of noise. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
5. |
_____________ are called hybrid Raman amplifier. |
A. | Lumped and distributed Raman Amplifiers |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» B. Rare-earth-doped fiber amplifiers | |
6. |
_______________ extends the pump power into transmission line fiber. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
7. |
_________ is also known as lump Raman amplifiers. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Discrete Raman amplifiers |
Answer» E. | |
8. |
____________ uses Er3+-doped erbium glass. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Brillouin fiber amplifier |
Answer» B. Rare-earth-doped fiber amplifiers | |
9. |
It is possible to construct a single rare-earth-doped fiber amplifier which provides amplification for all-bands. |
A. | True |
B. | False |
Answer» C. | |
10. |
The spectral dependence on gain is always constant. |
A. | True |
B. | False |
Answer» C. | |
11. |
________________EXTENDS_THE_PUMP_POWER_INTO_TRANSMISSION_LINE_FIBER.?$ |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
12. |
In ___________ the ASE contributes most of noise.$ |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
13. |
______________are_called_hybrid_Raman_amplifier.$ |
A. | Lumped and distributed Raman Amplifiers |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» B. Rare-earth-doped fiber amplifiers | |
14. |
Compute the gain of parametric amplifier having signal power of 1.6W, length of 500, non-linear coefficient of 10.19 * 10-3W-1km-1 |
A. | 34.890 |
B. | 19.15 |
C. | 18.22 |
D. | 16.11 |
Answer» D. 16.11 | |
15. |
Compute signal power for parametric amplifier having length of 500, nonlinear gain coefficient 12.6√ó10-3 W-1km-1and parametric peak gain of 63.9 dB.$ |
A. | 0.245 W |
B. | 0.012 W |
C. | 0.19 W |
D. | 0.342 W |
Answer» C. 0.19 W | |
16. |
Compute the fiber nonlinear coefficient of a parametric optical amplifier having parametric peak gain of 63.6 dB, signal power of 1.6W, length 520. |
A. | 2.78√ó10<sup>-2</sup> W<sup>-1</sup>km<sup>-1</sup> |
B. | 9.61√ó10<sup>-3</sup> W<sup>-1</sup>km<sup>-1</sup> |
C. | 3.25√ó10<sup>-3</sup> W<sup>-1</sup>km<sup>-1</sup> |
D. | 5.61√ó10<sup>-4</sup> W<sup>-1</sup>km<sup>-1</sup> |
Answer» C. 3.25‚Äö√†√∂‚àö‚â•10<sup>-3</sup> W<sup>-1</sup>km<sup>-1</sup> | |
17. |
In _____________ Rayleigh scattering can be reduced. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Distributed Raman amplification |
Answer» E. | |
18. |
_________ is also known as lump Raman amplifiers? |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Discrete Raman amplifiers |
Answer» E. | |
19. |
The most advantageous amplification is ____________ |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Brillouin fiber amplifier |
Answer» D. Brillouin fiber amplifier | |
20. |
____________ uses Er3+-doped erbium glass. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Brillouin fiber amplifier |
Answer» B. Rare-earth-doped fiber amplifiers | |
21. |
_______________ is constructed using erbium-doped glass. |
A. | An erbium-based micro fiber amplifier |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Brillouin fiber amplifier |
Answer» B. Rare-earth-doped fiber amplifiers | |
22. |
It is possible to construct a single rare-earth-doped fiber amplifier which provides amplification for all-bands. State whether the given statement is true or false. |
A. | True |
B. | False |
Answer» C. | |
23. |
Signal amplification is obtained in ____________ |
A. | Erbium-doped fluoro-zir-carbonate fiber multimode |
B. | Rare-earth-doped fiber amplifiers |
C. | Raman fiber systems |
D. | Brillouin fiber amplifier |
Answer» B. Rare-earth-doped fiber amplifiers | |
24. |
ESA ________ the pumping efficiency of device. |
A. | Increases |
B. | Does not affects |
C. | Reduces |
D. | Has negligible effect on |
Answer» D. Has negligible effect on | |
25. |
The spectral dependence on gain is always constant. State whether the given statement is true or false. |
A. | True |
B. | False |
Answer» C. | |