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NCTI Fiber Install & Activation Exam: Complete Questions&Answers Study Guide with Rationales

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NCTI Fiber Install & Activation Exam: Complete Questions&Answers Study Guide with Rationales

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NCTI Fiber Install & Activation Exam:
Complete Questions&Answers Study
Guide with Rationales




Section 1: Fiber-Optic Fundamentals & Modulation

1. What is the basis for most digital modulation of light waves?

 Answer: OOK (On-Off Keying)
 Rationale: OOK is the simplest form of digital modulation, where the
presence of light represents a "1" and the absence represents a "0".
Its simplicity makes it the foundation for most digital fiber-optic
systems.

2. What is PSK (Phase Shift Keying)?

 Answer: A modulation technique where the intensity of light waves
remains constant, but the phase shifts 180° when the digital signal
changes from 0 to 1 (and vice versa).
 Rationale: By shifting the phase instead of turning the light on and
off, PSK can provide better performance in some optical systems.

3. What is DPSK (Differential Phase Shift Keying)?

,  Answer: A form of PSK that encodes digital values as changes
(differences) in signal phase, making it more robust than standard
PSK.
 Rationale: DPSK is more tolerant of noise because it looks for phase
changes rather than absolute phase values, making it suitable for
long-haul networks where signals may be weak.

4. What is a drawback of DPSK?

 Answer: It requires almost twice the optical bandwidth of NRZ-OOK.
 Rationale: The increased bandwidth requirement is a trade-off for
the improved noise immunity DPSK provides.

5. What is DQPSK (Differential Quadrature Phase Shift Keying)?

 Answer: A modulation technique using four phase shifts, allowing
each shift to represent 2 bits (00, 01, 10, 11), effectively doubling the
data speed.
 Rationale: By encoding two bits per symbol, DQPSK achieves higher
data rates within the same bandwidth.

6. Why is DQPSK less susceptible to dispersion?

 Answer: Its narrower optical bandwidth makes it less susceptible to
chromatic and polarization mode dispersion.
 Rationale: Narrower optical bandwidth means the light pulses are
less spread out as they travel, maintaining signal integrity.

7. What data rates can DQPSK handle in a 50 GHz channel?

 Answer: Up to 40 Gbps.
 Rationale: This high data rate allows for the creation of closely
spaced channels, which is essential for DWDM systems.

, 8. Why do most broadband cable networks use analog modulation in
the downstream?

 Answer: Because digital modulation of the downstream would
require too much processing and high data rates.
 Rationale: Analog modulation is a more efficient and cost-effective
method for broadcasting the large volume of video and data signals
in cable networks.


Section 2: Optical Transmitters, Receivers & Components

9. In which component of a fiber-optic communication system do
changes to the intensity of the optical signal occur?

 Answer: The optical transmitter.
 Rationale: The transmitter contains the light source (laser or LED)
that converts the electrical signal into an optical signal, modulating its
intensity.

10. What is one drawback of using Fabry-Perot (F-P) lasers in high-
speed data (HSD) networks?

 Answer: They emit several discrete wavelengths, known as side
modes.
 Rationale: These multiple wavelengths can cause dispersion, which
limits the laser's effectiveness in high-speed, long-distance networks.

11. Why are laser diodes most effective when coupled to single-mode
fiber (SMF)?

 Answer: They have a small spectral width, allow for efficient coupling,
and offer fast modulation speeds.

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