Inspect
Review the problem, diagram, and evidence.
The voice channel bandwidth was 4 kHz. The data link was sized at 32 kbps and immediately overflowed.
Inspect, commit, prove, fix, and sign off.
Follow the investigation process used in the field β in five guided steps.
Review the problem, diagram, and evidence.
Choose your hypothesis.
Run calculations and test your idea.
Select and validate a safe correction.
See the full debrief and key takeaways.
A voice signal is band-limited to 4 kHz and encoded using ideal PCM with 8 bits per sample. A link budget allocates 32 kbps by multiplying 4 kHz by 8 bits. The encoder produces twice that data rate. Diagnose the missing sampling factor, calculate the minimum raw PCM bit rate, and determine whether a 50 kbps channel can carry the stream without compression.
Find the root cause, confirm the fix, and see how this connects to the exam.
A 32 kbps link was allocated for a 64 kbps raw PCM stream.
Analog bandwidth was treated as sampling rate.
Apply Nyquist first, then multiply sampling rate by bits per sample.
For ideal PCM, sample a band-limited signal at fsβ₯2B, then multiply by the number of bits per sample. For B=4 kHz and 8 bits/sample, fs=8 kSa/s and the raw bit rate is 64 kbps.
For ideal baseband PCM, first choose fsβ₯2B, then compute Rb=fsΓn bits/sample. Framing or coding overhead, if present, is additional.
64 kbps.
No. Ideal Nyquist sampling requires at least twice the highest signal frequency or baseband bandwidth for the stated case.
Each case is designed to build the judgment, analysis, and confidence you need for engineering exams β and beyond.
Basic subject familiarity helps, but every case is designed to teach through the investigation itself.
Most cases are designed for a focused 5β10 minute investigation.
Each case is mapped to a verified exam, subject, topic, and misconception before publication.
The sealed debrief unlocks with the root cause, corrected reasoning, fix, and takeaway.