A telecommunication system monitors 10 substations, each containing 5 signal channels. Each channel has a signal bandwidth of 100 Hz. The signals are quantized and encoded. The sampling rate is twice the Nyquist rate. The maximum quantization error is 0.25% of the peak amplitude mp. The required overall bit rate of the system.

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Satt Academy · Accepted Answer

Bandwidth per channel = 100 HzSampling rate = 2

× Nyquist = 2 × 2 × 100 = 400 samples/secQuantization error = 0.25% of mp ⇒ mp400For uniform quantizer : ∆2= mp400, and ∆= 2mpL ⇒ L = 400 levelsL = 2n ⇒ n = log2(400) ≈ 8.64⇒ 9 bits/sampleBit rate per channel = 400 × 9 = 3600 bpsTotal channels = 10 substations × 5 channels = 50Total bit rate = 50 × 3600 = 180,000 bps = 180 kbp

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