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A symbol stream contains alternate QPSK and 16-QAM symbols. If symbols from this stream are transmitted at the rate of 1 mega-symbols per second, the raw (uncoded) data rate is _______ mega-bits per second (rounded off to one decimal place). Answer: Since alternative QPSK and 16-QAM used, data rate of uncoded data is (2+4)/2 = 3 Mbps Number of bits in one QPSK symbol is 2 and number of bits in one 16-QAM symbol is 4 Read more about Modulation Techniques → GATE EC Previous Year Papers with Solutions → Electronics and Communication Study Material →