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Prof. Nizamettin AYDIN Digital Signal Processing 1.

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Presentation on theme: "Prof. Nizamettin AYDIN Digital Signal Processing 1."— Presentation transcript:

1 Prof. Nizamettin AYDIN naydin@yildiz.edu.tr http://www.yildiz.edu.tr/~naydin Digital Signal Processing 1

2 Lecture 21 Amplitude Modulation Digital Signal Processing 2

3 License Info for SPFirst Slides This work released under a Creative Commons License with the following terms:Creative Commons License Attribution The licensor permits others to copy, distribute, display, and perform the work. In return, licensees must give the original authors credit. Non-Commercial The licensor permits others to copy, distribute, display, and perform the work. In return, licensees may not use the work for commercial purposes — unless they get the licensor's permission. Share Alike The licensor permits others to distribute derivative works only under a license identical to the one that governs the licensor's work. Full Text of the License This (hidden) page should be kept with the presentation

4 LECTURE OBJECTIVES Review of FT properties –Convolution multiplication –Frequency shifting Sinewave Amplitude Modulation –AM radio Frequency-division multiplexing –FDM Reading: Chapter 12, Section 12-2

5 Table of Easy FT Properties Delay Property Frequency Shifting Linearity Property Scaling

6 Table of FT Properties Differentiation Property

7 Frequency Shifting Property

8 Convolution Property Convolution in the time-domain MULTIPLICATION corresponds to MULTIPLICATION in the frequency- domain

9 Cosine Input to LTI System

10 Ideal Lowpass Filter

11 Ideal LPF: Fourier Series

12 The way communication systems work How do we share bandwidth ?

13 Table of FT Properties Differentiation Property

14 Signal Multiplier (Modulator) Multiplication in the time-domain corresponds to convolution in the frequency-domain.

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16 Amplitude Modulator x(t) modulates the amplitude of the cosine wave. The result in the frequency-domain is two shifted copies of X(j  ).

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19 DSBAM Modulator If X(j  )=0 for |  |>  b and  c >  b,the result in the frequency-domain is two shifted and scaled exact copies of X(j  ).

20 DSBAM Waveform In the time-domain, the “envelope” of sine- wave peaks follows |x(t)|

21 Double Sideband AM (DSBAM) “Typical” bandlimited input signal Frequency-shifted copies Upper sidebandLower sideband

22 DSBAM DEmodulator

23 DSBAM Demodulation

24 Frequency-Division Multiplexing (FDM) Shifting spectrum of signal to higher frequency: –Permits transmission of low-frequency signals with high-frequency EM waves –By allocating a frequency band to each signal multiple bandlimited signals can share the same channel –AM radio: 530-1620 kHz (10 kHz bands) –FM radio: 88.1-107.9 MHz (200 kHz bands)

25 FDM Block Diagram (Xmitter) Spectrum of inputs must be bandlimited

26 Frequency-Division De-Mux

27 Bandpass Filters for De-Mux

28 Pop Quiz: FT thru LPF


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