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AD9873JS 数据表(PDF) 27 Page - Analog Devices |
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AD9873JS 数据表(HTML) 27 Page - Analog Devices |
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27 / 39 page ![]() REV. 0 AD9873 –27– FREQUENCY RELATIVE TO I/Q NYQ. BW 0 1.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1 0 –1 –2 –3 –4 –5 –6 Figure 10d. Cascaded Filter Passband Detail (N = 3) FREQUENCY – FS/2 0 1.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.35 1.36 1.37 1.38 1.39 1.40 1.41 1.42 1.43 1.44 1.45 Figure 12b. SINC Compensated Response FREQUENCY – FS/2 01.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 0.5 0 –0.5 –1.0 –1.5 –2.0 –2.5 –3.0 –3.5 –4.0 ISF SINC Figure 12a. SINC and ISF Filter Response FREQUENCY RELATIVE TO I/Q NYQ. BW 0 1.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1 0 –1 –2 –3 –4 –5 –6 Figure 11d. Cascaded Filter Passband Detail (N = 4) Inverse SINC Filter (ISF) The AD9873 transmit section is almost entirely digital. The input “signal” is made up of a time series of digital data words. These data words propagate through the device as numbers. Ultimately, this number stream must be converted to an analog signal. To this end, the AD9873 incorporates an integrated DAC. The output waveform of the DAC is the familiar “staircase” pattern typical of a signal that is sampled and quantized. The staircase pattern is a result of the finite time that the DAC holds a quantized level until the next sampling instant. This is known as a zero-order hold function. The spectrum of the zero-order hold function is the familiar SIN(x)/x, or SINC, envelope. The series of digital data words presented at the input of the DAC represent an impulse stream. It is the spectrum of this impulse stream, which is the characteristic of the desired output signal. Due to the zero-order hold effect of the DAC, however, the output spectrum is the product of the zero-order hold spectrum (the SINC envelope) and the Fourier transform of the impulse stream. Thus, there is an intrinsic distortion in the output spectrum, which follows the SINC response. The SINC response is deterministic and totally predictable. Thus, it is possible to predistort the input data stream in a manner, which compensates for the SINC envelope distortion. This can be accomplished by means of an ISF. The ISF incorporated on the AD9873 is a 5-tap, linear phase FIR filter. Its frequency response characteristic is the inverse of the SINC envelope and it equalizes the SINC droop up to 0.6 times the Nyquist fre- quency. Figure 12a and Figure 12b show the effectiveness of the ISF in correcting for the SINC distortion. Figure 12a includes a graph of the SINC envelope and ISF response while Figure 12b shows the SYSTEM response (which is the product of the SINC and ISF responses). It should be mentioned at this point that the ISF exhibits an insertion loss of 1.4 dB. Thus, signal levels at the output of the AD9873 with the ISF bypassed are 1.4 dB higher than with the ISF engaged. However, for modulated output signals, which have a relatively wide bandwidth, the ben- efits of the SINC compensation usually outweighed the 1.4 dB loss in output level. The decision of whether or not to use the ISF is an application specific system design issue. |
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