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AD6650/PCB Folha de dados(PDF) 18 Page - Analog Devices

Nome de Peças AD6650/PCB
Descrição Electrónicos  GSM/EDGE Narrow-Band Receiver
PDF  45 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
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AD6650/PCB Folha de dados(HTML) 18 Page - Analog Devices

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AD6650
Rev. A | Page 17 of 44
Coarse DC Correction
The coarse dc correction block is a simple integrate-and-dump
that integrates the data for 16,384 cycles at the ADC clock rate
(typically 26 MSPS) and then updates an estimate of the dc. This
estimate is then subtracted from the signal path. The signal is
clipped after the subtraction to avoid numerical wrap around
with large signals.
The −32 dBFS to −35 dBFS uncorrected offset is sufficient to
demodulate large signals, but it does not leave any margin if
30 dB of signal-to-dc is desired. It is essential to consider the dc
offset of the signal at the point where the AGC of the AD6650
begins to range. This is important because once the signal or a
blocker is in the range of the AGC loop, the dc signal that appears
at the output of the AD6650 is modulated by the change in gain
of the loop. If the gain decreases, the signal at the output remains
at the same power level due to the digital relinearization, but the
dc signal at the output is gained up by the relinearization process.
For this reason, the coarse dc correction is used to provide addi-
tional correction before relinearizing the data to provide additional
margin. This block gains another 5 dB to 8 dB (sometimes up to
25 dB) of dc rejection that provides additional margin.
The coarse dc correction is provided for two reasons:
To provide additional margin on the carrier-to-dc term for
large input signals.
To provide more range for the fine dc correction upper
threshold by decreasing the total input power to the block
for small input signals. (This is described in more detail in
the Fine DC Correction section.)
FOURTH-ORDER CASCADED INTEGRATOR COMB
FILTER (CIC4)
The CIC4 processing stage implements a fixed-coefficient
decimating filter. It reduces the sample rate of the signal and
allows subsequent filtering stages to be implemented more
efficiently. The input of the CIC4 is driven by the 19-bit relinearized
data at a maximum input rate of 26 MHz (52 MHz clock rate).
The CIC4 decimation ratio, MCIC4, can be programmed from
8 to 32 (all integer values). The CIC4 scale factor, SCIC4, is a
programmable unsigned integer between 0 and 8. It serves to
control the attenuation of the data into the CIC4 stage in 6 dB
increments such that the CIC4 does not overflow. Because this
scale factor is in 6 dB steps, the CIC4 filter has a gain between
0 dB and −6.02 dB when properly scaled. For the best dynamic
range, SCIC4 should be set to the smallest value possible (lowest
attenuation) without creating an overflow condition.
(
)
(
) 12
log
4
4
2
4
×
=
CIC
CIC
M
Ceil
S
(4)
12
4
4
4
2
_
+
=
CIC
S
CIC
M
Gain
CIC
(5)
The value of 12 that is subtracted in Equation 4 comes from the
amount of scaling needed to compensate for the minimum
decimation of 8. The frequency response of the CIC4 filter is
given by Equation 6 and Equation 7. The gain and pass-band
droop of the CIC4 can be calculated using these equations. If the
gain and/or droop of the CIC4 filter are not acceptable, they can
be compensated for in the programmable RCF filter stage.
()
Gain
CIC
Z
Z
M
Z
CIC
CIC
M
CIC
_
1
1
1
4
4
1
4
4
×
×
=
(6)
()
Gain
CIC
f
f
f
M
f
M
f
CIC
ADC
ADC
CIC
CIC
_
sin
sin
1
4
4
4
4
×
⎟⎟
⎜⎜
×
π
⎟⎟
⎜⎜
×
×
π
×
=
(7)
The output rate of this stage is given by Equation 8.
4
4
CIC
ADC
SAMP
M
f
f
(8)
CIC4 Rejection
Table 10 shows the amount of bandwidth as a percentage of the
input sample rate (ADC sample rate) that can be protected with
various decimation rates and alias rejection specifications. The
maximum input rate into the CIC4 is 26 MHz. Table 10 shows
the half-bandwidth characteristics of the CIC4.
Table 10. SSB CIC4 Alias Rejection Table
dB
Rate
−50
−60
−70
−80
−90
−100
8
2.494
1.921
1.473
1.128
0.860
0.651
9
2.224
1.713
1.315
1.007
0.768
0.581
10
2.006
1.546
1.187
0.909
0.693
0.525
11
1.827
1.408
1.081
0.828
0.632
0.478
12
1.676
1.292
0.992
0.760
0.580
0.439
13
1.549
1.194
0.917
0.703
0.536
0.406
14
1.439
1.110
0.852
0.653
0.499
0.378
15
1.344
1.037
0.796
0.610
0.466
0.353
16
1.261
0.972
0.747
0.572
0.437
0.331
17
1.187
0.916
0.703
0.539
0.411
0.312
18
1.122
0.865
0.665
0.509
0.389
0.295
19
1.063
0.820
0.630
0.483
0.369
0.279
20
1.010
0.779
0.599
0.459
0.350
0.265
21
0.962
0.742
0.570
0.437
0.334
0.253
22
0.919
0.709
0.544
0.417
0.319
0.241
23
0.879
0.678
0.521
0.399
0.305
0.231
24
0.842
0.650
0.499
0.383
0.292
0.221
25
0.809
0.624
0.479
0.367
0.281
0.212
26
0.778
0.600
0.461
0.353
0.270
0.204
27
0.749
0.578
0.444
0.340
0.260
0.197
28
0.722
0.557
0.428
0.328
0.251
0.190
29
0.697
0.538
0.413
0.317
0.242
0.183
30
0.674
0.520
0.400
0.306
0.234
0.177
31
0.653
0.503
0.387
0.297
0.226
0.171
32
0.632
0.488
0.375
0.287
0.219
0.166
Table 10 enables the calculation of an upper bound on the
decimation ratio (MCIC4), given the desired filter characteristics
and input sample rate.



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