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AD6677 Datenblatt(PDF) 30 Page - Analog Devices |
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AD6677 Datenblatt(HTML) 30 Page - Analog Devices |
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30 / 48 page ![]() AD6677 Data Sheet Rev. C | Page 30 of 48 0 –0.5 0.5 ULS PERIOD1: HISTOGRAM 6000 7000 –10 0 TIME (ps) 10 5000 4000 1000 0 2000 3000 1–16 1–14 1–12 1–10 1–8 1–6 1–4 1–2 1 3 – 2 – –100 –200 0 100 200 TIME (ps) 400 300 200 100 0 –100 –300 –400 –200 HEIGHT1: EYE DIAGRAM 1 – TJ AT BER1: BATHTUB EYE: ALL BITS OFFSET: 0 ULS: 7000; 993329 TOTAL: 7000; 993329 Figure 56. AD6677 Digital Outputs Data Eye, Histogram, and Bathtub, External 100 Ω Terminations at 5 Gbps ADC OVERRANGE AND GAIN CONTROL In receiver applications, it is desirable to have a mechanism to reliably determine when the converter is about to be clipped. The standard overflow indicator provides delayed information on the state of the analog input that is of limited value in preventing clipping. Therefore, it is helpful to have a programmable threshold below full scale that allows time to reduce the gain before the clip occurs. In addition, because input signals can have significant slew rates, latency of this function is of concern. Using the SPI port, the user can provide a threshold above which the FD output is active. Bit 0 of Address 0x45 enables the fast detect feature. Address 0x47 to Address 0x4A allow the user to set the threshold levels. As long as the signal is below the selected threshold, the FD output remains low. In this mode, the magnitude of the data is considered in the calculation of the condition, but the sign of the data is not considered. The threshold detection responds identically to positive and negative signals outside the desired range (magnitude). ADC Overrange (OR) The ADC overrange indicator is asserted when an overrange is detected on the input of the ADC. The overrange condition is determined at the output of the ADC pipeline and, therefore, is subject to a latency of 36 ADC clock cycles. An overrange at the input is indicated by this bit 36 clock cycles after it occurs. Gain Switching The AD6677 includes circuitry that is useful in applications either where large dynamic ranges exist, or where gain ranging amplifiers are employed. This circuitry allows digital thresholds to be set such that an upper threshold and a lower threshold can be programmed. One such use is to detect when an ADC is about to reach full scale with a particular input condition. The result is to provide an indicator that can be used to quickly insert an attenuator that prevents ADC overdrive. Fast Threshold Detection (FD) The FD indicator is asserted if the input magnitude exceeds the value programmed in the fast detect upper threshold registers, located in Address 0x47 and Address 0x48. The selected threshold register is compared with the signal magnitude at the output of the ADC. The fast upper threshold detection has a latency of four clock cycles. The approximate upper threshold magnitude is defined by Upper Threshold Magnitude (dBFS) = 20 log (Threshold Magnitude/213) The FD indicators are not cleared until the signal drops below the lower threshold for the programmed dwell time. The lower threshold is programmed in the fast detect lower threshold registers, located at Address 0x49 and Address 0x4A. The fast detect lower threshold register is a 16-bit register that is compared with the signal magnitude at the output of the ADC. This comparison is subject to the ADC pipeline latency but is accurate in terms of converter resolution. The lower threshold magnitude is defined by Lower Threshold Magnitude (dBFS) = 20 log (Threshold Magnitude/213) For example, to set an upper threshold of −6 dBFS, write 0x0FFF to those registers, and to set a lower threshold of −10 dBFS, write 0x0A1D to those registers. The dwell time can be programmed from 1 to 65,535 sample clock cycles by placing the desired value in the fast detect dwell time registers, located in Address 0x4B and Address 0x4C. The operation of the upper threshold and lower threshold registers, along with the dwell time registers, is shown in Figure 57. |
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