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2013/05/22
 
 
 
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Software Defined Radio

Nowadays radio communication technologies have been widely spread in many areas such as commercial, military, and meteorological. The traditional radio communication systems are built with hardware dedicated to specific applications that require different frequencies, bandwidths, modulation modes and coding protocols. As communication technology keeps evolving, the hardware-based implementation method is presenting noticeable disadvantages in terms of cost, production cycle, and compatibility. In order to avoid these disadvantages, a new conception called software-defined radio (SDR) technology has been introduced. [+MORE]

SDR technology enables a general-purpose hardware platform to realize compatibility with different wireless communication systems by updating software configurations. It brings flexibility to radio systems, allowing adding new functions and upgrading system easily.

SDR systems could be implemented based on either RF sampling or IF sampling. The former sampling method directly converts RF signal into digital one so that the analog circuitry section could be reduced as much as possible. However this method results in high implementation difficulty because RF sampling needs extreme-high-speed A/D converters and DSPs. The latter sampling method is the popular one at present. It firstly converts RF signal down to IF signal, which is then sampled for digitalization. Although the method is compromised in terms of flexibility, the requirements on devices’ performance are greatly reduced and the implementation becomes much easier.

The hardware of a SDR system basically consists of antenna, RF front-end, ADCs, DACs, and a DSP. In order to cover a wider frequency band, a wide-band antenna or multiple antennas could be used. The RF front-end conducts a series of work including filtering, up and down conversion, power amplification, and low-noise amplification. The ADC operates in the receiving chain of the system to perform analog-to-digital conversion, while the DAC is located in the transmission chain for digital-to-analog conversion. Both ADC and DAC must feature sufficient operation bandwidth and speed to satisfy Nyquist sampling rate. In order to relieve the work load of the DSP, a DDC (Digital Down Converter) device can be used to convert the output of ADC into base-band so as to reduce data transfer speed. The similar device, DUC (Digital Up Converter), could also be used in the transmission chain for the same purpose. Another option for this functionality is using a FPGA as the substitute for DDC and DUC. The DSP is responsible for base-band signal processing such as modulation/demodulation, anti-interference and FEC (Forward Error Correction).

Moreover, modern communication systems usually adopt non-constant envelope modulation which commonly requires power amplifiers running in their linear regions, resulting in lower efficiency. Running the amplifiers in their non-linear regions could obtain higher efficiency, but a dedicated chip or a FPGA should be added before power amplifier to implement CFR (Crest Factor Reduction) and DPD (Digital Pre-Distortion) on signals.[-LESS]

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Performing digital up and down conversion to reducing data transfer speed for DSP
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Processing
base-band signals
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parts list

Amplification of in/out-bound
signals conditioned for conversion or transmission

ALM-32120-BLKG
ALM-32120-BLKG
Avago Technologies
ADL5536ARKZ
ADL5536ARKZ
Analog Devices
AD8351ARMZ
AD8351ARMZ
Analog Device

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Used before power amplifier to amplify small RF signals
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A wide-band high-speed DAC used to convert digital IF signal into analog IF signal
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A wide-band high-speed ADC used to convert analog IF signal into digital IF signal
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Up-convert IF to RF (in transmission path) and down-convert RF to IF (in receive path)
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Up-convert IF to RF (in transmission path) and down-convert RF to IF (in receive path)
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Oscillator enabling up/down-conversion

TLC2932IPWG4
TLC2932IPWG4
Texas Instruments

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Filtering desired IF/RF signals

AD831APZ
AD831APZ
Analog Devices

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Filtering desired IF/RF signals

AD831APZ
AD831APZ
Analog Devices

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theknode

 
AD8339-EVALZ < AD8339-EVALZ
ANALOG DEVICES

The AD8339 board illustrates the capabilities of the demodulator with programmable phase shifter. AD8339 is a key component of a phase shifter system that aligns time-skewed information contained in RF sigmnals. The AD8339 can be configured using the software provided with the board, or using an external digital pattern generator via the 20-pin flat-cable connector.
1439949
 
CFTL-CN0134-EVALZ CFTL-CN0134-EVALZ
ANALOG DEVICES
This circuit is an implementation of the analogue portion of a broadband transmitter - analogue baseband in / RF out. Its designed to evaluate CN0134, utilizing ADF4350, a fully integrated fractional-N PLL IC, that behaves as a local oscillator, upconverting analogue I/Q signals to RF.
1439949
 
EVAL-AD5504EBZ EVAL-AD5504EBZ
ANALOG DEVICES

This is an evaluation board for AD5504 allowing the user to fully evaluate all the functions and performance of the device prior to designing it into a system. The evaluation board can be used in a standalone mode with control coming from an external DSP or microcontroller, or it can be connected to a PC using the USB cable supplied with the evaluation board kit. Software is provided that allows the user to program the various registers of the AD5504 with ease.
1439949
 
AD9284-250EBZ AD9284-250EBZ
ANALOG DEVICES

This is a fully featured board that supports various modes of operation for the AD9284 Analogue-to-Digital Converter with application software.
1439949
 
KSZ8873MLL-EVAL KSZ8873MLL-EVAL
MICREL SEMICONDUCTOR

The Kit allows for development with KSZ8873MLL, an integrated 3-port switch on a chip , designed to enable 10/100Mbps switch systems, with advanced power management with energy detect mode that shuts the transceiver down when a port is idle.
1439949
 
Image Description  
ALTERA  FPGA Tool Flow for Design of Digital IF for Wireless Systems AN442 Cyclone III Click Here
ALTERA  FPGA Digital IF Modem Design with the DSP Builder Advanced Blockset AN544 Click Here
ALTERA  FPGA Accelerating DUC & DDC System Designs for WiMAX AN421 Click Here
ALTERA  FPGA Crest Factor Reduction AN396 Click Here
ALTERA  FPGA Crest Factor Reduction for OFDMA Systems AN475 Click Here
ANALOG DEVICES  DAC/ADC Multicarrier CDMA2000 Feasibility AN808 AD9779A Click Here
ANALOG DEVICES  DAC/ADC Multicarrier TD-SCDMA Feasibility AN0974 AD9779A Click Here
ANALOG DEVICES  DAC Understanding High Speed DAC Testing and Evaluation AN928 Click Here
ANALOG DEVICES  ADC Understanding High Speed ADC Testing and Evaluation AN835 Click Here
ANALOG DEVICES  ADC Little Known Characteristics of Phase Noise AN741 Click Here
ANALOG DEVICES  ADC A WiMax Double Downconversion IF Sampling Receiver Design AN851 AD9246 Click Here
ANALOG DEVICES  DDC A WiMax Double Downconversion IF Sampling Receiver Design AN851 AD6636 Click Here
ANALOG DEVICES  DUC The Advantages of Using a Quadrature Digital Upconverter (QDUC) in Point-to-Point Microwave Transmit Systems AN-0996 AD9857 Click Here
ANALOG DEVICES  DDC Basics of Designing a Digital Radio Receiver Click Here
AVAGO TECHNOLOGIES  LNA LNA Design with the MGA-16516 Matched Pair, Low Noise Amplifier AN5441 MGA-16516 Click Here
AVAGO TECHNOLOGIES  LNA LNA Design with the MGA-17516 Matched Pair, Low Noise Amplifier  AN5442 MGA-17516 Click Here
AVAGO TECHNOLOGIES  LNA MGA-633P8 GaAs MMIC LNA Enables 900 MHz BTS Amplifier with Industry Best Noise Figure and Linearity AN5457 MGA-633P8 Click Here
AVAGO TECHNOLOGIES  LNA MGA-635P8 GaAs ePHEMT MMIC 2.5 GHz Low Noise Amplifier with Superior Noise and Linearity Performance AN5479 MGA-635P8 Click Here
AVAGO TECHNOLOGIES  LNA Using the MGA-87563 GaAs MMIC in Low Noise Amplifier Applications in the 800 Through 2500 MHz Frequency Range AN1116 MGA-87563 Click Here
AVAGO TECHNOLOGIES  RF Amplifier High Linearity Wireless Data Power Amplifier for 2.3 to 2.5 GHz Applications AN5468 MGA-43228 Click Here
AVAGO TECHNOLOGIES  RF Amplifier High Linearity Wireless Data Power Amplifier for 2.5 to 2.7 GHz Applications AN5469 MGA-43328 Click Here
AVAGO TECHNOLOGIES  RF Amplifier AVT-50663 / 52663 Darlington Amplifier for Broadband Application (DC to 6GHz) AN5473 AVT-50663/52663 Click Here
AVAGO TECHNOLOGIES  RF Amplifier AVT-51663 / 53663 Darlington Amplifier for Broadband Application (DC to 6GHz) AN5474 AVT-51663/53663 Click Here
AVAGO TECHNOLOGIES  Mixer Using the AMMP-6530 in Upconverter Applications from 6 GHz through 28 GHz AN5276 AMMP-6530 Click Here
AVAGO TECHNOLOGIES  Mixer AMMP-XXXX, Production Assembly Process AN5386 AMMP-XXXX Click Here
AVAGO TECHNOLOGIES  Mixer The IAM-93516 for 1.9 GHz Down converter for Cellular Infrastructure Application with Integrated IF Amplifier AN5112 IAM-93516 Click Here
FREESCALESEMICONDUCTOR RF Amplifier General Purpose Amplifier and MMIC Biasing AN3100 Click Here
FREESCALESEMICONDUCTOR RF Amplifier Thermal Measurement Methodology of RF Power Amplifiers AN1955 Click Here
INTERSIL  DDC Use of HSP50216 QPDC for CDMA Applications (IS-95 and CDMA2000) AN9928 HSP50216 Click Here
INTERSIL  DDC Use of HSP50216 and ISL5216 QPDC in Wideband Applications - UMTS AN9927 HSP50216 Click Here
LATTICE SEMICONDUCTOR FPGA Multi-Channel Digital Up/Down Converter for WiMAX Systems RD1052 LatticeECP2M-35 Click Here
LATTICE SEMICONDUCTOR FPGA Digital Radio Transmission ATL-DIGTRX-01 Click Here
LINEAR TECHNOLOGY                        Mixer Signal Chain Noise Analysis for RF-to-Digital Receivers DN439 Click Here
LINEAR TECHNOLOGY                        Mixer Fast Time Division Duplex (TDD) Transmission Using an Upconverting Mixer with a High Side Switch DN480 Click Here
TEXAS INSTRUMENTS  DSP Small Form Factor Software-Defined Radio Development Tools SPRT406A Click Here
TEXAS INSTRUMENTS  DAC/ADC Smart Selection of ADC/DAC Enables Better Design of Software-Defined Radio SLAA407 Click Here
Manufacturer Product Type AN Title AN Number Part Number URL
ALTERA  FPGA DSP-FPGA System Partitioning for MIMO-OFDMA Wireless Basestations Click Here
ALTERA  FPGA Implementing Digital IF & Digital Predistortion Linearizer Functions with Programmable Logic Click Here
ALTERA  FPGA Crest Factor Reduction for OFDM-Based Wireless Systems Click Here
ALTERA  FPGA Designing With Confidence for Military SDR Production Applications Click Here
ALTERA  FPGA Architecture and Component Selection for SDR Applications Click Here
LATTICE SEMICONDUCTOR FPGA LatticeECP/EC FPGAs: A Systolic Array Processor for Software Defined Radio Click Here
LATTICE SEMICONDUCTOR FPGA FPGAs in Next Generation Wireless Networks Click Here
LATTICE SEMICONDUCTOR FPGA The FPGA As A Flexible And Low-Cost Digital Solution For Wireless Base Stations Click Here
TEXAS INSTRUMENTS  DAC Principles of Data Acquisition and Conversion Click Here
Manufacturer Product Type White Paper Title URL
ANALOG DEVICES  DAC Using the AD9708/AD9760/AD9762/AD9764-EB Evaluation Board AD9764-EB AD9764 Click Here
ANALOG DEVICES  DUC 1 GSPS Quadrature Digital Upconverter with 14-Bit DAC Evaluation Board   AD9957 Click Here
INTERSIL  DAC HI5x60EVAL1 User’s Manual HI5x60EVAL1 HI5960 Click Here
INTERSIL  DAC HI5760EVAL1 Evaluation Board User’s Manual HI5760EVAL1 HI5760 Click Here
TEXAS INSTRUMENTS  DSP SFF SDR Evaluation Module Click Here
TEXAS INSTRUMENTS  DAC DAC5675A Evaluation Module User Guide   DAC5675A Click Here
TEXAS INSTRUMENTS  DAC TSW4200 Demonstration Kit User's Guide TSW4200 DAC3283 Click Here
TEXAS INSTRUMENTS  DAC DAC3283 EVM User's Guide DAC328x EVM DAC3283 Click Here
TEXAS INSTRUMENTS  DAC DAC5668/88/89 EVM User's Guide DAC5688 EVM DAC5688 Click Here
TEXAS INSTRUMENTS  DAC TSW4100EVM User's Guide TSW4100 DAC5688 Click Here
TEXAS INSTRUMENTS  ADC ADS61x9/55xxEVM User's Guide ADS5545 EVM ADS5545 Click Here
TEXAS INSTRUMENTS  ADC ADS64XX EVM User's Guide ADS6425 EVM ADS6425 Click Here
Manufacturer Product Type Evaluation Kits Title EVKs Part Number Part Number URL
ALTERA  FPGA Accelerating OFDMA-MIMO Wireless System Design    Click Here
ALTERA  FPGA Cyclone III FPGA Overview Part1 Cyclone III Click Here
ALTERA  FPGA Cyclone III FPGA Overview Part2 Cyclone III Click Here
ALTERA  FPGA Stratix FPGA Overview Stratix Click Here
LINEAR TECHNOLOGY                        Mixer Study on 0.4GHz to 2.7GHz High Linearity Upconverting Mixer LT5578 Click Here
NATIONAL SEMICONDUCTOR ADC ADC16V130 16-bit, 130 MSPS Reference Subsystem Overview ADC16V130 Click Here
NATIONAL SEMICONDUCTOR ADC National's Communications Infrastructure Solutions Optimize System Efficiency   Click Here
TEXAS INSTRUMENTS  ADC Improving the Power Efficiency of High-Speed ADCs   Click Here
TEXAS INSTRUMENTS  ADC ADS6425 Podcast  ADS6425 Click Here
Manufacturer Product Type Training Title Part Number URL
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