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    Explore Proteus AWG & Transceivers Series

    Experience unmatched flexibility with Proteus platform — integrating high-speed waveform generation, IQ modulation, and signal processing in one scalable system.

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    Discover Lucid RF Signal Generator Series

    Explore Lucid Series – offering 3, 6, and 12 GHz models with exceptional signal purity, rapid switching, and versatile modulation options.

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    High Voltage Amplifiers

    High-voltage amplifiers are key in applications such as vehicle ECU susceptibility testing, multi-phase power system testing, and other applications when hundreds of peak-to-peak voltage is required.

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    Amplify up to 20GHz

    Model A10200 is an ultra-small footprint, ultra wideband, high power amplifier designed for high frequency, high power, signal amplification.

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    Research & Development Radios

    Advanced wideband Software Defined Radio, based on a high-performance system-in-a-module architecture. With high sample rates, wide frequency coverage, and accelerated FPGA processing.

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    Radar & Threat Simulator

    Our Primer will show you how Tabor Electronics can accelerate your design, test, and evaluation. Providing the ability to quickly create threats as well as emulate the EM environment.

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    Desktop, carry around chassis

    The PXE6410 is a PXIe based 6 based slot Gen 3 x4 chassis, that supports the Tabor Proteus Family of AWG’s and the TE330x family of PXIe RF amplifiers.

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    21 Slot, Gen 4 x8

    The PXE21100 is the fastest PXIe chassis in the industry, with 21 available usable slots, ideal for high density high speed measurement applications.

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    High Voltage Amplifiers

    High-voltage amplifiers are key in applications such as vehicle ECU susceptibility testing, multi-phase power system testing, and other applications when hundreds of peak-to-peak voltage is required.

    Read more >
    Amplify up to 20GHz

    Model A10200 is an ultra-small footprint, ultra wideband, high power amplifier designed for high frequency, high power, signal amplification.

    Read more >
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Related Videos

Understanding RF ADCs – digitizing signals to 10GHz

This tutorial shows how significant cost savings can be achieved by using digitizers (ADC) in multiple Nyquist zones. We use the Tabor Proteus P9082M Arbitrary Waveform Generator with an optional 5.4GS/s analog to digital converter, transforming the AWG into an Arbitrary Waveform Transceiver (AWT).

Read more >
Mixer Test – Easy IM3 measurements with Lucid

Learn to accurately measure third-order intermodulation (IM3) products on an RF mixer using the Lucid 4-channel signal generator. This tutorial demonstrates the full procedure, including how to verify your IM3 results by manipulating the input tone amplitude.

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Analog IQ Modulations vs Digital IQ Modulation

This video compares Analog-IQ modulation with modern Digital-IQ modulation, illustrating how advances in DAC technology transform signal quality and flexibility. It highlights the differences in performance, stability, and implementation between both approaches. A clear, concise overview for engineers exploring modulation techniques in RF design and test systems.

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Generating and Measuring Wide Bandwidth Signals

Discover how to generate and measure wide-bandwidth communication signals, such as a Wireless LAN signal, using the Proteus Arbitrary Waveform Transceiver (AWT) and MATLAB. The video demonstrates the full process, covering signal generation, interpolation, modulation onto a 2.4 GHz carrier, and advanced down-sampling techniques for signal reception and analysis.

Read more >

Resource Hub

Webinar Q&A
How to optimize Quantum Physics experiments Online Webinar - Questions & Answers

Tabor’s Proteus AWT streamlines RF, microwave, and quantum experiments by delivering high-fidelity signal generation, fewer external components, and easier calibration. Its FPGA architecture and fast memory enable real-time waveform updates and scalable multi-qubit control.

Questions asked during the online webinar on April 16th, hosted by Physics Today magazine.
Read more >
Webinar Q&A
Optimizing Peak-to-Average Power Ratio for Wireless Systems

Joan Mercade, Field Application Engineer

Questions asked during the Online Webinar May 6th – hosted by MicroWave Journal.
Read more >
White Papers
Proteus AWT, Radar Primer

The Radar Primer outlines how modern radars use advanced waveform techniques to measure range, velocity, and target position with high precision. It then presents the Tabor Proteus AWT as a compact, multi-channel RF transceiver that generates, simulates, and analyzes complex radar signals in real time.

Read more >
Case Studies
Nuclear Magnetic Resonance (NMR) Spectroscopy Case study, UC Berkeley in California, 2020

Nuclear Magnetic Resonance (NMR) Spectroscopy is a technique used for determining the structure of organic compounds. Traditionally an LO, mixer (upconverter), an AWG and an RF receiver or lock-in amplifier would be used to achieve the needed measurement.

Using the Proteus Arbitrary waveform Transceiver allows a simpler, more accurate, and cost-effective instrument.

Read more >
FAQs

For the Proteus and Lucid series the port number should be set to 5025, for all legacy units such as the WX series and WS 8351/2 the port number should also be set to 5025, for all other units port number is 23.

 

The generation of an RF signal in an RF signal generator starts with the frequency source. The frequency source begins with a high-stability crystal oscillator used in a voltage-controlled oscillator (VCO), a phase-locked loop (PLL), or a frequency synthesizer. These circuits provide the accuracy and stability specified by the RF signal generator and create an output signal or a RF carrier signal.  Signal frequencies can range from a low of 3 kHz to a maximum frequency on the order of 300 GHz. 

For signal generators that can output modulation signals, multiplication circuitry known as a mixer upconverts low frequency information such as audio, video, or data signals onto the RF carrier signal. Analog modulation techniques include amplitude modulation, frequency modulation, and phase modulation. Digital modulation techniques include amplitude shift keying, frequency shift keying, phase shift keying, and more complex communication schemes.  

Following modulation, the RF signal passes into a RF amplifier which increases the voltage output and the signal power. Circuitry in the amplifier enables control of the magnitude of the amplifier output. Amplifier feedback, attenuation, and level control techniques ensure the output meets the stability and accuracy specifications for the RF signal generator. 

The RF signal may be connected to a SMA connector for a wired connection to a load or a device-under-test (DUT). The signal can also be supplied to an antenna for wireless transmission.  

An arbitrary waveform generator (AWG) is a signal source that can generate any type of waveform. Selecting a sophisticated instrument such as an AWG requires consideration of a number of instrument specifications to ensure the AWG satisfies all the requirements of an application. Consider the following important specifications.  

Bandwidth: Determine the maximum frequency needed for the application. 

Sample Rate: Ensure that the maximum sample rate provides sufficient data points for the highest frequency component of the highest signal frequency needed. Investigate if the AWG allows outputs in multiple Nyquist zones to maximize the number of samples per waveform cycle and optimize signal purity. 

Resolution: Check that the digital-to-analog converter has sufficient bits to satisfy requirements for signal resolution. A larger number of bits improves signal fidelity.  

Memory: Verify that the AWG has sufficient memory to allow for creation of the longest signal required. Also determine if the memory is organized to allow generating multiple sequences of signals for extended testing. 

Signal Purity: Three specifications define the purity of the output signal.  

  • Harmonic Distortion indicates the magnitude and quantity of harmonics in a waveform. 
  • Spur Free Dynamic Range (SFDR) defines the magnitude of the signal output that does not have any spurious content. SFDR is related to the signal-to-noise ratio. 
  • Phase Noise indicates the amount of noise due to jitter (random fluctuations) in the oscillator circuitry. 

Look for an AWG whose magnitudes of these three parameters are low.  

Multiple Channels: Select an AWG with the quantity of output channels required for the application. 

RF Signal Generator Special Features 

  • Real Time Data Streaming: if waveform output requires fast changes due to varying conditions in a system-under test such as a radar system, an electronic warfare system, or a quantum computing system, consider a fast segment dynamic control option to enable continuous, variable waveform generation. 
  • Integrated Receiver: an integrated receiver option can work with real time streaming to iterate fast Control-Measure-Adjust operations. 
  • Upconverter: If the need exists to generate complex modulation protocols on RF carriers, select an AWG that has an IQ modulator and an upconverter. 

Waveform Creation and Editing Software: Look for an AWG whose waveform creation and editing software is easy to learn and use. 

Connectivity: Ensure the arbitrary waveform generator has the PC interface, such as USB or Ethernet, that is required. If real time streaming is needed, consider an AWG with a PCIe Gen 3 interface. Make sure that the manufacturer has all necessary drivers available. In addition, when using an AWG in a test system, determine how many marker and digital I/O signals facilitate required communication and synchronization with other instrumentation.  

Form Factor: Choose an arbitrary waveform generator that meets the requirements for how and where it will be used.  

An RF signal generator outputs signals in the 9 kHz to 300 GHz frequency range. The RF signal generator produces signals of various types at specific frequencies and amplitudes. Signal amplitudes can vary over a wide range such as a 100 dB range. 

RF signal generators can be analog instruments and RF arbitrary waveform generators. Analog RF signal generators output a fixed set of waveforms while, an RF arbitrary waveform generator can output an unlimited type of waveforms. 

Analog RF signal generators can output modulated signals such as amplitude modulation (AM), frequency modulation (FM), phase modulation (PM), pulse modulation, pattern modulation, and sweep modulation. Pulsed modulation enables radar testing and timing testing applications. A sweeping function allows testing the frequency response of RF components and devices. 

An RF arbitrary waveform generator can create complex modulation schemes and unique waveforms required by applications such as in aerospace/defense, communications, and quantum physics. The instrument’s sample rate, resolution, memory size, and memory segments determine the flexibility for signal creation.  

Signal quality is a significant indicator of RF signal generator performance. Measures of signal quality include frequency stability defined by temperature stability and aging, single sideband phase noise, and harmonics. High quality RF signal generators include filtering and harmonic suppression technology.  

RF signal generators can have multiple output channels. For many multichannel applications, RF signal generators can offer less than 0.1 picosecond phase stability and synchronized, coherent outputs.  

Other aspects of RF signal generators include the instruments’ output impedance and automated control. Typically, RF signal generators have an output impedance of 50 Ω which matches the input impedance of a typical RF load and allows for maximum transmission of power to the load.  The instruments can operate under PC control through interfaces such as USB and Ethernet and in software programing environments such as Python, MatLab, and LabView. 

An RF signal generator can output signals with frequencies from kHz to GHz. The output can be as simple as pure sine waves or as complex as analog and digital modulation protocols. Some RF signal generators, known as arbitrary waveform generators, can output custom signals created using internal programmable features. RF signal generators test components, circuits, and systems used in communication networks such as cellular, WiFi, and GPS communication systems. RF signal generators are also needed for testing audio/video broadcast systems, satellite systems, radar systems, and for quantum computing system control. 

Upcoming Events

European Microwave Week 2026

 4-9 October 2026

Join us at European Microwave Week (EuMW) 2026, the premier gathering for the RF, microwave, wireless, and radar community. Held at ExCeL London from 4–9 October 2026 at booth B20A the event showcases the latest industry innovations, groundbreaking research, and emerging technologies. 

 

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IEEE MILCOM 2026
 12-16 October 2026

The IEEE Military Communications Conference (MILCOM) is a leading event for defense communications, networking, cybersecurity, and emerging military technologies. The annual conference brings together professionals from the military, government, industry, and academia to explore the latest advancements in secure communications, information dominance, resilient networks, and next-generation battlefield technologies. 

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AOC 63rd Annual AOC International Symposium & Convention
8-10 December 2026

The AOC International Symposium & Convention is the premier event for electronic warfare, electromagnetic spectrum operations, cyber-electromagnetic activities, and information operations professionals from around the world. The annual, three-day event brings together nearly 2,500 professionals from 40+ countries spanning military, government, academia, and industry.

Read more >

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