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A spectrum analyzer measures signal amplitude or power across frequency, displaying a frequency-domain view of electrical or radio-frequency energy. Unlike an oscilloscope, which shows voltage versus time, it helps you find carriers, harmonics, spurious emissions, noise, occupied bandwidth and intermittent signals. The main choices are swept-tuned, FFT and real-time analyzers; the right one depends on bandwidth, dynamic range, frequency resolution and whether brief events must be captured.
What a spectrum analyzer measures
At its simplest, a spectrum analyzer is a frequency-selective, peak-responding voltmeter calibrated to display the rms value of a sine wave. It presents amplitude (often in dBm or dBµV) on the vertical axis and frequency on the horizontal axis.
Fourier theory allows a time-domain waveform to be represented as sinusoidal components. An FFT (fast Fourier transform) calculates those components from sampled data. A display peak therefore represents energy within the analyzer’s measurement filter or FFT bin, not necessarily an ideal single-frequency voltage.
How the main analyzer architectures work
Swept-tuned analyzers
A swept analyzer moves a local oscillator across the selected frequency range. An intermediate-frequency (IF) filter measures each frequency slice in sequence, and the instrument plots the resulting levels. This architecture is valued for broad sweeps, strong dynamic range and predictable filter behavior, but a short burst can occur between visits to its frequency and be missed.
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- Broad Frequency Coverage: Supports 100kHz–7.3GHz, ideal for 5G NR, Wi-Fi 6E, satellite communications, and higher wireless frequency bands. Calibrated up to 8GHz, it enables broader applications for high-frequency testing in lab environments. Standard mode covers 100kHz–800MHz, while ULTRA mode extends to 6GHz. With 200Hz–850kHz RBW, it ensures fast, efficient measurements, meeting high-precision needs like SSB two-tone intermodulation tests
- Robust Signal Generation: Functioning as both a spectrum analyzer and signal generator, it produces MF/HF/VHF sine waves from 100kHz-900MHz, UHF square waves from 800MHz-6.3GHz, and mixed signals from 4.4GHz-6.3GHz. Our spectrum analyzer antenna's versatility is perfect for RF system development, wireless communication debugging, and RF interference detection, aiding professionals in identifying and resolving frequency issues
- Convenient PC Control and Data Transfer: With USB and TinySA-APP connectivity, the device supports real-time data display and transfer, enhancing data management efficiency. This sdr spectrum analyzer includes a 32GB MicroSD card for easy data storage and sharing, catering to spectrum scanning, signal detection, and radio noise measurement needs
- 10-Hour Working Time: Powered by a 5000mAh battery, it offers up to 10 hours of continuous operation, ideal for field use by RF interference troubleshooters and satellite communication technicians. This signal analyzer's compact design makes it portable for various work environments, facilitating quick wireless signal detection and analysis for electronic and audio technicians
FFT analyzers
An FFT analyzer digitizes a time record and transforms it into frequency bins. Record length determines the basic frequency spacing: a longer capture gives finer spacing. The selected window changes leakage and amplitude accuracy, so two windows can show different peak heights for the same signal.
Real-time analyzers
Real-time instruments extend FFT processing with continuous analysis, triggering and probability-of-intercept behavior. They are designed to reveal short, infrequent or changing events that a sequential sweep may not catch. Trigger position, capture bandwidth and memory depth still determine what can be observed.
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- Widely Frequency Range: Compared to the tinysa (100kHz to 960MHz), the upgraded tinysa ULTRA+ has 100kHz to 5.4GHz ultra-wide measuring frequency range, spectrum analyzer for 0.1-800MHz, with Ultra mode up to 0.1MHz-6GHz.Switchable resolution band pass filters for both ranges between 200Hz to 850kHz. Color display showing 450 scan points covering up to the full low or high frequency range. Faster and more accurate measurement performance, you can easily cope with measurement testes in various fields
- 2 in 1 Multifunctional Frequency Analyzer & Signal Generator:When not used as Spectrum Analyzer it can be used as Signal Generator,with sine wave output between 0.1-800MHz or square wave or dual tone output up to 4.4GHz.Built-in calibration signal generator that is used for automatic self test and low input calibration
- PC Control: Connected to a PC via USB it becomes a PC controlled Spectrum Analyzer or Signal Generator.Tinysa-APP transfers data directly to the computer.The USB interface implements CDC protocol and there is a large set of commands that can be invoked over the serial interface. These command can be used to perform measurements or update internal settings. The driver for Windows will install automatically after connecting to a Windows PC. The driver for Linux is built into the kernel
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Controls that determine what you see
Center frequency and span
Center frequency places the middle of the displayed window; span is the total frequency width. Begin with a wide span to locate the signal, then reduce span to inspect modulation, sidebands or nearby spurs. A span that is too narrow can hide out-of-band energy; one that is unnecessarily wide makes detail harder to resolve and can lengthen a sweep.
Reference level and input attenuation
Reference level sets the expected signal level at the top of the display. Input attenuation protects the mixer and other front-end stages from overload. If the level is too low, the analyzer may compress or generate false spurs; if it is set excessively high, small signals can disappear into the displayed noise. Increase attenuation or reference level when a strong signal is present, then verify that the trace and spurs do not change as the settings are varied.
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- 7.3GHz Wide Spectrum Analysis: AURSINC TinySA Ultra+ ZS407 is a handheld spectrum analyzer covering 100kHz–7.3GHz frequency measurement. It features a base frequency range of 0.1–900MHz and reaches up to 7.3GHz when Ultra mode is enabled, with level calibration up to 7.3GHz. This device helps users to quickly identify, analyze and monitor RF signals across MF, HF, VHF and UHF bands to handle diverse complex RF testing scenarios
- Clear RF Data Visualization: Equipped with a 4-inch IPS-TFT LCD (480x320) display and up to 450 scan points per sweep, this RF analyzer presents signal details and measurement results clearly for efficient signal observation and measurement analysis
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- Enhanced Signal Reception with Built-In LNA: The integrated LNA provides up to 20dB gain up to 7.3GHz, helping improve weak signal reception during spectrum analysis. TinySA Ultra+ ZS407 features low phase noise that delivers superior signal purity, enabling accurate analysis of signal frequency stability and spectral purity for high-precision RF measurement and communication system performance evaluation
- Long-Lasting Battery: Equipped with a 3.7V 5000mAh Li-polymer battery, the ZS407 Spectrum Analyzer offers substantially extended battery life compared with earlier models. It satisfies demands for prolonged continuous testing and outdoor operations, supports convenient field measurement, and boosts work efficiency
Resolution bandwidth (RBW)
RBW is the analyzer’s frequency-selective filter bandwidth (or its FFT equivalent). It determines how close two tones can be before they merge. Narrower RBW separates closer signals and lowers the displayed noise floor because less noise passes through, but it requires a longer acquisition or sweep time.
Video bandwidth (VBW)
VBW is post-detection smoothing or averaging. Lowering VBW makes a noisy trace steadier and can make a low-level signal easier to see, but it does not increase the underlying frequency resolution. If two tones are unresolved at the selected RBW, reducing VBW will not separate them.
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- Wide Frequency Range & Adjustable RBW: Covers a measurement range of 100kHz to 5.4GHz, with Ultra mode extending up to 6GHz. Switchable resolution bandwidth from 200Hz to 850kHz enables fast and accurate measurements; the 200Hz minimum RBW clearly separates adjacent signals and supports SSB two-tone intermodulation testing. It includes a 0–31dB input step attenuator and displays up to 450 points for gapless full-band coverage
- 2-in-1 Analyzer & Signal Generator: Doubles as a signal generator when not used for spectrum analysis. It outputs MF/HF/VHF sine waves from 100kHz to 900MHz, UHF square waves from 800MHz to 4.4GHz, and mixed signals from 4.4GHz to 5.4GHz. A built-in calibration signal generator supports automatic self-test and low-input calibration for sustained measurement accuracy
- Excellent Phase Noise performance: -108dB/Hz at 100kHz offset and -115dB/Hz at 1MHz offset (at 30MHz), with a DANL as low as -166dBm/Hz. An integrated LNA provides 20dB of extra gain for low-level signals (effective only below 3.5GHz). The default 800MHz maximum frequency eliminates the need to switch between low and high ranges, enabling full-band monitoring in a single sweep
- PC Control: Connects to a PC via USB for data transfer and device control through the TinySA-APP, using Serial over USB (CDC) protocol with a full command set for measurements and internal settings. Drivers install automatically on Windows and are natively built into the Linux kernel
Detector
The detector maps samples within each display point to the plotted value. Peak detection is useful for finding brief or narrow signals, sample detection shows individual samples, average detection estimates average power, and quasi-peak detection applies the weighting used in many interference-compliance procedures. Select the detector that matches the measurement rather than treating one detector as universally correct.
RBW, VBW and sweep time
For a swept measurement, Rohde & Schwarz describes the dependency as Tsweep = k × span / B2, where B is RBW when RBW is no greater than VBW, and otherwise VBW. In practical terms, a wide span combined with a very narrow effective bandwidth can make a sweep dramatically slower. Start with a wider RBW for discovery, then narrow it only as much as the separation or noise measurement requires.
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- All-Digital IF Technology
- Frequency Range from 9 kHz up to 2.1 GHz
- -161 dBm/Hz Displayed Average Noise Level (Typ.)
- -98 dBc/Hz @10 kHz Offset Phase Noise (1 GHz, Typ.)
- 1 Hz Minimum Resolution Bandwidth (RBW)
| Setting | What it changes | Typical consequence of reducing it |
|---|---|---|
| Span | Frequency window | More detail around a signal, but less context |
| RBW | Resolvable frequency separation and filtered noise | Better selectivity and lower displayed noise, with longer acquisition time |
| VBW | Trace smoothing after detection | Less visual variation, but no improvement in true frequency resolution |
| Reference level/attenuation | Front-end headroom and overload margin | Higher settings improve protection but can reduce sensitivity |
FFT-specific limits and transient behavior
FFT resolution is tied to the captured record length and the selected window’s equivalent-noise bandwidth. A longer record provides finer frequency spacing, while window choice changes leakage and amplitude accuracy. Because an FFT is a time-gated view, trigger position and capture timing affect the result. A transient may therefore look different in an FFT display than in a swept display, even when the underlying event is the same.
Measurements spectrum analyzers support
- Carriers and harmonics: locate the fundamental and integer multiples, then compare their levels.
- Spurious emissions: search for unwanted discrete lines across a defined span using an appropriate detector and RBW.
- Channel power and occupied bandwidth: integrate power over the channel or determine the bandwidth containing the specified percentage of power.
- Noise floor and sensitivity: use suitable RBW, averaging and attenuation while distinguishing analyzer noise from the device under test.
- Filter shape: sweep across the passband and rejection region with enough RBW to show the transition.
- Intermodulation: apply two or more tones and inspect the expected sum-and-difference products.
- Burst and intermittent signals: use zero-span, FFT capture or triggered real-time analysis when a conventional sweep may miss the event.
Choosing swept, FFT or real-time analysis
| Decision factor | Swept-tuned | FFT | Real-time |
|---|---|---|---|
| How frequencies are inspected | Sequentially across the span | All bins in a sampled time record | Continuous FFT processing with triggering |
| Best fit | Broad searches, strong dynamic range and conventional RF measurements | Detailed analysis of a captured record and fine frequency work | Short, infrequent or changing events |
| Main blind spot | Can miss events between sweep visits | Limited by capture bandwidth, record length and window behavior | Limited by instantaneous bandwidth, memory and trigger configuration |
| Key specifications to compare | Dynamic range, minimum RBW, sweep time and detector behavior | Input bandwidth, record length, window and amplitude accuracy | Probability of intercept, trigger functions, recording depth and bandwidth |
Also compare maximum input bandwidth, frequency and amplitude accuracy, displayed average noise level, minimum RBW, capture or sweep time, trigger and recording functions, detector choices, calibration needs and accessories. The most expensive architecture is not automatically the best: a swept unit may be sufficient for steady carriers, while an intermittent emitter can justify real-time capture.
Quick Recap
A practical setup sequence
- Connect safely. Confirm the analyzer’s maximum input level and connect through appropriate attenuation, coupling, probes or external protection. Never assume a low displayed reference level protects the input.
- Set a discovery view. Enter the expected center frequency and a span wide enough to include uncertainty and nearby emissions.
- Prevent overload. Set reference level above the expected strongest signal and select enough input attenuation. Check that changing attenuation does not create or remove apparent spurs.
- Find the signal. Use a suitable detector, often peak for discovery, and allow the instrument to complete a valid sweep or capture.
- Zoom for detail. Reduce span around the feature of interest and choose an RBW narrow enough to resolve adjacent tones or the required bandwidth.
- Stabilize the display when needed. Reduce VBW or apply averaging to make random noise easier to read, remembering that this is smoothing rather than added frequency resolution.
- Match the detector and trigger. Use average or quasi-peak rules for the applicable power or compliance method; use peak and a deliberate trigger for short events.
- Validate the result. Check reference level, attenuation, RBW, VBW, detector, window, span, trigger timing and any external loss before recording a level or bandwidth.
Common mistakes and recovery
- Two tones appear as one: narrow the RBW or, for FFT, lengthen the time record; do not expect VBW reduction to separate them.
- The trace is noisy: reduce VBW or average for readability, then ensure the displayed value still uses the detector and bandwidth required by the measurement.
- A spur changes with attenuation: suspect front-end overload or analyzer-generated distortion; increase attenuation and reference level, then repeat the check.
- A burst is missing: use zero-span, FFT capture or real-time triggering, and verify trigger level, position, capture bandwidth and memory.
- The amplitude is inconsistent between FFT settings: review window, record length, bin bandwidth and amplitude correction rather than comparing raw peak heights alone.
- A wide sweep takes too long: first locate the signal with a wider RBW, then narrow span and RBW only for the final measurement.
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