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Keysight performance test solutions are ideal for chipset and device makers, mobile operators, and test labs to validate and optimize 5G device performance from early development to acceptance and interoperability testing. Conquer complex challenges in 5G NR, mmWave technologies, mobility scenarios, and real-world conditions with our integrated portfolio of toolsets for cutting-edge performance, virtual drive, and real network testing. Request a quote for one of our popular configurations today. Need help selecting? Check out the resources below.
Validate and optimize 5G devices in real-world conditions with beam management, 3D spatial fading, and MIMO OTA testing for FR1 and FR2 frequencies.
Replicate mobility scenarios like high-speed trains and tunnels in a lab using field data for repeatable validation of device interoperability and performance.
Combines channel emulation and anechoic chamber accessories to create the most accurate RF environment in your lab.
Use state-of-the-art geometric channel modeling, logging, visualization, and automation tools for accelerated development and issue resolution.
Workflow stage
Development, Acceptance, Interoperability
Technology
5G NR, LTE, NTN, WLAN, RedCap
Standards Testing
5G NR, Virtual Drive Test, 5G Device Real Networks Testing, 5G FR2 mmWave Device Networks Performance Testing, MIMO OTA, 5G FR1, 5G FR2
S8708A
The S8708A 5G Advanced Performance Test Toolset is an end-to-end wireless device test solution to evaluate and optimize the performance of 5G devices in a lab.
Keysight's S8708A 5G Advanced Performance Test Toolset enables reliable lab testing of mobile devices. This end-to-end wireless device test solution lets chipset and device makers together with mobile operators evaluate and optimize the performance of 5G devices in a lab environment. The toolset is a part of Keysight’s 5G Network Emulation Solution portfolio that addresses the entire device development workflow from early design to acceptance and manufacturing.
The solution offers a verified test set developed before the release of 3GPP FR2 MIMO OTA. It allows R&D teams to test beam management in a 3D spatial fading channel at millimeter-wave (mmWave) frequencies. It covers advanced performance testing above standard requirements for beam management testing with predefined test cases and customizable test scripts that meet specific customer requirements.
The solution offers:
The S8708A toolset is the most complete solution for device performance testing. It integrates a high capacity PROPSIM Channel Emulator, an UXM 5G network emulator, FR2 OTA chambers, and mmWave access components. The solution covers mmWave MIMO OTA tests according to the pre-3GPP test specification and allows R&D teams to validate beam management in real world radio channel conditions. It delivers an integrated lab-based test solution that enables users to validate real world performance in a controlled lab environment for enhanced product quality. Stress test devices and optimize to achieve maximum performance. Expose early prototypes to realistic field conditions and accelerate market launch with Keysight’s automated lab test solution.
S8709A
S8709A Virtual Drive Test Toolset is a real-world lab test validating 5G devices under a wide range of network signaling and radio channel conditions.
Keysight’s S8709A Virtual Drive Test Toolset is a real-world lab test environment for validating 5G devices under a wide range of network signaling and radio channel conditions. It offers a fully controlled test scenario enabling quick and systematic performance validation. Moreover, it enables users to efficiently analyze the performance of 5G new radio (NR) devices deployed in non-standalone (NSA) or standalone (SA) networks and under various mobility scenarios.
The S8709A Virtual Drive Test Toolset is a part of Keysight’s comprehensive portfolio of 5G NR design and test solutions that spans the entire workflow from simulation, development, and design verification, to conformance and acceptance testing, and finally manufacturing and deployment. It creates a representation of real-world conditions without a need for comprehensive analysis and simulation of the environment. Lab-based testing enables mobile operators and wireless device manufacturers to quickly and efficiently benchmark different mobile devices. The S8709A Virtual Drive Test Toolset therefore accelerates the validation of wireless devices, supporting new design development from prototypes to fully functioning 5G NR devices.
The 5G virtual drive testing solution offers:
The 5G virtual drive testing solution is extendable to include:
The S8709A Virtual Drive Test Toolset is the only solution bringing real world logs to the testing workflow. It makes repeatable real-world performance testing accessible to R&D teams by integrating instrumentation and the test environment under a single lab solution. Users gain access to field measured geometrical channel models with high-capacity fading options as well as signaling scripts replicating operator-specific network capabilities.
By seamlessly integrating Keysight’s 5G channel emulation and network emulation solutions with Keysight’s Nemo Outdoor tool, users can quickly and easily verify the end-user experience based on real-life mobility scenarios, such as challenging high-speed train conditions. The data captured in the field is imported into the S8709A Virtual Drive Test Toolset test scenario, resulting in reliable and repeatable replay of the radio channel environment in a controlled laboratory environment.
Massive MIMO provides increased cell capacity for 5G and LTE. Using the right tools enables quick validation of network–device interoperability and performance for real-world operation.
With the full antenna array sampling massive MIMO solution, all antenna array ports are sampled simultaneously allowing realistic modelling of spatial separation between multiple mobile devices for multi-user MIMO 3D beamform validation. You can verify performance from 16x16bi to 64x16bi for complete base station MU-MIMO TM9 UE feedback and uplink SRS-based massive MIMO scheduler/beamformer testing.
Simplified partial antenna array sampling massive MIMO testing with an external RF analog combiner or phase shifter matrix is an optimized solution for cost effective multi-user, multi-RAT, and handover mobility focused UE and base station testing. It supports the antenna array column/row combination and virtual probe/key-hole-channel channel emulation configurations.
Keysight’s PROPSIM F64 5G Massive MIMO Channel Emulation Solution
S8812A
Validate the interoperability and performance of mobile devices and applications with a live base station under real-world conditions in a laboratory environment.
Keysight’s S8812A mmWave Device Real Networks Performance Toolset enables you to test devices against real infrastructure. With the S8812A toolset, you can verify the performance of devices with real base stations, connected to a commercial network, with end-user services. The toolset includes the Device Troubleshooting solution for result analysis.
The S8812A toolset provides:
The toolset is extendable to:
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Solutions such as network emulation and testing toolsets for mmWave and 5G enable comprehensive validation of mobile device performance by connecting devices to emulated or lab-deployed base stations, while simulating realistic radio propagation conditions in a controlled laboratory environment. This approach allows for accurate assessment of how devices such as smartphones, modems, or tablets perform under real-world operational scenarios, particularly in high-frequency bands.
Key ways these solutions are used include:
Overall, these solutions bridge the gap between simulated lab conditions and real-world deployments, delivering technically robust validation that ensures device reliability, standards compliance, and optimal performance in next-generation wireless networks.
MIMO (Multiple-Input Multiple-Output) and Massive MIMO are both wireless technologies that utilize multiple antennas to enhance wireless communication performance; however, they differ substantially in scale, capabilities, and their impact on network design.
Conventional MIMO, commonly used in 4G LTE networks, typically involves 2x2, 4x4, or sometimes 8x8 antenna configurations at both the transmitter and receiver. It improves throughput and signal quality by enabling spatial multiplexing (transmitting multiple data streams simultaneously) and basic beamforming, which focuses the signal toward a general direction. This boosts spectral efficiency for individual users but is limited in its ability to support a large number of simultaneous users due to the relatively small number of antenna elements.
Massive MIMO, a foundational feature of 5G, significantly scales up the number of antenna elements, often 64 or more at the base station (e.g., 64T64R or higher). This enables sophisticated spatial multiplexing, allowing the base station to serve many users simultaneously on the same time-frequency resources while managing interference more effectively. It also enables highly dynamic, user-specific beamforming, creating narrow, directional beams that follow each user in real time. This results in substantial improvements in spectral efficiency, signal strength, latency, and network capacity, particularly in densely populated urban environments.
Massive MIMO systems do require greater computational resources due to the complexity of channel estimation and real-time beamforming algorithms. However, by focusing energy where it's needed, they can achieve higher energy efficiency per user, even if total system power consumption may be higher.
In the context of 5G device testing, network simulation and emulation are distinct approaches used to evaluate performance under controlled conditions, differing in methodology, realism, and application.
Network simulation involves creating a purely software-based model of the network environment, where all components—such as base stations, devices, and propagation channels—are represented mathematically or algorithmically without any physical hardware. This method is ideal for early-stage design, theoretical analysis, and scenario exploration, as it enables rapid iteration and testing of hypothetical situations, such as varying traffic loads or interference patterns. However, simulations may lack the fidelity of real-world interactions, as they rely on abstractions and assumptions that can overlook hardware-specific behaviors or unpredictable elements.
Network emulation, on the other hand, combines real hardware elements with software or hardware tools that mimic specific network aspects in real-time, such as introducing impairments like latency, packet loss, fading, or multipath effects into live connections. This enables testing with actual devices and infrastructure (e.g., connecting to physical base stations) while replicating realistic conditions in a lab setting. Emulation offers higher accuracy for validating end-to-end performance, interoperability, and user experience, as it bridges the gap between controlled environments and field deployments.
Overall, simulation is more abstract but can be useful for broad modeling, while emulation offers practical, hardware-integrated insights, making it suitable for validation in 5G scenarios where precise replication of radio conditions is critical.