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    SimSENSOR

    A unique R&D tool for performance testing of sensor fusion

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    • Overview
    • Benefits
    • Features
    • Documents
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    MEMS inertial and Multi-GNSS test system to enable testing of sensor fusion algorithms.

    A unique R&D tool for performance testing of sensor fusion in MEMS inertial and Multi-GNSS navigation systems.

    SimSENSOR enables the controlled and progressive testing of sensor fusion algorithms for the integration and optimisation of Multi-GNSS and MEMS inertial sensors.

    It extends the capabilities of Spirent’s GSS6700 or GSS8000 simulators by simulating MEMS sensor outputs on a common trajectory with the simulated GNSS signals.

    SimSENSOR enables you to:

    • Test sensor fusion algorithms under a range of representative, controlled, repeatable conditions
    • Simulate MEMS sensor noise effects
    • Control sensor noise, and errors such as bias and drift
    • Validate and optimise algorithm parameters
    • Test in tightly or loosely coupled sensor fusion architectures

    Sensor Fusion: More Accurate, More Available

    SimSENSORMany location-aware devices now combine the strengths of multiple navigation technologies to deliver enhanced availability and improved accuracy, in environments where GNSS coverage is limited or denied.
    Inertial navigation sensors are a great complement to technologies such as GNSS, cell-tower positioning and Wi-Fi positioning. Generically, their strengths and weaknesses are complementary: inertial keeps working when GNSS or other positioning technologies are denied or weak; GNSS or Wi-Fi positioning can be used to re-calibrate the cumulative drift of inertial sensors.

    Controlled, Repeatable Testing

    While the benefits of combining inertial and GNSS technologies are clear, performance testing sensor fusion algorithms during R&D raises a number of challenges, including the need to account for MEMS sensor noise and bias/drift errors.

    Testing the performance of sensor fusion algorithms in the field can be particularly problematic. Such tests lack environmental control and repeatability, and are inherently expensive, slow and limited, generally relying on the construction of a physical moving platform.

    SimSENSOR enables core algorithm testing in the lab by presenting Multi-GNSS and simulated MEMS sensor outputs to the bench environment. It simulates the output of four key MEMS sensors commonly included in location-aware devices:

    • Accelerometers
    • Gyroscopes
    • Magnetometers
    • Barometers

    The simulated MEMS sensor outputs include representative noise and error (bias/drift), and SimSENSOR also provides trajectories that include representative human motion gestures.

      Benefits

      Powerful, Extensive Testing

      • Controlled repeatable testing with coherent GNSS and simulated MEMS sensor outputs
      • Flexibility over motion trajectories including the ability to use “noisy” motion (e.g., vibrations) and representative human motion
      • Range of MEMS noise profiles can be simulated

      Professional, Reliable Testing

      • Built on Spirent 25 years’ experience leading the world in GNSS testing

      Features

      SimSENSOR Features

      • Designed to meet the specific requirements of commercial device R&D
      • A lab-based solution for perfecting sensor fusion
      • Builds on your existing Spirent GSS6700 or GSS8000 simulator
      • Runs on the same PC as your existing SimGEN or SimREPLAY+ software
      • MEMS sensor Allan variance noise model
      • Sensor error model with deterministic or stochastic errors
      • Magnetometer noise model
      • Barometric data model
      • Library of common ‘gesture’ models layered onto linear trajectory
      • Delivery of data as UDP stream over Ethernet
      • Alternative delivery mechanisms including I2C and smartphone OSs

      Documents

      • SimSENSOR DatasheetA unique R&D tool for performance testing of sensor fusion in MEMS inertial and Multi-GNSS navigation systems.

      White Papers

      • Choosing a GNSS SimulatorA quick guide to choosing the best simulator and testing approach for GNSS-enabled devices.
      • The Fundamentals of GNSS SimulationWhat is a GNSS simulator? Why should you use one for testing? Understand the basics fast, with our beginner’s guide to the history and future of GNSS technology.
      • Hybrid PositioningLearn how GNSS is being augmented with other technologies – to create the future of global positioning.
      • Integrating a GNSS Receiver into a Product DesignDiscover how GNSS simulation can help save time and money during the development of a location aware device.
      • What is GNSS Simulation? Get a fast introduction to GNSS simulation, and discover its crucial role in efficient, professional GNSS receiver testing.
      • Why SimulateToday, RF simulation remains as vital to the professional, efficient testing of GNSS technology as it was 20 years ago – find out why in this free eBook.
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