Laser Radar for Medical Diagnostics: Breakthrough Tests at TUM with Ommatidia’s Q2 System

Munich, Germany | May 13, 2025 — Ommatidia recently demonstrated the capabilities of its Q2 Laser Radar for medical diagnostics at the Technical University of Munich (TUM). This innovative system enables non-contact monitoring of patients with conditions like abdominal aortic aneurysms, providing high-resolution, real-time data without the need for physical sensors.

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At the invitation of Prof. Dr. Daniel Rixen, Ommatidia’s CEO Dr. Eduardo Margallo and Product Specialist Dr. Óscar R. Enríquez joined forces with Dr.-Ing. Johannes Maierhofer and the Chair of Applied Mechanics to evaluate Q2’s potential in biomedical settings.

Q2 measuring at the TUM


Why Laser Radar for Medical Diagnostics Changes the Game

The Q2 Laser Radar system, previously used in aerospace and industrial metrology, is now showing promise in medical diagnostics. Its ability to map and measure biological vibrations from a distance can transform early disease detection and patient monitoring.

This initiative builds on Ommatidia’s Q2 product capabilities, which already offer industry-leading precision. Now, we are unlocking its potential in clinical environments.


Test Setup: Simulated Aneurysm Monitoring at TUM

During the workshop, a gelatin-based abdominal phantom was created to mimic human tissue. A simulated blood pressure waveform drove mechanical vibrations within this “belly,” and the Q2 system measured the vibration field in real time.

Objet imitating hum body (1)Object imitating belly TUMObject imitating belly, intensity

Tested system and intensity signal, before and after spray paint

Key outcomes:

  • Contactless setup completed in under 15 minutes

  • Clear peak frequencies identified at 4.5 Hz, 8.5 Hz, 12.5 Hz, 19.6 Hz, and 74.5 Hz

  • Velocity time series and FFT maps provided full-field spectral insights

  • Spray paint improved surface reflectivity, boosting intensity measurements

The Q2 Laser Radar captured all relevant data with micron-level precision, validating its use in tracking vascular dynamics.

Spectral analysis with detected peak frequencies


Vibration maps at peak frequencies / bands

Vibrometry 1 OMA


Follow-Up at Ommatidia: Human Arm Trials

Oscar arms measurementOscar Arm Channel 25

To extend the experiment, our team performed additional scans at Ommatidia’s facilities using a live human arm.

We conducted:

  • A 2-second step scan across the arm’s width

  • A 30-second single-line scan for continuous spectral data

These trials showed that laser radar for medical diagnostics can detect subtle vibrations associated with vascular flow, muscle response, and tissue behavior—all without touching the subject.

arm OMASpectral analysis with detected peak frequenciesSpectral Analysis with detected peak frequencies (2)

Thirty-second scan over a single point

Thirty-second scan over single line


Practical Benefits in Clinical Settings

Laser radar systems like the Q2 bring numerous advantages to healthcare:

  • Fast Deployment: Setup and scan complete in 15 minutes

  • Non-Invasive: No need for gels, wires, or wearable sensors

  • Broadband Analysis: Captures data from 0.5 Hz to over 100 Hz

  • High Portability: Weighs less than 7 kg and tripod-mountable

  • Open Data Format: Compatible with MATLAB, Python, and clinical post-processing

With these features, clinicians can screen patients without discomfort or risk, making it ideal for ICU monitoring, outpatient diagnostics, and even field-based care.

View the Q2 Laser Radar


From Research to Real-World Diagnostics

Q2 Massively Parallel Laser Radar for 3D Vibrometry & Micron-Level Metrology Scanner by Ommatidia

Q2 Massively Parallel Laser Radar for 3D Vibrometry & Micron-Level Metrology Scanner by Ommatidia

Our trials show that laser radar for medical diagnostics can bridge the gap between research and clinical care. As the technology matures, we envision applications in:

  • Cardiovascular risk screening

  • Post-surgical recovery tracking

  • Pulmonary and muscular function monitoring

  • Digital twin models for personalized healthcare


Ready to Collaborate?

If you’re a healthcare researcher, biomedical engineer, or hospital innovator, we invite you to explore partnerships with Ommatidia.

Discover how our Q2 Laser Radar system can enhance your diagnostics and improve patient outcomes.

Contact Us!

Perguntas sobre pesquisa em vibrometria médica

O que a demonstração de vibrometria médica na TUM testou?

O trabalho de viabilidade publicado usou um fantoma abdominal de gelatina acionado por uma forma de onda de pressão sanguínea simulada. O Q2 mediu sem contato séries temporais de velocidade superficial e mapas espectrais de campo completo. Um teste exploratório posterior no braço usou varredura em passos de dois segundos e medição linear de 30 segundos.

Quais frequências foram observadas no teste do fantoma?

A configuração relatada mostrou picos em 4,5, 8,5, 12,5, 19,6 e 74,5 Hz. São observações desse fantoma, excitação e configuração óptica; não são biomarcadores clínicos estabelecidos e não devem ser generalizadas para pacientes.

Isso demonstra um método diagnóstico clinicamente validado?

Não. O trabalho demonstra viabilidade de medição em um fantoma e em um teste exploratório no braço humano. Não estabelece precisão diagnóstica, utilidade clínica, aprovação regulatória ou desempenho em pacientes. Os resultados são evidências de engenharia em fase de pesquisa.

O que é necessário antes de um estudo clínico?

O plano deve definir a pergunta médica, método de referência, população, protocolo, repetibilidade, controle de movimento, limites do retorno superficial, segurança, ética e caminho regulatório. Desfechos predefinidos e análise de incerteza são necessários antes da comparação com referências clínicas.