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strikerdlm/README.md
Observe. Model. Build. A conceptual illustration combining an orbit, a physiological signal and code brackets.

Diego L. Malpica, MD

Physician · Aerospace medicine specialist · Research software developer

I investigate human performance in extreme environments and build tools that connect physiological signals, computational models and experimental research.

Research focus

Area Questions and methods
Extreme environments Hypoxia, acceleration physiology, fatigue and circadian rhythms.
Physiological computing Cardiovascular signals, heart rate variability and workload assessment.
Research engineering Sensor integration, experimental interfaces and interpretable models.

Selected public work

Project Purpose
OpenMATB Public fork of the Multi-Attribute Task Battery for multitasking and workload experiments.
Hexoskin WAV Analyzer Physiological waveform and heart rate variability analysis for space-analog research.
ROBD2 Interface Experimental diagnostic and data-logging interface for supervised hypoxia research.
Meteor Satellite-pass prediction, capture scheduling and decoding workflows.

Explore all public repositories →

Methods & tools

Code: Python · TypeScript · JavaScript · C++ · Shell
Analysis: NumPy · pandas · SciPy · MNE · NeuroKit2
Prototyping: ESP32 · Arduino · Raspberry Pi

I value reproducible workflows, transparent assumptions and validation before operational use.

Research and educational software is not a substitute for validated clinical or operational systems. Follow each project's documentation and limitations.


Connect · ORCID · LinkedIn · Email

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  1. CAMI-Gz-Effects-Model-CGEM- CAMI-Gz-Effects-Model-CGEM- Public

    Forked from AAM-631/CAMI-Gz-Effects-Model-CGEM-

    A resource flow based model of symptom induction and recovery from Gz accelerations in aeronauts

    Python 1

  2. hexoskin-wav-analyzer hexoskin-wav-analyzer Public

    An advanced application for analyzing physiological data from Hexoskin / Astroskin WAV, CSV and HRV metrics

    Python 3 1