Atlas / Learn / Papers / 20130008649
NASA NTRS · Conference Paper
Physiological Based Simulator Fidelity Design Guidance
Attribution
This is the abstract and citation. Full text lives at NASA NTRS — we link out rather than host. All credit to the authors and Langley Research Center.
Abstract
Verbatim from NASA NTRS. Not paraphrased, not summarized.
The evolution of the role of flight simulation has reinforced assumptions in aviation that the degree of realism in a simulation system directly correlates to the training benefit, i.e., more fidelity is always better. The construct of fidelity has several dimensions, including physical fidelity, functional fidelity, and cognitive fidelity. Interaction of different fidelity dimensions has an impact on trainee immersion, presence, and transfer of training. This paper discusses research results of a recent study that investigated if physiological-based methods could be used to determine the required level of simulator fidelity. Pilots performed a relatively complex flight task consisting of mission task elements of various levels of difficulty in a fixed base flight simulator and a real fighter jet trainer aircraft. Flight runs were performed using one forward visual channel of 40 deg. field of view for the lowest level of fidelity, 120 deg. field of view for the middle level of fidelity, and unrestricted field of view and full dynamic acceleration in the real airplane. Neuro-cognitive and physiological measures were collected under these conditions using the Cognitive Avionics Tool Set (CATS) and nonlinear closed form models for workload prediction were generated based on these data for the various mission task elements. One finding of the work described herein is that simple heart rate is a relatively good predictor of cognitive workload, even for short tasks with dynamic changes in cognitive loading. Additionally, we found that models that used a wide range of physiological and neuro-cognitive measures can further boost the accuracy of the workload prediction.
Authors
- Schnell, Thomas Iowa Univ.
- Hamel, Nancy Infoneering, Inc.
- Postnikov, Alex Rockwell Collins, Inc.
- Hoke, Jaclyn Rockwell Collins, Inc.
- McLean, Angus L. M. Thom, III ApotheoSys, Inc.
Citation: Schnell, Thomas, Hamel, Nancy, Postnikov, Alex , et al. (2018). Physiological Based Simulator Fidelity Design Guidance. Langley Research Center. NASA NTRS ID 20130008649. https://ntrs.nasa.gov/citations/20130008649 ↗