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An Interpretable Transformer-Based Foundation Model for Cross-Procedural Skill Assessment Using Raw fNIRS Signals

2025/06/21 by Anoj Subedi, Subedi, A., Sachinandan De +9
Medicine · #Anesthesia and Sedative Agents #Emerging Technologies (cs.ET) #FOS: Biological sciences #FOS: Computer and information sciences #FOS: Electrical engineering #H.1.2 #Human-Computer Interaction (cs.HC) #I.2.6 #J.3 #Machine Learning (cs.LG) #Neurons and Cognition (q-bio.NC) #Optical Imaging and Spectroscopy Techniques #Signal Processing (eess.SP) #Surgical Simulation and Training #electronic engineering #information engineering

paper · pdf · doi:10.48550/arxiv.2506.22476

openalex publication_date 2025/06/21 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

Objective skill assessment in high-stakes procedural environments requires models that not only decode underlying cognitive and motor processes but also generalize across tasks, individuals, and experimental contexts. While prior work has demonstrated the potential of functional near-infrared spectroscopy (fNIRS) for evaluating cognitive-motor performance, existing approaches are often task-specific, rely on extensive preprocessing, and lack robustness to new procedures or conditions. Here, we introduce an interpretable transformer-based foundation model trained on minimally processed fNIRS signals for cross-procedural skill assessment. Pretrained using self-supervised learning on data from laparoscopic surgical tasks and endotracheal intubation (ETI), the model achieves greater than 88% classification accuracy on all tasks, with Matthews Correlation Coefficient exceeding 0.91 on ETI. It generalizes to a novel emergency airway procedure--cricothyrotomy--using fewer than 30 labeled samples and a lightweight (less than 2k parameter) adapter module, attaining an AUC greater than 87%. Interpretability is achieved via a novel channel attention mechanism--developed specifically for fNIRS--that identifies functionally coherent prefrontal sub-networks validated through ablation studies. Temporal attention patterns align with task-critical phases and capture stress-induced changes in neural variability, offering insight into dynamic cognitive states.

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