Key result
Single-session SMR neurofeedback fails to show robust associations with shooting performance and autonomic regulation.
Why the study?
Inter-individual variability in SMR neurofeedback responsiveness remains poorly understood, and its links to autonomic regulation and shooting performance have not been examined within a single-session paradigm.
Does a single session of SMR neurofeedback improve autonomic regulation and shooting performance in elite air rifle athletes?
Does a single session of SMR neurofeedback improve autonomic regulation and shooting performance in elite air rifle athletes?
Effect estimate: r = 0.623 (95% CI 0.110-0.874)
p-value: p=0.023
Individual SMR regulatory capacity during a single neurofeedback session may relate to post-training autonomic modulation and shooting performance in elite rifle athletes.
Preliminary associations in small elite cohort require replication; leaves open SMR neurofeedback utility for athletic performance.
Introduction Sensorimotor rhythm (SMR) neurofeedback has attracted growing interest for improving performance in precision sports; however, inter-individual variability in responsiveness remains poorly understood, and its associations with autonomic regulation and shooting performance have not been examined within a single-session paradigm. Because a substantial proportion of trainees show limited ability to self-regulate EEG activity (“non-responders”), characterizing responsiveness is important for developing personalized protocols. This exploratory study aimed to characterize individual differences in SMR neurofeedback responsiveness during a single session and examine their associations with post-training autonomic regulation and shooting performance in elite air rifle athletes. Methods Thirteen elite air rifle shooters completed a single 10-min SMR (12–15 Hz) neurofeedback session at electrode site Cz. Heart rate variability (HRV) was recorded at four timepoints spanning pre- and post-shooting and pre- and post-training rest. Shooting performance was assessed via the SCATT system across two 30-shot blocks. Individual SMR regulation trajectories were indexed as linear amplitude slopes across five training blocks. Athletes were classified as Responders (slope > 0; n = 9) or Non-Responders (slope ≤0; n = 4) reflecting whether SMR amplitude showed a net increase or decrease across training. Results SMR slope showed the strongest associations with changes in shooting score (r = 0.623) and logLF (r = −0.636), though neither survived Benjamini–Hochberg FDR correction (both q = 0.248). Responders exhibited larger post-training increases in DFA α2 (a long-term scaling exponent derived from detrended fluctuation analysis reflecting autonomic regulatory complexity; d = 1.688, p = 0.017) and larger decreases in logLF (d = 1.654, p = 0.019) than Non-Responders, though neither survived FDR correction. No baseline HRV (all p > 0.09) or subjective engagement (all p > 0.21) differences were observed between groups. Discussion These preliminary, exploratory findings suggest that individual SMR regulatory capacity may relate to post-training autonomic modulation and shooting performance, and that SMR amplitude slope may represent a promising index of neurofeedback learning. Given the small and unequal responder groups ( n = 9 vs. 4) and the absence of a sham or control condition, these associations should be interpreted as hypothesis-generating rather than confirmatory, warranting replication in larger, controlled samples.
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An et al. (2026) studied Elite rifle athletes (n=13). Sensorimotor rhythm (SMR) neurofeedback was evaluated on Association between SMR amplitude slope and change in shooting score (r = 0.623, 95% CI 0.110-0.874, p=0.023). Individual SMR neurofeedback responsiveness during a single session showed preliminary associations with changes in shooting score (r = 0.623) and logLF (r = -0.636), though neither survived FDR correction.
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