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Rapid sequential touches complicate whisking-phase analysis in mouse active touch
1College of Computing, Georgia Institute of Technology, Atlanta, GA 30332, United States.
Journal of Neurophysiology
|July 31, 2026
Summary
Analyzing touch events in neural recordings, this study found that adjusting counting windows and excluding brief intervals refines spike count predictions. This improves understanding of neural responses to rapid sensory or neuroprosthetic stimulation.
Area of Science:
- Neuroscience
- Computational Neuroscience
Background:
- Accurate spike counting is crucial for understanding neural responses.
- Fixed counting windows can introduce artifacts by including spikes from subsequent events.
Purpose of the Study:
- To reanalyze touch-evoked neural activity using refined counting methods.
- To assess the impact of touch-spacing and counting window choices on spike count prediction accuracy.
Main Methods:
- Reanalyzed 19,675 touch events from excitatory layer 4 neurons in the Hires et al. dataset.
- Spike counts were recalculated in variable-length windows (10-50 ms) around each touch.
- Prediction models were built excluding touches with short preceding intervals (<100 ms) or close temporal proximity (<50 ms).
Main Results:
- Excluding rapid, consecutive touches improved spike count prediction models.
- Adding phase information improved spike count prediction by 1.5%, further enhanced by movement variables (0.8%).
- The interaction between amplitude and phase provided additional predictive information (0.25 points).
Conclusions:
- Touch-spacing and counting window selection significantly impact the estimation of neural responses.
- Phase information offers modest predictive value for spike counts, especially after accounting for movement.
- Refined analytical approaches are essential for accurate attribution in studies involving rapid neural stimulation.

