Related Experiment Video
Updated: May 30, 2026

07:34
A Simple Stimulatory Device for Evoking Point-like Tactile Stimuli: A Searchlight for LFP to Spike Transitions
Published on: March 25, 2014
Using Force Sensors and Neural Models to Encode Tactile Stimuli as Spike-based Responses
Elmer K Kim1, Gregory J Gerling, Scott A Wellnitz
1Department of Systems and Information Engineering, University of Virginia, Charlottesville, VA USA, elmer@virginia.edu.
Summary
A novel spiking-sensor mimics biological touch receptors for advanced prosthetic limbs. This force sensor with a neural spiking algorithm generates realistic sensory output, improving prosthetic functionality.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Robotics
Background:
- Next-generation prosthetic limbs require advanced tactile sensors.
- Current sensors lack biologically compatible neural output.
- Mimicking biological mechanoreceptors is crucial for intuitive prosthetics.
Purpose of the Study:
- To demonstrate a spiking-sensor's ability to replicate the neural output of slowly adapting type I (SAI) mechanoreceptors.
- To assess the biological compatibility of sensor output for prosthetic applications.
- To compare spiking-sensor performance against biological SAI recordings.
Main Methods:
- A force sensor was coupled with a bi-phasic, neural spiking algorithm (spiking-sensor).
- Experiments involved applying sustained displacements (1.1-1.5 mm for 5s) with a rapid ramp-up (100 ms).
- First spike latency and inter-spike intervals (ISIs) were measured and compared between the spiking-sensor and SAI recordings.
Main Results:
- The spiking-sensor demonstrated similar spike timing magnitude and linear trends to SAI mechanoreceptors.
- Average dynamic ISIs were comparable (spiking-sensor: 7.3-3.8 ms; SAI: 6.2-4.1 ms).
- Average static ISIs showed similarity (spiking-sensor: 69.0-35.1 ms; SAI: 159.9-38.8 ms).
- First spike latencies were longer in the spiking-sensor (74.3-96.3 ms) compared to SAI (26.8-31.7 ms).
Conclusions:
- The developed spiking-sensor successfully mimics SAI mechanoreceptor output.
- The sensor shows potential for creating biologically compatible tactile feedback in prosthetics.
- Latency differences highlight areas for future sensor and algorithm optimization.
Related Concept Videos
Somatosensation
The somatosensory system relays sensory information from the skin, mucous membranes, limbs, and joints. Somatosensation is more familiarly known as the sense of touch. A typical somatosensory pathway includes three types of long neurons: primary, secondary, and tertiary. Primary neurons have cell bodies located near the spinal cord in groups of neurons called dorsal root ganglia. The sensory neurons of ganglia innervate designated areas of skin called dermatomes.
Sensory Functions of the Skin
The skin is the largest organ of the human body and plays a crucial role in our sensory perception. It contains a vast network of sensory receptors that contribute to the skin's protective function by perceiving physical, biological, and environmental cues and generating relevant responses.
There are two main categories of receptors on the skin: capsulated and non-capsulated. The non-capsulated ones are mainly the pain receptors. The capsulated ones can be further categorized based on the...
There are two main categories of receptors on the skin: capsulated and non-capsulated. The non-capsulated ones are mainly the pain receptors. The capsulated ones can be further categorized based on the...

