PubMed Health⌕ Search

PubMed · 11601442

Adaptive fuzzy logic restriction rules for error correction and safe stimulation patterns during functional electrical stimulation.

Abstract

Adaptive restriction rules based on fuzzy logic have been developed to eliminate errors and to increase stimulation safety in the foot-drop correction application, specifically when using adaptive logic networks to provide a stimulation control signal based on neural activity recorded from peripheral sensory nerve branches. The fuzzy rules were designed to increase flexibility and offer easier customization, compared to earlier versions of restriction rules. The rules developed quantified the duration of swing and stance phases into states of accepting or rejecting new transitions, based on the cyclic nature of gait and statistics on the current gait patterns. The rules were easy to custom design for a specific application, using linguistic terms to model the actions of the rules. The rules were tested using pre-recorded gait data processed through a gait event detector and proved to reduce detection delay and the number of errors, compared to conventional rules.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M Hansen, M K Haugland. Adaptive fuzzy logic restriction rules for error correction and safe stimulation patterns during functional electrical stimulation.. https://doi.org/10.1080/03091900110065979

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Modeling biological motor control for human locomotion with functional electrical stimulation.

This paper develops a novel control system for functional electrical stimulation (FES) locomotion, which aims to generate normal locomotion for paraplegics via FES. It explores the possibility of applying ideas from biology to engineering. The neural control mechanism of the biological motor system, the central pattern generator, has been adopted in the control system design. Some artificial control techniques such as neural network control, fuzzy logic, control and impedance control are incorporated to refine the control performance. Several types of sensory feedback are integrated to endow this control system with an adaptive ability. A musculoskeletal model with 7 segments and 18 muscles is constructed for the simulation study. Satisfactory simulation results are achieved under this FES control system, which indicates a promising technique for the potential application of FES locomotion in future.

Electric Stimulation Therapy↗

Complications and troubleshooting of two-stage sacral neuromodulation therapy: a single-institution experience.

OBJECTIVES: With the increasing use of sacral neuromodulation therapy, urologists are faced with postimplantation challenges. The purpose of this study was to identify these events and their causes and management in our large single-institution experience. METHODS: From July 2002 to September 2004, all patients who underwent sacral neuromodulation therapy for refractory bladder conditions were identified. Their medical records were retrospectively evaluated for history, operative intervention, and programming visits. Events after implantation of the implantable pulse generator (IPG) unit were noted. The evaluation, troubleshooting, management, and resolution of events at the last follow-up visit were extracted. RESULTS: A total of 214 patients underwent sacral neuromodulation therapy at our institution. The mean patient age was 53.5 +/- 15.4 years. Of the 214 patients, 161 underwent IPG implantation during a mean follow-up period of 16 months (range 5 to 30). The second-stage explantation and revision rate was 10.5% and 16.1%, respectively. The indications for explantation were infection (8 of 17) and failure to maintain a response (9 of 17). Revisions were done for decreases in response with abnormal (12 of 26) or normal (5 of 26) impedance measurements, IPG site discomfort (4 of 26), draining sinus at the IPG site (4 of 26), and lead migration (1 of 26). Equalization of impedance measurements was the most commonly observed impedance abnormality. These were managed by drying fluid from the connection in 4 patients and lead change in the rest. CONCLUSIONS: After IPG implantation, a decline in response may occur. Although some were explanted, most were revised, with most of the revisions functional on follow-up. Familiarity with impedance evaluation and development of algorithms for postimplant management are essential for troubleshooting and maintenance of the device.

Electric Stimulation Therapy↗