PubMed چکیده/رکورد

Auricular Electrophysiology Demonstrates Enhanced Stability Under Vehicle Vibration and Acceleration.

استودیوی صوتی مقاله

پخش حرفه‌ای فارسی و انگلیسی

در حال بررسی نسخه‌های صوتی ذخیره‌شده…

صوت تولیدشده با هوش مصنوعی است. برای کاربرد علمی یا درمانی، متن و منبع اصلی را بررسی کنید.
خواندن هوشمند فارسی و انگلیسی در حال آماده‌سازی صداهای مرورگر…
تنظیم صدای طبیعی و سرعت

صداهایی که در نامشان «Natural»، «Neural» یا «Online» دیده می‌شود معمولاً طبیعی‌ترند. انتخاب صدا به صداهای نصب‌شده در ویندوز و مرورگر شما بستگی دارد.

چکیده اصلی

INTRODUCTION: Real-time cortical and cardiac electrophysiology provides direct insight into brain and heart function, revealing early signs of neurological or circulatory instability, supporting medics with rapid triage, continuous monitoring, and intervention during transport, evacuation, or battlefield operations. However, their deployment remains limited by motion and vibration artifacts that degrade signal integrity in dynamic field settings. This study examines the feasibility of auricular (in-ear) electrode configurations for improved signal robustness compared with scalp and wrist sites under both sustained vibration and dynamic acceleration within custom-built electrodes on matched electronics. MATERIALS AND METHODS: Simultaneous recordings were obtained from the auricular canal (electroencephalogram [EEG] and electrocardiogram [ECG]), temple (F7 EEG), and wrist (ECG) in n = 5 participants across 3 motion conditions: engine off (parked), engine on (parked), and city driving (∼30 mph). Signal quality was assessed via waveform morphology, frequency-domain signal-to-noise ratio (SNR), coherence, and root mean square error (RMSE) relative to inertial measurement unit (IMU) data. RESULTS: Across 5 participants, auricular channels showed reduced 60 Hz interference (∼-8 dB) and slightly higher SNR (median increase of 2 dB during driving) compared with scalp and wrist sites. This trend may reflect mechanical and electromagnetic shielding because of the enclosure of the canal. Under motion conditions, coherence and RMSE suggest weaker coupling between IMU motion and auricular signals compared with on-body sites (∼0.03 higher RMSE and ∼0.05×10-3 lower coherence). CONCLUSIONS: Auricular recordings indicate feasible signal integrity under vehicular motion, compared to conventional scalp and wrist placements. These preliminary results indicate suitability for neurocardiac monitoring.

متن کامل اصلی

متن در JumpToDate ذخیره نشده است.

برای بررسی دسترسی کتابخانه‌ای یا خرید، رکورد اصلی را باز کنید.

رفتن به منبع اصلی
در همین زیرشاخه

مقاله‌های مرتبط

PubMed2026

Single-cell and spatial transcriptomics inform mechanistic physiology in non-model animals.

Comparative physiology increasingly requires cellular resolution at the level of cell types, tissue microenvironments, and regulatory programs that associate genotype with function under environmental variation. Bulk transcriptomics and tissue-level assays have revealed pathways associated with stress responses, metabolic shifts, and developmental transitions; however, they average signals across heterogeneous cell populations and freq…

PubMed2026

Artificial intelligence in clinical neurophysiology: IFCN handbook chapter.

Artificial intelligence (AI) has the potential to transform clinical neurophysiology by enabling the automated analysis of complex physiological signals and large amounts of data. While traditional clinical interpretation relies heavily on expert visual inspection, which is vulnerable to subjectivity and inter-rater variability, AI models excel at identifying patterns in complex time series. This chapter provides an overview of current…

PubMed2026

Problem-Based Learning and Simulation-Based Learning in Clinical Endocrinology Education: Applications and Future Directions.

Diagnosing and treating endocrine diseases is a highly complex endeavor requiring advanced clinical reasoning, decision-making, and practical skills. However, traditional medical teaching approaches are unable to fully cater to the cultivation of these skills among residents. Thus, reforming the current teaching model utilized in clinical endocrinology education by introducing problem-based learning (PBL) and simulation-based learning …

PubMed2026

Extracellular Electrophysiological Recording of Visually Evoked Swim Pacemaker Signals from the Isolated Rhopalium of Tripedalia cystophora.

The box jellyfish Tripedalia cystophora combines image-forming lens eyes and well-characterized visually guided behaviors with a tractable rhopalial nervous system of approximately 1000 neurons, making it an emerging model for systems-level investigation of visual information processing and sensorimotor integration. Swim pacemaker neurons generate motor commands directly controlling bell contractions, and these signals can be recorded …