In this study, we developed a new haptic-mixed reality intravenous (HMR-IV) needle insertion simulation system, providing a bimanual haptic interface integrated into a mixed reality system with programmable variabilities considering real clinical environments. The system was designed for nursing students or healthcare professionals to practice IV needle insertion into a virtual arm with unlimited attempts under various changing insertion conditions (e.g., skin: color, texture, stiffness, friction; vein: size, shape, location depth, stiffness, friction). To achieve accurate hand-eye coordination under dynamic mixed reality scenarios, two different haptic devices (Dexmo and Geomagic Touch) and a standalone mixed reality system (HoloLens 2) were integrated and synchronized through multistep calibration for different coordinate systems (real world, virtual world, mixed reality world, haptic interface world, HoloLens camera). In addition, force-profile-based haptic rendering proposed in this study was able to successfully mimic the real tactile feeling of IV needle insertion. Further, a global hand-tracking method, combining two depth sensors (HoloLens and Leap Motion), was developed to accurately track a haptic glove and simulate grasping a virtual hand with force feedback. We conducted an evaluation study with 20 participants (9 experts and 11 novices) to measure the usability of the HMR-IV simulation system with user performance under various insertion conditions. The quantitative results from our own metric and qualitative results from the NASA Task Load Index demonstrate the usability of our system.
Download full-text PDF |
Source |
---|---|
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10422502 | PMC |
http://dx.doi.org/10.3390/s23156697 | DOI Listing |
Nanoscale
March 2025
School of Materials Science and Technology, China University of Geosciences (Beijing), No. 29 Xueyuan Road, Hai Dian District, Beijing 100083, P. R. China.
As an emerging catalytic strategy, heterogeneous Piezo-Self-Fenton (EPSF) has demonstrated significant potential in fields such as environmental remediation and biomedicine in recent years. However, the catalytic reactions in this process are complex and diverse, and the understanding of high-entropy catalytic systems remains limited. In this study, we constructed a series of iron-based EPSF materials by incorporating various types of iron sources into MgO@rGO/PVDF-HFP composite piezoelectric films.
View Article and Find Full Text PDFNpj Flex Electron
March 2025
Bendable Electronics and Sustainable Technologies (BEST) Group, Northeastern University, Boston, MA 02115 USA.
Transparent light detection devices are attractive for emerging see-through applications such as augmented reality, smart windows and optical communications using light fidelity (Li-Fi). Herein, we present flexible and transparent photodetectors (PDs) using conductive poly(3,4-ethylenedioxythiophene): polystyrene sulfonate (PEDOT:PSS): Ag nanowires (NWs) based nanofibres and zinc oxide (ZnO) NWs on a transparent and degradable cellulose acetate (CA) substrate. The electrospun (PEDOT:PSS): Ag NW-based nanofibres exhibit a sheet resistance of 11 Ω/sq and optical transmittance of 79% (at 550 nm of wavelength).
View Article and Find Full Text PDFFront Surg
February 2025
Division of Orthopedic Surgery, Department of Surgery, University of Alberta, Edmonton, AB, Canada.
Front Physiol
February 2025
TNO Human Performance, Soesterberg, Netherlands.
Introduction: Maintaining cognitive performance during sleep deprivation is of vital importance in many professions, especially in high-risk professions like the military. It has long been known that sleep deprivation diminishes cognitive performance. To mitigate the negative effects on cognitive performance during crucial military tasks, new interventions are necessary.
View Article and Find Full Text PDFOtol Neurotol
March 2025
Department of Otolaryngology, Tokyo Women's Medical University Adachi Medical Center, Tokyo, Japan.
Objective: Although transcanal endoscopic ear surgery (TEES) offers benefits of minimal invasion, it is difficult to access certain regions of the temporal bone, often necessitating a switch to more invasive methods, such as mastoidectomy. To overcome these challenges, we developed "image-guided percutaneous endoscopic ear surgery (IGPEES)," a novel technique designed to enhance the precision and safety of ear operations by integrating augmented reality (AR) and advanced navigation systems, allowing precise, minimally invasive access to the mastoid antrum and other difficult-to-reach areas. This study aimed to evaluate the efficacy and safety of IGPEES through a retrospective analysis of 11 cases.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!