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Competitive indoor climbing has increased in popularity at the youth, collegiate, and Olympic levels. A critical aspect for improving performance is characterizing the physiologic response to different climbing strategies (e.g., work/rest patterns, pacing) and techniques (e.g., body position and movement) relative to location on climbing wall with spatially varying characteristics (e.g., wall inclinations, position of foot/hand holds). However, this response is not well understood due to the limited capabilities of climbing-specific measurement and assessment tools. In this study, we developed a novel method to examine time-resolved sensor-based measurements of multiple personal biometrics at different microlocations (finely spaced positions; MLs) along a climbing route. For the ML-specific biometric system (MLBS), we integrated continuous data from wearable biometric sensors and smartphone-based video during climbing, with a customized visualization and analysis system to determine three physiologic parameters (heart rate, breathing rate, ventilation rate) and one body movement parameter (hip acceleration), which are automatically time-matched to the corresponding video frame to determine ML-specific biometrics. Key features include: (1) biometric sensors that are seamlessly embedded in the fabric of an athletic compression shirt, and do not interfere with climbing performance, (2) climbing video, and (3) an interactive graphical user interface to rapidly visualize and analyze the time-matched biometrics and climbing video, determine timing sequence between the biometrics at key events, and calculate summary statistics. To demonstrate the capabilities of MLBS, we examined the relationship between changes in ML-specific climbing characteristics and changes in the physiologic parameters. Our study demonstrates the ability of MLBS to determine multiple time-resolved biometrics at different MLs, in support of developing and assessing different climbing strategies and training methods to help improve performance.
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http://dx.doi.org/10.3390/s22166271 | DOI Listing |
Sci Total Environ
September 2025
Laboratory of Plant Molecular Physiology, Centre of Biotechnology of Borj-Cedria, PB.901, 2050, Hammam-Lif, Tunisia. Electronic address:
Climate change is challenging agriculture and food security due to the limited adaptability of domesticated crops. While plant range shifts along latitudinal and altitudinal gradients are well-documented, their impacts on belowground microbial communities and plant adaptability remain poorly understood. Vitis vinifera subsp.
View Article and Find Full Text PDFJ Mol Histol
September 2025
The Third Affiliated Hospital of Shenzhen University (Luohu Hospital Group), Shenzhen University, Shenzhen, China.
Neurology
October 2025
Department of Neurology, Leiden University Medical Center, the Netherlands.
Background And Objectives: Slow and highly variable disease progression in Becker muscular dystrophy (BMD) stresses the need to develop sensitive outcome measures for clinical trials. We evaluated responsiveness of different outcome measures in adult patients with BMD over 3 years and explored if the sensitivity of outcome measures can be increased by selecting on phenotype or genotype.
Methods: Genetically confirmed patients with BMD were recruited via the Dutch Dystrophinopathy Database.
Int J Exerc Sci
September 2025
Fire Technology Department, Santa Ana College, Santa Ana, CA, USA.
The Biddle Physical Ability Test (BPAT) is a job task simulation that must be completed in ≤9:34 min:s by structural firefighter candidates to be accepted to a fire training academy. This study investigated the influence of prior attempts on BPAT time. Retrospective analysis was conducted on 1435 male and 72 female candidates.
View Article and Find Full Text PDFHeterozygous loss-of-function mutations are one established cause of isolated dystonia and hyposmia. Homozygous mutations have been reported in siblings with generalized dystonia and intellectual disability. encodes major [NM_001369387.
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