This study presents a deep learning model devoted to the analysis of swimming using a single Inertial Measurement Unit (IMU) attached to the sacrum. Gyroscope and accelerometer data were collected from 35 swimmers with various expertise levels during a protocol including the four swimming techniques. The proposed methodology took high inter- and intra-swimmer variability into account and was set up for the purpose of predicting eight swimming classes (the four swimming techniques, rest, wallpush, underwater, and turns) at four swimming velocities ranging from low to maximal. The overall F1-score of classification reached 0.96 with a temporal precision of 0.02 s. Lap times were directly computed from the classifier thanks to a high temporal precision and validated against a video gold standard. The mean absolute percentage error (MAPE) for this model against the video was 1.15%, 1%, and 4.07%, respectively, for starting lap times, middle lap times, and ending lap times. This model is a first step toward a powerful training assistant able to analyze swimmers with various levels of expertise in the context of in situ training monitoring.
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http://dx.doi.org/10.3390/s22155786 | DOI Listing |
Int J Surg
December 2024
Department of Surgery, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, Korea.
Background: This study aims to compare outcomes of colorectal cancer surgeries performed using the newly developed articulating laparoscopic instrument, ArtiSential, with those using conventional non-articulating or rigid laparoscopic instruments.
Methods: This multicenter, retrospective, matched cohort study enrolled patients with colorectal cancer undergoing laparoscopic surgery in seven tertiary referral hospitals from January 2021 to October 2022. A 1:1 propensity score matching was performed between the articulating (Arti-LAP) and conventional (Rigid-LAP) laparoscopic groups.
Background: The COVID-19 pandemic has exacerbated the obesity epidemic, with both adults and children demonstrating rapid weight gain during the pandemic. However, the impact of having a COVID-19 diagnosis on this trend is not known.
Methods: Using longitudinal data from January 2019 to June 2023 collected by the US National Institute for Health's National COVID Cohort Collaborative (N3C), children (age 2-18 years) with positive COVID-19 test results (n=11,474, 53% male, mean [SD] age 5.
Urologia
January 2025
Department of Pediatric and Neonata Surgery, Sher-i-Kashmir Institute of Medical Sciences, Soura, Srinagar, Jammu and Kashmir, India.
Introduction: Laparoscopic Fowler Stephens orchidopexy, single stage or two-stage, is now routinely performed in non-palpable testis. We performed second stage orchidopexy as open inguinal approach and compared the outcome of this approach to two-staged laparoscopic orchidopexy.
Methods: We performed a prospective randomized interventional study of two different approaches for intra-abdominal testis.
Cancers (Basel)
December 2024
Department of Maternal Infant and Urologic Sciences, "Sapienza" University of Rome, 00185 Rome, Italy.
: Robot-assisted radical prostatectomy (RARP) for the treatment of prostate cancer (PCa) has been standardized over the last 20 years. At our institution, only n = 3 rob arms are used for RARP. In addition, n = 2, 12 mm lap trocars are placed for the bedside assistant symmetrically at the midclavicular lines, which allows for direct pelvic triangulation and greater involvement of the assisting surgeon.
View Article and Find Full Text PDFAnal Chim Acta
January 2025
State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-products, School of Material Science and Chemical Engineering, Ningbo University, Ningbo, 315211, PR China. Electronic address:
Background: Foodborne pathogens, particularly Vibrio parahaemolyticus (VP) found in seafood, pose significant health risks, including abdominal pain, nausea, and even death. Rapid, accurate, and sensitive detection of these pathogens is crucial for food safety and public health. However, existing detection methods often require complex sample pretreatment, which limits their practical application.
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