Literature DB >> 29851551

Validity and reliability of a linear positional transducer across commonly practised resistance training exercises.

Harry F Dorrell1, Joseph M Moore1, Mark F Smith1, Thomas I Gee1.   

Abstract

This study investigated the validity and reliability of the GymAware PowerTool (GPT). Thirteen resistance trained participants completed three visits, consisting of three repetitions of free-weight back squat, bench press, deadlift (80% one repetition maximum), and countermovement jump. Bar displacement, peak and mean velocity, peak and mean force, and jump height were calculated using the GPT, a three-dimensional motion capture system (Motion Analysis Corporation; 150 Hz), and a force plate (Kistler; 1500 Hz). Least products regression were used to compare agreeability between devices. A within-trial one-way ANOVA, typical error (TE; %), and smallest worthwhile change (SWC) were used to assess reliability. Regression analysis resulted in R2 values of >0.85 for all variables excluding deadlift mean velocity (R2 = 0.54-0.69). Significant differences were observed between visits 3-2 for bench press bar displacement (0.395 ± 0.055 m; 0.383 ± 0.053 m), and deadlift bar displacement (0.557 ± 0.034 m; 0.568 ± 0.034 m). No other significant differences were found. Low to moderate TE (0.6-8.8%) were found for all variables, with SWC ranging 1.7-7.4%. The data provides evidence that the GPT can be used to measure kinetic and kinematic outputs, however, care should be taken when monitoring deadlift performance.

Entities:  

Keywords:  GymAware; Velocity based training; power; reliability; strength and conditioning

Mesh:

Year:  2018        PMID: 29851551     DOI: 10.1080/02640414.2018.1482588

Source DB:  PubMed          Journal:  J Sports Sci        ISSN: 0264-0414            Impact factor:   3.337


  8 in total

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Journal:  Sports Med       Date:  2021-01-21       Impact factor: 11.136

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Journal:  Int J Environ Res Public Health       Date:  2021-04-27       Impact factor: 3.390

3.  The Reliability and Validity of Current Technologies for Measuring Barbell Velocity in the Free-Weight Back Squat and Power Clean.

Authors:  Steve W Thompson; David Rogerson; Harry F Dorrell; Alan Ruddock; Andrew Barnes
Journal:  Sports (Basel)       Date:  2020-06-30

4.  Reliability and Criterion Validity of the Assess2Perform Bar Sensei.

Authors:  George K Beckham; Danielle K Layne; Steven B Kim; Eric A Martin; Benjamin G Perez; Kent J Adams
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5.  Velocity Loss Thresholds Reliably Control Kinetic and Kinematic Outputs during Free Weight Resistance Training.

Authors:  Madison Pearson; Amador García-Ramos; Matthew Morrison; Carlos Ramirez-Lopez; Nicholas Dalton-Barron; Jonathon Weakley
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6.  Video-Based System for Automatic Measurement of Barbell Velocity in Back Squat.

Authors:  Basilio Pueo; Jose J Lopez; Jose M Mossi; Adrian Colomer; Jose M Jimenez-Olmedo
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7.  Agreement Between Kinovea Video Analysis and The Open Barbell System for Resistance Training Movement Outcomes.

Authors:  Joseph P Carzoli; Colby A Sousa; Eric R Helms; Michael C Zourdos
Journal:  J Hum Kinet       Date:  2022-02-10       Impact factor: 2.193

8.  Group versus Individualised Minimum Velocity Thresholds in the Prediction of Maximal Strength in Trained Female Athletes.

Authors:  Elias J G Caven; Tom J E Bryan; Amelia F Dingley; Benjamin Drury; Amador Garcia-Ramos; Alejandro Perez-Castilla; Jorge Arede; John F T Fernandes
Journal:  Int J Environ Res Public Health       Date:  2020-10-26       Impact factor: 3.390

  8 in total

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