Priego Quesada JI, Carpes FP, Bini RR, Salvador Palmer R, Pérez-Soriano P, Cibrián Ortiz de Anda RM (2015) Relationship between skin temperature and muscle activation during incremental cycle exercise. J Therm Biol 48:28–35. https://doi.org/10.1016/j.jtherbio.2014.12.005 ArticlePubMed Google Scholar
Al-Mulla MR, Sepulveda F, Colley M (2011) A review of non-invasive techniques to detect and predict localised muscle fatigue. Sensors (Basel, Switzerland) 11:3545–3594. 11:3545–3594. https://doi.org/10.3390/s110403545
Halder A, Kuklane K, Gao C et al (2017) Limitations of oxygen uptake and leg muscle activity during ascending evacuation in stairways. Appl Ergon 66:52–63 Article Google Scholar
Balaji AS, Makaram N, Balasubramanian S, Swaminathan R (2017) Analysis of pre- and post-fatigue thermal profiles of the dominant hand using infrared imaging. International Conference on Computational Biology and Bioinformatics, In, pp 53–57 Google Scholar
Shakhih MFM, Wahab AA, Salim MIM (2019) Assessment of inspiration and expiration time using infrared thermal imaging modality. Infrared Phys Technol 99:129–139 Article Google Scholar
Cabizosu A, Carboni N, Martínez-Almagro Andreo A, Casu G, Ramón Sánchez C, Vegara-Meseguer JM (2020) Relationship between infrared skin radiation and muscular strength tests in patients affected by Emery-Dreifuss muscular dystrophy. Med Hypotheses 138:109592. https://doi.org/10.1016/j.mehy.2020.109592 ArticleCASPubMed Google Scholar
García A, Camargo C, Olguín J, Barreras JAL (2018) Analysis of risk for repetitive work using thermography sensory. Advances in Intelligent Systems and Computing, In, pp 239–248 Google Scholar
Adamczyk JG, Krasowska I, Boguszewski D, Reaburn P (2016) The use of thermal imaging to assess the effectiveness of ice massage and cold-water immersion as methods for supporting post-exercise recovery. J Therm Biol 60:20–25. https://doi.org/10.1016/j.jtherbio.2016.05.006 ArticlePubMed Google Scholar
Hildebrandt C, Zeilberger K, John Ring EF, Raschner C (2012) The application of medical infrared thermography in sports medicine. In: Zaslav KR (ed) An International Perspective on Topics in Sports Medicine and Sports Injury. InTech, pp 257–274
Côrte AC, Pedrinelli A, Marttos A, Souza IFG, Grava J, José Hernandez A (2019) Infrared thermography study as a complementary method of screening and prevention of muscle injuries: pilot study. BMJ Open Sport Exercise Med 5:e000431. https://doi.org/10.1136/bmjsem-2018-000431 Article Google Scholar
Duc S, Arfaoui A, Polidori G, Bertucci W (2015) Efficiency and thermography in cycling during a graded exercise test. Journal of Exerecise, Sports & Orthopedics 1–8
Ludwig N, Trecroci A, Gargano M, Formenti D, Bosio A, Rampinini E, Alberti G (2016) Thermography for skin temperature evaluation during dynamic exercise: a case study on an incremental maximal test in elite male cyclists. Appl Opt 55:1–5. https://doi.org/10.1364/AO.55.00D126 Article Google Scholar
Formenti D, Merla A, Priego Quesada JI (2017) The use of infrared thermography in the study of sport and exercise physiology. Application of Infrared Thermography in Sports Science, In, pp 111–136 Google Scholar
Štirn I, Jarm T, Strojnik V (2008) Evaluation of the mean power frequency of the EMG signal power spectrum at endurance levels during fatiguing isometric muscle contractions. Kinesiologia Slovenica 14:28–38 Google Scholar
Cardozo A, Gonçalves M, Halla C, Marques N (2013) Age-related neuromuscular adjustments assessed by EMG. Electrodiagnosis New Frontiers Clinical Res:18. https://doi.org/10.5772/55053129
Priego Quesada JI (2017) Application of Infrared Thermography in Sports Science, 1st edn. Springer International Publishing
Becher C, Springer J, Feil S, Cerulli G, Paessler HH (2008) Intra-articular temperatures of the knee in sports - An in-vivo study of jogging and alpine skiing. BMC Musculoskelet Disord 9:1–7. https://doi.org/10.1186/1471-2474-9-46 Article Google Scholar
Mito K, Kitahara S, Tamura T, Kaneko K, Sakamoto K, Shimizu Y (2007) Effect of skin temperature on RMS amplitude of electromyogram and mechanomyogram during voluntary isometric contraction. Electromyogr Clin Neurophysiol 47:153–160 PubMed Google Scholar
Pääsuke M, Rannama L, Ereline J, Gapeyeva H, Oöpik V (2007) Changes in soleus motoneuron pool reflex excitability and surface EMG parameters during fatiguing low- vs. high-intensity isometric contractions. Electromyogr Clin Neurophysiol 47:341–350 PubMed Google Scholar