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    Academic Journal

    Πηγή: Relevant problems of modern science and education; 161-162 ; Актуальные вопросы современной науки и образования; 161-162

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    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-907830-13-4; https://phsreda.com/e-articles/10587/Action10587-110455.pdf; Кричевская К.С. Прагматические материалы, знакомящие учеников с культурой и средой обитания жителей страны изучаемого языка / К.С. Кричевская // Иностранные языки в школе. – 1996. – №1. – С. 13–17.; Самохин И.С. Роль песен при обучении английскому языку в контексте инклюзивного образования / И.С. Самохин, Н.Л. Соколова, Е.А. Мраченко [и др.] // Научный диалог. – 2017. – №10. – С. 368–382. DOI 10.24224/2227-1295-2017-10-368-382. EDN ZQLFRF; Осипова Е.С. Песня как методическое средство в обучении английскому языку / Е.С. Осипова // Молодой ученый. – 2015. – №10.1. – С. 28–30. EDN TUEJIJ; Гебель С.Ф. Использование песни на уроке иностранного языка / С.Ф. Гебель // ИЯШ. – 2009. – №5. – С. 28–30. – EDN KXSZCV; https://phsreda.com/article/110455/discussion_platform

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    Academic Journal

    Πηγή: Russian Sklifosovsky Journal "Emergency Medical Care"; Том 13, № 3 (2024); 451-464 ; Журнал им. Н.В. Склифосовского «Неотложная медицинская помощь»; Том 13, № 3 (2024); 451-464 ; 2541-8017 ; 2223-9022

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    Relation: https://www.jnmp.ru/jour/article/view/1932/1488; https://www.jnmp.ru/jour/article/view/1932/1623; Goyal M, Menon BK, van Zwam WH, Dippel DW, Mitchell PJ, Demchuk AM; HERMES collaborators. Endovascular thrombectomy after large-vessel ischaemic stroke: a meta-analysis of individual patient data from five randomised trials. Lancet. 2016;387(10029):1723–1731. PMID: 26898852 https://doi.org/10.1016/S0140-6736(16)00163-X; Powers WJ, Rabinstein AA, Ackerson T, Adeoye OM, Bambakidis NC, Becker K, et al. Guidelines for the early management of patients with acute ischemic stroke: 2019 Update to the 2018 Guidelines for the early management of acute ischemic stroke: a guideline for healthcare professionals from the American Heart Association/American Stroke Association. Stroke. 2019;50(12):e344–e418. PMID: 31662037 https://doi.org/10.1161/STR.0000000000000211; Wassélius J, Arnberg F, von Euler M, Wester P, Ullberg T. Endovascular thrombectomy for acute ischemic stroke. J Intern Med. 2022;291(3):303–316.PMID:35172028 https://doi.org/10.1111/joim.13425; Roaldsen MB, Jusufovic M, Berge E, Lindekleiv H. Endovascular thrombectomy and intra-arterial interventions for acute ischaemic stroke. Cochrane Database Syst Rev. 2021;6(6):CD007574. PMID: 34125952 https://doi.org/10.1002/14651858.CD007574.pub3; Dong S, Li Y, Guo J, Luo Y, Fang J, Tang L, et al. Endovascular TreatmentCombined with Standard Medical Treatment Improves Outcomes of Posterior Circulation Stroke:A Systematic Review and Meta-Analysis. Front Neurol. 2022;13:694418. PMID: 35518202 https://doi.org/10.3389/fneur.2022.694418 eCollection 2022.; Compagne KCJ, Kappelhof M, Hinsenveld WH, Brouwer J, Goldhoorn RB, Uyttenboogaart M, et al. Improvements in Endovascular Treatment for Acute Ischemic Stroke: A Longitudinal Study in the MR CLEAN Registry. Stroke. 2022;53(6):1863–1872. PMID: 35135323 https://doi.org/10.1161/STROKEAHA.121.034919; Karamchandani RR, Rhoten JB, Strong D, Chang B, Asimos AW. 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PMID: 36762865 https://doi.org/10.1056/NEJMoa2214403; Balami JS, White PM, McMeekin PJ, Ford GA, Buchan AM.Complications of endovascular treatment for acute ischemic stroke: Prevention and management. Int J Stroke. 2018;13(4):348–361.PMID: 29171362 https://doi.org/10.1177/1747493017743051.0; Ni H, Liu X, Hang Y, Jia Z, Cao Y, Shi H, et al. Predictors of futile recanalization in patients with acute ischemic stroke undergoing mechanical thrombectomy in late time windows. Front Neurol. 2022;13:958236. PMID: 36188358 https://doi.org/10.3389/fneur.2022.958236 eCollection 2022.; Deng G, Xiao J, Yu H, Chen M, Shang K, Qin C, et alPredictors of futile recanalization after endovascular treatment in acute ischemic stroke: a meta-analysis. J Neurointerv Surg. 2022;14(9):881–885. PMID: 34544824 https://doi.org/10.1136/neurintsurg-2021-017963; Bai X, Zhang X, Yang W, Zhang Y, Wang T, Xu R, et al. 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PMID: 34732070 https://doi.org/10.1161/STROKEAHA.120.033445; White P, Campbell BCV, Guillemin F, Brown S, Majoie CBLM, Steyerberg EW, et al.; HERMES collaborators; MR CLEAN Registry Investigators. Prediction of Outcome and Endovascular Treatment Benefit: Validation and Update of the MR PREDICTS Decision Tool. Stroke. 2021;52(9):2764–2772. PMID: 34266308 https://doi.org/10.1161/STROKEAHA.120.032935; Bhurwani MMS, Boutelier T, Davis A, I Gautier G, Swetz D, Rava RA, et al. Dentification of infarct core and ischemic penumbra using computed tomography perfusion and deep learning. J Med Imaging (Bellingham). 2023;10(1):014001. PMID: 36636489 https://doi.org/10.1117/1.JMI.10.1.014001; Abdalkader M, Siegler JE, Lee JS, Yaghi S, Qiu Z, Huo X, et al. Neuroimaging of Acute Ischemic Stroke: Multimodal Imaging Approach for Acute Endovascular Therapy. J Stroke. 2023;25(1):55–71. PMID: 36746380 https://doi.org/10.5853/jos.2022.03286; Sarraj A, Hassan AE, Grotta J, Sitton C, Cutter G, Cai C, et al. Optimizing Patient Selection for Endovascular Treatment in Acute Ischemic Stroke (SELECT): A Prospective, Multicenter Cohort Study of Imaging Selection. Ann Neurol. 2020;87(3):419–433. PMID: 31916270 https://doi.org/10.1002/ana.25669; Chung JW, Kim BJ, Jeong HG,Seo WK, Kim GM, Jung C, et al. Selection of Candidates for Endovascular Treatment: Characteristics According to Three Different Selection Methods. J Stroke. 2019;21(3):332–339. PMID: 31590477 https://doi.org/10.5853/jos.2019.01578; Nannoni S, Strambo D, Sirimarco G, Amiguet M, Vanacker P, Eskandari A, et al. Eligibility for late endovascular treatment using DAWN, DEFUSE-3, and more liberal selection criteria in a stroke center. J Neurointerv Surg. 2020;12(9):842–847. PMID: 31772044 https://doi.org/10.1136/neurintsurg-2019-015382; Mutke MA, Madai VI, Hilbert A, Zihni E, Potreck A, Weyland CS, et al. Comparing Poor and Favorable Outcome Prediction with Machine Learning after Mechanical Thrombectomy in Acute Ischemic Stroke. Front Neurol. 2022;13:737667. PMID: 35693017 https://doi.org/10.3389/fneur.2022.737667 eCollection 2022.; Meinel T, Lerch C, Fischer U, Beyeler M, Mujanovic A, Kurmann C, et al. Multivariable Prediction Model for Futile Recanalization Therapies in Patients with Acute Ischemic Stroke. Neurology. 2022;99(10):e1009–e1018. PMID: 35803722 https://doi.org/10.1212/WNL.0000000000200815 Online ahead of print.; Imahori T, Koyama J, Tanaka K, Okamura Y, Arai A, Iwahashi H, et al. Impact of introducing endovascular treatment on acute ischemic stroke outcomes: A shift from an era of medical management to thrombectomy in Japan. Heliyon. 2020;6(5):e03945. PMID: 32426544 https://doi.org/10.1016/j.heliyon.2020.e03945 eCollection 2020 May.; Hassan AE, Dibas M, Sarraj A, Ghozy S, El-Qushayri AE, Dmytriw AA, et al. First pass effect vs multiple passes complete reperfusion: A retrospective study. Neuroradiol J. 2022;35(3):306–312. PMID: 34464222 https://doi.org/10.1177/19714009211042886; Shahid AH, Abbasi M, Larco JL, Madhani SI, Liu Y, Brinjikji W, et al. Risk Factors of Futile Recanalization Following Endovascular Treatment in Patients with Large-Vessel Occlusion: Systematic Review and Meta-Analysis. Stroke Vasc Interv Neurol. 2022;2(6):e000257. https://doi.org/10.1161/SVIN.121.000257; McDonough RV, Ospel JM, Campbell BCV, Hill MD, Saver JL, Dippel DWJ, et al.; HERMES Collaborators. Functional Outcomes of Patients ≥85 Years with Acute Ischemic Stroke Following EVT: A HERMES Substudy. Stroke. 2022;53(7):2220–2226. PMID: 35703094 https://doi.org/10.1161/STROKEAHA.121.037770; Groot AE, Treurniet KM, Jansen IGH, Lingsma HF, Hinsenveld W, van de Graaf RA, et al.; MR CLEAN Registry Investigators. Endovascular treatment in older adults with acute ischemic stroke in the MR CLEAN Registry. Neurology. 2020;95(2):e131–e139. PMID: 32527972 https://doi.org/10.1212/WNL.0000000000009764; Brouwer J, Smaal JA, Emmer BJ, de Ridder IR, van den Wijngaard IR, de Leeuw FE, et al.; MR CLEAN Registry Investigators. Endovascular Thrombectomy in Young Patients with Stroke: A MR CLEAN Registry Study. Stroke. 2022;53(1):34–42. PMID: 34872339 https://doi.org/10.1161/STROKEAHA.120.034033; Gil-Salcedo A, Dugravot A, Fayosse A, Landré B, Jacob L, Bloomberg M, et al. Pre-stroke Disability and Long-Term Functional Limitations in Stroke Survivors: Findings from More of 12 Years of Follow-Up Across Three International Surveys of Aging. Front Neurol. 2022;13:888119. PMID: 35775052 https://doi.org/10.3389/fneur.2022.888119 eCollection 2022.; Adamou A, Gkana A, Mavrovounis G, Beltsios ET, Kastrup A, Papanagiotou P. Outcome of Endovascular Thrombectomy in Pre-stroke Dependent Patients with Acute Ischemic Stroke: A Systematic Review and Meta-Analysis. Front Neurol. 2022;13:880046. 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Endovascular treatment of acute ischemic stroke in patients with pre-morbid disability: a meta-analysis. J Neurointerv Surg. 2023;15(4):343–349. PMID: 35292569 https://doi.org/10.1136/neurintsurg-2021-018573; Lansberg MG, Mlynash M, Hamilton S, Yeatts SD, Christensen S, Kemp S, et al.; DEFUSE 3 Investigators. Association of Thrombectomy with Stroke Outcomes Among Patient Subgroups: Secondary Analyses of the DEFUSE 3 Randomized Clinical Trial. JAMA Neurol. 2019;76(4):447–453. PMID: 30688974 https://doi.org/10.1001/jamaneurol.2018.4587; Pirson FAV, Hinsenveld WH, Staals J, de Greef BTA, van Zwam WH, Dippel DWJ, et al. The Effect of Body Mass Index on Outcome after Endovascular Treatment in Acute Ischemic Stroke Patients: A Post Hoc Analysis of the MR CLEAN Trial. Cerebrovasc Dis. 2019;48(3–6):200–206.PMID:31825939 https://doi.org/10.1159/000504744; Wu X, Zou Y, You S, Zhang Y. Distribution of risk factors of ischemic stroke in Chinese young adults and its correlation with prognosis. BMC Neurol. 2022;22(1):26. PMID: 35030995 https://doi.org/10.1186/s12883-022-02552-1; Hu M, Zhu Y, Chen Z, Li W, Li L, Li Y, et al. Relationship between mean blood pressure during hospitalization and clinical outcome after acute ischemic stroke. BMC Neurol. 2023;23(1):156. PMID: 37081452 https://doi.org/10.1186/s12883-023-03209-3; Wu K, Xiong Z, Ding Y. Management of Elevated Blood Pressure After Stroke Thrombectomy for Anterior Circulation. Risk ManagHealthc Policy. 2021;14:405–413. PMID: 33568958 https://doi.org/10.2147/RMHP.S285316 eCollection 2021.; Maïer B, Dargazanli C, Bourcier R, Kyheng M, Labreuche J, Mosimann PJ, et al.; ASTER Trial. Effect of steady and dynamic blood pressure parameters during thrombectomy according to the collateral status. Stroke. 2020;51(4):1199–1206. PMID: 32156204 https://doi.org/10.1161/STROKEAHA.119.026769; Anadani M, Arthur AS, Tsivgoulis G, Simpson KN, Alawieh A, Orabi Y, et al. Blood pressure goals and clinicaloutcomes after successful endovascular therapy: a multicenter study. Ann Neurol. 2020;87(6):830–839. PMID: 32187711 https://doi.org/10.1002/ana.25716; Максимова М.Ю., Степанченко О.А. Стрессовая гипергликемия и течение инсульта. Consilium Medicum. 2020;22(2):19–23. https://doi.org/10.26442/20751753.2020.2.200032; Liu C, Zhang Y, Li X, Liu Y, Jiang T, Wang M, et al. Glycemia-Based Nomogram for Predicting Outcome in Stroke Patients after Endovascular Treatment. Brain Sci. 2022;12(11):1576. PMID: 36421900 https://doi.org/10.3390/brainsci12111576; Gupta M, Pandey S, Rumman M, Singh B, Mahdi AA. Molecular mechanisms underlying hyperglycemia associated cognitive decline. IBRO Neurosci Rep. 2022 Dec 13;14:57–63. PMID: 36590246 https://doi.org/10.1016/j.ibneur.2022.12.006 eCollection 2023 Jun.; Zhang M, Xing P, Tang J, Shi L, Yang P, Zhang Y, et al.Predictors and outcome of early neurological deterioration after endovascular thrombectomy: a secondary analysis of the DIRECT-MT trial. J Neurointerv Surg. 2022 Jun 10:neurintsurg-2022-018976. PMID: 35688618 https://doi.org/10.1136/neurintsurg-2022-018976 Online ahead of print.; Perez-Vega C, Domingo RA, Tripathi S, Ramos-Fresnedo A, Kashyap S, Quinones-Hinojosa A, et al. Influence of glucose levels on clinical outcome after mechanical thrombectomy for large-vessel occlusion: a systematic review and meta-analysis. J Neurointerv Surg. 2022;14(1):neurintsurg-2021-017771. PMID: 34362794 https://doi.org/10.1136/neurintsurg-2021-017771; Diprose WK, Wang MTM, McFetridge A, Sutcliffe J, Barber PA. Glycated hemoglobin (HbA1c) and outcome following endovascular thrombectomy for ischemic stroke. J Neurointerv Surg. 2020;12(1):30–32. PMID: 31147437 https://doi.org/10.1136/neurintsurg-2019-015023; Dong N, Shen X, Wu X, Guo X, Fang Q. Elevated Glycated Hemoglobin Levels Are Associated with Poor Outcome in Acute Ischemic Stroke. Front Aging Neurosci. 2021;13:821336. PMID: 35185521 https://doi.org/10.3389/fnagi.2021.821336 eCollection 2021.; Luo Y, Chen M, Fang J, Dong S, Ma M, Bao J, et al. Relationship Between Body Temperature and Early Neurological Deterioration after Endovascular Thrombectomy for Acute Ischemic Stroke with Large Vessel Occlusion. Neurocrit Care. 2022;37(2):399–409. PMID: 34981427 https://doi.org/10.1007/s12028-021-01416-9; Zheng L, Leng X, Nie X, Yan H, Tian X, Pan Y, et al. Small vessel disease burden may not portend unfavorable outcome after thrombectomy for acute large vessel occlusion. Eur Radiol. 2022;32(11):7824–7832. PMID: 35475935 https://doi.org/10.1007/s00330-022-08795-3; Cheng Z, Zhang W, Zhan Z, Xia L, Han Z. Cerebral small vessel disease and prognosis in intracerebral haemorrhage: A systematic review and meta-analysis of cohort studies. Eur J Neurol. 2022;29(8):2511–2525. PMID: 35435301 https://doi.org/10.1111/ene.15363; Zhao Y, Ning Y, Lei L, Yuan H, Liu H, Luo G, et al. Cerebral Small Vessel Diseases and Outcomes for Acute Ischemic Stroke Patients after Endovascular Therapy. J Clin Med. 2022;11(23):6883. PMID: 36498456 https://doi.org/10.3390/jcm11236883; UnikenVenema SM, Wolff L, van den Berg SA, Reinink H, Luijten SPR, Lingsma HF, et al.; MR CLEAN Registry Investigators. Time Since Stroke Onset, Quantitative Collateral Score, and Functional Outcome After Endovascular Treatment for Acute Ischemic Stroke. Neurology. 2022;99(15):e1609–e1618. PMID: 35918164 https://doi.org/10.1212/WNL.0000000000200968; de Havenon A, Mlynash M, Kim-Tenser MA, Lansberg MG, Leslie-Mazwi T, Christensen S, et al.; DEFUSE 3 Investigators. Results From DEFUSE 3: Good Collaterals Are Associated with Reduced Ischemic Core Growth but Not Neurologic Outcome. Stroke. 2019;50(3):632–638. PMID: 30726184 https://doi.org/10.1161/STROKEAHA.118.023407; Sarraj A, Hassan AE, Grotta J, Blackburn S, Day A, Abraham M, et al.; SELECT Investigators. Early Infarct Growth Rate Correlation with Endovascular Thrombectomy Clinical Outcomes: Analysis from the SELECT Study. Stroke. 2021;52(1):57–69. PMID: 33280550 https://doi.org/10.1161/STROKEAHA.120.030912; Liebeskind DS, Saber H, Xiang B, Jadhav AP, Jovin TG, Haussen DC, et al.; DAWN Investigators. Collateral Circulation in Thrombectomy for Stroke After 6 to 24 Hours in the DAWN Trial. Stroke. 2022;53(3):742–748. PMID: 34727737 https://doi.org/10.1161/STROKEAHA.121.034471; Yang Y, Cui T, Li Z, Li J, Duan T, Yuan Z, et al. Benefits of Endovascular Treatment in Late Window for Acute Ischemic Stroke Selected without CT Perfusion: A Real-World Study. Clin Interv Aging. 2022;17:577-587. 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PMID: 34906857 https://doi.org/10.1016/j.thromres.2021.11.018; https://www.jnmp.ru/jour/article/view/1932

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    Academic Journal

    Πηγή: Pedagogy and Psychology as a Source of Development of Modern Society; 135-137 ; Педагогика и психология как ресурс развития современного общества; 135-137

    Περιγραφή αρχείου: text/html

    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-907561-00-7; https://phsreda.com/e-articles/10346/Action10346-100723.pdf; Гребенник Е.А. Особенности перевода и обработки текстов по внеаудиторному чтению в военном вузе / Е.А. Гребенник, Е.Ю. Ломтева // Актуальные проблемы лингвистики, лингводидактики и переводоведения: материалы конференции. – Омск, 2021. – С. 40–43.; Дубровина В.Ю. Внеаудиторное чтение на иностранном языке как аспект гуманитаризации высшего технического образования / В.Ю. Дубровина, Н.М. Лапшина, Е.В. Сухова // Современные исследования социальных проблем. – 2016. – №3–2 (59). – С. 102–108.; Игумнова О.В. Возможности использования lms moodle для организации внеаудиторного чтения по дисциплине «Иностранный язык» на неязыковых факультетах образовательных организаций высшего образования / О.В. Игумнова // Теория и практика социогуманитарных наук. – 2021. – №1 (13). – С. 18–24.; Иностранный язык: рабочая программа дисциплины / авт.-сост. Л.Г. Кочеткова. – Рязань: Академия ФСИН России, 2021. – 20 с.; Королева Е.В. Целесообразность использования художественных произведений для организации внеаудиторного чтения в неязыковом вузе / Е.В. Королева // Вопросы педагогики. – 2021. – №10–2. – С. 162–165.; Малкова Т.В. К вопросу о повышении эффективности внеаудиторного чтения как средства формирования иноязычной коммуникативной компетенции / Т.В. Малкова, Н.В. Хисматулина, С.А. Пугачева // Вопросы педагогики. – 2021. – №5–2. – С. 206–209.; Малкова Т.В. Методические и практические вопросы организации внеаудиторного чтения по иностранному языку для курсантов, обучающихся по направлению подготовки «судебная экспертиза» / Т.В. Малкова, Н.В. Хисматулина, С.А. Пугачева // Вопросы педагогики. – 2021. – №6–1. – С. 250–253.; Монгина Ф.М. Отбор текстов для хрестоматии по внеаудиторному чтению / Ф.М. Монгина, В.С. Скрябина // Актуальные проблемы теоретической и прикладной лингвистики: сборник статей конференции. – Краснодар, 2020. – С. 132–142.; Нерушева Т.В. Обучение внеаудиторному чтению как необходимое условие качественной языковой подготовки / Т.В. Нерушева // Гуманитарные науки и образование. – 2018. – №4, т. 9. – С. 94–98.; Пушкарева И.А. Организация внеаудиторного чтения в процессе изучения иностранного языка / И.А. Пушкарева // Теория и практика научных исследований: психология, педагогика, экономика и управление. – 2018. – №2 (2). – С. 51–56.; https://phsreda.com/files/Books/62320fd7e0fa4.jpeg?req=100723; https://phsreda.com/article/100723/discussion_platform

  7. 7
    Academic Journal

    Συγγραφείς: S. B. Lepekhov, С. Б. Лепехов

    Συνεισφορές: The research is carried out under the Federal Altai Scientific Centre of Agro-BioTechnologies government contract No. 0534-2021-0003 (theme: “The use of molecular genetics and biotechnological research methods in plant breeding”).

    Πηγή: Vavilov Journal of Genetics and Breeding; Том 26, № 2 (2022); 196-201 ; Вавиловский журнал генетики и селекции; Том 26, № 2 (2022); 196-201 ; 2500-3259 ; 10.18699/VJGB-22-14

    Περιγραφή αρχείου: application/pdf

    Relation: https://vavilov.elpub.ru/jour/article/view/3296/1605; Acuña-Galindo M.A., Mason R.E., Subramanian N.K., Hays D.B. Meta-analysis of wheat QTL regions associated with adaptation to drought and heat stress. Crop Sci. 2015;55(2):477-492. DOI 10.2135/cropsci2013.11.0793.; Al-Ghzawi A.L.A., Khalaf Y.B., Al-Ajlouni Z.I., AL-Quraan N.A., Musallam I., Hani N.B. The effect of supplemental irrigation on canopy temperature depression, chlorophyll content, and water use efficiency in three wheat (Triticum aestivum L. and T. durum Desf.) varieties grown in dry regions of Jordan. Agriculture. 2018;8(5):67. DOI 10.3390/agriculture8050067.; Awlachew Z.T., Singh R., Kaur S., Bains N.S., Chhuneja P. Transfer and mapping of the heat tolerance component traits of Aegilops speltoides in tetraploid wheat Triticum durum. Mol. Breed. 2016;36:78. DOI 10.1007/s11032-016-0499-2.; Bahar B., Yildirim M., Barutcular C., Genc I. Effect of CTD on grain yield and yield component in bread and durum wheat. 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The study of temperature depression and its association with grain yield in six wheat cultivars under heat stress conditions and salicylic acid application. Iran Agric. Res. 2020;39(1):99-108. DOI 10.22099/iar.2020.31975.1318.; Chaves M.M. Thermography to explore plant-environment interactions. J. Exp. Bot. 2013;64(13):3937-3949. DOI 10.1093/jxb/ert029.; Cheng J.-J., Li H., Ren B., Zhou C.-J., Kang Z.-S., Huang L.-L. Effect of canopy temperature on the stripe rust resistance of wheat. N. Z. J. Crop Hortic. Sci. 2015;43(4):306-315. DOI 10.1080/01140671.2015.1098708.; Cossani C.M., Reynolds M.P. Physiological traits for improving heat tolerance in wheat. Plant Physiol. 2012;160(4):1710-1718. DOI 10.1104/pp.112.207753.; Fang Q., Zhang X., Chen S., Shao L., Sun H. Selecting traits to increase winter wheat yield under climate change in the North China Plain. Field Crops Res. 2017;207:30-41. DOI 10.1016/j.fcr.2017.03.005.; Gao F., Liu J., Yang L., Wu X., Xiao Y., Xia X., He Z. Genome-wide linkage mapping of QTL for physiological traits in a Chinese wheat population using the 90K SNP array. Euphytica. 2016;209(3):789-804. DOI 10.1007/s10681-016-1682-6.; Gulnaz S., Zulkiffal M., Sajjad M., Ahmed J., Musa M., Abdullah M., Ahsan A., Refman A. Identifying Pakistani wheat landraces as genetic resources for yield potential, heat tolerance and rust resistance. Int. J. Agric. Biol. 2019;21(3):520-526. DOI 10.17957/IJAB/15.0924.; Guo J., Tian G., Zhou Y., Wang M., Ling N., Shen Q., Guo S. Evaluation of the grain yield and nitrogen nutrient status of wheat (Triticum aestivum L.) using thermal imaging. Field Crops Res. 2016;196:463-472. DOI 10.1016/j.fcr.2016.08.008.; Jackson R.D., Idso S.B., Reginato R.J., Pinter P.J. Canopy temperature as a crop water-stress indicator. Water Resour. Res. 1981;17(4):1133-1138. DOI 10.1029/WR017i004p01133.; Jackson R.D., Reginato R.J., Idso S.B. Wheat canopy temperature – practical tool for evaluating water requirements. Water Resour. 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Estimation of genetic variability and heritability in bread wheat under abiotic stress. Int. J. Pure Appl. Biosci. 2017;5(1):156-163. DOI 10.18782/2320-7051.2475.; Liang X., Liu Y., Chen J., Adams C. Late-season photosynthetic rate and senescence were associated with grain yield in winter wheat of diverse origins. J. Agron. Crop Sci. 2018;204(1):1-12. DOI 10.1111/jac.12231.; Lopes M.S., Reynolds M.P., McIntyre C.L., Mathews K.L., Kamali M.R.J., Mossad M., Feltaous Y., Tahir I.S.A, Chatrath R., Ogbonnaya F., Baum M. QTL for yield and associated traits in the Seri/Babax population grown across several environments in Mexico, in the West Asia, North Africa, and South Asia regions. Theor. Appl. Genet. 2013;126(4):971-984. DOI 10.1007/s00122-012-2030-4.; Lu Y., Yan Z., Li L., Gao C., Shao L. Selecting traits to improve the yield and water use efficiency of winter wheat under limited water supply. Agric. Water Manag. 2020;242:106410. DOI 10.1016/j.agwat.2020.106410.; Mason R.E., Hays D.B., Mondal S., Ibrahim A.M.H., Basnet B.R. QTL for yield, yield components and canopy temperature depression in wheat under late sown field conditions. Euphytica. 2013;194:243-259. DOI 10.1007/ s10681-013-0951-x.; Mason R.E., Mondal S., Beecher F., Hays D. Genetic loci linking improved heat tolerance in wheat (Triticum aestivum L.) to lower leaf and spike temperatures under controlled conditions. Euphytica. 2011;180:181-194. DOI 10.1007/s10681-011-0349-6.; Mohammed S., Huggins T., Mason E., Beecher F., Chick C., Sengodon P., Paudel A., Ibrahim A., Tilley M., Hays D. Mapping the genetic loci regulating leaf epicuticular wax, canopy temperature and drought susceptibility index in Triticum aestivum L. Crop Sci. 2021;61:2294-2305. DOI 10.1002/csc2.20458.; Mondal S., Mason R.E., Huggins T., Hays D.B. QTL on wheat (Triticum aestivum L.) chromosomes 1B, 3D and 5A are associated with constitutive production of leaf cuticular wax and may contribute to lower leaf temperatures under heat stress. Euphytica. 2015;201: 123-130. DOI 10.1007/s10681-014-1193-2.; Nagai T., Makino A. Differences between rice and wheat in temperature responses of photosynthesis and plant growth. Plant Cell Physiol. 2009;50(4):744-755. DOI 10.1093/pcp/pcp029.; Olivares-Villegas J.J., Reynolds M.P., McDonald G.K. Drought-adaptive attributes in the Seri/Babax hexaploid wheat population. Funct. Plant Biol. 2007;34(3):189-203. DOI 10.1071/FP06148.; Ortiz R., Sayre K.D., Govaerts B., Gupta R., Subbarao G.V., Ban T., Hodson D., Dixon J.M., Ortiz-Monasterio J.I., Reynolds M. Climate change: сan wheat beat the heat? Agric. Ecosyst. Environ. 2008;126(1-2):46-58. DOI 10.1016/j.agee.2008.01.019.; Paliwal R., Roder M.S., Kumar U., Srivastava J.P., Joshi A.K. QTL mapping of terminal heat tolerance in hexaploid wheat (T. aestivum L.). Theor. Appl. Genet. 2012;125(3):561-575. DOI 10.1007/s00122-012-1853-3.; Pinto R.S., Reynolds M.P., Mathews K.L., McIntyre C.L., Olivares-Villegas J.J., Chapman S.C. Heat and drought adaptive QTL in a wheat population designed to minimize confounding agronomic effects. Theor. Appl. Genet. 2010;121(6):1001-1021. DOI 10.1007/s00122-010-1351-4.; Pinto R.S., Reynolds M.P. Common genetic basis for canopy temperature depression under heat and drought stress associated with optimized root distribution in bread wheat. Theor. Appl. Genet. 2015;128:575-585. DOI 10.1007/s00122-015-2453-9.; Rahman M., Barma N., Biswas B., Khan A., Rahman J. Study on morpho-physiological traits in spring wheat (Triticum aestivum L.) under rainfed condition. Bangladesh J. Agric. Res. 2016;41(2):235-250. DOI 10.3329/bjar.v41i2.28227.; Rattey A., Shorter R., Chapman S. Evaluation of CIMMYT conventional and synthetic spring wheat germplasm in rainfed sub-tropical environments. II. Correlated response for grain yield components and physiological traits due to selection for grain yield. Field Crops Res. 2011;124(2):195-204. DOI 10.1016/j.fcr.2011.02.006.; Rebetzke G.J., Rattey A.R., Farquhar G.D., Richards R.A., Condon A.G. Genomic regions for canopy temperature and their genetic association with stomatal conductance and grain yield in wheat. Funct. Plant Biol. 2013;40(1):14-33. DOI 10.1071/FP12184.; Reynolds M., Manes Y., Izanloo A., Langridge P. Phenotyping approaches for physiological breeding and gene discovery in wheat. Ann. Appl. Biol. 2009;155(3):309-320. DOI 10.1111/j.1744-7348.2009.00351.x.; Reynolds M.P., Ortiz-Monasterio J.I., McNab A. Application of physiology in wheat breeding. Mexico: CIMMYT, 2001.; Reynolds M.P., Pierre C.S., Saad A.S.I., Vargas M., Condon A.G. Evaluating potential genetic gains in wheat associated with stressadaptive trait expression in elite genetic resources under drought and heat stress. Crop Sci. 2007;47(S3):S-172-S-189. DOI 10.2135/cropsci2007.10.0022IPBS.; Royo C., Villegas D., Del Moral L.F.G., Elhani S., Aparicio N., Rharrabti Y., Araus J.L. Comparative performance of carbon isotope discrimination and canopy temperature depression as predictors of genotypes differences in durum wheat yield in Spain. Aust. J. Agric. Res. 2002;53(3):561-569. DOI 10.1071/AR01016.; Sharma D., Jaiswal J.P., Singh N.K., Chauhan A., Gahtyari N.C. Developing a selection criterion for terminal heat tolerance in bread wheat based on various mopho-physiological traits. Int. J. Curr. Microbiol. Appl. Sci. 2018;7(7):2716-2726. DOI 10.20546/ijcmas.2018.707.318.; Sharma P., Sareen S., Saini M.S. Assessing genetic variation for heat stress tolerance in Indian bread wheat genotypes using morpho physiological traits and molecular markers. 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Canopy temperature depression at grain filling correlates to winter wheat yield in the U.S. Southern High Plains. Field Crops Res. 2018;217:11-19. DOI 10.1016/j.fcr.2017.12.005.; Udovenko G.V. Character of adaptation reaction and causes of different resistance of plants to extremal conditions. Trudy po Prikladnoy Botanike, Genetike i Selektsii = Proceedings on Applied Botany, Genetics, and Breeding. 1973;49(3):258-268. (in Russian); Wang Y., Zia-Khan S., Owusu-Adu S., Miedaner T., Müller J. Early detection of Zymoseptoria tritici in winter wheat by infrared thermography. Agriculture. 2019;9(7):139. DOI 10.3390/agriculture 9070139.; Wardlaw I.F., Dawson I.A., Munibi P., Fewster R. The tolerance of wheat to high temperatures during reproductive growth. I. Survey procedures and general response patterns. Aust. J. Agric. Res. 1989;40(1):1-13. DOI 10.1071/AR9890001.; White J.W., Andrade-Sanchez P., Gore M.A., Bronson K.F., Coffelt T.A., Conley M.M. Field-based phenomics for plant genetics research. Field Crop Res. 2012;133:101-112. DOI 10.1016/j.fcr.2012.04.003.; Yang D.Q., Dong W.H., Luo Y.L., Song W.T., Cai T., Li Y., Yin Y.P., Wang Z.L. Effects of nitrogen application and supplemental irrigation on canopy temperature and photosynthetic characteristics in winter wheat. J. Agric. Sci. Technol. 2018;156(1):13-23. DOI 10.1017/S0021859617000946.; Yousfi S., Gracia-Romero A., Kellas N., Kaddour M., Chadouli A., Karrou M., Araus J.L., Serret M.D. Combined use of low-cost remote sensing techniques and δ13C to assess bread wheat grain yield under different water and nitrogen conditions. Agronomy. 2019;9(6):285. DOI 10.3390/agronomy9060285.; Zhang X., Zhang X., Chen S., Sun H., Shao L., Liu X. Optimized timing of using canopy temperature to select high-yielding cultivars of winter wheat under different water regimes. Exp. Agric. 2018;54(2): 257-272. DOI 10.1017/S0014479716000235.; Zhang Y., Zhang Y., Wang Z., Wang Z. Characteristics of canopy structure and contributions of non-leaf organs to yield in winter wheat under different irrigated conditions. Field Crops Res. 2011;123(3): 187-195. DOI 10.1016/j.fcr.2011.04.014.; https://vavilov.elpub.ru/jour/article/view/3296

  8. 8
    Academic Journal

    Συνεισφορές: The article was prepared with the financial support of a grant from the Russian Foundation for Basic Research, project No. 20-010-00252 “Economic and legal mechanisms for regulating and developing territories of traditional nature use in the context of industrial development of the Arctic”., Статья подготовлена при финансовой поддержке гранта Российского фонда фундаментальных исследований, проект № 20-010-00252 «Экономико-правовые механизмы регулирования и развития территорий традиционного природопользования в контексте промышленного освоения Арктики».

    Πηγή: Vestnik Universiteta; № 1 (2022); 175-187 ; Вестник университета; № 1 (2022); 175-187 ; 2686-8415 ; 1816-4277

    Περιγραφή αρχείου: application/pdf

    Relation: https://vestnik.guu.ru/jour/article/view/3328/2273; Стратегия развития Арктической зоны Российской Федерации и обеспечения национальной безопасности на период до 2035 года. Утв. Указом Президента РФ от 26 октября 2020 г. № 645 // Президент России [Электронный ресурс]. – Режим доступа: http://www.kremlin.ru/acts/news/64274 (дата обращения: 11.11.2021).; Бурцева, Е. И., Потравный, И. М., Гассий, В. В. [и др.]. Экономика традиционного природопользования: взаимодействие коренных народов Севера и бизнеса в российской Арктике: монография; под общ. ред. Е. И. Бурцевой, И. М. Потравного. – М. Экономика, 2019. – 318 с.; Бурцева, Е. И., Потравный, И. М., Гассий, В. В., Слепцов, А. Н., Величенко, В. В. Вопросы оценки и компенсации убытков коренным малочисленным народам в условиях промышленного освоения Арктики // Арктика: экология и экономика. – 2019. – № 1 (33). – С. 34–49. https://doi.org/10.25283/2223-4594-2019-1-34-49; Васильцов, В. С., Яшалова, Н. Н., Новиков, А. В. Климатические и экологические риски развития прибрежных арктических территорий // Арктика: экология и экономика. – 2021. – Т. 11, № 3. – С. 341–352. https://doi.org/10.25283/2223-4594-2021-3-341-352; Денисов, В. И., Черноградский, В. Н., Потравный, И. М., Иванова, П. Ю. Направления сбалансированного социальноэкономического развития Арктической зоны России (на примере Якутии) // Проблемы прогнозирования. – 2020. – № 4 (181). – С. 66–73.; Комов, Н. В., Шарипов, С. А., Носов, С. И. и др. Устойчивое пространственное развитие. Проектирование и управление: монография. – М.: Губарев Е. В., 2021. – 752 с.; Кривошапкина, О. А. Механизм формирования и использования компенсационного фонда при промышленном освоении Арктики // Горизонты экономики. – 2021. – № 4 (63). – С. 68–76.; Новоселов, А. Л., Потравный, И. М., Новоселова, И. Ю., Чавез Феррейра, К. Й. Механизм реализации инвестиционных проектов экологической направленности на основе долевого финансирования // Экономика региона. – 2018. – T. 14, № 4. – С. 1488–1497. https://doi.org/10.17059/2018–4–33; Новоселова, И. Ю., Новоселов, А. Л., Потравный, И. М., Авраменко, А. А. Управление конфликтами в сфере природопользования: анализ и поиск компромиссов: монография. – М.: «Кнорус», 2020. – 104 с.; Потравный, И. М., Яшалова, Н. Н., Бороухин, Д. С., Толстоухова, М. П. Использование возобновляемых источников энергии в Арктике: роль государственно-частного партнерства // Экономические и социальные перемены: факты, тенденции, прогноз. – 2020. – Т. 13, № 1. – С. 144–159. https://doi.org/10.15838/esc.2020.1.67.8; Gassiy, V., Potravny, I. The assessment of the socio-economic damage of the indigenous peoples due to industrial development of Russian Arctic // Czech Polar Reports. – 2017. –V. 7, No. 2. – Pp. 257–270. https://doi.org/10.5817/CPR2017-2-25; Gassiy, V., Potravny, I. The compensation for losses to indigenous peoples due to the Arctic industrial development in benefit sharing paradigm // Resources. – 2019. – V. 8, No. 2. – Art. 71. https://doi.org/10.3390/resources8020071; Novoselov, A., Potravny, I., Novoselova, I., Gassiy, V. Sustainable development of the Arctic indigenous communities: The approach to projects optimization of mining company // Sustainability. – 2020. – V. 12, No. 19. – Art. 7963. https://doi.org/10.3390/su12197963; Potravnaya, E. V. Social problems of industrial development of the Arctic territories // Journal of Siberian Federal University. Humanities & Social Sciences. – 2021. – V. 14, No. 7. – Pp. 1008–1017. https://doi.org/10.17516/1997–1370–0780; Sleptsov, A., Petrova, A. Ethnological expertise in Yakutia: The local experience of assessing the impact of industrial activities on the Northern indigenous peoples // Resources. – 2019. – V. 8, No. 3. – Pp. 123. https://doi.org/10.3390/resources8030123; https://vestnik.guu.ru/jour/article/view/3328

  9. 9
    Conference

    Συνεισφορές: Кобенко, Юрий Викторович

    Περιγραφή αρχείου: application/pdf

    Relation: Язык. Общество. Образование : сборник научных трудов Международной научно-практической конференции "Лингвистические и культурологические аспекты современного инженерного образования", Томск, 10-12 ноября 2020 г.; http://earchive.tpu.ru/handle/11683/64100

    Διαθεσιμότητα: http://earchive.tpu.ru/handle/11683/64100

  10. 10
    Book

    Πηγή: Culture. Science. Education: Current Issues; 33-40 ; Культура. Наука. Образование: актуальные вопросы; 33-40

    Περιγραφή αρχείου: text/html

    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-907313-25-5; https://phsreda.com/e-articles/157/Action157-75388.pdf; Ахманова О.С. Словарь лингвистических терминов. – 5-е изд. – М.: Либроком, 2010. – 576 с.; Берков В.П. Двуязычная лексикография: учебник. – 2-е изд., перераб. и доп. – М.: Астрель; АСТ: Транзиткнига, 2004. – 236 с.; Верещагин Е.М. Лингвострановедческая теория слова / Е.М. Верещагин, В.Г. Костомаров. – М.: Русский язык, 1980. – 320 с.; Воркачев С.Г. Счастье как лингвокультурный концепт. – М.: Гнозис, 2004. – 236 с.; Воробьев В.В. Лингвокультурология (Теория и методы). – М.: Изд.-во Рос. ун-та дружбы народов, 1997. – 331 с.; Гальскова Н.Д. Теория обучения иностранным языкам: Лингводидактика и методика: учеб. пособие для студ. линг. ун-тов и фак. ин. яз. высш. пед. учеб. заведений / Н.Д. Гальскова, Н.И. Гез. – М.: Академия, 2004. – 336 с.; Карасик В.И. Транслируемость концептов // Проблемы вербализации концептов в семантике языка и текста. Ч. 2. – Волгоград.: Перемена, 2003. – С. 17–19.; Крюков А.Н. Фоновые знания и языковая коммуникация // Этнопсихолингвистика. – М.: Наука, 1988. – С. 19–34.; Маслова В.А. Лингвокультурология. – М.: Академия, 2001. – 208 с.; Степанов Ю.С. Константы: Словарь русской культуры. – 2-е изд. испр. и доп. – М.: Академический проект, 2001. – 989 с.; Тарнаева Л.П. Перевод и межкультурная коммуникация: лингводидактический аспект: монография. – CПб.: Изд-во Факультета филологии и искусств СПбГУ, 2008. – 190 с.; Телия В.Н. Русская фразеология: семантический, прагматический и лингвокультурологический аспекты. – M.: Языки русской культуры, 1996. – 248 с.; Халяпина Л.П. Методическая система формирования поликультурной языковой личности. – Кемерово: Кузбассвуз-издат, 2006. – 230 с.; Хоруженко К.М. Культурология. Энциклопедический словарь. – Pостов н/Д: Феникс, 1997. – 639 с.; Хроленко А.Т. Основы лингвокультурологии: учебное пособие для филологов и культурологов. – 2-е изд. – M.: Флинта; Наука, 2005. – 181 с.; Asturias, M-A. (1973). El Señor Presidente Editorial Universitaria Centroamericana. 430.; Rey, A., & Delessale, S. (1979). Problèmes et conflits lexicographiques. Langue Française. 43, 4–27.; https://phsreda.com/files/Books/5ed104fcc8f8a.jpeg?req=75388; https://phsreda.com/article/75388/discussion_platform

  11. 11
    Academic Journal

    Πηγή: Pedagogy, Psychology, Society; 203-204 ; Педагогика, психология, общество: от теории к практике; 203-204

    Περιγραφή αρχείου: text/html

    Relation: info:eu-repo/semantics/altIdentifier/isbn/978-5-907411-92-0; https://phsreda.com/e-articles/10330/Action10330-100103.pdf; Данилочкин А.Е. Возникновение и развитие студенческого спорта / А.Е. Данилочкин, И.Г. Дегтярев, И.А. Лобынцев // Наука-2020. – 2019. – №9.; Лебедева О.В. Электронная информационная образовательная среда и современный студент / О.В. Лебедева, Ф.В. Повшедная // Вестник Мининского университета. – 2021. – Т. 9, №4 (37).; Пашин А.А. Мониторинг физического развития, физической и функциональной подготовленности учащейся молодежи: учеб. пособие / А.А. Пашин, Н.В. Анисимова, О.Н. Опарина. – Пенза: ПГУ, 2015.; Устав Общероссийской молодежной организации «Ассоциация студенческих спортивных клубов России» [Текст]: утв. V внеочередным Съездом АССК России, Протокол от 20 сентября 2019 года (новая редакция). – М., 2019.; Федеральный закон от 04.12.2007 г. N 329-ФЗ (ред. от 02.07.2021) «О физической культуре и спорте в Российской Федерации» // Собрание законодательства РФ. – 2007.; Шарапова А.В. Становление студенческого спорта в России / А.В. Шарапова, Ю.В. Ворожко // Педагогико-психологические и медико-биологические проблемы физической культуры и спорта. – 2020. – №4.; https://phsreda.com/files/Books/61e15247ed6f0.jpeg?req=100103; https://phsreda.com/article/100103/discussion_platform

  12. 12
  13. 13
    Conference

    Θέμα γεωγραφικό: RU, RSVPU, РФ, РГППУ

    Περιγραφή αρχείου: application/pdf

    Relation: Транспрофессионализм как предиктор социально-профессиональной мобильности молодежи : материалы Всероссийской (с международным участием) научно-практической конференции. — Екатеринбург, 2019

    Διαθεσιμότητα: https://elar.uspu.ru/handle/ru-uspu/28571

  14. 14
    Academic Journal

    Συγγραφείς: Klyuvak, Oksana, Skrynkovskyy, Ruslan

    Πηγή: Technology audit and production reserves; Том 3, № 4(35) (2017): Economics of enterprises; 40-44
    Technology audit and production reserves; Том 3, № 4(35) (2017): Економіка підприємств; 40-44
    Technology audit and production reserves; Том 3, № 4(35) (2017): Экономика предприятий; 40-44

    Περιγραφή αρχείου: application/pdf

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  16. 16
  17. 17
  18. 18
    Academic Journal

    Πηγή: Meditsinskiy sovet = Medical Council; № 21 (2019); 58-64 ; Медицинский Совет; № 21 (2019); 58-64 ; 2658-5790 ; 2079-701X ; 10.21518/2079-701X-2019-21

    Περιγραφή αρχείου: application/pdf

    Relation: https://www.med-sovet.pro/jour/article/view/5475/4994; Revishvili A.Sh., Nardaya S.G., Rzayev F.G., Mustapaeva Z.V., Kotanova E.S. Electrophysiological and clinical predictors of effectiveness of radiofrequency ablation in the pulmonary veins and left atrium in patients with persistent form of atrial fibrillation. Annaly aritmologii = Annals of arrhythmology. 2014;11(1):46-53. (In Russ.) Available at: https://cyberleninka.ru/article/n/elektrofiziologicheskie-i-klinicheskie-prediktory-effektivnosti-radiochastotnoy-ablatsii-legochnyhven-i-levogo-predserdiya-u.; Colilla S., Crow A., PetkunW., Singer D.E., Simon T., Liu X. Estimates of current and future incidence and prevalence of atrial fibrillation in the U.S. adult population. Am J Cardiol. 2013;112(8):1142–1147. doi:10.1016/j.amjcard.2013.05.063; Shukla A., Curtis A.B. Avoiding permanent atrial fibrillation: treatment approaches to prevent disease progression. Vasc Health Risk Manag. 2014;10:1-12. doi:10.2147/VHRM.S49334; Camm A.J., Lip G.Y., De Caterina R. et al. 2012 focused update of the ESC Guidelines for management of atrial fibrillation: An update of the ESC Guidelines for the management of atrial fibrillation. Eur Heart J. 2013;34(36):2850-2851. doi:10.1093/eurheartj/eht291.; Morillo C.A., Verma A., Conolly S.J. et al. Radiofrequency ablation vs antirrhytmic drugs as first-line treatment of paroxismal atrial fibrillation (RAAFT-2). A Randomized trial. JAMA. 2014;311(7):692-700. doi:10.1001/jama.2014.467.; Krijthe B.P., Kunst A., Benjamin E.J., Lip G.Y., Franco O.H., Hofman A., Witteman J.C., Stricker B.H., Heeringa J. Projections on the number of individuals with atrial fibrillation in the European Union, from 2000 to 2060. Eur Heart J. 2013;34(35):2746–2751. doi:10.1093/eurheartj/eht280.; Zoni-Berisso M., Lercari F., Carazza T., Domenicucci S. Epidemiology of atrial fibrillation: European perspective. Clin Epidemiol. 2014;6:213–220. doi:10.2147/CLEP.S47385.; Bjorck S., Palaszewski B., Friberg L., Bergfeldt L. Atrial fibrillation, stroke risk, and warfarin therapy revisited: a population-based study. Stroke. 2013;44(11):3103–3108. doi:10.1161/STROKEAHA.113.002329.; Haim M., Hoshen M., Reges O., Rabi Y., Balicer R., Leibowitz M. Prospective national study of the prevalence, incidence, management and outcome of a large contemporary cohort of patients with incident non-valvular atrial fibrillation. J Am Heart Assoc. 2015;21;4(1):e001486. doi:10.1161/JAHA.114.001486.; McManus D.D., Rienstra M., Benjamin E.J. An update on the prognosis of patients with atrial fibrillation. Circulation. 2012;126(10):e143–146. doi:10.1161/CIRCULATIONAHA.112.129759.; Ball J., Carrington M.J., McMurray J.J., Stewart S. Atrial fibrillation: profile and burden of an evolving epidemic in the 21st century. Int J Cardiol. 2013;167(5):1807–1824. doi:10.1016/j.ijcard.2012.12.093.; Kannel W.B., Wolf P.A., Benjamin E.J., Levy D. Prevalence, incidence, prognosis, and predisposing conditions for atrial fibrillation: population- based estimates. Am J Cardiol. 1998;82(8А):2N–9N. doi:10.1016/s0002-9149(98)00583-9.; Nguyen T.N., Hilmer S.N., Cumming R.G. Review of epidemiology and management of atrial fibrillation in developing countries. Int J Cardiol. 2013;167(6):2412–2420. doi:10.1016/j.ijcard.2013.01.184.; Oldgren J., Healey J.S., Ezekowitz M., Commerford P., Avezum A., Pais P., et al.; RE-LY Atrial Fibrillation Registry Investigators. Variations in cause and management of atrial fibrillation in a prospective registry of 15,400emergency department patients in 46 countries: the RE-LY Atrial FibrillationRegistry. Circulation. 2014;129(15):1568–1576. doi:10.1161/CIRCULATIONAHA.113.005451.; Chiang C.E., Naditch-Brule L., Murin J., Goethals M., Inoue H., O’Neill J., et al. Distribution and risk profile of paroxysmal, persistent, and permanent atrial fibrillation in routine clinical practice: insight from the reallife global survey evaluating patients with atrial fibrillation international registry. Circ Arrhythm Electrophysiol. 2012;5(4):632–639. doi:10.1161/CIRCEP.112.970749.; Wang T.J., Larson M.G., Levy D., Vasan R.S., Leip E.P., Wolf P.A., et al. Temporal relations of atrial fibrillation and congestive heart failure and their joint influence on mortality: the Framingham Heart Study. Circulation. 2003;107(23):2920–25. doi:10.1161/01.CIR.0000072767.89944.6E.; Kishore A., Vail A., Majid A., Dawson J., Lees K.R., Tyrrell P.J., Smith C.J. Detection of atrial fibrillation after ischemic stroke or transient ischemic attack: a systematic review and meta-analysis. Stroke. 2014;45(2):520–526. doi:10.1161/STROKEAHA.113.003433.; Sanna T., Diener H.C., Passman R.S., Di Lazzaro V., Bernstein R.A., Morillo C.A., et al.; CRYSTAL AF Investigators. Cryptogenic stroke and underlying atrial fibrillation. N Engl J Med. 2014;370(26):2478–86. doi:10.1056/NEJMoa1313600.; Schnabel R.B., Yin X., Gona P., Larson M.G., Beiser A.S., McManus D.D., et al D. 50 year trends in atrial fibrillation prevalence, incidence, risk factors, and mortality in the Framingham Heart Study: a cohort study. Lancet. 2015;386(9989):154–162. doi:10.1016/S0140-6736(14)61774-8.; Steinberg J.S., Shah Y., Bhatt A. et al. Focal impulse and rotor modulation: actual procedural observations and extended clinical follow-up. Heart Rhythm. 2017;14(2):192-197. doi:10.1016/j.hrthm.2016.11.008.; Motoki H., Negishi K., Kusunose K. et al. Global Left Atrial Strain in the Prediction of Sinus Rhytm Maintaince after Catheter Ablation for Atrial Fibrillation. J Am Soc Echocardiogr. 2014;27(11):1184-1192. doi:10.1016/j.echo.2014.08.017.; Hu X., Wang Q., Sun J. et al. Association between CHADS2 score and long-term atrial fibrillation recurrence rate after catheter ablation. Zhongua Xin Xue Guan Bing Za Zhi. 2014;42(5):379-383. doi:10.3760/cma.j.issn.0253-3758.2014.05.006.; Кim M-N., Lee J.J., Kim S-A. et al. The difference of predictors for recurrence after catheter ablation of non-paroxismal atrial fibrillation according to follow-up period. Int. Heart J. 2014;55(4):312-318. doi:10.1536/ihj.13-370.; Takigava M., Takahashi A., Kuwahara T. et al. Long-term follow-up after catheter ablation of paroxysmal atrial fibrillation: the incidence of reccurence and progression of atrial fibrillation. Circ Arrythm Electrophysiol. 2014;7(2):267-273. doi:10.1161/CIRCEP.113.000471.; Ардашев А.В., Желяков Е.Г., Конев А.В. и соавт. Отдаленные результаты радиочастотной катетерной абляции у больных с фибрилляцией предсердий и прогноз рецидивов. Российские медицинские вести. 2013;18(4):18-25. Режим доступа: https://elibrary.ru/item.asp?id=20804247. Ardashev A.V., Zhelyakov Ye.G., Konev A.V. et al. Long-term results of radio-frequency catheter ablation at atrial fibrillation and prognosis of relapses. Russian m-vesti. 2013;18(4):18-25. (In Russ.) Available at: https://elibrary.ru/item.asp?id=20804247.; Camm J., Lip G.Y.H., De Caterina R. et al. 2012 focused update of the ESC Guideline for the management of atrial fibrillation. Eur. Heart J. 2012;33(21):2719-2747. doi:10.1093/eurheartj/ehs253.; Chugh S.S., Havmoeller R., Narayanan K. et al. Worldwide Epidemiology of Atrial Fibrillation: A Global Burden of Disease 2010 Study. Circulation. 2014;129(8):837–847. doi:10.1161/CIRCULATIONAHA.113.005119.; Davis R.C., Hobbs F.D., Kenkre J.E. et al. Prevalence of atrial fibrillation in the general population and in high-risk groups: the ECHOES study. Europace. 2012;14(11):1553–1559. doi:10.1093/europace/eus087.; Miyasaka Y., Barnes M.E., Gersh B.J. et al. Secular trends in incidence of atrial fibrillation in Olmsted County, Minnesota, 1980 to 2000, and implications on the projections for future prevalence. Circulation. 2006;114(2):119–125. doi:10.1161/CIRCULATIONAHA.105.595140.; Olsson L.G., Swedberg K., Lappas G. et al. Trends in mortality after first hospitalization with atrial fibrillation diagnosis in Sweden 1987 to 2006. Int J Cardiol. 2013;170(1):75–80. doi:10.1016/j.ijcard.2013.10.028.; Angaran P., Dorian P. Antiarrhythmic drugs in atrial fibrillation: do they have a future? Can J Cardiol. 2013;29(10):1158–1164. doi:10.1016/j.cjca.2013.04.033.; Corley S.D., Epstein A.E., DiMarco J.P. et al. AFFIRM Investigators. Relationships between sinus rhythm, treatment, and survival in the Atrial Fibrillation Follow-Up Investigation of Rhythm Management (AFFIRM) Study. Circulation. 2004;109(12):1509–1513. doi:10.1161/01.CIR.0000121736.16643.11.; Voigt N., Heijman J., Wang Q. et al. 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