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Journal Abstract Search


197 related items for PubMed ID: 36542468

  • 41. The effect of 0.01% atropine on ocular axial elongation for myopia children: A protocol for systematic review and meta-analysis.
    Gao Y, Yu Y.
    Medicine (Baltimore); 2022 Jun 03; 101(22):e29409. PubMed ID: 35665735
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  • 42. Myopia control during orthokeratology lens wear in children using a novel study design.
    Swarbrick HA, Alharbi A, Watt K, Lum E, Kang P.
    Ophthalmology; 2015 Mar 03; 122(3):620-30. PubMed ID: 25439432
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  • 47. Refractive, biometric and corneal topographic parameter changes during 12 months of orthokeratology.
    Queirós A, Lopes-Ferreira D, Yeoh B, Issacs S, Amorim-De-Sousa A, Villa-Collar C, González-Méijome J.
    Clin Exp Optom; 2020 Jul 03; 103(4):454-462. PubMed ID: 31694069
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  • 49. Efficacy of the Euclid orthokeratology lens in slowing axial elongation.
    Bullimore MA, Liu M.
    Cont Lens Anterior Eye; 2023 Oct 03; 46(5):101875. PubMed ID: 37365049
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  • 50. Development and validation of a prediction model for axial length elongation in myopic children treated with overnight orthokeratology.
    Xu S, Li Z, Hu Y, Zhao W, Jiang J, Feng Z, Chen W, Li C, Chen L, Fang B, Wang H, Zhai Z, Li B, Zeng J, Yang X.
    Acta Ophthalmol; 2021 Aug 03; 99(5):e686-e693. PubMed ID: 33191611
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  • 55. Contact Lens Methods for Clinical Myopia Control.
    Turnbull PR, Munro OJ, Phillips JR.
    Optom Vis Sci; 2016 Sep 03; 93(9):1120-6. PubMed ID: 27564516
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  • 56. Risk factors for progressive myopia in the atropine therapy for myopia study.
    Loh KL, Lu Q, Tan D, Chia A.
    Am J Ophthalmol; 2015 May 03; 159(5):945-9. PubMed ID: 25640408
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