Showing 3,761 - 3,780 results of 21,342 for search '(( significantly improving decrease ) OR ( significant decrease decrease ))', query time: 0.70s Refine Results
  1. 3761
  2. 3762

    Baseline characteristics. by Seung Min Lee (1644409)

    Published 2025
    “…</p><p>Results</p><p>The BCVA (logMAR) and vM-scores (<i>P</i> < 0.001, <i>P</i> = 0.014, respectively) improved after surgery. The distance of the FD decreased (<i>P</i> < 0.001) and FVs increased (<i>P</i> < 0.001, both). …”
  3. 3763

    Data file used in this study. by Seung Min Lee (1644409)

    Published 2025
    “…</p><p>Results</p><p>The BCVA (logMAR) and vM-scores (<i>P</i> < 0.001, <i>P</i> = 0.014, respectively) improved after surgery. The distance of the FD decreased (<i>P</i> < 0.001) and FVs increased (<i>P</i> < 0.001, both). …”
  4. 3764

    Loading mode. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  5. 3765

    Changes in foveal location after surgery. by Seung Min Lee (1644409)

    Published 2025
    “…</p><p>Results</p><p>The BCVA (logMAR) and vM-scores (<i>P</i> < 0.001, <i>P</i> = 0.014, respectively) improved after surgery. The distance of the FD decreased (<i>P</i> < 0.001) and FVs increased (<i>P</i> < 0.001, both). …”
  6. 3766

    Model and meshes. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  7. 3767

    Shearing forces in the tension zone. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  8. 3768

    Pile foundation section. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  9. 3769

    Shearing force in the pressure zone. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  10. 3770

    Proteome and Metabolome Profiling of Anticoagulant Disorders Induced by Familial Protein S Deficiency by Caiping Zhang (6745976)

    Published 2024
    “…Furthermore, 9 differential proteins correlated significantly with protein S, comprising A2M, AGT, APOE, FGG, GPLD1, IGHV1–69, CFHR5, CPN2, and CA1. …”
  11. 3771

    Strain-stress maps of vertical pile foundation. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  12. 3772

    Displacement-inclination variation graph. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  13. 3773

    Soil modeling and mechanical parameters. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  14. 3774

    Location of monitored piles. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  15. 3775

    Axial force in the pressure zone. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  16. 3776

    Pile-soil interaction. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  17. 3777

    Bending moment in the tension zone. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  18. 3778

    Proteome and Metabolome Profiling of Anticoagulant Disorders Induced by Familial Protein S Deficiency by Caiping Zhang (6745976)

    Published 2024
    “…Furthermore, 9 differential proteins correlated significantly with protein S, comprising A2M, AGT, APOE, FGG, GPLD1, IGHV1–69, CFHR5, CPN2, and CA1. …”
  19. 3779

    Sketch of forces on vertical and inclined piles. by Maogang Tian (21485116)

    Published 2025
    “…The outer ring of inclined piles in the VIPF significantly enhances structural stiffness through spatial synergy, achieving uniform load distribution and effective redistribution of pile-body internal forces. …”
  20. 3780

    Proteome and Metabolome Profiling of Anticoagulant Disorders Induced by Familial Protein S Deficiency by Caiping Zhang (6745976)

    Published 2024
    “…Furthermore, 9 differential proteins correlated significantly with protein S, comprising A2M, AGT, APOE, FGG, GPLD1, IGHV1–69, CFHR5, CPN2, and CA1. …”