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Showing 81 - 100 results of 185 for search '(( significantly increased decrease ) OR ( significantly ((linear decrease) OR (mean decrease)) ))~', query time: 0.51s Refine Results
  1. 81

    Characteristics of study population. by Gábor Szaló (22615130)

    Published 2025
    “…Among those 803 individuals who did not take antihypertensive medication, there was a significant association in linear regression between increase in PSS-10 and decrease in C2 (B: −0.2, 95% CI: −0.4- −0.02; p = 0.03) that was lost after adjustment for physical activity (B: −0.16, 95% CI: −0.35–0.03; p = 0.1). …”
  2. 82

    Cross-sectional dependence results. by Ozlem Kutlu Furtuna (20308206)

    Published 2024
    “…The results of the panel data analysis show a U-shaped relationship between FDI and carbon emissions which means carbon emissions decrease to a certain level with increasing FDI investment and after this level, increasing FDI increases the environmental degradation in terms of carbon emissions. …”
  3. 83

    Autocorrelation test results. by Ozlem Kutlu Furtuna (20308206)

    Published 2024
    “…The results of the panel data analysis show a U-shaped relationship between FDI and carbon emissions which means carbon emissions decrease to a certain level with increasing FDI investment and after this level, increasing FDI increases the environmental degradation in terms of carbon emissions. …”
  4. 84

    Pesaran’s CADF test results for Model I. by Ozlem Kutlu Furtuna (20308206)

    Published 2024
    “…The results of the panel data analysis show a U-shaped relationship between FDI and carbon emissions which means carbon emissions decrease to a certain level with increasing FDI investment and after this level, increasing FDI increases the environmental degradation in terms of carbon emissions. …”
  5. 85

    Descriptive statistics of related variables. by Ozlem Kutlu Furtuna (20308206)

    Published 2024
    “…The results of the panel data analysis show a U-shaped relationship between FDI and carbon emissions which means carbon emissions decrease to a certain level with increasing FDI investment and after this level, increasing FDI increases the environmental degradation in terms of carbon emissions. …”
  6. 86

    Baseline characteristics of participants. by Mei Zhou (269746)

    Published 2025
    “…</p><p>Results</p><p>After DRG implementation, the logarithmic mean of total hospitalization expenditures decreased significantly (3.914 ± 0.837 vs. 3.872 ± 1.004), while rates of unplanned readmissions, unplanned reoperations, postoperative complications, and patient complaints within 30 days increased significantly (3.784% vs 4.214%, 0.083% vs 0.166%, 0.207% vs 0.258%, 3.741% vs 5.133%). …”
  7. 87

    The framework diagram of this study. by Mei Zhou (269746)

    Published 2025
    “…</p><p>Results</p><p>After DRG implementation, the logarithmic mean of total hospitalization expenditures decreased significantly (3.914 ± 0.837 vs. 3.872 ± 1.004), while rates of unplanned readmissions, unplanned reoperations, postoperative complications, and patient complaints within 30 days increased significantly (3.784% vs 4.214%, 0.083% vs 0.166%, 0.207% vs 0.258%, 3.741% vs 5.133%). …”
  8. 88
  9. 89

    Predictors in ordinal regression model for GDS. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  10. 90

    Classification of hand grip strength. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  11. 91

    Rating scale for functional severity [28]. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  12. 92

    Regression model coefficients. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  13. 93

    ICOPE screening positive participant’s responses. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  14. 94

    WHO BMI classification for adults. by Shane Naidoo (20148021)

    Published 2025
    “…In an ordinal regression model BMI was a significant predictor (<i>B</i> = .10, <i>p</i> = .007) for increases in depression. …”
  15. 95
  16. 96

    Performance comparison of ML models. by Gourab Saha (8987405)

    Published 2025
    “…<div><p>As the world population is increasing day by day, so is the need for more advanced automated precision agriculture to meet the increasing demands for food while decreasing labor work and saving water for crops. …”
  17. 97

    Comparative data of different soil samples. by Gourab Saha (8987405)

    Published 2025
    “…<div><p>As the world population is increasing day by day, so is the need for more advanced automated precision agriculture to meet the increasing demands for food while decreasing labor work and saving water for crops. …”
  18. 98

    Confusion matrix of random forest model. by Gourab Saha (8987405)

    Published 2025
    “…<div><p>As the world population is increasing day by day, so is the need for more advanced automated precision agriculture to meet the increasing demands for food while decreasing labor work and saving water for crops. …”
  19. 99

    Sensor value scenario for fuzzy logic algorithm. by Gourab Saha (8987405)

    Published 2025
    “…<div><p>As the world population is increasing day by day, so is the need for more advanced automated precision agriculture to meet the increasing demands for food while decreasing labor work and saving water for crops. …”
  20. 100

    Evaluation metrics of selected ML models. by Gourab Saha (8987405)

    Published 2025
    “…<div><p>As the world population is increasing day by day, so is the need for more advanced automated precision agriculture to meet the increasing demands for food while decreasing labor work and saving water for crops. …”