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相关概念视频

Correlation and Causation01:27

Correlation and Causation

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Statistical tests can calculate whether there is a relationship, or correlation, between independent and dependent variables. An indirect relationship of the variables signifies a correlation, while a direct relationship shows causation. If it is determined that no connection exists between the variables, then the correlation is a coincidence.
Correlation versus Causation
If the dependent variable increases or decreases when the independent variable increases, there is a positive or negative...
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Correlations02:20

Correlations

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Correlation means that there is a relationship between two or more variables (such as ice cream consumption and crime), but this relationship does not necessarily imply cause and effect. When two variables are correlated, it simply means that as one variable changes, so does the other. We can measure correlation by calculating a statistic known as a correlation coefficient. A correlation coefficient is a number from -1 to +1 that indicates the strength and direction of the relationship between...
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Cause and Effect01:53

Cause and Effect

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While variables are sometimes correlated because one does cause the other, it could also be that some other factor, a confounding variable, is actually causing the systematic movement in our variables of interest. For instance, as sales in ice cream increase, so does the overall rate of crime. Is it possible that indulging in your favorite flavor of ice cream could send you on a crime spree? Or, after committing crime do you think you might decide to treat yourself to a cone?
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Correlation01:09

Correlation

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In statistics, two variables are said to be correlated if the values of one variable are associated with the other variable. Depending on the relationship between two variables, correlation can be of three types– positive correlation, negative correlation, and zero correlation.
Two variables, for example, a and b, are said to be positively correlated if both variables move in the same direction. In other words, a positive correlation exists between two variables, a and b, if:
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Causality in Epidemiology01:21

Causality in Epidemiology

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Causality or causation is a fundamental concept in epidemiology, vital for understanding the relationships between various factors and health outcomes. Despite its importance, there's no single, universally accepted definition of causality within the discipline. Drawing from a systematic review, causality in epidemiology encompasses several definitions, including production, necessary and sufficient, sufficient-component, counterfactual, and probabilistic models. Each has its strengths and...
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Correlation and Regression00:53

Correlation and Regression

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In statistics, correlation describes the degree of association between two variables. In the subfield of linear regression, correlation is mathematically expressed by the correlation coefficient, which describes the strength and direction of the relationship between two variables. The coefficient is symbolically represented by 'r' and ranges from -1 to +1. A positive value indicates a positive correlation where the two variables move in the same direction. A negative value suggests a...
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Author Spotlight: Emerging Technologies and Advanced Tools for Decoding Metabolomics Data Analysis
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事实上,相关性并不表明因果关系!

Guilherme S Nunes, Wandréa S L A de Moraes, Vanderson de Souza Sampaio

    The Journal of orthopaedic and sports physical therapy
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    PubMed
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    此摘要是机器生成的。

    这种反应澄清了,虽然下肢动力学和临床结果是相关的,但这种关联并不能证明因果关系. 需要进一步的研究来确定物理治疗中的确切因果关系.

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    科学领域:

    • 骨科运动医学 运动医学
    • 生物机械分析 生物机械分析
    • 临床研究方法论 临床研究方法论

    背景情况:

    • 最近的一封信质疑了下肢动力学与临床结果之间的相关性解释.
    • 最初的研究旨在探索关联,而不是建立直接因果关系.
    • 了解动力学结果关系对于有效的物理治疗干预至关重要.

    研究的目的:

    • 为解决"致总编者的信"中提出的要点.
    • 在生物力学研究中重申相关性和因果关系之间的区别.
    • 强调需要谨慎地解释动力学数据与患者结果相关的需要.

    主要方法:

    • 审查原始研究的发现和方法.
    • 对信中提出的论点进行分析.
    • 关于相关性与因果关系的统计原则的解释.

    主要成果:

    • 作者坚持认为,他们最初的研究正确地确定了相关性.
    • 响应强调,相关性并不本质上暗示有因果关系.
    • 作者承认多因素临床结果的复杂性.

    结论:

    • 与临床结果相关的下肢动力学的解释需要仔细考虑因果关系.
    • 需要采用不同的方法进行进一步的研究,以阐明因果途径.
    • 作者主张在临床实践和科学话语中对微妙的理解.