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相关概念视频

P-value01:10

P-value

6.7K
P-value is one of the most crucial concepts in statistics.
P-value stands for the probability value.  P-value is the probability that, if the null hypothesis is true, the results from another randomly selected sample will be as extreme or more extreme as the results obtained from the given sample.
A large P-value calculated from the data indicates to  not reject the null hypothesis. But a higher P-value does not mean that the null hypothesis is true. The smaller the P-value, the more...
6.7K
Significance Testing: Overview01:04

Significance Testing: Overview

3.3K
Significance testing is a set of statistical methods used to test whether a claim about a parameter is valid. In analytical chemistry, significance testing is used primarily to determine whether the difference between two values comes from determinate or random errors. The effect of a particular change in the measurement protocol, analyst, or sample itself can cause a deviation from the expected result. In the case of a suspected deviation/outlier, we need to be able to confirm mathematically...
3.3K
Decision Making: P-value Method01:09

Decision Making: P-value Method

5.3K
The process of hypothesis testing based on the P-value method includes calculating the P- value using the sample data and interpreting it.
First, a specific claim about the population parameter is proposed. The claim is based on the research question and is stated in a simple form. Further, an opposing statement to the claim  is also stated. These statements can act as null and alternative hypotheses:  a null hypothesis would be a neutral statement while the alternative hypothesis can...
5.3K
Statistical Significance01:50

Statistical Significance

20.1K
Once data is collected from both the experimental and the control groups, a statistical analysis is conducted to find out if there are meaningful differences between the two groups. A statistical analysis determines how likely any difference found is due to chance (and thus not meaningful). In psychology, group differences are considered meaningful, or significant, if the odds that these differences occurred by chance alone are 5 percent or less. Stated another way, if we repeated this...
20.1K
Critical Region, Critical Values and Significance Level01:16

Critical Region, Critical Values and Significance Level

11.8K
The critical region, critical value, and significance level are interdependent concepts crucial in hypothesis testing.
In hypothesis testing, a sample statistic is converted to a test statistic using z, t, or chi-square distribution. A critical region is an area under the curve in  probability distributions demarcated by the critical value. When the test statistic falls in this region, it suggests that the null hypothesis must be rejected. As this region contains all those values of the...
11.8K
Bonferroni Test01:10

Bonferroni Test

2.7K
The Bonferroni test is a statistical test named after Carlo Emilio Bonferroni, an Italian mathematician best known for Bonferroni inequalities. This statistical test is a type of multiple comparison test to determine which means are different than the rest. Bonferroni test can minimize the Type 1 error by reducing the significance level alpha, which otherwise increases with sample pairs.
The means of different samples are first paired in all possible combinations.
The null hypothesis of the...
2.7K

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相关实验视频

Updated: Jun 12, 2025

A Protocol for Using Gene Set Enrichment Analysis to Identify the Appropriate Animal Model for Translational Research
09:35

A Protocol for Using Gene Set Enrichment Analysis to Identify the Appropriate Animal Model for Translational Research

Published on: August 16, 2017

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了解p价值和意义的理解.

Naomi Altman1, Martin Krzywinski2

  • 1Department of Statistics, The Pennsylvania State University, State College, PA, USA.

Laboratory animals
|September 24, 2024
PubMed
概括

P值和效果大小有助于评估实验的重要性. 避免选择偏见,遵循原则性的p值实践,避免可疑的数据分析方法,以确保对研究结果的有效解释.

科学领域:

  • 统计 统计 统计 统计
  • 生物统计学 生物统计学
  • 科学方法科学方法学

背景情况:

  • P值和效果大小对于评估实验结果至关重要.
  • 这些指标的解释可能会受到各种形式的选择偏差的影响.
  • 偏见的常见来源包括多重假设测试和后期数据选择.

研究的目的:

  • 提供一个明确的介绍,以适当使用p值.
  • 为非专业人士提供指导,帮助他们正确理解和应用p值.
  • 识别和警告在统计分析中的有问题的做法.

主要方法:

  • 对测试假设的统计原则的审查.
  • 选择偏差及其对p值解释的影响的解释.
  • 关于数据分析和结果选择的最佳实践指南.

主要成果:

  • 识别p值解释易受偏差影响的特定场景.
  • 证明多重测试和非正式的数据选择如何会使结果无效.
  • 概述了有效使用p值的原则方法.

结论:

关键词:
统计学 技术 技术

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  • 坚持有原则的统计实践对于有效解释实验结果至关重要.
  • 对于研究人员来说,意识和避免选择偏见至关重要.
  • 正确使用p值可以提高科学发现的可靠性和可信性.