Understanding Statistical Errors and Reproducibility

Extracto de la hoja de repaso

Course Outline

  1. Statistical Errors and Hypothesis Testing
  2. Type I and Type II Errors
  3. P Values and False Positives
  4. Reproducibility Crisis in Psychology
  5. Publication Bias and Transparency
  6. Multiple Comparisons and HARKing
  7. Researcher Degrees of Freedom
  8. False Positive Psychology and Study Design
  9. Reporting Guidelines for Authors and Reviewers

1. Statistical Errors and Hypothesis Testing

Key Concepts & Definitions

  • Null hypothesis stance : A null hypothesis stance states a default claim that there is no effect to compare against.
  • Rejection of the null : Rejecting the null means choosing to abandon the no-effect stance based on the test outcome.
  • True positive : A true positive is a decision that matches the presence of the effect when the study finds an effect.
  • True negative : A true negative is a decision that matches the absence of the effect when the study does not find an effect.

Essential Points

  • Frequentist statistical tests evaluate the NULL stance, which claims there is no effect to find.
  • Rejecting the null corresponds to concluding there is an effect rather than accepting the no-effect stance.
  • Correct outcomes occur as true positives when an effect exists and as true negatives when no effect exists.
  • The “cat” logic maps study findings to the four outcomes: true/false positives and true/false negatives.

Memory Hook

Think four boxes: Effect or No effect × Found or Not found.

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Vista previa del cuestionario

1. In frequentist hypothesis testing, what does the null hypothesis stance represent?

2. What does a null hypothesis stance represent in statistical hypothesis testing?

3. Which outcome is a true negative in the study outcome framework?

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Vista previa de las tarjetas de memoria

Null hypothesis — role?

Default claim of no effect.

Null hypothesis (statistical)

States no effect or difference.

Type I error — definition?

False positive; effect found when none exists.

Rejection of null

Concludes an effect exists.

True positive

Correctly detects effect.

Type I error

False positive, effect claimed but none.

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Preguntas frecuentes

¿Qué cubre la hoja de repaso sobre Understanding Statistical Errors and Reproducibility?

La hoja de repaso cubre los conceptos esenciales de Understanding Statistical Errors and Reproducibility. Está organizada por temas para facilitar el aprendizaje y la memorización, con definiciones clave, explicaciones y resúmenes.

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¿Cuántas preguntas tiene el cuestionario de Understanding Statistical Errors and Reproducibility?

El cuestionario contiene 11 preguntas de opción múltiple con correcciones y explicaciones detalladas para cada respuesta. Ideal para poner a prueba tus conocimientos e identificar lagunas.

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¿Cómo estudiar Understanding Statistical Errors and Reproducibility con tarjetas de memoria?

Revizly ofrece 9 tarjetas de memoria interactivas sobre Understanding Statistical Errors and Reproducibility. Cada tarjeta presenta una pregunta en el anverso y la respuesta en el reverso, permitiendo una revisión activa y efectiva basada en la repetición espaciada.

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