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Quantitative Research Methods - A TO-THE-POINT Summary of ALL Lectures & literature (including useful YT links)! 2025/2026

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I attended all lectures and read the book to prepare this master summary for the quantitative research method course (pre-master business administration). Counting just 13 papers it's the most concise summary, allowing you to focus on studying the essentials. Many of my peers studied the course, only studying this summary - everyone passed! What do you get? An overarching overview of all topics + key takeaways, a comprehensive summary of each topic (Variables, validity, reliability, correlation, regressions, hypothesis testing, mediation, moderation) with easy-to-follow visuals, and the key insights from the slides (24/25). And all this with accompanying YouTube links to extra explanations to maximise your learning curve!

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¿Qué capítulos están resumidos?
1, 2, 3, 4, 5, 13
Subido en
24 de mayo de 2025
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13
Escrito en
2024/2025
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Master Summary QUANT
Week Theme Bottom line

1 Research design & ●​ Clear, theory‑driven RQ is the compass.
questions ●​ Quant methods = toolbox for causal claims & bias‑proofing.
●​ Workflow: RQ → theory → hypotheses → data → test →
conclusion.

2 Variables, validity ●​ Identify variable type → plot & summarise.
& reliability ●​ Validity (internal, external, construct) = accuracy; reliability
= precision (Cronbach’s α).
●​ SD & 68‑95‑99 rule quantify spread; watch out for skew.

3 Describing ●​ Correlation shows pattern (−1 ↔ +1) but never causation.
relations ●​ OLS line summarises conditional means & uses all data.
●​ Add controls in regression to isolate the pure X‑Y link.


4 Hypothesis testing ●​ Sampling variation ⇒ SE; t = β̂ / SE, p = tail area.
& simple ●​ Exogeneity needed for unbiased β̂; residual ≠ error.
regression ●​ Model fit: F‑test gate, R²/Adj R² effect size, assumption
checks.

5 Multiple ●​ Extra predictors remove confounding; β now means “holding
regression, others constant.”
moderation & ●​ Moderation via interactions (when/for whom); mediation
mediation shows why.
●​ Binary DV → linear probability model or logit; χ² for two
categorical variables.




Quick notation on symbols:
Meaning Type of symbol Example

Data English/Latin letters 𝑥

Calculations Modifications of English/Latin letters 𝑥

The truth Greek letters σ, β, ε, µ

Estimate Modifications of Greek letters β̂

, Week 1: Research design & questions
Why do we need a quantitative research method?
●​ A toolbox to study the (social) world around us by using the scientific method.
●​ It helps minimize cognitive assumptions that may distort our interpretation.
●​ Depending on the state of prior theory and research on the topic, you have to use quantitative
methods to make a useful contribution to our understanding of the world
●​ The only way to establish causal relationships

There are 2 types of quantitative research: descriptive (what?) & inferential (why?)




A good research question:
●​ Can be answered and needs answering (the “So what”)
●​ Improves our understanding of how the world works
●​ Informs theory

A theory: explains relationships among concepts or events within a set of boundary conditions.

“Science is facts; just as houses are made of stones, so is science made of facts; but a pile of stones is
not a house and a collection of facts is not necessarily science” – H. Poincaré

TL;DR:
●​ Good theory simplifies and explains complex real-world phenomena.
●​ Good research questions can and need to be answered by means of statistics.
●​ RQ → theory → hypotheses → data → test → conclusion
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