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Data Analytics Flashcards

7 cards from real CAIC practice questions. Tap to flip, then mark Knew It or Still Learning โ€” missed cards come back until you master them.

Read the first 7 Data Analytics flashcards as text
  1. Which data analytics concept describes the idea that correlations in data do not establish that one variable causes changes in another?

    Answer: Causality vs. correlation

    The causality vs. correlation principle reminds analysts that a statistical relationship does not prove a directional causal mechanism.

  2. An AI project team wants to reduce the number of input features before model training. Which technique preserves the most variance while compressing dimensions?

    Answer: Principal Component Analysis (PCA)

    PCA projects data onto orthogonal components ranked by explained variance, compressing dimensions while retaining the most information.

  3. What is the primary purpose of a confusion matrix in evaluating a classification model?

    Answer: To break down correct and incorrect predictions by class

    A confusion matrix tabulates true positives, false positives, true negatives, and false negatives, revealing where and how a classifier makes errors.

  4. A client's analytics dashboard shows a sudden spike in daily active users. Before concluding this is real growth, what should an AI consultant check first?

    Answer: Data pipeline logs for tracking anomalies or bugs

    Unusual spikes in metrics often result from tracking code bugs, duplicate event firing, or bot traffic rather than genuine user growth.

  5. Which sampling strategy should be used when the target class makes up only 1% of the dataset in a binary classification problem?

    Answer: Stratified sampling with oversampling of the minority class

    Stratified sampling combined with oversampling (e.g., SMOTE) ensures the minority class is adequately represented, preventing models from ignoring it.

  6. What does the term 'data lineage' refer to in an enterprise analytics context?

    Answer: The documented history of data's origin, movement, and transformations

    Data lineage tracks where data came from, how it was transformed at each step, and where it flows, enabling auditability and debugging.

  7. An AI consultant wants to evaluate whether two datasets from different time periods have the same statistical distribution. Which test is most appropriate?

    Answer: Kolmogorov-Smirnov test

    The Kolmogorov-Smirnov test compares the cumulative distribution functions of two samples to detect distributional differences without assuming normality.