Unit 4: A4 Machine learning
Topic 4.4: Ethics and impact Questions
Practice 20 exam-style questions for IB Computer Science Topic 4.4. Review the question stems below, then unlock the full Question Bank to access markschemes, model answers, and AI grading.
1Explain4 marks
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Explain why a person refused a loan by an automated system may have difficulty challenging the decision.
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Suggest what an organisation should provide alongside an automated decision.
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Determine which error matters more for a model screening medical images, and justify your answer.
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Suggest why the right to have personal data deleted is difficult to honour for a trained model.
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State one source of bias in a machine learning system.
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Explain how a recruitment model trained on a company's past hiring decisions could become biased.
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Suggest what would make human review of automated decisions meaningful.
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Explain how a facial recognition system could work less well for some groups than others.
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Suggest two ways of detecting bias in a deployed model.
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Suggest two ways of reducing bias when a model is built.
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Explain the concern raised by a model trained on personal data scraped from the internet.
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Explain why a model that is accurate overall may still be unacceptable.
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Explain why automating a decision changes its ethical weight even when the decision itself is unchanged.
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Explain the concern about machine learning systems replacing human judgement in criminal justice.
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Suggest one legitimate use of machine learning in a high-stakes setting.
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Explain why a human reviewing a model's output is not always an adequate safeguard.
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Choose the most likely source of bias in a machine learning system.
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Choose why removing a sensitive attribute from the training data may not remove bias.
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Suggest who should be responsible when an automated system causes harm.
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