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| Section | Weight | Objectives |
|---|---|---|
| Topic 1: AI Risk Governance and Framework Integration | 37% | - AI Organizational Processes and Alignment - AI Models, Frameworks, Strategies, and Use Cases - AI Ownership, Oversight, and Accountability |
| Topic 2: AI Life Cycle Risk Management | - AI development, deployment, and monitoring risks - AI model and data risk identification - AI bias, drift, transparency, and control evaluation | |
| Topic 3: AI Risk Program Management | 42% | - Enterprise AI risk program design - AI risk assessment and treatment strategies - AI governance communication and reporting - AI risk monitoring and continuous improvement |
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NEW QUESTION # 79
Which of the following is the PRIMARY purpose of applying thorough cleansing and normalization to AI training data?
Answer: A
Explanation:
Within the ISACA Advanced in AI Risk framework, life-cycle controls should protect data quality, model design, testing, validation, monitoring, change management, and secure retirement of AI systems. Cleansing and normalization reduce inconsistent, erroneous, or statistically distorted training data that can produce biased or inaccurate model behavior. Their primary value is improving trustworthy inputs rather than lowering compute cost or satisfying privacy law by themselves. This makes option C, Addressing statistical distortions in training data that could cause model bias, the strongest answer. The other choices describe narrower technical, operational, performance, or administrative considerations and do not address the primary risk-management objective in the scenario as directly. A risk practitioner should select the response that most effectively reduces the stated exposure while preserving appropriate oversight, traceability, and alignment with organizational risk tolerance and business requirements.
NEW QUESTION # 80
Which of the following is the GREATEST risk when an AI model is trained on multiple data sources that differ in update frequency and quality?
Answer: C
Explanation:
Within the ISACA Advanced in AI Risk framework, life-cycle controls should protect data quality, model design, testing, validation, monitoring, change management, and secure retirement of AI systems. Training from sources with different update frequencies and quality can introduce conflicting, stale, or incomplete information, leading to inconsistent model outputs and operational decisions. Cost and integration issues are secondary to unreliable decision quality. This makes option A, Inconsistency in model outputs and operational decisions, the strongest answer. The other choices describe narrower technical, operational, performance, or administrative considerations and do not address the primary risk-management objective in the scenario as directly. A risk practitioner should select the response that most effectively reduces the stated exposure while preserving appropriate oversight, traceability, and alignment with organizational risk tolerance and business requirements.
NEW QUESTION # 81
An election oversight body is considering the use of AI to identify irregularities in voting patterns. Which of the following is the MOST important risk to evaluate?
Answer: D
Explanation:
AI systems trained on historical data inherit the biases, patterns, and structural inequities embedded in that data. In electoral contexts, historical voting patterns may reflect systemic disenfranchisement, gerrymandering, or demographic manipulation-biases that an AI system could amplify and legitimize through its outputs.
Why B is Correct: According to ISACA AAIR bias and fairness guidance applied to high-stakes public sector AI, the amplification of historical data biases poses the greatest risk in electoral irregularity detection. If the AI system treats historically suppressed voting patterns as the normal baseline, it may flag legitimate turnout increases in previously underrepresented communities as irregularities-producing discriminatory, biased outputs with severe democratic consequences.
Why A is Wrong: Voter location identification is a privacy concern but represents a specific data element risk.
Comprehensive privacy controls can mitigate location exposure without resolving the systemic bias risk.
Why C is Wrong: Contextual drift-the model performing differently in new electoral contexts than in training contexts-is a technical risk that is relevant but addressable through validation testing. Bias amplification is a more fundamental concern embedded in the historical data itself.
Why D is Wrong: Political distrust of AI represents a stakeholder acceptance challenge. While significant for implementation success, it is a communication and change management concern rather than the primary technical and ethical risk from the AI system itself.
NEW QUESTION # 82
Which of the following is the PRIMARY benefit of tailoring AI governance to an organization's culture and risk tolerance?
Answer: D
Explanation:
AI governance frameworks that are disconnected from organizational culture and risk tolerance face adoption resistance and produce policies that are either too restrictive or too permissive. Tailored governance is more likely to be embraced by stakeholders and produce risk policies calibrated to the organization's actual risk appetite.
Why B is Correct: The ISACA AAIR Study Guide emphasizes that governance tailored to culture and risk tolerance produces two primary benefits: stakeholders are more likely to accept and follow governance policies that reflect their own values and operational realities, and the resulting policies are appropriately calibrated to actual risk appetite rather than generic standards. Together, these produce more effective, sustainable governance.
Why A is Wrong: Model explainability is a technical property of individual AI systems, not a governance tailoring outcome. Regulatory compliance may improve with tailored governance but is a compliance benefit, not the primary benefit of cultural alignment.
Why C is Wrong: Automation of risk assessment and accountability clarity are process improvements that may result from better governance design but are not the primary benefit of cultural and risk tolerance alignment.
Why D is Wrong: Training programs and reskilling are workforce development activities. While governance reform may highlight training needs, skills development is an enabling activity rather than the primary benefit of culturally tailored governance.
NEW QUESTION # 83
Which of the following should be a risk practitioner's PRIMARY consideration when developing risk scenarios related to adversarial manipulation of a business-critical AI system?
Answer: C
Explanation:
Within the ISACA Advanced in AI Risk framework, program management connects risk identification, control selection, treatment, monitoring, resilience, third-party oversight, and reporting to enterprise risk objectives. Risk scenarios for adversarial manipulation should be classified using criteria aligned with organizational tolerance so likelihood and impact can drive proportionate treatment decisions. Attack prevalence and patch frequency are inputs, not the governing risk criterion. This makes option C, Alignment of risk classification criteria with organizational tolerance, the strongest answer. The other choices describe narrower technical, operational, performance, or administrative considerations and do not address the primary risk-management objective in the scenario as directly. A risk practitioner should select the response that most effectively reduces the stated exposure while preserving appropriate oversight, traceability, and alignment with organizational risk tolerance and business requirements.
NEW QUESTION # 84
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