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Examen

Full Practice Exam for AHIMA Certified Health Data Analyst (CHDA); 100 Comprehensive Questions & Verified Rationales; 2025/2026 Edition; Optimized for Healthcare Data Analytics Mastery

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The Ultimate CHDA Practice Exam for the 2025/2026 testing cycle. This premium resource is specifically mapped to the official AHIMA CHDA Domains, covering the full lifecycle of health data—from acquisition and management to advanced analysis and interpretation. It is designed to prepare candidates for roles that bridge the gap between IT, clinical care, and business intelligence. Key Content Domains Covered: Domain 1: Foundational Knowledge of Analytics in Healthcare Data Types & Variables: Mastering the distinction between Nominal (categorical without order, e.g., gender), Ordinal (ranked categories), and Continuous data. Analytic Techniques: Understanding the hierarchy of analytics: Descriptive: What happened? Diagnostic: Why did it happen? Predictive: What will happen? (e.g., CMS predictive modeling for claim audits). Prescriptive: How can we make it happen? Getty Images Domain 2: Data Acquisition and Management Data Governance & Security: Application of the CIA Triad (Confidentiality, Integrity, and Availability) to ePHI. Data Lineage: Documenting the "journey" of data from its source through transformations to the final analytic set. Database Management: Knowledge of SQL, data warehousing, and ETL (Extract, Transform, Load) processes. Domain 3: Data Analysis Statistical Methods: Application of hypothesis testing, regression analysis, and confidence intervals. Data Mining: Identifying hidden patterns in large healthcare datasets to improve clinical outcomes or operational efficiency. Domain 4: Data Interpretation and Reporting Data Visualization: Choosing the right chart type (e.g., Scatter plots for correlation, Run charts for trends over time). Stakeholder Communication: Translating complex statistical findings into actionable insights for non-technical leadership. CHDA Quick Review Summary: | Concept | Key Definition/Use Case | | :--- | :--- | | CIA Triad | Confidentiality (Privacy), Integrity (Accuracy), Availability (Accessibility). | | Nominal Data | Categorical data with no inherent rank (e.g., Patient Gender). | | Data Lineage | Documents the complete lifecycle and movement of data. | | Predictive Modeling | Using historical data to forecast future risks (e.g., Readmission rates). | Analytical Focus: Predictive Modeling: Unlike descriptive analytics which looks backward, predictive modeling uses historical data patterns to identify future probabilities. For example, an analyst might use predictive modeling to flag high-risk patients for targeted care management. This exam preparation tool includes detailed rationales for every question, ensuring candidates understand the technical logic and regulatory requirements (HIPAA, CMS) necessary for CHDA certification.CHDA Practice Exam 2026, AHIMA Certified Health Data Analyst, Healthcare Data Analytics Domains, CIA Triad Healthcare, Predictive Modeling CMS, Nominal vs Ordinal Data, Data Lineage Definition, ETL Process Healthcare, Statistical Analysis for HIM, CHIMA CHDA Prep.

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AHIMA CHDA
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AHIMA CHDA

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AHIMA CERTIFIED HEALTH DATA
ANALYST Practice Exam (CHDA)
Practice Exam

100 Comprehensive Questions with
Detailed and verified Rationales

Based on the AHIMA CHDA Domains
| 2025/2026 Edition

1|Page

,DOMAIN 1: FOUNDATIONAL KNOWLEDGE OF ANALYTICS IN HEALTHCARE


(Questions 1-16)




Question 1
Which of the following variables is nominal?

A. Patient age in years
B. Patient gender (male/female)
C. Patient temperature in degrees Fahrenheit
D. Patient satisfaction rating on a scale of 1-5




Correct Answer: B

Rationale: Nominal variables are categorical variables with no inherent order or ranking.
Patient gender (male/female) is a classic example of nominal data—the categories are
mutually exclusive but cannot be ordered . Age (A) and temperature (C) are continuous
numerical variables. Satisfaction ratings (D) are ordinal—they have a natural order (1 is
worse than 5) but the intervals between values are not necessarily equal.




Question 2
CMS is using what data analytic technique to determine which claims should be sampled
for further compliance review?

A. Descriptive analytics
B. Diagnostic analytics
C. Predictive modeling
D. Prescriptive analytics

2|Page

,Correct Answer: C

Rationale: Predictive modeling uses historical data to forecast future events or identify
patterns that indicate risk. CMS uses predictive modeling to identify claims with a higher
probability of non-compliance, fraud, or error, allowing them to target their audit resources
efficiently . Descriptive analytics (A) answers "what happened?" Diagnostic analytics (B)
answers "why did it happen?" Prescriptive analytics (D) suggests actions to optimize
outcomes.




Question 3
Which of the following may be the variable of interest in an attribute study?

A. Patient weight
B. Blood pressure reading
C. Claim denial rate
D. Length of stay




Correct Answer: C

Rationale: Attribute studies deal with discrete characteristics—whether something does
or does not have a particular attribute. Claim denial rate is an attribute (denied vs. paid) .
Patient weight (A), blood pressure (B), and length of stay (D) are variables measured on
continuous scales and would be the focus of variables studies, not attribute studies.




Question 4
What term is used in reference to raw facts generally stored as characters, words, symbols,
measurements, or statistics?




3|Page

, A. Information
B. Knowledge
C. Data
D. Wisdom




Correct Answer: C

Rationale: Data are raw facts, figures, and symbols that have not yet been processed,
organized, or interpreted . When data is processed and given context, it becomes
information (A). Knowledge (B) is synthesized information with understanding and
application. Wisdom (D) is the ability to use knowledge for sound judgment.




Question 5
Data mining is a process that involves which of the following?

A. Manually reviewing records to extract specific data elements
B. Using sophisticated computer technology to sort through an entity's data to identify
unusual patterns
C. Creating data dictionaries for database management
D. Archiving old records to improve system performance




Correct Answer: B

Rationale: Data mining is the process of using advanced analytical tools and techniques
(often statistical and machine learning algorithms) to discover previously unknown
patterns, correlations, and anomalies in large datasets . It goes beyond simple querying to
uncover hidden insights.




4|Page

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Institución
AHIMA CHDA
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AHIMA CHDA

Información del documento

Subido en
12 de marzo de 2026
Número de páginas
57
Escrito en
2025/2026
Tipo
Examen
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