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Your organization has 3 TB of information in BigQuery and Cloud SQL.

Your organization has 3 TB of information in BigQuery and Cloud SQL. You need to develop a cost-effective, scalable, and secure strategy to anonymize the personally identifiable information (PII) that exists today. What should you do?

A.

Scan your BigQuery and Cloud SQL data using the Cloud DLP data profiling feature. Use the data profiling results to create a de-identification strategy with either Cloud Sensitive Data Protection's de-identification templates or custom configurations.

B.

Create a new BigQuery dataset and Cloud SQL instance. Copy a small subset of the data to these new locations. Use Cloud Data Loss Prevention API to scan this subset for PII. Based on the results, create a custom anonymization script and apply the script to the entire 3 TB dataset in the original locations.

C.

Export all 3TB of data from BigQuery and Cloud SQL to Cloud Storage. Use Cloud Sensitive Data Protection to anonymize the exported data. Re-import the anonymized data back into BigQuery and Cloud SQL.

D.

Inspect a representative sample of the data in BigQuery and Cloud SQL to identify PII. Based on this analysis, develop a custom script to anonymize the identified PII.

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