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| Section | Weight | Objectives |
|---|---|---|
| Topic 1: Data Ingestion and Modeling | 20% | - Transformation capabilities (streaming and batch) - Data ingestion from different sources into Data Cloud - Define, map, and model data for identity resolution - Inspect and validate ingested and modeled data |
| Topic 2: Segmentation and Insights | 18% | - Define basic concepts of segmentation and use cases - Identify scenarios for analyzing segment membership - Configure, refine, and maintain segments within Data Cloud - Identify and differentiate between calculated and streaming insights |
| Topic 3: Identity Resolution | 14% | - Reconcile data and rule sets - Matching and rule sets |
| Topic 4: Data Cloud Setup and Administration | 12% | - Manage and administer Data Cloud using reports, dashboards, flows, packaging, and data kits - Identify use cases for data spaces and create data spaces based on requirements - Describe and configure the available data stream types and data bundles - Diagnose and explore data using Data Explorer, Profile Explorer, and APIs - Apply Data Cloud permissions, permission sets, and org-wide settings |
| Topic 5: Solution Overview | 18% | - Describe Data Cloud's function, key terminology, and business value - Describe and apply the principles of data ethics - Identify typical use cases for Data Cloud - Articulate how Data Cloud works and its dependencies |
| Topic 6: Act on Data | 18% | - Identify and analyze timing dependencies affecting the Data Cloud lifecycle - Use attributes and related attributes - Troubleshoot common problems with activations - Use data actions and identify their requirements and intended use cases - Define activations and their basic use cases |
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63. Frage
A customer has multiple team members who create segment audiences that work in different time zones. One team member works at the home office in the Pacific time zone, that matches the org Time Zone setting.
Another team member works remotely in the Eastern time zone.
Which user will see their home time zone in the segment and activation schedule areas?
Antwort: C
Begründung:
The correct answer is D, both team members; Data Cloud adjusts the segment and activation schedules to the time zone of the logged-in user. Data Cloud uses the time zone settings of the logged-in user to display the segment and activation schedules. This means that each user will see the schedules in their own home time zone, regardless of the org time zone setting or the location of other team members. This feature helps users to avoid confusion and errors when scheduling segments and activations across different time zones. The other options are incorrect because they do not reflect how Data Cloud handles time zones. The team member in the Pacific time zone will not see the same time zone as the org time zone setting, unless their personal time zone setting matches the org time zone setting. The team member in the Eastern time zone will not see the schedules in the org time zone setting, unless their personal time zone setting matches the org time zone setting. Data Cloud does not show all schedules in GMT, but rather in the user's local time zone. References:
Data Cloud Time Zones
Change default time zones for Users and the organization
Change your time zone settings in Salesforce, Google & Outlook
DateTime field and Time Zone Settings in Salesforce
64. Frage
Which data stream category type should be assigned in order to use the dataset for date and time-based operations in segmentation and calculated insights?
Antwort: D
Begründung:
To use a dataset for date and time-based operations in segmentation and calculated insights, the data stream category type should be assigned as Engagement . Here's why:
Understanding the Requirement
The goal is to perform date and time-based operations (e.g., filtering customers based on specific dates or times) in segmentation and calculated insights.
This requires a data stream category that captures customer interactions or activities over time.
Why Engagement?
Engagement Data Streams :
Engagement data streams are designed to capture customer interactions, such as website visits, email opens, purchases, or other time-based activities.
These streams inherently include timestamps, making them ideal for date and time-based operations.
Use in Segmentation and Calculated Insights :
Segmentation often involves filtering customers based on their engagement behavior (e.g., "customers who visited the website in the last 7 days").
Calculated insights leverage engagement data to derive metrics like recency, frequency, and trends over time.
Other Categories Are Less Suitable :
Individual : Focuses on demographic or static attributes (e.g., name, age) rather than time-based interactions.
Sales Order : Captures transactional data but is not optimized for general engagement-based operations.
Profile : Represents unified customer profiles and does not directly support date and time-based operations.
Steps to Implement This Solution
Step 1: Assign the Correct Category
When setting up the data stream, assign the Engagement category to ensure it is optimized for time-based operations.
Step 2: Map Date-Time Fields
Ensure that relevant fields (e.g., interaction timestamps) are mapped correctly during ingestion.
Step 3: Use in Segmentation and Insights
Leverage the ingested engagement data for segmentation (e.g., "customers who engaged in the last 24 hours") and calculated insights (e.g., "average time between interactions").
Conclusion
The Engagement category is specifically designed for capturing time-based interactions, making it the best choice for datasets used in date and time-based operations in segmentation and calculated insights.
65. Frage
Cumulus Financial uses Service Cloud as its CRM and stores mobile phone, home phone, and work phone as three separate fields for its customers on the Contact record. The company plans to use Data Cloud and ingest the Contact object via the CRM Connector.
What is the most efficient approach that a consultant should take when ingesting this data to ensure all the different phone numbers are properly mapped and available for use in activation?
Antwort: B
Begründung:
The most efficient approach that a consultant should take when ingesting this data to ensure all the different phone numbers are properly mapped and available for use in activation is B. Ingest the Contact object and use streaming transforms to normalize the phone numbers from the Contact data stream into a separate Phone data lake object (DLO) that contains three rows, and then map this new DLO to the Contact Point Phone data map object. This approach allows the consultant to use the streaming transforms feature of Data Cloud, which enables data manipulation and transformation at the time of ingestion, without requiring any additional processing or storage. Streaming transforms can be used to normalize the phone numbers from the Contact data stream, such as removing spaces, dashes, or parentheses, and adding country codes if needed. The normalized phone numbers can then be stored in a separate Phone DLO, which can have one row for each phone number type (work, home, mobile). The Phone DLO can then be mapped to the Contact Point Phone data map object, which is a standard object that represents a phone number associated with a contact point.
This way, the consultant can ensure that all the phone numbers are available for activation, such as sending SMS messages or making calls to the customers.
The other options are not as efficient as option B. Option A is incorrect because it does not normalize the phone numbers, which may cause issues with activation or identity resolution. Option C is incorrect because it requires creating a calculated insight, which is an additional step that consumes more resources and time than streaming transforms. Option D is incorrect because it requires creating formula fields in the Contact data stream, which may not be supported by the CRM Connector or may cause conflicts with the existing fields in the Contact object. References: Salesforce Data Cloud Consultant Exam Guide, Data Ingestion and Modeling, Streaming Transforms, Contact Point Phone
66. Frage
A customer is concerned that the consolidation rate displayed in the identity resolution is quite low compared to their initial estimations.
Which configuration change should a consultant consider in order to increase the consolidation rate?
Antwort: B
Begründung:
The consolidation rate is the amount by which source profiles are combined to produce unified profiles, calculated as 1 - (number of unified individuals / number of source individuals). For example, if you ingest
100 source records and create 80 unified profiles, your consolidation rate is 20%. To increase the consolidation rate, you need to increase the number of matches between source profiles, which can be done by adding more match rules. Match rules define the criteria for matching source profiles based on their attributes.
By increasing the number of match rules, you can increase the chances of finding matches between source profiles and thus increase the consolidation rate. On the other hand, changing reconciliation rules, including additional attributes, or reducing the number of match rules can decrease the consolidation rate, as they can either reduce the number of matches or increase the number of unified profiles. References: Identity Resolution Calculated Insight: Consolidation Rates for Unified Profiles, Identity Resolution Ruleset Processing Results, Configure Identity Resolution Rulesets
67. Frage
Northern Trail Qutfitters wants to be able to calculate each customer's lifetime value {LTV) but also create breakdowns of the revenue sourced by website, mobile app, and retail channels.
What should a consultant use to address this use case in Data Cloud?
Antwort: D
Begründung:
Metrics on metrics is a feature that allows creating new metrics based on existing metrics and applying mathematical operations on them. This can be useful for calculating complex business metrics such as LTV, ROI, or conversion rates. In this case, the consultant can use metrics on metrics to calculate the LTV of each customer by summing up the revenue generated by them across different channels. The consultant can also create breakdowns of the revenue by channel by using the channel attribute as a dimension in the metric definition. References: Metrics on Metrics, Create Metrics on Metrics
68. Frage
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