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`,t+=`Retention Analysis allows you to measure how often users are successfully returning to a page or action. By tracking user retention over time, you can gain insights into overall user satisfaction.
User retention is measured within a given cohort of users that you define. A cohort is a group of users who participate in an initial event, such as clicking a link. A user in the cohort is considered retained if they subsequently complete a return event, such as clicking the same link again or clicking a Proceed to Payment button.
Only views and actions can act as events.
The retention graph displays the percentage of users who completed the return event each day during the past week.
You can further scope the retention measure based on when the return event occurs to identify the users who have completely churned from a product or feature.
Return on or after
: the user has to complete the “Return event” on or after the period to be counted as retained.
Return on
: the user has to do the “Return event” on the period to be counted as retained.
It’s useful to understand the likelihood of a user to come back after a given period.
In order for User Retention data to populate, you must set the usr.id
attribute in your SDK. See the instructions for sending unique user attributes.
To build a retention graph, navigate to Product Analytics > Charts, click the Retention tab, then follow the steps below.
Retention rate
to see the data in percentages, or Unique users
to see the absolute number of users.Return on or after
or Return on
based on when the return event occurs.Measure by
section, you can select Each day
and have the duration of this measure be for the past week.Optionally, select a specific segment to measure the retention of its users. This defaults to All users.
Optionally, add any desired filter criteria, such as the user’s country, device type, or operating system.
For insights on user retention week over week, read each row of the graph horizontally from left to right.
You can click on an individual diagram cell to view a list of users, and export the list as a CSV:
The graph displays slightly different information depending on whether the initial and return events match.
If the starting and returning events match:
Reading the Dec 04 2023 row of the above graph from left to right:
If the starting and returning events differ:
Reading the Dec 04 2023 row of the above graph from left to right:
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