Are there any features on the platform that help in identifying fake followers or bots within an influencer’s audience?
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Yes, some influencer marketing platforms come with features that aid in identifying fake followers or bots within an influencer’s audience. These features work by analyzing various performance metrics, such as engagement rates, audience quality score, etc. Here’s how several well-known platforms approach this:
• Traackr, for instance, uses an Audience Quality Score (AQS) to provide a measure of an influencer’s follower quality. AQS uses machine learning algorithms that analyze engagement patterns, potentially false engagement, follower acquisition, and activity rate.
• Similarly, platforms like HypeAuditor report an Audience Quality Score after analyzing factors like the percentage of mass followers and suspicious accounts.
• Another platform, HYPR, offers audience demographics, allowing users to see the gender, location, age, and interests of an influencer’s followers.
Flinque also provides a set of robust analytics tools for identifying unusual spikes in the follower count, sudden changes in engagement, or other anomalies that may indicate the presence of fake followers in an influencer’s audience.
Remember, the goal of using any tool should be to identify real, engaged influencers with high-quality, unforced followership. Each platform may use a different approach to arrive at this goal. Depending on your requirements, one may suit your team’s needs better than the others.
The best way to deal with the issue of fake followers is to combine the use of digital tools with vigilant manual checking, keeping an eye out for inactive user accounts, lack of user engagement, or oddly robotic comments on influencer posts, etc. This can help make the influencer vetting process more stringent.