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Join Ads Marketplace to earn through podcast sponsorships.
Manage your ads with dynamic ad insertion capability.
Monetize with Apple Podcasts Subscriptions via Podbean.
Earn rewards and recurring income from Fan Club membership.
Get the answers and support you need.
Resources and guides to launch, grow, and monetize podcast.
Stay updated with the latest podcasting tips and trends.
Check out our newest and recently released features!
Podcast interviews, best practices, and helpful tips.
The step-by-step guide to start your own podcast.
Create the best live podcast and engage your audience.
Tips on making the decision to monetize your podcast.
The best ways to get more eyes and ears on your podcast.
Everything you need to know about podcast advertising.
The ultimate guide to recording a podcast on your phone.
Steps to set up and use group recording in the Podbean app.
In the digital economy, recommendation algorithms get…a LOT of attention. To some, they’re the special sauce behind everything from Spotify’s personalized playlists to Tik Tok’s “For You” page. For others, they represent a dark, vibe-generating demiurge slowly sapping music’s social power. But for all the discussion of how these programs are transforming our world(s), there’s surprisingly little analysis of what—exactly—they are, or how they’re meant to work.
Answering these seemingly simple questions is the goal of Nick Seaver’s new book “Computing Taste,” which explores the identities, goals, and practices of the programmers behind these technologies. Far from Machiavellian manipulators, the coders he describes are surprisingly idealistic music-lovers, desperately trying to analyze an almost infinitely complex cultural practice. Their failures to do so—and the ideologies they adopted as a result—would have enormous implications for the development of digital music, remaking genres, redefining listening, and shaping the platforms at the heart of the modern industry. Put it this way—we’ll definitely never look at a "Discover Weekly" playlist the same way again.
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