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A recommendation system to explore the non-commercial web

Hacker News

A recommendation system to explore the non-commercial web

Hey HN, thank you for being a part of the internet we love. We’re Arnav, Mo, Jeremy and we’re building an “Internet For-You page” that recommends blogs and essays based on your interests. Try it here [ https://www.browserbuddy.com/ ]! Here’s a video demo: https://www.youtube.com/watch?v=Kj1bdfJwV0c We love to discover and learn from personal blogs, essays, and articles on the internet. But despite exciting advancements in language modeling, it’s felt harder to discover interesting links from real people. We believe there is untapped potential to use these language models as “curators” rather than “creators”. To explore this, we’re building a recommendation system that curates content for you based on the links you visit from our site. You can also prompt it with things like “serendipity in art” or “I want to learn more about the intersection of painting and programming”. Under the hood, we’ve trained a decoder model (llama) to understand how people recommend sites through hyperlinks and used it to embed ~40 million sites. These embeddings are served in a custom database we’re building to run fast on commodity hardware, work well with both vector and structured data, and serve more expressive representations of the sites (multi-vector, multimodal, etc). We’ve had a blast using it internally, and early users have mentioned it reminds them of Stumbleupon. We still have a long way to go and would love to hear your feedback! There are no sign-up barriers to get started.

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Actual performance

10points
4comments
Made the leaderboard

Launch Intel predictions

Analyze your own launch →
Product HuntOn track for Day 1 leaderboard · Strong signals: model, user, models · Missing: mac, agents, macos
85%85% predicted probability of success on Product Hunt, based on ML models trained on real launch data.
best fitHighest predicted score across all platforms for this description.
Indie HackersFits the IH revenue-focused audience · Strong signals: started · Missing: supports, reddit linkedin, podcasting
83%83% predicted probability of success on Indie Hackers, based on ML models trained on real launch data.
Hacker NewsStrong engagement from HN community · Strong signals: llama, ide, io · Missing: https docs, excited, just released
78%78% predicted probability of success on Hacker News, based on ML models trained on real launch data.
nativeThis product was originally launched on this platform.
TrustMRRLess likely to generate early MRR · Strong signals: personal, video, users · Missing: mobile apps, ios, entrepreneurs
41%41% predicted probability of success on TrustMRR, based on ML models trained on real launch data.
AppSumoMay struggle as an AppSumo deal · Strong signals: users · Missing: plus, platform, intuitive
38%38% predicted probability of success on AppSumo, based on ML models trained on real launch data.
Acquire.comPre-revenue stage for this audience · Strong signals: arr · Missing: mrr, revenue, profit
19%19% predicted probability of success on Acquire.com, based on ML models trained on real launch data.
BetaListMay not resonate with beta-testers · Strong signals: real people · Missing: web3, chat, crypto
0%0% predicted probability of success on BetaList, based on ML models trained on real launch data.

Correct prediction on native model

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