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MirrorNeuron – an open-source runtime for reliable on-device AI agents

Hacker News

MirrorNeuron – an open-source runtime for reliable on-device AI agents

AI inference is rapidly moving out of the data center and onto local machines. With hardware like the upcoming Mac Studio M5 Ultra, it’s already possible to run top open models locally at performance levels approaching systems like ChatGPT. At the same time, companies like SK Hynix and Micron Technology are pushing memory bandwidth forward, making edge inference increasingly practical. But the software layer hasn’t caught up yet. We have great building blocks (e.g., OpenClaw), but they don’t yet provide the reliability guarantees you’d expect from production systems like Temporal Technologies—things like durable execution, failure recovery, and long-running workflow management. So I built MirrorNeuron: https://www.mirrorneuron.io GitHub: https://github.com/MirrorNeuronLab MirrorNeuron is an open-source runtime for AI agents that need to run continuously and reliably on edge or local environments. The focus is simple: long-running, stateful agent workflows fault tolerance and recovery by default scheduling + orchestration primitives for agents designed for real-world conditions (not just demos) The idea is that as AI moves onto personal machines and edge devices, we’ll need something closer to a “workflow OS” for agents—not just prompt loops or scripts. Curious how others are thinking about this space—especially around reliability and long-running agent systems. If you’re building in this space or want to collaborate, feel free to reach out: homerquan@gmail.com

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Product HuntOn track for Day 1 leaderboard · Strong signals: mac, agents, agent · Missing: macos, cursor, claude
94%94% 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 · Missing: supports, reddit linkedin, podcasting
92%92% predicted probability of success on Indie Hackers, based on ML models trained on real launch data.
Hacker NewsMay not resonate with HN audience · Strong signals: ide, io · Missing: https docs, excited, just released
50%50% 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 · Missing: mobile apps, ios, entrepreneurs
47%47% predicted probability of success on TrustMRR, based on ML models trained on real launch data.
AppSumoMay struggle as an AppSumo deal · Missing: plus, platform, intuitive
35%35% predicted probability of success on AppSumo, based on ML models trained on real launch data.
Acquire.comPre-revenue stage for this audience · Missing: arr, mrr, revenue
20%20% predicted probability of success on Acquire.com, based on ML models trained on real launch data.
BetaListMay not resonate with beta-testers · Strong signals: chat, collaborate · Missing: web3, crypto, cryptocurrency
0%0% predicted probability of success on BetaList, based on ML models trained on real launch data.

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