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Reputation Scores for GitHub Accounts

https://shkspr.mobi/blog/2026/02/reputation-scores-for-github-accounts/
1•edent•2m ago•0 comments

A BSOD for All Seasons – Send Bad News via a Kernel Panic

https://bsod-fas.pages.dev/
1•keepamovin•6m ago•0 comments

Show HN: I got tired of copy-pasting between Claude windows, so I built Orcha

https://orcha.nl
1•buildingwdavid•6m ago•0 comments

Omarchy First Impressions

https://brianlovin.com/writing/omarchy-first-impressions-CEEstJk
1•tosh•11m ago•0 comments

Reinforcement Learning from Human Feedback

https://arxiv.org/abs/2504.12501
2•onurkanbkrc•12m ago•0 comments

Show HN: Versor – The "Unbending" Paradigm for Geometric Deep Learning

https://github.com/Concode0/Versor
1•concode0•13m ago•1 comments

Show HN: HypothesisHub – An open API where AI agents collaborate on medical res

https://medresearch-ai.org/hypotheses-hub/
1•panossk•16m ago•0 comments

Big Tech vs. OpenClaw

https://www.jakequist.com/thoughts/big-tech-vs-openclaw/
1•headalgorithm•18m ago•0 comments

Anofox Forecast

https://anofox.com/docs/forecast/
1•marklit•18m ago•0 comments

Ask HN: How do you figure out where data lives across 100 microservices?

1•doodledood•19m ago•0 comments

Motus: A Unified Latent Action World Model

https://arxiv.org/abs/2512.13030
1•mnming•19m ago•0 comments

Rotten Tomatoes Desperately Claims 'Impossible' Rating for 'Melania' Is Real

https://www.thedailybeast.com/obsessed/rotten-tomatoes-desperately-claims-impossible-rating-for-m...
3•juujian•21m ago•2 comments

The protein denitrosylase SCoR2 regulates lipogenesis and fat storage [pdf]

https://www.science.org/doi/10.1126/scisignal.adv0660
1•thunderbong•22m ago•0 comments

Los Alamos Primer

https://blog.szczepan.org/blog/los-alamos-primer/
1•alkyon•25m ago•0 comments

NewASM Virtual Machine

https://github.com/bracesoftware/newasm
2•DEntisT_•27m ago•0 comments

Terminal-Bench 2.0 Leaderboard

https://www.tbench.ai/leaderboard/terminal-bench/2.0
2•tosh•27m ago•0 comments

I vibe coded a BBS bank with a real working ledger

https://mini-ledger.exe.xyz/
1•simonvc•27m ago•1 comments

The Path to Mojo 1.0

https://www.modular.com/blog/the-path-to-mojo-1-0
1•tosh•30m ago•0 comments

Show HN: I'm 75, building an OSS Virtual Protest Protocol for digital activism

https://github.com/voice-of-japan/Virtual-Protest-Protocol/blob/main/README.md
5•sakanakana00•33m ago•1 comments

Show HN: I built Divvy to split restaurant bills from a photo

https://divvyai.app/
3•pieterdy•36m ago•0 comments

Hot Reloading in Rust? Subsecond and Dioxus to the Rescue

https://codethoughts.io/posts/2026-02-07-rust-hot-reloading/
3•Tehnix•36m ago•1 comments

Skim – vibe review your PRs

https://github.com/Haizzz/skim
2•haizzz•38m ago•1 comments

Show HN: Open-source AI assistant for interview reasoning

https://github.com/evinjohnn/natively-cluely-ai-assistant
4•Nive11•38m ago•6 comments

Tech Edge: A Living Playbook for America's Technology Long Game

https://csis-website-prod.s3.amazonaws.com/s3fs-public/2026-01/260120_EST_Tech_Edge_0.pdf?Version...
2•hunglee2•42m ago•0 comments

Golden Cross vs. Death Cross: Crypto Trading Guide

https://chartscout.io/golden-cross-vs-death-cross-crypto-trading-guide
3•chartscout•44m ago•1 comments

Hoot: Scheme on WebAssembly

https://www.spritely.institute/hoot/
3•AlexeyBrin•47m ago•0 comments

What the longevity experts don't tell you

https://machielreyneke.com/blog/longevity-lessons/
2•machielrey•49m ago•1 comments

Monzo wrongly denied refunds to fraud and scam victims

https://www.theguardian.com/money/2026/feb/07/monzo-natwest-hsbc-refunds-fraud-scam-fos-ombudsman
3•tablets•53m ago•1 comments

They were drawn to Korea with dreams of K-pop stardom – but then let down

https://www.bbc.com/news/articles/cvgnq9rwyqno
2•breve•56m ago•0 comments

Show HN: AI-Powered Merchant Intelligence

https://nodee.co
1•jjkirsch•58m ago•0 comments
Open in hackernews

Show HN: Roundtable MCP Server to Use Claude, Cursor, Codex, Gemini from One UI

https://github.com/askbudi/roundtable
1•mahdiyar•4mo ago
Hey HN,

  Last week, I spent 40 minutes debugging a production issue that should have taken 5. Not because the bug was complex, but because I kept switching between Claude Code, Cursor, Codex, and
   Gemini - copying context, losing thread, starting over.

  The workflow was painful:
  1. Claude Code couldn't reproduce a React rendering bug
  2. Copy-pasted 200 lines to Cursor - different answer, still wrong
  3. Tried Codex - needed to re-explain the database schema
  4. Finally Gemini spotted it, but I'd lost the original error logs

  This context-switching tax happens weekly. So I built Roundtable AI MCP Server.




What makes it different: Unlike existing multi-agent tools that require custom APIs or complex setup, Roundtable works with your existing AI CLI tools through the Model Context Protocol. Zero configuration - it auto-discovers what's installed and just works.

  Architecture: Your IDE → MCP Server → Multiple AI CLIs (parallel execution)
It runs CLI Coding Agents in headless mode and shares the results with the LLM of choice.

Real examples I use daily:

  Example 1 - Parallel Code Review:
  Claude Code > Run Gemini, Codex, Cursor and Claude Code Subagent in parallel and task them to review my landing page at '@frontend/src/app/roundtable/page.tsx'

  → Gemini: React performance, component architecture, UX patterns
  → Codex: Code quality, TypeScript usage, best practices
  → Cursor: Accessibility, SEO optimization, modern web standards
  → Claude: Business logic, user flow, conversion optimization

  Save their review in {subagent_name}_review.md then aggregate their feedback

  Example 2 - Sequential Task Delegation:
  First: Assign Gemini Subagent to summarize the logic of '@server.py'
  Then: Send summary to Codex Subagent to implement Feature X from 'feature_x_spec.md'
  Finally: I run the code and provide feedback to Codex until all tests in 'test_cases.py' pass
  (Tests hidden from Codex to avoid overfitting)

  Example 3 - Specialized Debugging:
  Assign Cursor with GPT-5 and Cursor with Claude-4-thinking to debug issues in 'server.py'
  Here's the production log: [memory leak stacktrace]
  Create comprehensive fix plan with root cause analysis

  All run in parallel with shared project context. Takes 2-5 minutes vs 20+ minutes of manual copy-paste coordination.


Try it: pip install roundtable-ai roundtable-ai --check # Shows which AI tools you have

  I'd love feedback on:
  1. Which AI combinations work best for your debugging workflows?
  2. Any IDE integration pain points?
  3. Team adoption blockers I should address?

  GitHub: https://github.com/askbudi/roundtable
  Website: https://askbudi.ai/roundtable