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Preventing AI Model Collapse: The Need for Human-Generated Data
Im all for acceleration. I think the faster we hit AGI the better. but theres a bottleneck nobody here talks about enough-training data. right now we are quietly poisoning the well. More than half of online content is already synthetic. bots talking to bots, articles written by AI, reddit threads generated by LLMs. when the next generation of models trains on this they eat their own tail. model collapse is real. we saw it with image generators. Outputs get blander, weirder, less useful.we need a way to label or filter human-generated data. not because humans are better but because diversity prevents collapse. I know the standard solution sounds like a dystopian meme. biometric scanners, iris codes, hardware verification. and yeah maybe it is dystopian. but so is a dead internet where nothing can be trusted.Reddit CEO Steve Huffman put it simply recently - platforms need to know you're human without knowing your name. Face ID / Touch ID level stuff. im not saying that specific device is the answer. but the category of solution - proof of human that doesnt create a surveillance state - seems necessary if we want to keep scaling past the cliff.what do you think? Is proof-of-personhood just a regulatory speed bump, or is it infrastructure for the next generation of AI?curious where this sub lands.
Self-Taught Developer from Bahrain Launches Multi-Model AI Platform
https://reddit.com/link/1sxotqx/video/xlaqd9i8guxg1/player I'm a self-taught developer, 39 years old, based in Bahrain. Four months ago I started building AskSary - a multi-model AI platform with a persistent memory layer that sits above all the models. The core idea: the model is not the identity. Most AI tools lose your context the moment you switch models. I built the layer that remembers you across all of them. Here's what's shipped so far: **Models & Routing** Every major model in one place - GPT-5.2, Claude Sonnet 4.6, Grok 4, Gemini 3.1 Pro, DeepSeek R1, O1 Reasoning, Gemini Ultra and more - with smart auto-routing or manual override. **Memory & Context** Persistent cross-model memory. Start with Claude on your phone, switch to GPT on your laptop - it already knows what you discussed. Proactive personalisation that messages you first on login before you've typed a word. **Integrations** Google Drive and Notion - connect once, pull files and pages directly into chat or your RAG Knowledge Base. Unlimited uploads up to 500MB per file via OpenAI Vector Store. **Video Analysis** \- Gemini native video understanding for YouTube URL analysis (no download required, processed natively) and direct file upload up to 500MB. Full breakdown of visuals, audio, dialogue, editing style and key moments. **Generation** Image generation and editing, video studio across Luma, Veo and Kling, music generation via ElevenLabs, video analysis via upload or YouTube URL. **Builder Tools** Vision to Code, Web Architect, Game Engine, Code Lab with SQL Architect, Bug Buster, Git Guru and more. Tavily web search across all models. **Voice & Audio** Real-time 2-way voice chat at near-zero latency, AI podcast mode downloadable as MP3, Voiceover, Voice Notes, Voice Tuner. **Platform** Custom agents, 30+ live interactive themes, smart search, media gallery, folder organisation, full RTL support across 26 languages, iOS and Android apps, Apple Vision Pro. **Where it is now** 129 countries. Currently at 40 new signups a day. 1080 Signup's so far after 4 weeks or so. MRR just started. Zero ad spend. All of it built solo, one feature at a time, on a balcony in Bahrain. **The Stack:** Frontend - Next.js, Capacitor (iOS and Android) and Vanilla JS / React Backend - Vercel serverless functions, Firebase / Firestore (database + auth) and Firebase Admin SDK AI Models - OpenAI (GPT, GPT-Image-1), Anthropic (Claude), Google (Gemini), xAI (Grok), DeepSeek Generation APIs - Luma AI (video), Kling via Replicate (video), Veo via Replicate (video), ElevenLabs (music), Flux via Replicate (image editing), Meshy (3D — coming soon) Integrations - Google Drive (OAuth 2.0), Notion (OAuth 2.0), Tavily (web search), OpenAI Vector Store (RAG), Stripe (payments), CloudConvert (document conversion), Sentry (error tracking), Formidable (file handling) Rendering - Mermaid (flow charts) and MathJax Platforms - Web, iOS, Android, Apple Vision Pro (visionOS) Languages - 26 UI languages with full RTL support [asksary.com](http://asksary.com) Happy to answer questions on any part of the build - stack, architecture, API cost management, anything.
Discover Beads: Memory Upgrade for Coding Agents
Beads - A memory upgrade for your coding agent
Free Claude Code AI Tool: Use in Terminal, VSCode, or Discord
Use claude-code for free in the terminal, VSCode extension or via discord like openclaw
AI Tool: mattpocock/skills for Real Engineers
Skills for Real Engineers. Straight from my .claude directory.
Top Codex Skills for Automating Workflows
A curated list of practical Codex skills for automating workflows across the Codex CLI and API.
GitNexus: Client-Side Code Intelligence Engine for GitHub Repos
GitNexus: The Zero-Server Code Intelligence Engine - GitNexus is a client-side knowledge graph creator that runs entirely in your browser. Drop in a GitHub repo or ZIP file, and get an interactive knowledge graph wit a built in Graph RAG Agent. Perfect for code exploration
AI Equity Research: Vouch API Proves Its Accuracy
AI equity research that proves it isn't lying
Epismo Agent Package: Run Community-Built Workflows
Run agent workflows the community already built
Wafaa.io: AI Tool for Secure Digital Contracts in Minutes
Create secure digital contracts in minutes
AI-Powered Newspaper Archive: SNEWPapers Launched
The World's First AI Newspaper Archive
Odyssey-2 Max: Revolutionizing World Models with Enhanced Accuracy
Physical accuracy takes a leap in world models
AI-Powered Brew Finder: Best Coffee Shops Near You
Discover the best coffee shops to work at around you
Atech: Snap-Together Electronics via AI Chat
Snap-together electronics built from a chat
Logic AI Tool: Build and Manage Agent Fleets
Build and operate fleets of agents
Orange Slice: Automate Sales Tasks with AI
Automate any sales task with AI
Jet AI Agents: Build Business AI Agents in Minutes
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Europe's Shift from US Software to Sovereign Tech
Governments across Europe are looking to rely less on American tech providers.
Skye's AI Home Screen App for iPhone Gains Investor Interest
Skye's new AI app attracted investors before it even launched — a sign of interest in a more AI-aware iPhone.
Top AI Tools on the Apple App Store
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Show HN: AI Prediction Market Analysis App with LLMs and Data APIs
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Tangled.org AI Tool: Revolutionizing Data Analysis
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AI-Powered Recipe Cleanup Tool for Better Cooking
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AI Tool: Bartei's New Release on GitHub
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Git-agecrypt: Transparent File-Level Encryption for Git
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AI-Powered Game Recommendations: Gamevibe.us
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AI Tool Claude Creates Tetris Game in 14 Days
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AI Tool nk412.com: Revolutionizing AI Development
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Show HN: My ChatGPT App Live After 3 Months of OpenAI Review
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Unusual Wikipedia: AI Tool Highlights Hidden Gems
Unusual Wikipedia: AI Tool Highlights Hidden Gems Discover the fascinating world of "unusual Wikipedia" articles with our AI powered tool designed to unveil the…
Utilyze: Open Source GPU Monitoring Tool
Utilyze: The Ultimate Open Source GPU Monitoring Tool Introduction In the fast paced world of data science, machine learning, and high performance computing, mo…
Systalyze.com: Revolutionizing AI Tools with New Features
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OpenAI's AI-Powered Phone: Apps Replaced by Agents
The phone could go in mass production in 2028, an analyst says.
Launch Your Product: Weekly Visibility with AI Tools
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Unlocking Software Solutions: Reference Site for Recurring Problems
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AI Tool Revolution: thehardparts.dev on Hacker News
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YubiClicker: AI-Powered Tool for Enhanced Productivity
YubiClicker: AI Powered Tool for Enhanced Productivity In the fast paced world of modern work, productivity tools have become indispensable. Among the latest in…
YubiClicker: AI-Powered Clicker Game with Physical Security Key
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Garritfra: Revolutionizing AI Tools on GitHub
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A Terminal Spreadsheet Editor with Vim Keybindings
A Terminal Spreadsheet Editor with Vim Keybindings In the world of data manipulation and spreadsheet management, the integration of powerful text editing capabi…
Dirac Run: Revolutionizing AI on GitHub
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OSS Agent Leads TerminalBench on Gemini-3-Flash-Preview
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HauhauCS Qwen3.5-9B: Uncensored AI Tool on Hugging Face
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Building a SQL Analyst Agent from Scratch: A Comprehensive Guide
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AI Tool: Raminmousavi.dev Revolutionizes Web Development
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AI-Powered Forkle.co.uk: Revolutionizing Data Analysis
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AI-Driven Dual Crossword Puzzle: Two Puzzles, One Grid
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AI Agents: Identity, Not Memory, Was the Key to Stability
Everyone's building memory layers right now. Longer context, better embeddings, persistent state across sessions. I spent weeks on the same thing. But the failure mode that actually cost me the most debugging time had nothing to do with memory. Here's what it looked like: an agent would be technically correct - good reasoning, clean output - but operating from the wrong context entirely. Answering questions nobody asked. Taking actions outside its scope. Not hallucinating. Drifting. Like a competent person who walked into the wrong meeting and started contributing without realizing they're in the wrong room. I run 11 persistent agents locally. Each one is a domain specialist - its entire life is one thing. The mail agent's every session, every test, every bug fix is about routing messages. The standards auditor's whole existence is quality checks. They're not generic workers configured for a task. They've each accumulated dozens of sessions of operational history in their domain, and that history is what makes them good at their job. When they started drifting, my first instinct was what everyone's instinct is: better memory. More context. None of it helped. An agent with perfect recall of its last 50 sessions would still lose track of who it was in session 51. What actually fixed it I separated identity from memory entirely. Three files per agent: passport.json - who you are. Role, purpose, principles. Rarely changes. This is the anchor. local.json - what happened. Rolling session history, key learnings. Capped and trimmed when it fills up. observations.json - what you've noticed about the humans and agents you work with. Concrete stuff like "the git agent needs 2 retries on large diffs" or "quality audits overcorrect on technical claims." The agent writes these itself based on what actually happens. Identity loads first, then memory, then observations. That ordering matters. When the identity file loads first, the agent has a stable reference point before any history lands. The mail routing agent learned the sharpest version of this. When identity was ambiguous, it would route messages from the wrong sender. The fix wasn't better routing logic - it was: fail loud when identity is unclear. Wrong identity is worse than silence. The files alone weren't enough Three JSON files helped, but didn't scale past a few agents. What actually made 11 work is that none of them need to understand the full system. Hooks inject context automatically every session - project rules, branch instructions, current plan. One command reaches any agent. Memory auto-archives when it fills up. Plans keep work focused so agents don't carry their entire history in context. The system learned from failing. The agents communicate through a local email system - they send each other tasks, status updates, bug reports. One agent monitors all logs for errors. When it spots something, it emails the agent who owns that domain and wakes them up to investigate. The agents fix each other. The memory agent iterated three sessions to fix a single rollover boundary condition - each time it shipped, observed a new edge case, and improved. These aren't cold modules. They break, they help each other fix it, they get better. That's how the system got to where it is. You don't need 11 agents The 11 agents in my setup maintain the framework itself. That's the reference implementation. But u could start with one agent on a side project - just identity and memory, pick up where u left off tomorrow. Need a team? Add a backend agent, a frontend agent, a design researcher. Three agents, same pattern, same commands. Or scale to 30 for a bigger system. Each new agent is one command and the same structure. What this doesn't solve This all runs locally on one machine. I don't know whether identity drift looks the same in hosted environments. If u run stateless agents behind an API, the problem might not exist for you. Small project, small community, growing. The pattern itself is small enough to steal - three JSON files and a convention. But the system that keeps agents coherent at scale is where the real work went. pip install aipass and two commands to get a working agent. The .trinity/ directory is the identity layer. Has anyone else tried separating identity from memory in their agent setups? Curious whether the ordering matters in other architectures, or if it's just an artifact of how this system evolved.
AI's Productivity Boost: Layoffs or Worker Benefits?
I keep hearing that AI will make workers more productive. But the part I don’t understand is this: If one employee can now do the work of three people, why is the default outcome usually: * fire two people * keep the same workload * give the remaining person more pressure * send the savings upward Why isn’t the obvious outcome: * shorter work weeks * higher wages * lower prices * more time off * better services It feels like AI is being sold to the public as “everyone will be more productive,” but implemented by companies as “we need fewer humans.” Maybe I’m missing something, but productivity gains only feel like progress if normal people share in them. Otherwise it’s not really “*AI helping workers*.” It’s just automation being used as a layoff machine. **Do you think AI will actually improve life for workers, or will it mostly just increase profits while making jobs more insecure?**
AI Trial in Darwin Women's Cricket: Decision Review System
AI Trial in Darwin Women's Cricket: Revolutionizing the Decision Review System The world of women's cricket is on the cusp of a technological revolution with th…