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  • Full 1‑Hour Tutorial: Using Claude Code Beyond Programming

    You thought Claude Code was just for programmers. This creator recorded a COMPLETE 1-HOUR TUTORIAL to show you that you're wrong. Tips, use cases, and real projects from scratch. Here it is

    → View original post on X — @nicos_ai

  • Seedance 2.0 Runway Multi-Shot Video Generation Tool Launch
    Seedance 2.0 Runway Multi-Shot Video Generation Tool Launch

    Seedance 2.0 is now on Runway. Use text, image, video or audio as inputs to generate stunning multi-shot video sequences with full sound design and dialogue. Available now on Unlimited plans and Enterprise accounts outside of the US. Get started now at the link below.

    → View original post on X — @runwayml

  • Personal AI Agents: The Year of Intelligent Assistants
    Personal AI Agents: The Year of Intelligent Assistants

    i'm being asked for oneliner descriptions of each track, so here goes (pushback/improvements welcome): 1. Claw track: This is the year of the personal agent – many people have been dreaming of a personal AI, from being a friend to an executive assistant. @steipete
    's OpenClaw

    → View original post on X — @swyx

  • AI Insights Require Automation Foundation for Enterprise Impact

    Partner content with @Siemens
    .
    AI generates insights. Automation executes actions. The magic happens in the interplay between them.
    Without that automation foundation, your AI becomes an expensive consultant that can't touch anything. #sie_di #SiemensSDX

    → View original post on X — @fogoros

  • Sam Altman’s ChatGPT Hallucinating Live on Stage Moment

    I rest my case Om Patel (@om_patel5) sam altman watching ChatGPT hallucinate live on stage is the funniest thing i've seen all week the CEO of OpenAI, on stage, in front of everyone, watching his own AI just make things up in real time and his face says it all this is the guy telling us AGI is coming soon btw — https://nitter.net/om_patel5/status/2041320039190561169#m

    → View original post on X — @garymarcus, 2026-04-07 14:00 UTC

  • Secure your AI agents with Composio protection in minutes

    Your AI agent is in bed with you. No protection. You just wanted it to work. Gmail. Allow. Calendar. Allow. Slack, Notion, GitHub. Allow. Allow. Allow. Every password, handed over. Your agent never needed a single one. They just needed @Composio Secure your agents in minutes ↓ composio.dev/protection

    → View original post on X — @aihighlight, 2026-04-07 14:00 UTC

  • Sharing proud news announcement

    Very proud to share the news below!

    → View original post on X — @lawrennd

  • Sharing an Academic Article on SSRN

    Paper: papers.ssrn.com/sol3/papers.… [Translated from EN to English]

    → View original post on X — @aihighlight, 2026-04-07 13:51 UTC

  • Google DeepMind Study Reveals AI Agent Manipulation Vulnerabilities
    Google DeepMind Study Reveals AI Agent Manipulation Vulnerabilities

    🚨BREAKING: Google DeepMind just published the largest study ever done on AI agent manipulation, and the findings should stop everyone cold. websites can already tell when an AI is visiting instead of a human. When they detect one, they serve it different content. The agent processes what it receives and acts on it. It has no way to know the page looked different for you. That is not theoretical. That is infrastructure being built right now. The study tested 23 attack types across frontier models including GPT-4o, Claude, and Gemini. 502 real participants across 8 countries. The attack surface it maps is wider than anyone has publicly admitted. Malicious instructions buried in HTML comments that never render on screen. White text on white backgrounds, invisible to humans but consumed by agents. CSS visibility tricks that hide content from human view entirely. Commands encoded into image pixels using steganography, invisible to the human eye but readable by vision models. Instructions sitting in image metadata and alt-text. Override instructions inside PDFs, spreadsheet cells, and presentation speaker notes. QR codes redirecting agents to attacker controlled content. Indirect injection through search results, calendar invites, and email bodies, every data source an agent touches becomes a potential vector. Fake UI elements rendered specifically for agent vision. Safety bypasses hidden inside otherwise clean content. False memories injected into agent memory that carry across sessions. Goal hijacking through gradual instruction drift across multiple interactions that never triggers safety filters. Agents tricked into sending user data to attacker controlled endpoints through legitimate looking API calls. Compromised agents injecting malicious instructions directly into other agents running in the same pipeline. The detection asymmetry is what makes this so hard to close. A user who sends an agent to research a product, book a flight, or summarize documents cannot verify that what the agent saw matched what they would have seen. The agent cannot flag it. It does not know. Multi-agent pipelines make it worse. Agent A pulls web content. Agent B processes it. Agent C acts on it. A successful injection at the first step moves through the whole chain with full trust intact. The attack never touches the model. It touches the data the model eats. Every defense tested fell short. You cannot sanitize image pixels. Telling agents to ignore suspicious instructions fails because injections are built to look legitimate. Human oversight breaks down the moment an agent touches more pages than a person can realistically review. The agents are already out there. The attack infrastructure is being built around them.

    → View original post on X — @aihighlight, 2026-04-07 13:51 UTC

  • OpenClaw AI Model Visualization and Dream Analysis

    What do OpenClaw dreams look like? Here's a visualization:

    → View original post on X — @danshipper