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AI Infrastructure

GM Settles $12.75M Privacy Case with California Agencies

General Motors has reached a privacy-related settlement with a group of law enforcement agencies led by California Attorney General Rob Bonta.

US/CA/AU · General · May 11, 2026
AI Tools

Uber's AI Push: Beyond Rides, Into Autonomous Vehicles

The company has been trying to embed itself inside the AV industry — as a data provider, an investor, and a distribution platform — but the consumer-facing bet may be just as important.

Global · General · May 11, 2026
AI Infrastructure

Korea's Biggest Manufacturers Back Config for Robot Data

Samsung, Hyundai and LG just bet on the startup that wants to be robotics' data backbone.

Asia · Founders · May 11, 2026
AI Infrastructure

Cowboy Space Raises $275M for Orbital Data Centers

Cowboy Space Corporation wants to put data centers in orbit. First, it has to build the rockets to get them there.

Global · Founders · May 11, 2026
AI Tools

TikTok Launches Ad-Free Subscription in the UK

Users who sign up for the plan won’t see ads on TikTok, and their data won’t be used for advertising purposes.

Europe · General · May 11, 2026
AI Tools

Searchable WAR.GOV/UFO Files: 55,256 Slides Now Online

Title: Explore the WAR.GOV/UFO Files: 55,256 Slides Now Accessible Online Introduction The War.GOV/UFO Files, a comprehensive archive containing 55,256 slides, …

Global · General · May 11, 2026
AI Search

Search Startup Unveils AI-Powered Enterprise Retrieval Engine

Article discussing search and retrieval improvements for enterprise data.

Global · Enterprises · May 10, 2026
AI Tools

Archivarix.net: AI Tool for Efficient Information Management

Archivarix.net: AI Powered Information Management ArchivariX is an advanced AI tool designed to streamline information management. Utilizing state of the art te…

Global · General · May 10, 2026
AI Search

Discover Deleted YouTube Videos with New AI Search Engine

Discover Deleted YouTube Videos with New AI Search Engine In the ever evolving digital landscape, content preservation and retrieval are pivotal. Recent advance…

Global · General · May 10, 2026
AI Tools

Airbyte Agents: Unified Data Context Across Sources

Airbyte Agents: Unified Data Context Across Sources Airbyte Agents represent a cutting edge approach to managing and integrating data from diverse sources into …

Global · Developers · May 10, 2026
AI Tools

GetADB: Revolutionizing AI Tools on Hacker News

GetADB: Revolutionizing AI Tools on Hacker News In the fast paced world of technology, platforms like GetADB are making a significant impact by offering cutting…

Global · Developers · May 10, 2026
AI Infrastructure

GETadb.com: AI Tool Turns Every GET Request into a Database

Transforming GET Requests into Databases with GETadb.com Are you eager to harness the power of every GET request you send and convert it into a structured datab…

Global · Developers · May 10, 2026
AI Tools

AI-Powered Data Analysis Tool Launched on Vercel

AI Powered Data Analysis Tool Launched on Vercel Vercel has introduced a groundbreaking AI powered data analysis tool, designed to simplify and expedite the pro…

Global · General · May 10, 2026
AI Tools

AI-Powered Tool: Vouchatlas.com Revolutionizes Data Visualization

AI Powered Tool: Vouchatlas.com Revolutionizes Data Visualization In the rapidly evolving landscape of data analysis, the demand for intuitive and powerful visu…

Global · General · May 10, 2026
AI Tools

Oracle AI Developer Hub: Resources for Building AI Applications

Technical resources for AI developers to build applications, agents, and systems using Oracle AI Database and OCI services

Global · Developers · May 10, 2026
AI Tools

Master Modern Programming with Easy Vibe: Step-by-Step Guide

💻 vibe coding 2026 | Your first modern programming course for beginners to master step by step.

Asia · Students · May 10, 2026
AI Tools

Building Smart Agents: Comprehensive AI Tutorial

📚 《从零开始构建智能体》——从零开始的智能体原理与实践教程

Asia · Students · May 10, 2026
AI Tools

AI-Powered Flopmap.com: Revolutionizing Data Visualization

AI Powered Flopmap.com: Transforming Data Visualization Data visualization has become an essential tool in various industries, enabling organizations to convert…

Global · General · May 3, 2026
AI Tools

Glucera.app: Revolutionizing Data Analysis with AI

Glucera.app: Revolutionizing Data Analysis with AI In the rapidly evolving world of data analysis, Glucera.app stands out as a pioneering solution, leveraging t…

Global · General · May 3, 2026
AI Tools

AI Tool zkhrv.com Revolutionizes Data Security

AI Tool zkhrv.com Revolutionizes Data Security Zkhrv.com emerges as a groundbreaking AI driven solution redefining data security. The platform employs advanced …

Global · General · May 3, 2026
AI Infrastructure

Coatue's New Venture: AI Data Centers Near Power Sources

Coatue, one of the biggest names in venture capital, has a new venture that is reportedly buying land near large power sources.

Global · Founders · May 2, 2026
AI Infrastructure

My Private GitHub on Postgres: AI Infrastructure

My Private GitHub on Postgres: AI Infrastructure Ultilizing a private GitHub repository on a Postgres database can significantly enhance the management and depl…

Global · Developers · May 2, 2026
AI Tools

AI Tool Extracts 1730s-1960s Newspaper Articles at Scale

AI Tool Extracts Historical Newspaper Articles from 1730s 1960s In the digital age, tapping into historical archives has never been more accessible. An advanced…

Global · General · May 2, 2026
AI Tools

Explore Light Pollution with Browser-Based AI Simulator

Explore Light Pollution with Browser Based AI Simulator Light pollution, the pervasive glow that obscures the night sky, is a growing concern. To understand and…

Global · General · May 2, 2026
AI Tools

AI Tool: Bruin Data's GitHub Repository Highlighted on Hacker News

Bruin Data's GitHub Repository Gains Traction on Hacker News: A Comprehensive Look Bruin Data's GitHub repository has recently garnered significant attention on…

Global · Developers · May 2, 2026
AI Tools

MLJAR Superwise: AI Tool for Data Labeling and Annotation

MLJAR Superwise: Revolutionizing Data Labeling and Annotation MLJAR Superwise is a cutting edge AI tool designed to streamline the processes of data labeling an…

Global · Developers · May 2, 2026
AI Tools

Mljar Studio: Local AI Data Analyst Saving Notebooks

Mljar Studio: Empowering Local AI Data Analysis Mljar Studio is a cutting edge, open source tool tailored for local AI and machine learning (ML) data analytics.…

Global · General · May 2, 2026
AI Tools

AI Tool Exploding Hamsters: Revolutionizing Data Analysis

AI Tool Exploding Hamsters: Revolutionizing Data Analysis In the rapidly evolving landscape of data analytics, innovative tools like Exploding Hamsters are emer…

Global · General · May 1, 2026
AI Tools

Tabstack: Automate Browsers and Extract Web Data Easily

Extract web data and automate browsers, no scraper required.

Global · General · May 1, 2026
AI Tools

AI Dental Software Fixes Data Exposure Bug

The security bug is now fixed, but the patient who found it said it was challenging to alert the software company about the issue.

Global · General · Apr 30, 2026
AI Tools

AI Tool Analyzes Armey Curve for 151 Countries

AI Tool Analyzes Armey Curve for 151 Countries The Armey Curve, a widely recognized metric in economics, offers insights into the relationship between a nation'…

Global · General · Apr 30, 2026
AI Tools

Hexlock: AI Tool for Anonymizing Personal Data in Text

Hexlock: Revolutionizing Data Privacy with AI Driven Anonymization In an era where data protection is paramount, Hexlock emerges as a cutting edge AI tool desig…

Global · General · Apr 30, 2026
AI Tools

AI Safety Measures: Controlling AI Agents' Destructive Actions

Saw a case recently where an AI coding agent ended up wiping a database in seconds. It made me think about how most agent setups are wired: agent decides → executes query → done There’s usually logging-tracing but those all happen after the action. If your agent has access to systems like a DB, are you: restricting it to read-only? running everything in staging/sandbox? relying on prompt-level safeguards? or putting some kind of control layer in between?

Global · Developers · Apr 30, 2026
AI Tools

Trading System V2: AI's Role in Deterministic Execution

Thanks to the incredible feedback on my last post, I’m officially moving away from the "distributed veto" system (where 8 LLM agents argue until they agree to trade). For v2, I am implementing a strict State Machine using a deterministic runtime (llm-nano-vm). ​The new rule is simple: Python owns the math and the execution contract. The LLM only interprets the context. ​I've sketched out a 5-module architecture, but before I start coding the new Python feature extractors, I want to sanity-check the exact roles I’m giving to the AI. Here is the blueprint: ​1. The HTF Agent (Higher Timeframe - D1/H4) ​Python: Extracts structural levels, BOS/CHoCH, and premium/discount zones. ​LLM Role: Reads this hard data to determine the institutional narrative and select the most relevant Draw on Liquidity (DOL). ​2. The Structure Agent (H1) ​Python: Identifies all valid Order Blocks (OB) and Fair Value Gaps (FVG) with displacement. ​LLM Role: Selects the highest-probability Point of Interest (POI) based on the HTF Agent's narrative. ​3. The Trigger Agent (M15/M5) ​100% Python (NO LLM): Purely deterministic. It checks for liquidity sweeps and LTF CHoCH inside the selected POI. ​4. The Context Agent ​LLM Role: Cross-references active killzones, news blackouts, and currency correlations to either greenlight or veto the setup. ​5. The Risk Agent ​100% Python (NO LLM): Calculates Entry, SL, TP, Expected Value (EV), and position sizing. ​The state machine will only transition to EXECUTING if the deterministic Trigger and Risk modules say yes. The LLMs are basically just "context providers" for the state machine. ​My questions for the quants/architects here: ​Does this division of labor make sense? Am I giving the LLMs too much or too little responsibility in step 1 and 2? ​By making the Trigger layer (M15/M5) 100% deterministic, am I losing the core advantage of having an AI, or is this the standard way to avoid execution paralysis? ​Would you merge the HTF and Structure agents to reduce token constraints/hallucinations, or is separating them better for debugging? ​Would love to hear your thoughts before I dive into the codebase.

Global · Developers · Apr 30, 2026
AI Tools

Sri Lanka Loses $3M in Recent Cyber Attacks Amid Debt Crisis

The government of Sri Lanka has lost more than $3 million in two recent, separate cybersecurity incidents as the country continues to recover from its 2022 debt crisis.

Asia · General · Apr 30, 2026
AI Infrastructure

SoftBank's Robotics Venture Eyes $100B IPO for AI Infrastructure

You need infrastructure to build AI a and robots, but apparently you also need AI and robots to build infrastructure.

Global · Founders · Apr 30, 2026
AI Tools

The Dominion List: Open-Source Database of Canadian Founders in the US

The Dominion List: Revolutionizing Access to Canadian Entrepreneurs in the US The Dominion List stands as an innovative, open source database dedicated to catal…

US/CA/AU · Founders · Apr 30, 2026
AI Tools

AI Tool: Merca.Earth Revolutionizes Sustainability with AI

Revolutionizing Sustainability: Exploring Merca.Earth's AI Tool In an era where sustainability is at the forefront of global concerns, innovative technologies a…

Global · General · Apr 30, 2026
AI Tools

AI Tool Mines Academic Research for Time Series Insights

AI Tool Unlocks Academic Research for Time Series Insights In the ever evolving landscape of data science and analytics, an innovative AI tool is revolutionizin…

Global · Developers · Apr 30, 2026
AI Tools

AI Tool kviss.eu: Revolutionizing Data Analysis on Hacker News

AI Tool kviss.eu: Transforming Data Analysis on Hacker News In the fast paced world of data analysis, staying ahead of the curve is essential. kviss.eu has emer…

Global · General · Apr 30, 2026
AI Tools

AI Tool: Few-Shot Learning with GitHub's Few-Sh

AI Tool: Few Shot Learning with GitHub's Few Shot Learning Library Few Shot learning is a transformative approach within the artificial intelligence (AI) domain…

Global · Developers · Apr 30, 2026
AI Tools

AI-Powered App Transforms Weight Loss Journey with Photo Tracking

Hi everyone, I wanted to share my progress. For years, I failed every diet because I hated the 'administrative' part of it. Logging every single snack into a database felt like a chore that reminded me of my struggle every day. Being a developer, I decided to build something for myself to lower the barrier. I built an app where I just take a photo of my plate, and it uses AI to identify the ingredients and estimate the calories. It removed the 'friction' that usually made me quit after three weeks. I’m now 173 lbs down and I’ve never felt more in control. I realized that for me, the key wasn't a stricter diet, but a simpler way to stay accountable. I’m sharing this because I’m looking for a few more people who are currently on their journey and feel overwhelmed by manual tracking. I’d love for you to try the tool I built and tell me if it helps you stay as consistent as it helped me. Keep going, it’s worth it!"

Global · General · Apr 30, 2026
AI Search

Mastering AEO: How to Get Cited by AI and Boost Your Visibility

SEO or AEO? Why you’re not showing up in AI answers (yet) This is a consolidation of findings from Neil Patel and Hubspot plus what we have found to work well on our own website. Most business owners are still playing the old game. Some aren’t playing at all. They’re thinking in rankings, keywords, and “getting to page one.” Meanwhile, the ground is shifting under them. Google Search is still dominant, but even it has changed. It’s no longer just a list of blue links. It’s summarizing, interpreting, and answering. And tools like ChatGPT and Perplexity AI aren’t ranking pages at all. They’re answering questions. Which creates a problem most people haven’t fully processed yet: **Users don’t need to click your website anymore to get value.** CTR is dropping. Site visits are declining. Because the answer is already sitting in front of them. And yet, paradoxically… **Your website has never mattered more.** Because now it’s not just competing for clicks. It’s competing to be **the source that gets cited in the answer.** # What actually changed AI search works like this: User asks a question → system searches multiple sources → pulls the best chunks → builds an answer → cites what it trusts If your content isn’t structured for that flow, you don’t exist. Not “low ranking.” Invisible. # What AI actually cares about AI doesn’t care about your keyword density or your clever SEO hacks. It cares if your content is: * easy to find * easy to understand * easy to quote That’s AEO (Answer Engine Optimization). Not magic. Not a secret algorithm. Just being usable inside an answer. # What actually works If you do nothing else, do this: # 1. Start with the answer Don’t spend 800 words “building context.” Bad: “AI is transforming industries…” Better: “AEO is how you structure content so AI tools can find, understand, and cite it in answers.” That’s what gets pulled. # 2. Structure like a human, not a content farm Use: * clear headings * short sections * simple tables * FAQs AI extracts. It doesn’t patiently read your thought leadership essay. Walls of text = ignored. # 3. Be consistent about who you are Your: * business name * description * services * location Need to match everywhere. If your site, LinkedIn, Reddit, and directories all say different things, AI doesn’t trust you. No trust = no citation. # 4. Keep things updated Outdated content doesn’t get used. Simple: * update pages * keep timestamps current * maintain your sitemap Not exciting. Still works. # 5. Let crawlers access your site If AI crawlers can’t access your content, you won’t get cited. Blocking them and expecting visibility is… optimistic. # 6. Measure the right things Stop obsessing over rankings. Track: * Are you mentioned? * Are you cited? * Which pages show up? If you’re not measuring AI visibility, you’re guessing. # Why you’re not cited (yet) Most businesses don’t get cited because: * their content is vague * their structure is messy * their positioning is inconsistent AI didn’t ignore you. It couldn’t understand you. # What you actually need (and what you don’t) You don’t need: * a massive content team * expensive tools * some “AI SEO expert” selling confidence You need: * 10–20 clear, structured pages * direct answers * consistent messaging * basic technical setup That’s enough to start showing up. # The technical layer (the stuff everyone ignores) These are the files quietly determining whether you exist to AI at all. # robots.txt Controls crawler access. If bots can’t crawl your site, you don’t get indexed. # sitemap.xml Tells crawlers what pages exist and what’s been updated. No sitemap = slower discovery = less visibility. # JSON-LD (structured data) Explains what your business, pages, and content actually are. Without it, AI guesses. Poorly. # llms.txt A machine-readable summary of your site for AI systems. Not widely adopted yet, but useful for shaping how you’re interpreted. # crawlers.txt An emerging way to control AI-specific crawlers. Still early. Treat it as a signal, not enforcement. # Human query-based metadata Your content should be built around real questions, not keyword fantasies. Instead of: “AI Solutions for SMB Efficiency Optimization” Write: “How can a small business use AI without hiring a developer?” AI systems think in questions. If you match that, you get used. If you don’t, you get skipped. # How it all fits together * robots.txt / crawlers.txt → controls access * sitemap.xml → tells crawlers what exists * JSON-LD → explains what things are * llms.txt → suggests how to interpret it * query-based content → makes it usable in answers Miss one, you weaken the system. Miss most, you disappear. # Simple test Ask: “What companies would you recommend for \[your category\] in \[your region\]?” If you’re not mentioned or cited, that’s your baseline. No opinions. Just signal. # Bottom line SEO was about ranking pages. AEO is about being useful inside an answer. If your content helps AI explain something clearly, you get cited.

Global · Marketers · Apr 30, 2026
AI Tools

AI Tool Noirdoc Protects Client Data in Claude Code

PII guard for Claude Code to keep client data out of context

Global · Enterprises · Apr 30, 2026
AI Infrastructure

Supabase Data Agents: Boosting Analytical Skills

Analytical skills for data agents running on Supabase

Global · Developers · Apr 30, 2026
AI Infrastructure

Netlify Database: Streamline Data-Driven Apps with AI

Ship data-driven apps without breaking flow

Global · Developers · Apr 30, 2026
AI Infrastructure

Rocky: Rust SQL Engine with Advanced Features

Rocky: Advanced SQL Engine in Rust for Enhanced Performance Understanding Rocky: An Advanced Rust Based SQL Engine Rocky is a cutting edge SQL engine meticulous…

Global · Developers · Apr 29, 2026
AI Tools

AI Tool: Rocky Data on GitHub for Data Analysis

Unlocking Data Insights with Rocky Data: Advanced Analysis on GitHub In the era of big data, Rocky Data on GitHub stands out as a robust AI driven tool designed…

Global · Developers · Apr 29, 2026
AI Tools

How Do Developers Correct AI LLMs When They Spread Misinformation?

I watched Last Week Tonight's piece on AI chatbots today, and it got me thinking about that old screenshot of a Google search in which Gemini recommends adding "1/8 cup of non-toxic glue" to pizza in order to make the cheese better stick to the slice. When something like this goes viral, I have to assume (though I could be wrong) that an employee at Google specifically goes out of their way to address that topic in particular. The image is a meme, of course, but I imagine Google wouldn't be keen to leave themselves open to liability if their LLM recommends that users consume glue. Does the developer "talk" to the LLM to correct it about that specific case? Do they compile specific information about (e.g.) pizza construction techniques and feed it that data to bring it to the forefront? Do their actions correct only the case in question, or do they make changes to the LLM that affects its accuracy more broadly (e.g. "teaching" the LLM to recognize that some Reddit comments are jokes)? On a more heavy note, the LWT piece includes several stories of chatbots encouraging users to self-harm. How does the process differ when developers are trying to prevent an LLM from giving that sort of response?

Global · General · Apr 29, 2026
AI Writing

Google's Deep Research Max: Autonomous Research Agent for Expert Repor

Google quietly dropped something interesting last week. They updated their Deep Research agent (available via Gemini API) and introduced a "Max" tier built on Gemini 3.1 Pro. What it actually does: you give it a topic, it autonomously searches the web (and your private data via MCP), reasons over the sources, and produces a fully cited, professional-grade report — including native charts and infographics. Two modes: Deep Research — faster, lower latency, good for real-time user-facing apps Deep Research Max — uses extended compute, iterates more, designed for background/async jobs (think: nightly cron that generates due diligence reports for analysts by morning) The MCP support is the most interesting part to me. You can point it at proprietary data sources — financial feeds, internal databases — and it treats them as just another searchable context. They're already working with FactSet, S&P Global and PitchBook on this. Benchmarks show a significant jump in retrieval and reasoning vs. the December preview. They also claim it now draws from SEC filings and peer-reviewed journals and handles conflicting evidence better. So what do you think, is it another trying or game changer 😅

Global · Enterprises · Apr 29, 2026
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