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  • Citation Logo
    The Mental Models of Master Prompters: 10 Techniques for Advanced Prompting
    Publisher: AI News & Strategy
    2025-11-05

    The Mental Models of Master Prompters: 10 Techniques for Advanced Prompting

    (00:00) Teaching AI is really hard. Teaching advanced prompting is even harder. This video will make it easier. My goal is to equip you with an understanding of the mental models, the principles that advanced prompters use. We're going to go beyond t...
    (00:00) Teaching AI is really hard. Teaching advanced prompting is even harder. This video will make it easier. My goal is to equip you with an understanding of the mental models, the principles that advanced prompters use. We're going to go beyond t...

    Tags: prompt engineering

  • Citation Logo
    Noam Chomsky on Language Evolution and Semantic Internalism Philosophical Trials 14
    Publisher: Philosophical Trials
    2025-09-18

    Noam Chomsky on Language Evolution and Semantic Internalism Philosophical Trials 14

    In this interview, Noam Chomsky reflects on his intellectual journey, from his accidental introduction to linguistics to his revolutionary ideas about language as an internal cognitive system rather than merely a tool for communication. He contrast...
    In this interview, Noam Chomsky reflects on his intellectual journey, from his accidental introduction to linguistics to his revolutionary ideas about language as an internal cognitive system rather than merely a tool for communication. He contrast...

    Tags: language, syntax, semantics

  • Citation Logo
    Context Engineering vs. Prompt Engineering: Smarter AI with RAG & Agents
    Publisher: IBM Technology
    2025-09-08

    Context Engineering vs. Prompt Engineering: Smarter AI with RAG & Agents

    Prompt engineering is crafting the instruction text for an LLM (instructions, examples, formatting) to steer its output. Context engineering is the system-level work that programmatically assembles everything the model sees at inference—prompts, re...
    Prompt engineering is crafting the instruction text for an LLM (instructions, examples, formatting) to steer its output. Context engineering is the system-level work that programmatically assembles everything the model sees at inference—prompts, re...

    Tags: prompt engineering, rag, context engineering

  • Citation Logo
    7 AI Terms You Need to Know Agents RAG ASI More
    Publisher: IBM Technology
    2025-09-01

    7 AI Terms You Need to Know Agents RAG ASI More

    This video explains seven essential AI terms—Agentic AI, Large Reasoning Models, Vector Databases, RAG (Retrieval-Augmented Generation), MCP (Model Context Protocol), Mixture of Experts (MoE), and ASI (Artificial Superintelligence). It describes ho...
    This video explains seven essential AI terms—Agentic AI, Large Reasoning Models, Vector Databases, RAG (Retrieval-Augmented Generation), MCP (Model Context Protocol), Mixture of Experts (MoE), and ASI (Artificial Superintelligence). It describes ho...

    Tags: agentic ai

  • Citation Logo
    The "Boring" AI Business Model Making Millionaires in 2025
    Publisher: Ben AI
    2025-08-06

    The "Boring" AI Business Model Making Millionaires in 2025

    (00:00) In 2025, the AI automation agency market is around 11 billion. The SAS market around 300 billion. But there's a \$3 trillion market being disrupted by AI that nobody's talking about, the service industry. And while most attention in AI goes ...
    (00:00) In 2025, the AI automation agency market is around 11 billion. The SAS market around 300 billion. But there's a \$3 trillion market being disrupted by AI that nobody's talking about, the service industry. And while most attention in AI goes ...

    Tags: ai services

  • Citation Logo
    $2.4M of Prompt Engineering Hacks in 53 Mins (GPT, Claude)
    Publisher: Nick Saraev
    2025-08-06

    $2.4M of Prompt Engineering Hacks in 53 Mins (GPT, Claude)

    (00:00) Here is 6 years of prompt engineering in 53 minutes. I started working with AI in 2019 using GPT-2. Since then, I’ve built several service and consulting businesses: one did \$92,000 a month, another $72,000 a month, and my current one did...
    (00:00) Here is 6 years of prompt engineering in 53 minutes. I started working with AI in 2019 using GPT-2. Since then, I’ve built several service and consulting businesses: one did \$92,000 a month, another $72,000 a month, and my current one did...

    Tags: prompt engineering

  • Citation Logo
    The Problem With ChatGPT
    Publisher: Novara Media
    2025-08-05

    The Problem With ChatGPT

    In this conversation, host Aaron Bastani interviews AI critic Gary Marcus about the real risks of current large language models and the challenges of bringing about safe, aligned AI. Gary explains that while LLMs offer impressive capabilities, they...
    In this conversation, host Aaron Bastani interviews AI critic Gary Marcus about the real risks of current large language models and the challenges of bringing about safe, aligned AI. Gary explains that while LLMs offer impressive capabilities, they...

    Tags: artificial intelligence, chatgpt

  • Citation Logo
    Can AI Think? Debunking AI Limitations
    Publisher: IBM Technology
    2025-07-27

    Can AI Think? Debunking AI Limitations

    In this video, IBM Technology tackles the big question—can AI truly think? The discussion debunks common misconceptions about artificial intelligence and explores its reasoning capabilities and limitations.0:01 – Host (IBM Technology):Welcome to ...
    In this video, IBM Technology tackles the big question—can AI truly think? The discussion debunks common misconceptions about artificial intelligence and explores its reasoning capabilities and limitations.0:01 – Host (IBM Technology):Welcome to ...

    Tags: reasoning, llm, pattern matching

  • Citation Logo
    Context Optimization vs LLM Optimization: Choosing the Right Approach
    Publisher: IBM Technology
    2025-07-26

    Context Optimization vs LLM Optimization: Choosing the Right Approach

    This video explains two key approaches to optimizing large language models (LLMs): context optimization (using prompt engineering and retrieval augmented generation or RAG) and model optimization through fine tuning. Using a retail store analogy, the...
    This video explains two key approaches to optimizing large language models (LLMs): context optimization (using prompt engineering and retrieval augmented generation or RAG) and model optimization through fine tuning. Using a retail store analogy, the...

    Tags: prompt engineering, rag, llm

  • Citation Logo
    How Large Language Models Work
    Publisher: IBM Technology
    2025-07-25

    How Large Language Models Work

    This video explains what large language models (LLMs) are, how they work, and their practical business applications. It covers the foundation of LLMs in pre-training with vast amounts of data, transformer architecture, and iterative training method...
    This video explains what large language models (LLMs) are, how they work, and their practical business applications. It covers the foundation of LLMs in pre-training with vast amounts of data, transformer architecture, and iterative training method...

    Tags: llm, transformers

  • Citation Logo
    Benefits of Sales Enablement
    Publisher: HubSpot
    2025-07-17

    Benefits of Sales Enablement

    This post explains how sales enablement—providing your sales team with the right knowledge, content, and tools—can drive increased revenue, efficiency, and overall success. It outlines what sales enablement is, details its benefits such as impr...
    This post explains how sales enablement—providing your sales team with the right knowledge, content, and tools—can drive increased revenue, efficiency, and overall success. It outlines what sales enablement is, details its benefits such as impr...

    Tags: content library, sales enablement

  • Citation Logo
    What is a Context Window? Unlocking LLM Secrets
    Publisher: IBM Technology
    2025-07-17

    What is a Context Window? Unlocking LLM Secrets

    (00:00) In the context of large language models. What is a context window? Well, it's the equivalent of its working memory. It determines how long of a conversation the LLM can carry out without forgetting details from earlier in the exchange. And a...
    (00:00) In the context of large language models. What is a context window? Well, it's the equivalent of its working memory. It determines how long of a conversation the LLM can carry out without forgetting details from earlier in the exchange. And a...

    Tags: llm, hallucination, context window, tokenization

  • Citation Logo
    AI Inference: The Secret to AI's Superpowers
    Publisher: IBM technology
    2025-07-17

    AI Inference: The Secret to AI's Superpowers

    (00:01) What is inferencing. It's an AI model's time to shine its moment of truth, a test of how well the model can apply information learned during training to make a prediction or solve a task. And with it comes a focus on cost and speed. Let's ...
    (00:01) What is inferencing. It's an AI model's time to shine its moment of truth, a test of how well the model can apply information learned during training to make a prediction or solve a task. And with it comes a focus on cost and speed. Let's ...

    Tags: artificial intelligence, inferencing

  • Citation Logo
    What is AI Search? The Evolution from Keywords to Vector Search & RAG
    Publisher: IBM Technology
    2025-07-14

    What is AI Search? The Evolution from Keywords to Vector Search & RAG

    (00:00) AI search is transforming how we locate and consume information online, but how? Well, back in the day, search engines were pretty simple because they were based more or less just on keyword search. They matched words in a user's query to ...
    (00:00) AI search is transforming how we locate and consume information online, but how? Well, back in the day, search engines were pretty simple because they were based more or less just on keyword search. They matched words in a user's query to ...

    Tags: search, rag, seo, keyword search, geo, vectory search

  • Citation Logo
    How to Make AI More Accurate: Top Techniques for Reliable Results
    Publisher: IBM Technology
    2025-06-30

    How to Make AI More Accurate: Top Techniques for Reliable Results

    In this video, IBM Technology explains several techniques to improve AI accuracy. The speakers discuss methods such as Retrieval Augmented Generation (RAG), choosing the proper model, Chain of Thought prompting, LLM chaining, Mixture of Experts (MoE...
    In this video, IBM Technology explains several techniques to improve AI accuracy. The speakers discuss methods such as Retrieval Augmented Generation (RAG), choosing the proper model, Chain of Thought prompting, LLM chaining, Mixture of Experts (MoE...

    Tags: rag, hallucination

  • Citation Logo
    Everyone is Lying About AI - Heres Proof
    Publisher: Brendan Dell
    2025-06-29

    Everyone is Lying About AI - Heres Proof

    0:00 Brendan: Apple recently released a research report claiming to debunk much of the hype around the current AI craze. The report, entitled "The Illusion of Thinking: Understanding the Strengths and Limitations of Reasoning Models via the Lens of P...
    0:00 Brendan: Apple recently released a research report claiming to debunk much of the hype around the current AI craze. The report, entitled "The Illusion of Thinking: Understanding the Strengths and Limitations of Reasoning Models via the Lens of P...

    Tags: reasoning, ai reasoning

  • Citation Logo
    Mechanistic Interpretability: A Whirlwind Tour
    Publisher: FAR.AI
    2025-06-24

    Mechanistic Interpretability: A Whirlwind Tour

    Neel Nanda presents a tour of mechanistic interpretability, arguing that machine learning models develop human-comprehensible algorithms even without explicit guidance. He explains how techniques like sparse autoencoders help uncover hidden model str...
    Neel Nanda presents a tour of mechanistic interpretability, arguing that machine learning models develop human-comprehensible algorithms even without explicit guidance. He explains how techniques like sparse autoencoders help uncover hidden model str...

    Tags: mechanistic interpretability

  • Citation Logo
    Mechanistic Interpretability explained
    Publisher: Lex Fridman
    2025-06-24

    Mechanistic Interpretability explained

    In this discussion, Chris Olah explains mechanistic interpretability, a field focused on understanding the algorithms inside neural networks by “growing” them rather than programming them directly. He walks through how features and circuits emerg...
    In this discussion, Chris Olah explains mechanistic interpretability, a field focused on understanding the algorithms inside neural networks by “growing” them rather than programming them directly. He walks through how features and circuits emerg...

    Tags: artificial intelligence, mechanistic interpretability

  • Citation Logo
    AI vs Human Thinking: How Large Language Models Really Work
    Publisher: IBM Technology
    2025-06-23

    AI vs Human Thinking: How Large Language Models Really Work

    This video compares AI and human cognition, exploring key differences in learning, information processing, memory, reasoning, error, and embodiment. It explains that while humans learn dynamically and interact with the world through sensory experienc...
    This video compares AI and human cognition, exploring key differences in learning, information processing, memory, reasoning, error, and embodiment. It explains that while humans learn dynamically and interact with the world through sensory experienc...

    Tags: ai vs humans

  • Citation Logo
    Nobel Laureate Busts the AI Hype
    Publisher: MIT
    2025-06-10

    Nobel Laureate Busts the AI Hype

    MIT economist Daron Acemoglu argues that, despite the hype, AI is unlikely to automate more than about 5% of tasks or add more than 1% to global GDP this decade. He advises business leaders to focus on using AI to augment human expertise and create...
    MIT economist Daron Acemoglu argues that, despite the hype, AI is unlikely to automate more than about 5% of tasks or add more than 1% to global GDP this decade. He advises business leaders to focus on using AI to augment human expertise and create...

    Tags: artificial intelligence, ai hype

  • Citation Logo
    AI Snake Oil - Building and evaluating AI Agents
    Publisher: AI Engineer
    2025-06-09

    AI Snake Oil - Building and evaluating AI Agents

    The speaker discusses why AI agents often underperform in the real world, highlighting three main challenges: evaluation is difficult, static benchmarks are misleading, and reliability often lags behind capability. The talk emphasizes the need fo...
    The speaker discusses why AI agents often underperform in the real world, highlighting three main challenges: evaluation is difficult, static benchmarks are misleading, and reliability often lags behind capability. The talk emphasizes the need fo...

    Tags: ai agents

  • Citation Logo
    5 Types of AI Agents: Autonomous Functions and Real-World Applications
    Publisher: IBM Technology
    2025-06-07

    5 Types of AI Agents: Autonomous Functions and Real-World Applications

    This video explains five main types of AI agents—from simple reflex agents to adaptive learning agents—and how each operates using different decision-making processes in various environments. It also covers the evolution from rule-based systems t...
    This video explains five main types of AI agents—from simple reflex agents to adaptive learning agents—and how each operates using different decision-making processes in various environments. It also covers the evolution from rule-based systems t...

    Tags: agentic ai, ai agents

  • Citation Logo
    MCP vs API: Simplifying AI Agent Integration with External Data
    Publisher: IBM Technology
    2025-06-07

    MCP vs API: Simplifying AI Agent Integration with External Data

    This video explains the Model Context Protocol (MCP) and how it standardizes the integration of large language models (LLMs) with external data and tools, comparing it to traditional APIs. It also highlights MCP’s dynamic discovery, uniform interfa...
    This video explains the Model Context Protocol (MCP) and how it standardizes the integration of large language models (LLMs) with external data and tools, comparing it to traditional APIs. It also highlights MCP’s dynamic discovery, uniform interfa...

    Tags: agentic ai, ai agents, mcp, model context protocol

  • Citation Logo
    RAG vs Fine-Tuning vs Prompt Engineering: Optimizing AI Models
    Publisher: IBM Technology
    2025-06-07

    RAG vs Fine-Tuning vs Prompt Engineering: Optimizing AI Models

    This video explains three approaches to improving large language model outputs: Retrieval Augmented Generation (RAG), Fine-Tuning, and Prompt Engineering. It covers how each method works, the benefits they offer, and the trade-offs involved in applyi...
    This video explains three approaches to improving large language model outputs: Retrieval Augmented Generation (RAG), Fine-Tuning, and Prompt Engineering. It covers how each method works, the benefits they offer, and the trade-offs involved in applyi...

    Tags: prompt engineering, rag, fine tuning, gpt, model response

  • Citation Logo
    LangChain vs LangGraph: A Tale of Two Frameworks
    Publisher: IBM Technology
    2025-06-07

    LangChain vs LangGraph: A Tale of Two Frameworks

    This video compares LangChain and LangGraph—two open source frameworks for building applications with large language models. It explains each framework’s architecture, components, and state management approaches, and outlines the scenarios where ...
    This video compares LangChain and LangGraph—two open source frameworks for building applications with large language models. It explains each framework’s architecture, components, and state management approaches, and outlines the scenarios where ...

    Tags: rag, llm, long chain, long graph

  • Citation Logo
    What is a Vector Database? Powering Semantic Search & AI Applications
    Publisher: IBM Technology
    2025-06-07

    What is a Vector Database? Powering Semantic Search & AI Applications

    This video explains vector databases and how they enable semantic search by representing unstructured data like images, text, and audio as mathematical vector embeddings. The speaker details how data is transformed into high-dimensional vectors and e...
    This video explains vector databases and how they enable semantic search by representing unstructured data like images, text, and audio as mathematical vector embeddings. The speaker details how data is transformed into high-dimensional vectors and e...

    Tags: semantic search, vector database, semantic graph, vector embeddings

  • Citation Logo
    RAG Agents in Prod: 10 Lessons We Learned
    Publisher: AI Engineer
    2025-06-07

    RAG Agents in Prod: 10 Lessons We Learned

    Douwe Kiela, CEO of Contextual AI, shares his insights on deploying RAG agents in production for enterprises. He emphasizes that success depends on building robust systems around language models, specializing to capture enterprise expertise, and de...
    Douwe Kiela, CEO of Contextual AI, shares his insights on deploying RAG agents in production for enterprises. He emphasizes that success depends on building robust systems around language models, specializing to capture enterprise expertise, and de...

    Tags: rag agents

  • Citation Logo
    RAG vs. CAG: Solving Knowledge Gaps in AI Models
    Publisher: IBM Technology
    2025-06-07

    RAG vs. CAG: Solving Knowledge Gaps in AI Models

    This video explains two methods—Retrieval-Augmented Generation (RAG) and Cache-Augmented Generation (CAG)—to overcome the knowledge limitations of large language models. It details how each technique processes and utilizes external information, c...
    This video explains two methods—Retrieval-Augmented Generation (RAG) and Cache-Augmented Generation (CAG)—to overcome the knowledge limitations of large language models. It details how each technique processes and utilizes external information, c...

    Tags: rag, cag

  • Citation Logo
    AI Snake Oil What Artificial Intelligence Can Do, What It Cant, and How to Tell the Difference
    Publisher: MIT
    2025-06-06

    AI Snake Oil What Artificial Intelligence Can Do, What It Cant, and How to Tell the Difference

    (00:01) ASU OZDAGLAR  Opening Remarks "Maybe we should get started, right? Hi, everyone. It's a pleasure to welcome you to tonight's talk with Professor Arvind Narayanan. The Schwarzman College of Computing is honored to co-host this event with MI...
    (00:01) ASU OZDAGLAR  Opening Remarks "Maybe we should get started, right? Hi, everyone. It's a pleasure to welcome you to tonight's talk with Professor Arvind Narayanan. The Schwarzman College of Computing is honored to co-host this event with MI...

    Tags: artificial intelligence, ai agents

  • Citation Logo
    The Dark Matter of AI [Mechanistic Interpretability]
    Publisher: Welch Labs
    2025-06-05

    The Dark Matter of AI [Mechanistic Interpretability]

    This video explores how researchers use mechanistic interpretability—especially sparse autoencoders—to uncover hidden, human‐understandable features in large language models. It highlights the challenges of pinning down internal model behavio...
    This video explores how researchers use mechanistic interpretability—especially sparse autoencoders—to uncover hidden, human‐understandable features in large language models. It highlights the challenges of pinning down internal model behavio...

    Tags: mechanistic interpretability

  • Citation Logo
    5 Questions AI Can Never Answer for You
    Publisher: LinkedIn
    2025-05-25

    5 Questions AI Can Never Answer for You

    The article "5 Questions AI Can Never Answer for You" by Bill Jensen challenges professionals to take ownership of their own AI adoption in an increasingly automated workplace. Rather than waiting for companies to mandate AI upskilling, Jensen emph...
    The article "5 Questions AI Can Never Answer for You" by Bill Jensen challenges professionals to take ownership of their own AI adoption in an increasingly automated workplace. Rather than waiting for companies to mandate AI upskilling, Jensen emph...

    Tags: artificial intelligence, personal priorities

  • Citation Logo
    Philosophy Eats AI: What Leaders Should Know
    Publisher: MIT Sloan
    2025-05-20

    Philosophy Eats AI: What Leaders Should Know

    In this discussion, David Kiron and Michael Schrage argue that true AI success hinges not on technical sophistication alone but on grounding AI initiatives in solid philosophical frameworks—teleology (purpose), ontology (nature of being), and epist...
    In this discussion, David Kiron and Michael Schrage argue that true AI success hinges not on technical sophistication alone but on grounding AI initiatives in solid philosophical frameworks—teleology (purpose), ontology (nature of being), and epist...

    Tags: artificial intelligence, philosophy, ai vs humans

  • Citation Logo
    What are good open rates CTRs CTORs for email campaigns
    Publisher: Campaign Monitor
    2025-05-13

    What are good open rates CTRs CTORs for email campaigns

    This post provides an in‐depth look at the most critical email marketing metrics—open rate, click-through rate (CTR), and click-to-open rate (CTOR)—explaining what each metric means, how they are calculated, and what constitutes a “good” p...
    This post provides an in‐depth look at the most critical email marketing metrics—open rate, click-through rate (CTR), and click-to-open rate (CTOR)—explaining what each metric means, how they are calculated, and what constitutes a “good” p...

    Tags: email marketing

  • Citation Logo
    The State of Email Newsletters by beehiiv (2025)
    Publisher: beehiiv Blog
    2025-05-09

    The State of Email Newsletters by beehiiv (2025)

    The webpage presents beehiiv’s comprehensive 2025 State of Email Newsletters report, highlighting major industry trends, detailed performance statistics, and actionable strategies for creators, publishers, and businesses. Key points include:• Th...
    The webpage presents beehiiv’s comprehensive 2025 State of Email Newsletters report, highlighting major industry trends, detailed performance statistics, and actionable strategies for creators, publishers, and businesses. Key points include:• Th...

    Tags: study, newsletters

  • Citation Logo
    Lost in the Hype: AI Will Never Become Conscious
    Publisher: This Is World
    2025-05-05

    Lost in the Hype: AI Will Never Become Conscious

    0:00 – Roger Penrose: You have to be careful. First, the name is wrong. It’s not artificial intelligence—it’s not intelligence. True intelligence involves consciousness. I’ve always promoted the idea that these devices are not conscious an...
    0:00 – Roger Penrose: You have to be careful. First, the name is wrong. It’s not artificial intelligence—it’s not intelligence. True intelligence involves consciousness. I’ve always promoted the idea that these devices are not conscious an...

    Tags: artificial intelligence, ai vs humans, consciousness

  • Citation Logo
    What is Explainable AI
    Publisher: SEI Blog
    2025-04-22

    What is Explainable AI

    There is a whole field in AI Study called Interpretability / Explainable AI. It turns out that engineers don't really know how AI is generating its answers. The blog post "What is Explainable AI?" by Violet Turri explores the concept and significan...
    There is a whole field in AI Study called Interpretability / Explainable AI. It turns out that engineers don't really know how AI is generating its answers. The blog post "What is Explainable AI?" by Violet Turri explores the concept and significan...

    Tags: llm, transparency

  • Citation Logo
    Comprehensive Guide to Prompt Engineering
    Publisher: Google
    2025-04-22

    Comprehensive Guide to Prompt Engineering

    The document is a comprehensive guide on "Prompt Engineering," authored by Lee Boonstra and contributed to by various experts. It provides insights into crafting effective prompts for large language models (LLMs), particularly focusing on the Gemini ...
    The document is a comprehensive guide on "Prompt Engineering," authored by Lee Boonstra and contributed to by various experts. It provides insights into crafting effective prompts for large language models (LLMs), particularly focusing on the Gemini ...

    Tags: prompt engineering

  • Citation Logo
    Metas AI Boss Says He DONE With LLMS...
    Publisher: The AI Drid
    2025-04-16

    Metas AI Boss Says He DONE With LLMS...

    Yann LeCun says LLMs are limited for reaching AGI because text/next-token prediction can't capture the continuous, high-dimensional physical world. He advocates world models — joint embedding predictive architectures (e.g., VJepa) that learn abstra...
    Yann LeCun says LLMs are limited for reaching AGI because text/next-token prediction can't capture the continuous, high-dimensional physical world. He advocates world models — joint embedding predictive architectures (e.g., VJepa) that learn abstra...

    Tags: ai reasoning, llm, artificial general intelligence

  • Citation Logo
    AI Agents Clearly Explained
    Publisher: YouTube
    2025-04-08

    AI Agents Clearly Explained

    0:03 – Jeff Su:“AI. Agentic capabilities. An AI agent. Agentic workflows. Most explanations of AI agents are either too technical or too basic. This video is for people with no technical background who use AI tools.”0:30 – Jeff Su:“You want...
    0:03 – Jeff Su:“AI. Agentic capabilities. An AI agent. Agentic workflows. Most explanations of AI agents are either too technical or too basic. This video is for people with no technical background who use AI tools.”0:30 – Jeff Su:“You want...

    Tags: ai agents

  • Citation Logo
    Anthropics Fair Use Boomerang
    Publisher: luiza newsletter
    2025-03-31

    Anthropics Fair Use Boomerang

    The blog post by Luiza Jarovsky focuses on a legal situation involving Anthropic and its recent court filings in response to a copyright lawsuit related to AI. The main arguments presented in the post highlight Anthropic's claims regarding the tran...
    The blog post by Luiza Jarovsky focuses on a legal situation involving Anthropic and its recent court filings in response to a copyright lawsuit related to AI. The main arguments presented in the post highlight Anthropic's claims regarding the tran...

    Tags: openai, llm, copyrights

  • Citation Logo
    Prompt Engineering
    Publisher: openAI
    2025-03-11

    Prompt Engineering

    This guide provides strategies to improve responses from large language models like GPT-4o. Experimentation is encouraged to find the most effective methods. Six Strategies for Better Results 1. Write Clear Instructions Models cannot infer your inte...
    This guide provides strategies to improve responses from large language models like GPT-4o. Experimentation is encouraged to find the most effective methods. Six Strategies for Better Results 1. Write Clear Instructions Models cannot infer your inte...

    Tags: prompt engineering

  • Citation Logo
    Can AI save local news? The promise and peril of AI-powered journalism
    Publisher: The Media Copilot
    2025-03-01

    Can AI save local news? The promise and peril of AI-powered journalism

    (00:00) Mark Riley:   I think people should lean into the people behind these paywalls—the personalities driving opinion. Those doing well on Substack will thrive in this environment. People will crave human intelligence and human opinion. I see...
    (00:00) Mark Riley:   I think people should lean into the people behind these paywalls—the personalities driving opinion. Those doing well on Substack will thrive in this environment. People will crave human intelligence and human opinion. I see...

    Tags: artificial intelligence, journalism

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3Blue1BrownAaron OrendorffAlexander EstnerAmanda SibleyAnastasia GolovashkinaAndy CrestodinaArt MurrayArvind NarayananAvinash AsthanaBarb Mosher ZinckbeehiivBeth GladstoneBill JensenBlake EmalBoyan StoykovskiBrendan DellBrent CsutorasBrian DeanBrian MortenCaroline DuncanCaroline ForseyChris BurnsChris MakaraChris OlahChristina NewberryChristopher ZaraClaudio ButticeCNETColin NewcomerCorey WainwrightCyrus ShepardDan ShipperDario AmodeiDaron AcemogluDavid BauderDavid KironDavid KlepperDiego PinedaDmitri BreretonDominic CumminsDouwe KielaDr Kondal Reddy KandadiEli PariserFabian PfortmüllerFarhad ManjooFlipbytesFlori NeedleForbes Communications CouncilFred MelansonGary MarcusHarry ClokeIme Amor MortelInfoDeskIwsnbakerJake AtheyJeff Sujeremiah_owyangJessica IwayemiJessie van BreugelJimmy KimmelJoe GannonJohn EspirianJon AccarrinoJon SchwarzJordan KretchmerJosh SternebrgJoy Olivia MillerJuan Francisco AguilarJulian HorseyJustin McGillKayla CarmichealKei WatanabeKevin IndigKyle LibraLee BoonstraLuiza JarovskyLuke SzkudlarekMarie EnnisMarissa BurdettMark PalmerMark RileyMark SchaferMarko BogdanovicMartin KeenMaruti TechlabsMassimo ChieruzziMatt DiggityMatt SilvermanMatthew RoyseMatthias BastianMaxim PoulsenMichael KingMichael SimmonsMichal PecánekMichelle MartinMindy SerinMorten Rand-HendriksenNate B JonesNavin ManaswiNeel NandaNeil MillerNick CostelloeNoam ChomskyOlivia DengPaul BradshawPaul HempPawan DeshpandePete PachalPeter BernsteinPeter BittnerPeter NilssonPrady KunaQuinn WhissenRay KurzweilReforgeRefuting IdiotsRichard FeynmanRishikesh SreehariRobin GoodRon MillerRon TracyRonald KaufmanRyan PriorSahana ChattopadhyaySam AltmanSandra ChungSayash KapoorScott RogersonSean StanleighSean TinneySebastien BubeckSeth AbramsonShiv SinghSimon SinekSir Roger PenroseSonia SimoneSophia BernazzaniSteven McDonaldThomas FrankTim El-SheikhTimothy CarterToby DanylchukToby WardTom TaulliTomaz BratanicTony HaileTori SimmonsTrevorTrevor LonginoTristan HandyViolet TurriWes McDowellYann LeCunZusanna Bocian

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