Difference between revisions of "ChatGPT"

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|title=PRIMO.ai
 
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|keywords=ChatGPT, artificial, intelligence, machine, learning, GPT-4, GPT-5, NLP, NLG, NLC, NLU, models, data, singularity, moonshot, Sentience, AGI, Emergence, Moonshot, Explainable, TensorFlow, Google, Nvidia, Microsoft, Azure, Amazon, AWS, Hugging Face, OpenAI, Tensorflow, OpenAI, Google, Nvidia, Microsoft, Azure, Amazon, AWS, Meta, LLM, metaverse, assistants, agents, digital twin, IoT, Transhumanism, Immersive Reality, Generative AI, Conversational AI, Perplexity, Bing, You, Bard, Ernie, prompt Engineering LangChain, Video/Image, Vision, End-to-End Speech, Synthesize Speech, Speech Recognition, Stanford, MIT |description=Helpful resources for your journey with artificial intelligence; videos, articles, techniques, courses, profiles, and tools   
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|keywords=ChatGPT, artificial, intelligence, machine, learning, GPT-4, GPT-5, NLP, NLG, NLC, NLU, models, data, singularity, moonshot, Sentience, AGI, Emergence, Moonshot, Explainable, TensorFlow, Google, Nvidia, Microsoft, Azure, Amazon, AWS, Hugging Face, OpenAI, Tensorflow, OpenAI, Google, Nvidia, Microsoft, Azure, Amazon, AWS, Meta, LLM, metaverse, assistants, agents, digital twin, IoT, Transhumanism, Immersive Reality, Generative AI, Conversational AI, Perplexity, Bing, You, Gemini, Ernie, prompt Engineering LangChain, Video/Image, Vision, End-to-End Speech, Synthesize Speech, Speech Recognition, Stanford, MIT |description=Helpful resources for your journey with artificial intelligence; videos, articles, techniques, courses, profiles, and tools   
  
 
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[https://www.bing.com/news/search?q=ai+ChatGPT&qft=interval%3d%228%22 ...Bing News]
 
[https://www.bing.com/news/search?q=ai+ChatGPT&qft=interval%3d%228%22 ...Bing News]
  
* [[Generative AI]] ... [[Conversational AI]] ... [[ChatGPT]] | [[OpenAI]] ... [[Bing]] | [[Microsoft]] ... [[Bard]] | [[Google]] ... [[Claude]] | [[Anthropic]] ... [[Perplexity]] ... [[You]] ... [[Ernie]] | [[Baidu]]
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* [[Conversational AI]] ... [[ChatGPT]] | [[OpenAI]] ... [[Bing/Copilot]] | [[Microsoft]] ... [[Gemini]] | [[Google]] ... [[Claude]] | [[Anthropic]] ... [[Perplexity]] ... [[You]] ... [[phind]] ... [[Grok]] | [https://x.ai/ xAI] ... [[Groq]] ... [[Ernie]] | [[Baidu]]
 +
* [[What is Artificial Intelligence (AI)? | Artificial Intelligence (AI)]] ... [[Generative AI]] ... [[Machine Learning (ML)]] ... [[Deep Learning]] ... [[Neural Network]] ... [[Reinforcement Learning (RL)|Reinforcement]] ... [[Learning Techniques]]
 
* Try [https://chat.openai.com/ ChatGPT here in your browser]    ... Note: there is an iPhone app, but not an Android app on June 1st, 2023
 
* Try [https://chat.openai.com/ ChatGPT here in your browser]    ... Note: there is an iPhone app, but not an Android app on June 1st, 2023
 
** [https://openai.com/blog/chatgpt/ ChatGPT |] [[OpenAI]]
 
** [https://openai.com/blog/chatgpt/ ChatGPT |] [[OpenAI]]
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* [[Large Language Model (LLM)]] ... [[Natural Language Processing (NLP)]]  ...[[Natural Language Generation (NLG)|Generation]] ... [[Natural Language Classification (NLC)|Classification]] ...  [[Natural Language Processing (NLP)#Natural Language Understanding (NLU)|Understanding]] ... [[Language Translation|Translation]] ... [[Natural Language Tools & Services|Tools & Services]]
 
* [[Large Language Model (LLM)]] ... [[Natural Language Processing (NLP)]]  ...[[Natural Language Generation (NLG)|Generation]] ... [[Natural Language Classification (NLC)|Classification]] ...  [[Natural Language Processing (NLP)#Natural Language Understanding (NLU)|Understanding]] ... [[Language Translation|Translation]] ... [[Natural Language Tools & Services|Tools & Services]]
 
* [[Prompt Engineering (PE)]] ...[[Prompt Engineering (PE)#PromptBase|PromptBase]] ... [[Prompt Injection Attack]]   
 
* [[Prompt Engineering (PE)]] ...[[Prompt Engineering (PE)#PromptBase|PromptBase]] ... [[Prompt Injection Attack]]   
 +
** [[Prompt Engineering (PE)#Chain of Reasoning (CoR) prompting | Chain of Reasoning (CoR) prompting]]
 +
* [[Embedding]] ... [[Fine-tuning]] ... [[Retrieval-Augmented Generation (RAG)|RAG]] ... [[Agents#AI-Powered Search|Search]] ... [[Clustering]] ... [[Recommendation]] ... [[Anomaly Detection]] ... [[Classification]] ... [[Dimensional Reduction]].  [[...find outliers]]
 
* [[Analytics]] ... [[Visualization]] ... [[Graphical Tools for Modeling AI Components|Graphical Tools]] ... [[Diagrams for Business Analysis|Diagrams]] & [[Generative AI for Business Analysis|Business Analysis]] ... [[Requirements Management|Requirements]] ... [[Loop]] ... [[Bayes]] ... [[Network Pattern]]
 
* [[Analytics]] ... [[Visualization]] ... [[Graphical Tools for Modeling AI Components|Graphical Tools]] ... [[Diagrams for Business Analysis|Diagrams]] & [[Generative AI for Business Analysis|Business Analysis]] ... [[Requirements Management|Requirements]] ... [[Loop]] ... [[Bayes]] ... [[Network Pattern]]
* [[Development]] ... [[Notebooks]] ... [[Development#AI Pair Programming Tools|AI Pair Programming]] ... [[Codeless Options, Code Generators, Drag n' Drop|Codeless, Generators, Drag n' Drop]] ... [[Algorithm Administration#AIOps/MLOps|AIOps/MLOps]] ... [[Platforms: AI/Machine Learning as a Service (AIaaS/MLaaS)|AIaaS/MLaaS]]
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* [[Development]] ... [[Notebooks]] ... [[Development#AI Pair Programming Tools|AI Pair Programming]] ... [[Codeless Options, Code Generators, Drag n' Drop|Codeless]] ... [[Hugging Face]] ... [[Algorithm Administration#AIOps/MLOps|AIOps/MLOps]] ... [[Platforms: AI/Machine Learning as a Service (AIaaS/MLaaS)|AIaaS/MLaaS]]
 +
* [[What is Artificial Intelligence (AI)? | Artificial Intelligence (AI)]] ... [[Generative AI]] ... [[Machine Learning (ML)]] ... [[Deep Learning]] ... [[Neural Network]] ... [[Reinforcement Learning (RL)|Reinforcement]] ... [[Learning Techniques]]
 
* [https://www.phind.com/ phind]  ... The AI search engine for developers
 
* [https://www.phind.com/ phind]  ... The AI search engine for developers
* [[Assistants]] ... [[Personal Companions]] ... [[Agents]] ... [[Negotiation]] ... [[LangChain]]
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* [[Agents]] ... [[Robotic Process Automation (RPA)|Robotic Process Automation]] ... [[Assistants]] ... [[Personal Companions]] ... [[Personal Productivity|Productivity]] ... [[Email]] ... [[Negotiation]] ... [[LangChain]]
* [[Gaming]] ... [[Game-Based Learning (GBL)]] ... [[Games - Security|Security]] ... [[Game Development with Generative AI|Generative AI]] ... [[Metaverse#Games - Metaverse|Metaverse]] ... [[Games - Quantum Theme|Quantum]] ... [[Game Theory]]
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* [[Gaming]] ... [[Game-Based Learning (GBL)]] ... [[Games - Security|Security]] ... [[Game Development with Generative AI|Generative AI]] ... [[Metaverse#Games - Metaverse|Games - Metaverse]] ... [[Games - Quantum Theme|Quantum]] ... [[Game Theory]]
* [[Python]]   ... [[Generative AI with Python]] ... [[Javascript]] ... [[Generative AI with Javascript]] ... [[Game Development with Generative AI]]
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* [[Python]] ... [[Generative AI with Python|GenAI w/ Python]] ... [[JavaScript]] ... [[Generative AI with JavaScript|GenAI w/ JavaScript]] ... [[TensorFlow]] ... [[PyTorch]]
* [[Excel]] ... [[LangChain#Documents|Documents]] ... [[Database]] ... [[Graph]] ... [[LlamaIndex]]
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* [[Excel]] ... [[LangChain#Documents|Documents]] ... [[Database|Database; Vector & Relational]] ... [[Graph]] ... [[LlamaIndex]]
* [[Singularity]] ... [[Artificial Consciousness / Sentience|Sentience]] ... [[Artificial General Intelligence (AGI)| AGI]] ... [[Inside Out - Curious Optimistic Reasoning| Curious Reasoning]] ... [[Emergence]] ... [[Moonshots]] ... [[Explainable / Interpretable AI|Explainable AI]] ...  [[Algorithm Administration#Automated Learning|Automated Learning]]
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* [[Artificial General Intelligence (AGI) to Singularity]] ... [[Inside Out - Curious Optimistic Reasoning| Curious Reasoning]] ... [[Emergence]] ... [[Moonshots]] ... [[Explainable / Interpretable AI|Explainable AI]] ...  [[Algorithm Administration#Automated Learning|Automated Learning]]
 
* [[In-Context Learning (ICL)]] ... [[Large Language Model (LLM)|LLM]]s understand to encode learning algorithms implicitly during their training processes  ... [[Context]]
 
* [[In-Context Learning (ICL)]] ... [[Large Language Model (LLM)|LLM]]s understand to encode learning algorithms implicitly during their training processes  ... [[Context]]
 +
* [[Memory]]
 
* [[Cybersecurity]] ... [[Open-Source Intelligence - OSINT |OSINT]] ... [[Cybersecurity Frameworks, Architectures & Roadmaps | Frameworks]] ... [[Cybersecurity References|References]] ... [[Offense - Adversarial Threats/Attacks| Offense]] ... [[National Institute of Standards and Technology (NIST)|NIST]] ... [[U.S. Department of Homeland Security (DHS)| DHS]] ... [[Screening; Passenger, Luggage, & Cargo|Screening]] ... [[Law Enforcement]] ... [[Government Services|Government]] ... [[Defense]] ... [[Joint Capabilities Integration and Development System (JCIDS)#Cybersecurity & Acquisition Lifecycle Integration| Lifecycle Integration]] ... [[Cybersecurity Companies/Products|Products]] ... [[Cybersecurity: Evaluating & Selling|Evaluating]]
 
* [[Cybersecurity]] ... [[Open-Source Intelligence - OSINT |OSINT]] ... [[Cybersecurity Frameworks, Architectures & Roadmaps | Frameworks]] ... [[Cybersecurity References|References]] ... [[Offense - Adversarial Threats/Attacks| Offense]] ... [[National Institute of Standards and Technology (NIST)|NIST]] ... [[U.S. Department of Homeland Security (DHS)| DHS]] ... [[Screening; Passenger, Luggage, & Cargo|Screening]] ... [[Law Enforcement]] ... [[Government Services|Government]] ... [[Defense]] ... [[Joint Capabilities Integration and Development System (JCIDS)#Cybersecurity & Acquisition Lifecycle Integration| Lifecycle Integration]] ... [[Cybersecurity Companies/Products|Products]] ... [[Cybersecurity: Evaluating & Selling|Evaluating]]
 
* [https://arxiv.org/abs/2203.02155 InstructGPT: Ouyang et al., 2022]
 
* [https://arxiv.org/abs/2203.02155 InstructGPT: Ouyang et al., 2022]
* [https://arxiv.org/abs/2204.02311 PaLM: Chowdhery et al., 2022]
+
* [https://arxiv.org/abs/2204.02311 PaLM: Chowdhery et al., 2022]  ... [[PaLM]]
 
* [https://proceedings.mlr.press/v9/ross10a.html Efficient reductions for imitation learning: Ross & Bagnell, 2010] ... [[Imitation Learning (IL)]]
 
* [https://proceedings.mlr.press/v9/ross10a.html Efficient reductions for imitation learning: Ross & Bagnell, 2010] ... [[Imitation Learning (IL)]]
 
* [https://arxiv.org/abs/1706.03741 Deep reinforcement learning from human preferences: Christiano et al., 2017]
 
* [https://arxiv.org/abs/1706.03741 Deep reinforcement learning from human preferences: Christiano et al., 2017]
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* [https://knowledge.wharton.upenn.edu/article/chatgpt-passed-an-mba-exam-whats-next/ ChatGPT Passed an MBA Exam. What’s Next? | Angie Basiouny - Knowledge at Wharton]  ...[[ChatGPT]] | [[OpenAI]]  
 
* [https://knowledge.wharton.upenn.edu/article/chatgpt-passed-an-mba-exam-whats-next/ ChatGPT Passed an MBA Exam. What’s Next? | Angie Basiouny - Knowledge at Wharton]  ...[[ChatGPT]] | [[OpenAI]]  
 
* [https://openworldai.com/plugins ChatGPT Plugins | OpenWorld]
 
* [https://openworldai.com/plugins ChatGPT Plugins | OpenWorld]
 +
* [https://venturebeat.com/ai/chatgpt-is-combining-its-different-abilities-into-a-single-voltron-style-chat/ ChatGPT is combining its different abilities into a single ‘Voltron-style’ chat | Carl Franzen - VentureBeat]
  
 
   
 
   
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* 1:33 - Generative pretraining (the raw language model)
 
* 1:33 - Generative pretraining (the raw language model)
 
* 4:18 - The alignment problem
 
* 4:18 - The alignment problem
* 6:26 - Supervised fine-tuning
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* 6:26 - Supervised [[fine-tuning]]
 
* 7:19 - Limitations of supervision: distributional shift
 
* 7:19 - Limitations of supervision: distributional shift
 
* 8:50 - Reward learning based on preferences
 
* 8:50 - Reward learning based on preferences
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* [[Assistants]] ... [[Personal Companions]] ... [[Agents]]  ... [[Negotiation]] ... [[LangChain]]
 
* [[Assistants]] ... [[Personal Companions]] ... [[Agents]]  ... [[Negotiation]] ... [[LangChain]]
 
* [[Development]]  ...[[Development#AI Pair Programming Tools|AI Pair Programming Tools]] ... [[Analytics]]  ... [[Visualization]]  ... [[Diagrams for Business Analysis]]
 
* [[Development]]  ...[[Development#AI Pair Programming Tools|AI Pair Programming Tools]] ... [[Analytics]]  ... [[Visualization]]  ... [[Diagrams for Business Analysis]]
* [[Python]]   ... [[Generative AI with Python]] ... [[Javascript]] ... [[Generative AI with Javascript]] ... [[Game Development with Generative AI]]
+
* [[Python]] ... [[Generative AI with Python|GenAI w/ Python]] ... [[Javascript]] ... [[Generative AI with Javascript|GenAI w/ Javascript]] ... [[TensorFlow]] ... [[PyTorch]]
 
* [[Visualization#Chart | Chart with Generative AI]]
 
* [[Visualization#Chart | Chart with Generative AI]]
 
* [https://www.theverge.com/2023/2/7/23588249/microsoft-event-ai-live-blog-openai-chatgpt-bing-announcements-news Microsoft’s ChatGPT event live blog | Tom Warren - The Verge]  ... [https://www.microsoft.com/en-us/research/project/prometheus-microsoft-research/ Prometheus |] [[Microsoft]]
 
* [https://www.theverge.com/2023/2/7/23588249/microsoft-event-ai-live-blog-openai-chatgpt-bing-announcements-news Microsoft’s ChatGPT event live blog | Tom Warren - The Verge]  ... [https://www.microsoft.com/en-us/research/project/prometheus-microsoft-research/ Prometheus |] [[Microsoft]]
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<youtube>32GTsN36jp4</youtube>
 
<youtube>32GTsN36jp4</youtube>
 
<b>ChatGPT PLUGINS Just Changed Everything! (Insane Upgrade)
 
<b>ChatGPT PLUGINS Just Changed Everything! (Insane Upgrade)
</b><br>[[OpenAI]] just changed the game with ChatGPT Plugins, including the really cool Browsing plugin. They've pushed beyond the AI's known limits, transforming it into a multi-tasking helper, perfect for everything from sorting out travel plans to whipping up content. In the midst of rivalry from self-sufficient AI agents and Google's [[Bard]] getting a boost, ChatGPT from [[OpenAI]] is still a game-changer, serving up personalized help and limitless adjustments with plugins like Speechki, Coupert, Wolfram, and edX.   
+
</b><br>[[OpenAI]] just changed the game with ChatGPT Plugins, including the really cool Browsing plugin. They've pushed beyond the AI's known limits, transforming it into a multi-tasking helper, perfect for everything from sorting out travel plans to whipping up content. In the midst of rivalry from self-sufficient AI agents and Google's [[Gemini]] getting a boost, ChatGPT from [[OpenAI]] is still a game-changer, serving up personalized help and limitless adjustments with plugins like Speechki, Coupert, Wolfram, and edX.   
 
|}
 
|}
 
|<!-- M -->
 
|<!-- M -->
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* [https://github.com/openai/chatgpt-retrieval-plugin openai/chatgpt-retrieval-plugin Repo]
 
* [https://github.com/openai/chatgpt-retrieval-plugin openai/chatgpt-retrieval-plugin Repo]
 
* [https://platform.openai.com/ OpenAI platform]
 
* [https://platform.openai.com/ OpenAI platform]
* [https://app.pinecone.io/ Pinecone console]
+
* [[Database#Pinecone|Pinecone]]
* [https://github.com/pinecone-io/examples/blob/master/generation/chatgpt/plugins/langchain-docs-plugin.ipynb Find the code here]
 
 
* [https://gist.github.com/jamescalam/709f83e4515975df832bf06c8a33ff26 openapi.yaml I used]
 
* [https://gist.github.com/jamescalam/709f83e4515975df832bf06c8a33ff26 openapi.yaml I used]
  
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<youtube>2936_Y80nUk</youtube>
 
<youtube>2936_Y80nUk</youtube>
 
<youtube>gyA0RWm32UA</youtube>
 
<youtube>gyA0RWm32UA</youtube>
 +
 +
 +
=== See, Hear and Speak ===
 +
* [https://openai.com/blog/chatgpt-can-now-see-hear-and-speak ChatGPT can now see hear and peak Openai.com]
 +
The features enable users to interact with the AI bot through spoken words or by uploading images, in addition to typing text. For example, users will be able to verbally ask ChatGPT to make up a bedtime story on the spot, or show it an image of the contents of their fridge and ask ChatGPT to plan a meal. To use voice features, users will have to go to the app's "settings," then choose "new features" and turn on voice conversations. By tapping on the headphone icon in the top-right corner, users will be able to choose from five different voices for the bot to talk with. Initially, voice features will be limited to the ChatGPT android and iOS apps on an opt-in beta basis, while image search will be available by default on all platforms. - [https://opentools.ai/ OpenTools.ai]
  
 
== OpenAI Playground ==
 
== OpenAI Playground ==
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||
 
||
 
<youtube>HIePjxzTuEk</youtube>
 
<youtube>HIePjxzTuEk</youtube>
<b>UiPath Integration with Open AI | [[Agents:Robotic Process Automation (RPA)|Robotic Process Automation (RPA)]] with Open AI | Use Case Building | ChatGPT | RPA API
+
<b>UiPath Integration with Open AI | [[Robotic Process Automation (RPA)]] with Open AI | Use Case Building | ChatGPT | RPA API
 
</b><br>This videos Introduces to [[OpenAI]] ChapGPT , How to get the API References , Test , Integrate Open AI API's with UiPath and develop a Use Case
 
</b><br>This videos Introduces to [[OpenAI]] ChapGPT , How to get the API References , Test , Integrate Open AI API's with UiPath and develop a Use Case
  
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<youtube>VyG_B5Rqno4</youtube>
 
<youtube>VyG_B5Rqno4</youtube>
 
<youtube>t0I95sN0hyE</youtube>
 
<youtube>t0I95sN0hyE</youtube>
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 +
== Alpha Software ==
 +
 +
* [https://www.alphasoftware.com/blog/new-webinar-how-to-integrate-chatgpt-with-alpha-anywhere How To Integrate ChatGPT With Alpha Anywhere]
 +
* [https://www.start-software.com/ Start Software]
 +
 +
Developers at Start Software have been working on integrating AI into their apps using Alpha Anywhere’s extensive API capabilities to link into ChatGPT and other AI platforms.  Alpha Anywhere has been making significant strides in integrating with artificial intelligence. In addition to their work with ChatGPT, they have also been exploring other AI platforms. They are working to extend Alpha Tracker® and the Legacy platform from CTT Group to incorporate a number of AI-powered features.  Alpha Anywhere’s flexible development environment allows for the integration of powerful data features that can be used with IoT, AI/ML, and systems, like SalesForce, Google Workspace / G Suite, and more. Alpha Anywhere has multiple ways of sharing data with other systems, which is a crucial aspect in building applications3. This makes it possible to connect Alpha Anywhere with various AI platforms.
 +
 +
<youtube>YnG3zIPoOPM</youtube>
  
 
== DevSecOps ==
 
== DevSecOps ==
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<youtube>l-kE11fhfaQ</youtube>
 
<youtube>l-kE11fhfaQ</youtube>
 
<b>ChatGPT Tutorial - Use ChatGPT for DevOps tasks to 10x Your Productivity
 
<b>ChatGPT Tutorial - Use ChatGPT for DevOps tasks to 10x Your Productivity
</b><br>I'm sure you have all heard of ChatGPT by now. It has become a buzzword within days of its release and professionals in all fields, especially in high skilled areas like lawyers, doctors, engineers are questioning whether such AI can actually replace them and work. So in this video I want to talk about what ChatGPT is and how it even popped up, talk a bit about the organization behind GPT called "[[OpenAI]]", which has already created many other machine learning models besides Chat GPT and also explain technically about all that. And then we'll dive in and actually put ChatGPT to use for some DevOps related tasks. I really want to see how it can help in generating configuration code for building DevOps processes or different parts of those processes and how well it knows different DevOps technologies, but not just some shallow examples or boilerplate code that I can get from official documentation, but instead also try more fine-tuning and small optimizations in that configuration code. We're also going to check out an open source command line tool that is built on top of ChatGPT and was specifically created for engineers to generate infrastructure as code templates and more and finally we'll talk about the impact of ChatGPT, the quality and usefulness of such a tool for engineers and whether it will really replace the engineers and to what extent you should be concerned.
+
</b><br>I'm sure you have all heard of ChatGPT by now. It has become a buzzword within days of its release and professionals in all fields, especially in high skilled areas like lawyers, doctors, engineers are questioning whether such AI can actually replace them and work. So in this video I want to talk about what ChatGPT is and how it even popped up, talk a bit about the organization behind GPT called "[[OpenAI]]", which has already created many other machine learning models besides Chat GPT and also explain technically about all that. And then we'll dive in and actually put ChatGPT to use for some DevOps related tasks. I really want to see how it can help in generating configuration code for building DevOps processes or different parts of those processes and how well it knows different DevOps technologies, but not just some shallow examples or boilerplate code that I can get from official documentation, but instead also try more [[fine-tuning]] and small optimizations in that configuration code. We're also going to check out an open source command line tool that is built on top of ChatGPT and was specifically created for engineers to generate infrastructure as code templates and more and finally we'll talk about the impact of ChatGPT, the quality and usefulness of such a tool for engineers and whether it will really replace the engineers and to what extent you should be concerned.
  
 
* 00:00 - Intro and Overview
 
* 00:00 - Intro and Overview
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<youtube>NDaOTA6bTrk</youtube>,
 
<youtube>NDaOTA6bTrk</youtube>,
  
 +
= Long-term [[Memory]] =
 +
* [https://www.wired.com/story/chatgpt-memory-openai/ OpenAI Gives ChatGPT a Memory | Lauren Goode - Wired] ... The company is starting to roll out long-term [[memory]] in ChatGPT—a function that maintains a [[memory]] of who you are, how you work, and what you like to chat about. Called simply [[Memory]], it’s an AI personalization feature that turbocharges the “custom instructions” tool.  Now, ChatGPT’s [[memory]] persists across multiple chats. The service will also remember personal details about a ChatGPT user even if they don’t make a custom instruction or tell the chatbot directly to remember something; it just picks up and stores details as conversations roll on.
 +
 +
<youtube>-U4o7ZnLpPw</youtube>
  
= Long-term Memory =
 
  
 
== <span id="ChatGPT Retrieval Plugin"></span>ChatGPT Retrieval Plugin ==
 
== <span id="ChatGPT Retrieval Plugin"></span>ChatGPT Retrieval Plugin ==
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[https://www.bing.com/news/search?q=ai+MemoryGPT&qft=interval%3d%228%22 ...Bing News]
 
[https://www.bing.com/news/search?q=ai+MemoryGPT&qft=interval%3d%228%22 ...Bing News]
  
MemoryGPT is like ChatGPT but with long-term memory. It can remember previous chats and personalize your conversation based on that. MemoryGPT can remember previous chats “forever” if desired. It will remember your preferences, how you work, and anything you tell it. It will tweak its behavior to fit you better and can help or coach you generally. MemoryGPT stores past conversations in a vector database that it can access at any time and combines it with a regular data store for high-level user data and goals. MemoryGPT accesses past conversations through the vector database. The developer of MemoryGPT says that there are “100 ways” to put the concept into practice.
+
MemoryGPT is like ChatGPT but with long-term [[memory]]. It can remember previous chats and personalize your conversation based on that. MemoryGPT can remember previous chats “forever” if desired. It will remember your preferences, how you work, and anything you tell it. It will tweak its behavior to fit you better and can help or coach you generally. MemoryGPT stores past conversations in a vector database that it can access at any time and combines it with a regular data store for high-level user data and goals. MemoryGPT accesses past conversations through the vector database. The developer of MemoryGPT says that there are “100 ways” to put the concept into practice.
  
 
<youtube>6NoTuqDAkfg</youtube>
 
<youtube>6NoTuqDAkfg</youtube>
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** [https://huggingface.co/spaces/microsoft/visual_chatgpt Visual ChatGPT demo] [[Hugging Face]]
 
** [https://huggingface.co/spaces/microsoft/visual_chatgpt Visual ChatGPT demo] [[Hugging Face]]
 
** [[Langchain]] ... building applications with LLMs through composability
 
** [[Langchain]] ... building applications with LLMs through composability
** [https://primo.ai/index.php?title=Diffusion Diffusion]  ... [https://github.com/CompVis/stable-diffusion Stable Diffusion] ... latent text-to-image diffusion model
+
** [https://primo.ai/index.php?title=Diffusion Diffusion]  ... [https://github.com/CompVis/stable-diffusion Stable Diffusion] ... [[latent]] text-to-image [[diffusion]] model
 
** [https://github.com/lllyasviel/ControlNet ControlNet] ... control diffusion models by adding extra conditions.
 
** [https://github.com/lllyasviel/ControlNet ControlNet] ... control diffusion models by adding extra conditions.
 
** [https://github.com/timothybrooks/instruct-pix2pix InstructPix2Pix] ... instruction-based image editing model
 
** [https://github.com/timothybrooks/instruct-pix2pix InstructPix2Pix] ... instruction-based image editing model
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* [[Large Language Model (LLM)#LLM Token / Parameter / Weight|LLM Token / Parameter / Weight]]
 
* [[Large Language Model (LLM)#LLM Token / Parameter / Weight|LLM Token / Parameter / Weight]]
  
Today’s massive generative AI models require thousands of GPUs to run. To make ChatGPT work [[OpenAI]] used the [[NVIDIA]] A100 HPC (high-performance computing) accelerator. This is a tensor core GPU that features high performance, HBM2 memory (80GB of it) capable of delivering up to 2TBps memory bandwidth, enough to run very large models and datasets. More impressively, it is passively cool - despite a 300W TDP. It is based on the 3-year-old Ampere microarchitecture, which is what powers the entire stack of Geforce GPUs in the 30 series. [[OpenAI]] used 10,000 Nvidia GPUs to train ChatGPT.
+
Today’s massive generative AI models require thousands of GPUs to run. To make ChatGPT work [[OpenAI]] used the [[NVIDIA]] A100 HPC (high-performance computing) accelerator. This is a tensor core GPU that features high performance, HBM2 [[memory]] (80GB of it) capable of delivering up to 2TBps [[memory]] bandwidth, enough to run very large models and datasets. More impressively, it is passively cool - despite a 300W TDP. It is based on the 3-year-old Ampere microarchitecture, which is what powers the entire stack of Geforce GPUs in the 30 series. [[OpenAI]] used 10,000 Nvidia GPUs to train ChatGPT.
  
  
 
<youtube>d3L2uPuxOxU</youtube>
 
<youtube>d3L2uPuxOxU</youtube>

Revision as of 22:02, 26 April 2024

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Generates human-like text, based on a family of “large language models (LLM)” — algorithms that can recognize, predict, and generate text based on patterns they identify in datasets containing hundreds of millions of words; ChatGPT performs a wide range of natural language processing (NLP) tasks; chatbots, automated writing, language translation, text summarization and generate computer programs. OpenAI states ChatGPT is a significant iterative step in the direction of providing a safe AI model for everyone. ChatGPT interacts in a conversational way. The dialogue format makes it possible for ChatGPT to answer follow-up questions, admit its mistakes, challenge incorrect premises, and reject inappropriate requests. ChatGPT is a sibling model to InstructGPT, which is trained to follow an instruction in a prompt and provide a detailed response.



ChatGPT will not take your jobs—someone who knows how to use it will. - Jaspreet Bindra



What is ChatGPT?

Reinforcement Learning from Human Feedback: From Zero to ChatGPT
In this talk, we will cover the basics of Reinforcement Learning (RL) from Human Feedback (RLHF) and how this technology is being used to enable state-of-the-art ML tools like ChatGPT. Most of the talk will be an overview of the interconnected ML models and cover the basics of Natural Language Processing (NLP) and Reinforcement Learning (RL) that one needs to understand how RLHF is used on large language models. It will conclude with open question in RLHF.

Nathan Lambert is a Research Scientist at Hugging Face. He received his PhD from the University of California, Berkeley working at the intersection of machine learning and robotics. He was advised by Professor Kristofer Pister in the Berkeley Autonomous Microsystems Lab and Roberto Calandra at Meta AI Research. He was lucky to intern at Facebook AI and DeepMind during his Ph.D. Nathan was was awarded the UC Berkeley EECS Demetri Angelakos Memorial Achievement Award for Altruism for his efforts to better community norms.

But How Does ChatGPT Actually Work?
You’ll learn how ChatGPT works and this will provide many benefits, such as helping you to use the model more effectively, evaluate its outputs more critically, and staying informed about the latest developments in the field so you are better prepared to take advantage of new opportunities. ChatGPT is a type of Natural Language Processing (NLP) known as a Generative Pre-trained Transformer (GPT) developed by OpenAI. These are the two big terms we will focus on in this video. On top of that you will also get a base understanding of common Machine Learning techniques like Supervised Learning, and Reinforcement Learning (RL), which were used to make ChatGPT as good as it is.

How ChatGPT is Trained
This short tutorial explains the training objectives used to develop ChatGPT, the new chatbot language model from OpenAI.

Timestamps:

  • 0:00 - Non-intro
  • 0:24 - Training overview
  • 1:33 - Generative pretraining (the raw language model)
  • 4:18 - The alignment problem
  • 6:26 - Supervised fine-tuning
  • 7:19 - Limitations of supervision: distributional shift
  • 8:50 - Reward learning based on preferences
  • 10:39 - Reinforcement learning from human feedback
  • 13:02 - Room for improvement

ChatGPT: https://openai.com/blog/chatgpt

Special thanks to Elmira Amirloo for feedback on this video.

Links: YouTube: https://www.youtube.com/ariseffai Twitter: https://twitter.com/ari_seff Homepage: https://www.ariseff.com

If you'd like to help support the channel (completely optional), you can donate a cup of coffee via the following: Venmo: https://venmo.com/ariseff PayPal: https://www.paypal.me/ariseff

ChatGPT in Architecture EXPLAINED
If you're looking to revolutionize your architecture workflow, then you need to know about ChatGPT. Developed by OpenAI, this advanced AI model with an impressive 175 billion parameters is making waves in the industry, and it's not hard to see why. In just five days, it got over 1 million users, outpacing Facebook by ten months. But what is ChatGPT and how can it benefit architects? In this video, we dive deep into the technology, its uses, and how it can help you save time and create innovative designs.

Discover the potential of ChatGPT for answering questions, writing essays, generating content ideas, writing scripts and titles for YouTube videos, and much more. The possibilities are endless, and as we explore this fascinating technology, you'll learn how it can help you generate conceptual design ideas faster and refine them before moving to the next phase of your project. We'll also explore the connections ChatGPT has with Rhino and Grasshopper, the impact on creative industries, and the current state of the technology.

ChatGPT Architecture Explained: Step-by-Step Guide
About Presenter: Sandeep Giri. Past - Amazon, InMobi, tBits Global, D.E.Shaw. For last 16 years, Sandeep has been building products and churning large amounts of data for various product companies. He has an all-around experience in software development and big data analysis. Apart from digging data and technologies, Sandeep enjoys conducting interviews and explaining difficult concepts in simple ways. About CloudxLab Email us at: reachus@cloudxlab.com Official Website link: https://cloudxlab.com/

ChatGPT Tutorial for Developers - 38 Ways to 10x Your Productivity
Learn how to use ChatGPT to 10x your productivity! 38 examples using Python, JavaScript, HTML, CSS, React, SQL and more!

Integration

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ChatGPT Plugins

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ChatGPT PLUGINS Just Changed Everything! (Insane Upgrade)
OpenAI just changed the game with ChatGPT Plugins, including the really cool Browsing plugin. They've pushed beyond the AI's known limits, transforming it into a multi-tasking helper, perfect for everything from sorting out travel plans to whipping up content. In the midst of rivalry from self-sufficient AI agents and Google's Gemini getting a boost, ChatGPT from OpenAI is still a game-changer, serving up personalized help and limitless adjustments with plugins like Speechki, Coupert, Wolfram, and edX.

ChatGPT Plugins: Build Your Own in Python!
OpenAI's ChatGPT now has plugins! Plugins can be built by anyone, and in this video, we will see how to build one using the chatgpt-retrieval-plugin template from OpenAI.

🎙️ Support me on Patreon

Web-browsing ChatGPT Plugin

Easily the most intriguing plugin is OpenAI’s first-party web-browsing plugin, which allows ChatGPT to draw data from around the web to answer the various questions posed to it. (Previously, ChatGPT’s knowledge was limited to dates, events and people prior to around September 2021.) The plugin retrieves content from the web using the Bing search API and shows any websites it visited in crafting an answer, citing its sources in ChatGPT’s responses. .. Beyond the web plugin, OpenAI released a code interpreter for ChatGPT that provides the chatbot with a working Python interpreter in a sandboxed, firewalled environment along with disk space. It supports uploading files to ChatGPT and downloading the results... A host of early collaborators built plugins for ChatGPT to join OpenAI’s own, including Expedia, FiscalNote, Instacart, Kayak, Klarna, Milo, OpenTable, Shopify, Slack, Speak, Wolfram and Zapier. - OpenAI connects ChatGPT to the internet | Kyle Wiggers - TechCrunch

Noteable ChatGPT Plugin

  • Notable ... one single document to accelerate time to insight. Noteable’s collaborative data notebook supports your full data lifecycle

The Noteable ChatGPT plugin for Jupyter Notebooks that allows users to interact with their data using natural language processing. It is designed to break down the barriers to getting started with data analysis and empower non-technical users to create and work with data-driven documents. The plugin is available for ChatGPT Plus users and can be installed from the Plugin Store. A collaborative data notebook to combine code (SQL, Python, & R), and interactive visualizations.


ChatGPT-4

Bing | Microsoft


See, Hear and Speak

The features enable users to interact with the AI bot through spoken words or by uploading images, in addition to typing text. For example, users will be able to verbally ask ChatGPT to make up a bedtime story on the spot, or show it an image of the contents of their fridge and ask ChatGPT to plan a meal. To use voice features, users will have to go to the app's "settings," then choose "new features" and turn on voice conversations. By tapping on the headphone icon in the top-right corner, users will be able to choose from five different voices for the bot to talk with. Initially, voice features will be limited to the ChatGPT android and iOS apps on an opt-in beta basis, while image search will be available by default on all platforms. - OpenTools.ai

OpenAI Playground

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Python

ChatGPT Voice Assistant

A ChatGPT Voice Assistant You Can Talk To - Open Source: Vivy

Come join The Learning Journey!

OpenAI ChatGPT API (NEW GPT 3.5) and Whisper API - Python and Gradio Tutorial
In this video I use the new ChatGPT API and Whisper API's to have a conversation. I use my voice as input and ChatGPT speaks back to me using my computer's audio.

  • 0:00 - Demo (What We're Building)
  • 1:10 - High Level Walkthrough / Discussion
  • 5:02 - Gradio User Interface (Microphone Recording)
  • 9:07 - OpenAI Whisper API (Speech to Text)
  • 11:34 - ChatGPT API (Chat Completion)
  • 21:00 - Making OSX Talk
  • 22:06 - Jay-Z Edition (Rapping Therapist)

Javascript

ChatGPT Clone – OpenAI API and React Tutorial
Learn how to use React and the OpenAI API to create an application like ChatGPT. The application can answer our questions, convert the text into different languages, or even convert Javascript code to Python.

Build A Chatbot With The ChatGPT API In React (gpt-3.5-turbo Tutorial)
In this video we use the new OpenAI gpt-3.5-turbo model to create a ChatGPT application in React. This is one of the fastest GPT models to be released. This video is great for beginners to both React and ChatGPT, and is a great portfolio project. We create a chatbot that allows you to communicate directly with the ChatGPT API, which is a project that can be applied to a vast array of React projects! This project gives you a great understanding of the ChatGPT API, even if you don’t plan to replicate the project created in the video yourself.

Final Project Code

  • 0:00 Intro
  • 0:50 Create chat UI / Manage messages state
  • 7:52 Set up ChatGPT API
  • 9:19 Process message with ChatGPT API
  • 17:40 Show ChatGPT response to user
  • 19:58 Changing system message prompt
  • 21:15 Thanks for watching!

Microsoft Excel

The 4 MUST-HAVE ChatGPT & AI Tools For Excel - Free Download + Training
In this week’s training, I will show you how to add 4 Must-Have Tools into Excel that include the power of ChatGPT right in your application. These include:

  • ChatGPT Function that turns any question into results with 1 formula
  • ChatGPT Data Table that turns any request into a complete table of data
  • Fix My Formula - A single click on any formula will error produces the correct formula & Explanation
  • Fix My Code - Simply copy and paste your VBA code with errors and ChatGPT will return the corrected code along with a clear explanation

Integrate ChatGPT in MS Excel VBA and make a Chatbot: A Step-by-Step Guide
Incorporating ChatGPT into MS Excel through OpenAI API, JSON converter, and VBA to create a Chatbot. Let's GO!

New to MS Excel Macro VBA? Watch my introductory video here

• Create Your First...  

Chapters:

  • 0:00 - Intro
  • 1:15 - API overview
  • 2:20 - Getting API key & JSON converter
  • 5:02 - Textbox properties
  • 6:47 - Importing JSON converter
  • 7:39 - Enable VBA reference
  • 8:45 - VBA code to integrate ChatGPT
  • 16:10 - Add textbox events

ChatGPT Can Do Your Job (Excel and Google Sheets with ChatGPT)
In this week’s training, I will show you how to take the power of Chat GPT and create the Best AI Generator & Library Excel has ever seen. No need to open up the website, as you can now request & generate responses, as well as save, search and categorize those responses right in Excel. Don't miss this training.

Sign up for Make here www.Make.com

ChatGPT Can Do Your Job (Excel and Google Sheets with ChatGPT)
ChatGPT has the ability to do your job, and you can use it more effectively today within Google Sheets! Unlock the power of artificial intelligence, and let Chat GPT save you time and make you money. In this ChatGPT tutorial we will review the capabilities of the powerful AI chatbot and use the free add-on within Google Sheets, GPT For Sheets. For Excel users, you'll be excited to know that you can leverage your Google Sheets creation and bring it directly into Excel afterwards! We will discover the power of Chat GPT and walk through many different tasks. This exclusive look into Chat GPT and how it can benefit your daily life is something you won't want to miss!

Code Generation

Can ChatGPT Create An Entire Excel Application? (All The Code & Formulas) Let's Find Out!
In this week’s training, I will show you how ChatGPT & AI can create an entire Excel application in not time at all, fully coded including all formulas and even have a hand in the design.

Automate Boring Office Tasks with ChatGPT and Python
Tired of spending hours on tedious office tasks? In this video, I'll show you how to use ChatGPT and Python to automate some of those boring tasks. We'll be looking at automating Outlook, creating PowerPoint presentations, generating charts from Excel data, and manipulating PDFs. First up, we'll go over how to use ChatGPT and Python to automate tasks in Outlook like sending emails to a list of recipients pulled from an Excel file. Then we'll move on to using ChatGPT and Python to create slides and add text and images to them for PowerPoint presentations. Next, we'll look at how to use ChatGPT and Python to create interactive charts based on data from an Excel file. And lastly, we'll cover how to use ChatGPT and Python to automate PDF tasks like merging multiple documents. As a bonus, we'll also take a look at how to use ChatGPT to write emails for you so you don't have to. Overall, this video will give you a good idea of how you can use ChatGPT and Python to automate some of those repetitive tasks that take up so much of your time.

🌎 𝗥𝗘𝗦𝗢𝗨𝗥𝗖𝗘𝗦:

10X Your Excel Skills with ChatGPT
In this step-by-step tutorial, learn how you can exponentially improve your Excel skills using OpenAI's ChatGPT artificial intelligence. Write nested functions with ease, calculate the number of unique text values in a list, write a basic invoicing macro, and more, all with just a few clicks and a few basic refinements.

📚 RESOURCES

⌚ TIMESTAMPS

  • 00:00 Introduction
  • 00:50 Get ChatGPT
  • 01:04 Simple sum example
  • 02:44 Profit example
  • 03:30 Lookup functions
  • 05:16 Left and find nested function
  • 06:26 Unique count nested function
  • 07:43 Write macros
  • 10:51 Wrap up

ChatGPT: Automating Excel with VBA like never before
In this video, I'm going to show you how I use VBA and ChatGPT to automate some pretty tedious Excel tasks. We'll be consolidating data, sending mass emails with personalized text and attachments, and even automating pivot table creation. I'll walk you through step by step, showing you how easy it is to use ChatGPT to generate the VBA code for these tasks, and how little effort it takes to implement them in your own workbooks. So, come along with me and let's make Excel work for us, instead of the other way around!

🌎 𝗥𝗘𝗦𝗢𝗨𝗥𝗖𝗘𝗦: The Excel files can be found here

⭐ 𝗧𝗜𝗠𝗘𝗦𝗧𝗔𝗠𝗣𝗦:

  • 00:00 – Intro
  • 00:26 – 1. Example: Extract data from multiple files
  • 02:15 – 2. Example: Send personalized emails
  • 05:59 – 3. Example: Find and replace values
  • 08:15 – 4. Example: Create pivot tables and charts
  • 10:15 – Outro

𝗖𝗢𝗡𝗡𝗘𝗖𝗧 𝗪𝗜𝗧𝗛 𝗠𝗘: 🌎 Website: https://pythonandvba.com 📝 GitHub: https://github.com/Sven-Bo

Amazon Alexa

Home Assistant

Tasker - Android

Haley.ai

Haley is an intelligent agent platform. Create intelligent interactions with people, devices, and data.


Relational Database


Scraping

This Loophole Helps Me Scrape ANY Website with ChatGPT | Web Scraping with ChatGPT ChatGPT Automation with Python Web Scraping with ChatGPT. In this video, we're going to scrape Twitter and Amazon using ChatGPT. We'll use OpenAI Playground to generate Python code that scrapes any website out there.

Salesforce

Create Trigger using CHATGPT for Salesforce. End of Salesforce Developers?
You’ll learn how ChatGPT works and this will provide many benefits, such as helping you to use the model more effectively, evaluate its outputs more critically, and staying informed about the latest developments in the field so you are better prepared to take advantage of new opportunities. ChatGPT is a type of Natural Language Processing (NLP) known as a Generative Pre-trained Transformer (GPT) developed by OpenAI. These are the two big terms we will focus on in this video. On top of that you will also get a base understanding of common Machine Learning techniques like Supervised Learning, and Reinforcement Learning (RL), which were used to make ChatGPT as good as it is.

How to integrate Salesforce with ChatGPT (OpenAI API)
Walkthrough of a proof of concept I made about a Salesforce - ChatGPT integration to interact with a Chatter Feed through a screen flow.

Don't hesitate to get in touch if you would like to implement an AI integation in your salesforce org!

UiPath

ChatGPT and UiPath Automation Project - Part 1: API Integration
This is Part 1 of this 5-part video series, where we'll be using the power of AI through ChatGPT and UiPath to automate the process of data categorization for a unique case study. Our data set consists of text inputs from Facebook users on why they deleted their Facebook accounts.

  • In Part 1, we'll integrate the ChatGPT OpenAI API with UiPath to categorize the text inputs.
  • Part 2 will delve into creating a reusable library of the ChatGPT integration so it can be used in other projects.
  • In Part 3, we'll focus on prompt engineering to ensure the best results from our ChatGPT model.
  • Part 4 will cover writing the categorized data to an Excel spreadsheet, making it easy to analyze and visualize the results.
  • Finally, in Part 5, we'll visualise and analyze the output and discuss the insights we gained from our data categorization project.

UiPath Integration with Open AI | Robotic Process Automation (RPA) with Open AI | Use Case Building | ChatGPT | RPA API
This videos Introduces to OpenAI ChapGPT , How to get the API References , Test , Integrate Open AI API's with UiPath and develop a Use Case

  • 0:00 Introduction
  • 1:19 : Agenda
  • 2:22 : Demonstration of the Integration
  • 3:37 : Introduction to OpenAI and ChatGPT
  • 7:14 : Generate API Key for OpenAI
  • 16:11 : Test API using PostMan
  • 22:07 : OpenAI Implementation with UiPath
  • 23:59 : HTTP Request
  • 27:04 : Multiple Line to Single Line of Text
  • 36:06 : Reading Data from Excel
  • 50:16 : Write Data Back to Excel

Alpha Software

Developers at Start Software have been working on integrating AI into their apps using Alpha Anywhere’s extensive API capabilities to link into ChatGPT and other AI platforms. Alpha Anywhere has been making significant strides in integrating with artificial intelligence. In addition to their work with ChatGPT, they have also been exploring other AI platforms. They are working to extend Alpha Tracker® and the Legacy platform from CTT Group to incorporate a number of AI-powered features. Alpha Anywhere’s flexible development environment allows for the integration of powerful data features that can be used with IoT, AI/ML, and systems, like SalesForce, Google Workspace / G Suite, and more. Alpha Anywhere has multiple ways of sharing data with other systems, which is a crucial aspect in building applications3. This makes it possible to connect Alpha Anywhere with various AI platforms.

DevSecOps

ChatGPT: A ChatOps Platform to Automate Devops & Cloud Work !!
In this video, we'll be chatting about the new ChatOps platform, ChatGPT. ChatGPT is a platform that replaces almost everything you know about chatops and chat automation. ChatGPT is a cloud-based platform that allows you to control your chat channels from any device, and it has an open API that makes it easy to integrate into your applications. In this video, we'll be chatting about this new platform and how it can help you in your day-to-day work.

ChatGPT Tutorial - Use ChatGPT for DevOps tasks to 10x Your Productivity
I'm sure you have all heard of ChatGPT by now. It has become a buzzword within days of its release and professionals in all fields, especially in high skilled areas like lawyers, doctors, engineers are questioning whether such AI can actually replace them and work. So in this video I want to talk about what ChatGPT is and how it even popped up, talk a bit about the organization behind GPT called "OpenAI", which has already created many other machine learning models besides Chat GPT and also explain technically about all that. And then we'll dive in and actually put ChatGPT to use for some DevOps related tasks. I really want to see how it can help in generating configuration code for building DevOps processes or different parts of those processes and how well it knows different DevOps technologies, but not just some shallow examples or boilerplate code that I can get from official documentation, but instead also try more fine-tuning and small optimizations in that configuration code. We're also going to check out an open source command line tool that is built on top of ChatGPT and was specifically created for engineers to generate infrastructure as code templates and more and finally we'll talk about the impact of ChatGPT, the quality and usefulness of such a tool for engineers and whether it will really replace the engineers and to what extent you should be concerned.

  • 00:00 - Intro and Overview
  • 01:39 - What is ChatGPT, Who developed ChatGPT
  • 06:45 - Sign Up on ChatGPT
  • 09:23 - Create Dockerfile for Node.js app using ChatGPT
  • 22:13 - Create Kubernetes manifest file using ChatGPT
  • 35:06 - Create CI/CD pipeline code using ChatGPT
  • 50:06 - Convert Jenkinsfile into GitLab CI config file
  • 53:53 - Tools built on top of OpenAI's API
  • 55:01 - AIaC demo - CLI tool for DevOps
  • 01:01:00 - My opinion on ChatGPT & whether ChatGPT will replace engineers

Using ChatGPT For Data Science Projects

Learn how to use ChatGPT in a real-life end-to-end data science project. We will use it for project planning, data analysis, data preprocessing, model selection, hyperparameter tuning, developing a web app, and deploying it.

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Long-term Memory

  • OpenAI Gives ChatGPT a Memory | Lauren Goode - Wired ... The company is starting to roll out long-term memory in ChatGPT—a function that maintains a memory of who you are, how you work, and what you like to chat about. Called simply Memory, it’s an AI personalization feature that turbocharges the “custom instructions” tool. Now, ChatGPT’s memory persists across multiple chats. The service will also remember personal details about a ChatGPT user even if they don’t make a custom instruction or tell the chatbot directly to remember something; it just picks up and stores details as conversations roll on.


ChatGPT Retrieval Plugin

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MemoryGPT

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MemoryGPT is like ChatGPT but with long-term memory. It can remember previous chats and personalize your conversation based on that. MemoryGPT can remember previous chats “forever” if desired. It will remember your preferences, how you work, and anything you tell it. It will tweak its behavior to fit you better and can help or coach you generally. MemoryGPT stores past conversations in a vector database that it can access at any time and combines it with a regular data store for high-level user data and goals. MemoryGPT accesses past conversations through the vector database. The developer of MemoryGPT says that there are “100 ways” to put the concept into practice.

MARAGI

Chatbot with INFINITE MEMORY] using OpenAI & Pinecone - GPT-3, Embeddings, ADA, Vector DB, Semantic | David Shapiro

Visual ChatGPT

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Visual ChatGPT is a system that combines ChatGPT and a series of Visual Foundation Models (VFMs) to enable sending and receiving images during chatting. Some of the architectural components of Visual ChatGPT include a User Query, where the user will submit their query; a Prompt Manager, which converts the users’ visual queries into language format so that the ChatGPT model can understand; and Visual Foundation Models, which combines a variety of VFMs such as BLIP (Bootstrapping Language-Image Pre-training), Stable Diffusion, ControlNet, Pix2Pix, and more.

VFMs enable the user to interact with ChatGPT by 1) sending and receiving not only languages but also images 2) providing complex visual questions or visual editing instructions that require the collaboration of multiple AI models with multi-steps. 3) providing feedback and asking for corrected results. We design a series of prompts to inject the visual model information into ChatGPT, considering models of multiple inputs/outputs and models that require visual feedback. Experiments show that Visual ChatGPT opens the door to investigating the visual roles of ChatGPT with the help of Visual Foundation Models. Our system is publicly available at \url{this https URL}.- Visual ChatGPT: Talking, Drawing and Editing with Visual Foundation Models | C. Wu, S. Yin, W. Qi, Xi.Wang, Z. Tang, & N. Duan - Microsoft Research Asia (MSRA


demo_short.gif


Microsoft's VISUALChatGPT Takes the Industry By STORM! (NOW UNVEILED!)
Welcome to our channel where we bring you the latest breakthroughs in AI. From deep learning to robotics, we cover it all. Our videos offer valuable insights and perspectives that will expand your knowledge and understanding of this rapidly evolving field. Be sure to subscribe and stay updated on our latest videos.

Use Images In ChatGPT! - Visual ChatGPT Is Here?
In this video, I showed you how can do the setup to start using a very first version of visual ChatGPT.

Microsoft Visual ChatGPT Mutimodal Chatbot Python Collab Demo and High Level Explanation
In this video I explain at a high level about Microsoft Visual ChatGPT. I also show a Python Collab Demo of Microsoft Visual CHatGPT

From the abstract: ChatGPT is attracting a cross-field interest as it provides a language interface with remarkable conversational competency and reasoning capabilities across many domains. However, since ChatGPT is trained with languages, it is currently not capable of processing or generating images from the visual world. At the same time, Visual Foundation Models, such as Visual Transformers or Stable Diffusion, although showing great visual understanding and generation capabilities, they are only experts on specific tasks with one-round fixed inputs and outputs. To this end, We build a system called Visual ChatGPT, incorporating different Visual Foundation Models, to enable the user to interact with ChatGPT by 1) sending and receiving not only languages but also images 2) providing complex visual questions or visual editing instructions that require the collaboration of multiple AI models with multi-steps. 3) providing feedback and asking for corrected results. We design a series of prompts to inject the visual model information into ChatGPT, considering models of multiple inputs/outputs and models that require visual feedback. Experiments show that Visual ChatGPT opens the door to investigating the visual roles of ChatGPT with the help of Visual Foundation Models.

10 things Visual ChatGPT can do!
In this video, Sanyam Bhutani demos 10 things Visual ChatGPT can do. We ask it questions about an image, ask it to edit an image, replace parts of an image, generate an image and a few more things.

Microsoft's Visual ChatGPT using LangChain
This video looks at the demo, paper and code for Visual ChatGPT, released this week from MSRA.

Paper: Visual ChatGPT: Talking, Drawing and Editing with Visual Foundation Models - https://arxiv.org/abs/2303.04671

Original code repo: https://github.com/microsoft/visual-c... Thanks to Rupesh Sreeraman for converting to run in Colab Code: https://github.com/rupeshs/visual-cha...

00:00 Intro 01:20 Demo 03:50 Paper walkthrough 07:50 Looking at the Code

Chatgpt Revolutionized | Visual ChatGPT by Microsoft - Get Ready for the future of Image Creation

Micah Johns Course

In this course, you will learn how to use OpenAI ChatGPT to automate useful professional tasks. This course includes 10 projects that will help you boost your productivity and make your life a lot easier.

By the end of this course, you will be able to use ChatGPT to build your resume, write performance reports, craft job application cover letters, plan your daily schedule, prioritize your tasks, help you solve problems with software, communicate with external vendors, and so much more.

  • 2. Automate Resume Creation with Open AI's ChatGPT: Create a professional resume quickly and easily by leveraging AI with this guided how-to project (https://www.youtube.com/watch?v=5k0Uc...).

  • 3. Automate Writing Professional Work Emails with Open AI: Learn how to write important professional emails with the help of AI with this guided how-to project (https://www.youtube.com/watch?v=hoWCo...).

  • 4. Develop a Learning Plan for New Skills Using AI: Use Open AI's ChatGPT to develop a learning plan for new skills with this easy video guide (https://www.youtube.com/watch?v=gOgct...).

  • 5. Develop Solutions for Problems in your Organization Using Open AI as your Guide: Learn how to use AI to develop solutions to problems in your organization with this project-driven guide (https://www.youtube.com/watch?v=mDlqz...).

  • 6. Automate Performance Reports or Project Progress Updates Using Open AI: Leverage AI to automate performance reports and project progress updates with this easy guided project (https://www.youtube.com/watch?v=SQxci...).

  • 8. Optimize your LinkedIn Profile with AI: Use ChatGPT to optimize your LinkedIn profile with this simple how-to video guide

  • 9. Automate Writing Cover Letters for Job Applications: Leverage Open AI's ChatGPT to automate cover letter writing for job applications with this easy guide

  • 10. Prioritize Tasks or Manage Projects with AI: Use ChatGPT to prioritize tasks and manage projects using AI with this easy project-driven how-to guide

NVIDIA A100 HPC (High-Performance Computing) Accelerator

Today’s massive generative AI models require thousands of GPUs to run. To make ChatGPT work OpenAI used the NVIDIA A100 HPC (high-performance computing) accelerator. This is a tensor core GPU that features high performance, HBM2 memory (80GB of it) capable of delivering up to 2TBps memory bandwidth, enough to run very large models and datasets. More impressively, it is passively cool - despite a 300W TDP. It is based on the 3-year-old Ampere microarchitecture, which is what powers the entire stack of Geforce GPUs in the 30 series. OpenAI used 10,000 Nvidia GPUs to train ChatGPT.