Best AI tools for< Complete Look >
20 - AI tool Sites
LookRight.ai
LookRight.ai is an AI tool designed to provide users with a second pair of eyes for various tasks such as rating outfits, providing roasts, inspiring messages, completing looks, and writing product captions. Users can select a prompt from the list and upload a picture to receive feedback and suggestions. The tool leverages artificial intelligence to analyze images and generate responses to assist users in making decisions and enhancing their content.
Teacher AI
Teacher AI is a language practice tool that provides personalized speaking practice without the anxiety of interacting with a real person. It is available 24/7 for a fraction of the cost of a human teacher. Teacher AI corrects mistakes, explains grammar, and gets to know the user's learning style. It also tracks progress and provides motivation. Teacher AI is not suitable for complete beginners looking for structured lessons.
Remote Face
Remote Face is an AI tool designed to create a virtual avatar for video conferences, ensuring complete privacy. Users can generate their avatar from a single selfie and enjoy a variety of virtual backgrounds. The tool is compatible with Windows and macOS platforms, offering features like CPU with AVX support and GPU with Metal support. Remote Face aims to enhance video conferencing experiences by providing a unique and personalized avatar for users.
OutfitIdeas
OutfitIdeas is an AI-powered styling tool that offers personalized haircut and outfit recommendations based on individual preferences. Users can upload a photo and answer a simple questionnaire to receive a free lookbook with haircut and outfit designs, face-fit visualizations, expert tips, and a shopping guide. The platform aims to serve as a personal image consultant, helping users save time, effort, and money while achieving their desired style.
Phot.AI
Phot.AI is an advanced AI photo editing and visual content creation platform that offers a wide range of tools powered by artificial intelligence. It provides users with the ability to generate, edit, and enhance images and videos seamlessly. With features like AI object remover, background replacer, image colorizer, and more, Phot.AI aims to be a comprehensive image editing toolkit for diverse business needs. Trusted by over 1 million users worldwide, it caters to creators, marketing teams, and businesses looking to bring their creative vision to life.
Homeworks AI
Homeworks AI is an AI-powered tool designed to help students finish their homework quickly and efficiently. By utilizing advanced technologies such as NeuralBlend and LigentLab, Homeworks AI can process and analyze text input to provide accurate and timely solutions for various academic tasks. The tool offers a seamless user experience, allowing students to input text, receive instant feedback, and generate high-quality outputs. With Homeworks AI, students can enhance their learning experience and improve their academic performance.
Book Witch
Book Witch is an AI tool designed to generate complete ebooks with just one click, eliminating the hassle of manual writing and editing. The tool leverages advanced AI models to create long-form content swiftly, tailored to the user's vision. It aims to help users unlock their ebook empire by providing effortless creation, financial freedom, and the ability to boost their brand through consistent, quality content. Book Witch caters to authors looking to tap into the potential of the ebook business without the traditional struggles of time drain, writing woes, costly outsourcing, originality fears, and burnout.
Streos
Streos is an AI-powered platform that enables users to build websites effortlessly and download them for free. The platform offers a seamless experience by generating complete websites, pages, and components based on user input. Users can easily customize and modify elements to match their vision, and deploy their website to a custom domain with just a few clicks. Streos aims to revolutionize web design by providing an intelligent and efficient AI Assistant that simplifies the website creation process.
myStoryGen
myStoryGen is an innovative platform that empowers users to create unique and captivating bedtime stories for children in a matter of seconds. With its user-friendly interface, parents and educators can simply input a story title, and the platform will generate a complete tale, complete with beautiful accompanying images. The stories are designed to spark imagination, educate, and provide endless entertainment for children of all ages. myStoryGen is a valuable tool for busy parents, educators, and anyone looking to foster a love of reading and storytelling in children.
LampBuilder
LampBuilder is an AI-powered platform that allows users to instantly create stunning landing pages for their startups or projects. By simply inputting the startup's name and description, the AI generates a complete landing page layout, copy, and images in seconds. Users can easily edit the landing page on-site, craft customizable call-to-actions, and benefit from features like built-in waitlist and email follow-ups. LampBuilder also offers free custom domain hosting, a rich library of components, built-in SEO optimization, and multi-language support, making it a versatile tool for startup founders looking to launch products quickly.
LIDO
LIDO is an AI-powered music generator that allows users to create unique and original music with lyrics. It is designed to be accessible to both budding musicians and those simply looking to explore the endless possibilities of music. With LIDO, users can generate music in a variety of styles, including hip-hop, pop, rock, and electronic. The tool is easy to use and requires no prior musical knowledge. Simply select a style, enter some lyrics, and LIDO will generate a complete song.
Recroo
Recroo is a fully automated AI interview application that allows users to conduct interviews using artificial intelligence technology. The app is designed to streamline the screening process for recruiters by providing a real-interview like environment, complete feedback with ratings, AI assistant for answering questions, interview transcript review, and interview audio playback. Recroo simplifies the interview process by allowing users to provide job details and custom questions, while the AI engine takes care of conducting the interview. It is a powerful tool for recruiters looking to efficiently screen candidates and focus on other tasks.
Home Visualizer AI
Home Visualizer AI is an AI-powered tool that allows users to visualize their dream home. With a few simple clicks, users can upload a photo of their room and select from a variety of design styles. The AI will then generate a realistic rendering of the room, complete with furniture, décor, and even lighting. Home Visualizer AI is perfect for anyone who is looking to remodel their home, or for anyone who is simply curious about what their dream home could look like.
GalilAI
GalilAI is an AI-powered tool that allows users to create Instagram posts quickly and effortlessly. It offers a range of features such as generating unlimited posts using Artificial Intelligence, automatic design creation, one-click publishing to Instagram/Facebook, complete customization of visual identity, and more. Users can save time and money by using GalilAI to streamline their social media content creation process. The tool is designed to be user-friendly, efficient, and highly customizable, catering to individuals and businesses looking to enhance their online presence through engaging social media posts.
VenturusAI
VenturusAI is a tool that provides instant feedback on your business ideas. It uses GPT-3.5 and GPT-4 to generate an analysis of your idea and give you feedback on how to make it successful. The tool offers a comprehensive business analysis, including SWOT, PESTEL, and Porter's Five Forces assessments. It also provides valuable insights into your target audience, complete with user stories and demographic data. Additionally, VenturusAI offers business strategy recommendations, framework suggestions, and requirements analysis. It also explores marketing strategy and branding advice, including slogan ideas and social media post examples. The tool is user-friendly and easy to navigate, making it the perfect tool for any business owner or entrepreneur looking to take their ideas to the next level.
Virtuozy Pro
Virtuozy Pro is an AI-powered music assistant that helps musicians of all levels create, produce, and master their music. With its intuitive interface and powerful features, Virtuozy Pro makes it easy to generate chords, lyrics, and complete songs in a variety of genres. Whether you're a beginner looking to learn the basics of music theory or a professional musician looking to streamline your workflow, Virtuozy Pro has something to offer everyone.
Yoast
Yoast is an AI-powered SEO tool designed to help website owners improve their search engine optimization. It offers a range of features such as AI-optimized SEO titles and meta descriptions, content optimization suggestions, automatic redirects, and internal linking recommendations. Yoast provides users with the latest SEO best practices and 24/7 support, making it a valuable tool for businesses, webshops, and bloggers looking to enhance their online visibility and compete in search results.
DVDFab
DVDFab is a comprehensive multimedia solution provider that offers a wide range of software for DVD, Blu-ray, and UHD backup, conversion, and authoring. With over 20 years of experience in the industry, DVDFab has become a trusted name among users for its reliable and high-quality products. The company's flagship product, DVDFab All-In-One, is a comprehensive suite that includes all of DVDFab's DVD, Blu-ray, and UHD tools. Other popular products from DVDFab include StreamFab, a streaming video downloader; UniFab, an AI-powered video enhancer; and PlayerFab, an Ultra HD player.
DVDFab
DVDFab is the world's leading multimedia solution provider, offering a wide range of tools for DVD, Blu-ray, and UHD disc backup, conversion, and authoring. With over 20 years of industry experience, DVDFab provides users with comprehensive solutions for disc editing, disc-to-file conversion, and video enhancement. The application also includes features like DVD/Blu-ray/UHD copying, format conversion, video playback, streaming video downloading, and AI-powered video upscaling. Trusted by millions of users worldwide, DVDFab continues to innovate and expand its product line to meet the evolving needs of multimedia enthusiasts.
AI Form Fill
AI Form Fill is an AI-powered tool that revolutionizes form filling by using advanced AI models to understand context and accurately fill forms across various websites and form types. Users can save time and boost productivity by customizing the AI's behavior, choosing from multiple AI models, and enjoying a flexible pricing system. The tool offers features like AI-powered filling, one-click magic fill, customizable context, and a referral program. With applications in job applications, survey responses, content creation, and product listings, AI Form Fill streamlines various tasks and enhances user efficiency and consistency.
20 - Open Source AI Tools
comfyui_LLM_party
COMFYUI LLM PARTY is a node library designed for LLM workflow development in ComfyUI, an extremely minimalist UI interface primarily used for AI drawing and SD model-based workflows. The project aims to provide a complete set of nodes for constructing LLM workflows, enabling users to easily integrate them into existing SD workflows. It features various functionalities such as API integration, local large model integration, RAG support, code interpreters, online queries, conditional statements, looping links for large models, persona mask attachment, and tool invocations for weather lookup, time lookup, knowledge base, code execution, web search, and single-page search. Users can rapidly develop web applications using API + Streamlit and utilize LLM as a tool node. Additionally, the project includes an omnipotent interpreter node that allows the large model to perform any task, with recommendations to use the 'show_text' node for display output.
skyvern
Skyvern automates browser-based workflows using LLMs and computer vision. It provides a simple API endpoint to fully automate manual workflows, replacing brittle or unreliable automation solutions. Traditional approaches to browser automations required writing custom scripts for websites, often relying on DOM parsing and XPath-based interactions which would break whenever the website layouts changed. Instead of only relying on code-defined XPath interactions, Skyvern adds computer vision and LLMs to the mix to parse items in the viewport in real-time, create a plan for interaction and interact with them. This approach gives us a few advantages: 1. Skyvern can operate on websites it’s never seen before, as it’s able to map visual elements to actions necessary to complete a workflow, without any customized code 2. Skyvern is resistant to website layout changes, as there are no pre-determined XPaths or other selectors our system is looking for while trying to navigate 3. Skyvern leverages LLMs to reason through interactions to ensure we can cover complex situations. Examples include: 1. If you wanted to get an auto insurance quote from Geico, the answer to a common question “Were you eligible to drive at 18?” could be inferred from the driver receiving their license at age 16 2. If you were doing competitor analysis, it’s understanding that an Arnold Palmer 22 oz can at 7/11 is almost definitely the same product as a 23 oz can at Gopuff (even though the sizes are slightly different, which could be a rounding error!) Want to see examples of Skyvern in action? Jump to #real-world-examples-of- skyvern
generative-ai-for-beginners
This course has 18 lessons. Each lesson covers its own topic so start wherever you like! Lessons are labeled either "Learn" lessons explaining a Generative AI concept or "Build" lessons that explain a concept and code examples in both **Python** and **TypeScript** when possible. Each lesson also includes a "Keep Learning" section with additional learning tools. **What You Need** * Access to the Azure OpenAI Service **OR** OpenAI API - _Only required to complete coding lessons_ * Basic knowledge of Python or Typescript is helpful - *For absolute beginners check out these Python and TypeScript courses. * A Github account to fork this entire repo to your own GitHub account We have created a **Course Setup** lesson to help you with setting up your development environment. Don't forget to star (🌟) this repo to find it easier later. ## 🧠 Ready to Deploy? If you are looking for more advanced code samples, check out our collection of Generative AI Code Samples in both **Python** and **TypeScript**. ## 🗣️ Meet Other Learners, Get Support Join our official AI Discord server to meet and network with other learners taking this course and get support. ## 🚀 Building a Startup? Sign up for Microsoft for Startups Founders Hub to receive **free OpenAI credits** and up to **$150k towards Azure credits to access OpenAI models through Azure OpenAI Services**. ## 🙏 Want to help? Do you have suggestions or found spelling or code errors? Raise an issue or Create a pull request ## 📂 Each lesson includes: * A short video introduction to the topic * A written lesson located in the README * Python and TypeScript code samples supporting Azure OpenAI and OpenAI API * Links to extra resources to continue your learning ## 🗃️ Lessons | | Lesson Link | Description | Additional Learning | | :-: | :------------------------------------------------------------------------------------------------------------------------------------------: | :---------------------------------------------------------------------------------------------: | ------------------------------------------------------------------------------ | | 00 | Course Setup | **Learn:** How to Setup Your Development Environment | Learn More | | 01 | Introduction to Generative AI and LLMs | **Learn:** Understanding what Generative AI is and how Large Language Models (LLMs) work. | Learn More | | 02 | Exploring and comparing different LLMs | **Learn:** How to select the right model for your use case | Learn More | | 03 | Using Generative AI Responsibly | **Learn:** How to build Generative AI Applications responsibly | Learn More | | 04 | Understanding Prompt Engineering Fundamentals | **Learn:** Hands-on Prompt Engineering Best Practices | Learn More | | 05 | Creating Advanced Prompts | **Learn:** How to apply prompt engineering techniques that improve the outcome of your prompts. | Learn More | | 06 | Building Text Generation Applications | **Build:** A text generation app using Azure OpenAI | Learn More | | 07 | Building Chat Applications | **Build:** Techniques for efficiently building and integrating chat applications. | Learn More | | 08 | Building Search Apps Vector Databases | **Build:** A search application that uses Embeddings to search for data. | Learn More | | 09 | Building Image Generation Applications | **Build:** A image generation application | Learn More | | 10 | Building Low Code AI Applications | **Build:** A Generative AI application using Low Code tools | Learn More | | 11 | Integrating External Applications with Function Calling | **Build:** What is function calling and its use cases for applications | Learn More | | 12 | Designing UX for AI Applications | **Learn:** How to apply UX design principles when developing Generative AI Applications | Learn More | | 13 | Securing Your Generative AI Applications | **Learn:** The threats and risks to AI systems and methods to secure these systems. | Learn More | | 14 | The Generative AI Application Lifecycle | **Learn:** The tools and metrics to manage the LLM Lifecycle and LLMOps | Learn More | | 15 | Retrieval Augmented Generation (RAG) and Vector Databases | **Build:** An application using a RAG Framework to retrieve embeddings from a Vector Databases | Learn More | | 16 | Open Source Models and Hugging Face | **Build:** An application using open source models available on Hugging Face | Learn More | | 17 | AI Agents | **Build:** An application using an AI Agent Framework | Learn More | | 18 | Fine-Tuning LLMs | **Learn:** The what, why and how of fine-tuning LLMs | Learn More |
airflow-chart
This Helm chart bootstraps an Airflow deployment on a Kubernetes cluster using the Helm package manager. The version of this chart does not correlate to any other component. Users should not expect feature parity between OSS airflow chart and the Astronomer airflow-chart for identical version numbers. To install this helm chart remotely (using helm 3) kubectl create namespace airflow helm repo add astronomer https://helm.astronomer.io helm install airflow --namespace airflow astronomer/airflow To install this repository from source sh kubectl create namespace airflow helm install --namespace airflow . Prerequisites: Kubernetes 1.12+ Helm 3.6+ PV provisioner support in the underlying infrastructure Installing the Chart: sh helm install --name my-release . The command deploys Airflow on the Kubernetes cluster in the default configuration. The Parameters section lists the parameters that can be configured during installation. Upgrading the Chart: First, look at the updating documentation to identify any backwards-incompatible changes. To upgrade the chart with the release name `my-release`: sh helm upgrade --name my-release . Uninstalling the Chart: To uninstall/delete the `my-release` deployment: sh helm delete my-release The command removes all the Kubernetes components associated with the chart and deletes the release. Updating DAGs: Bake DAGs in Docker image The recommended way to update your DAGs with this chart is to build a new docker image with the latest code (`docker build -t my-company/airflow:8a0da78 .`), push it to an accessible registry (`docker push my-company/airflow:8a0da78`), then update the Airflow pods with that image: sh helm upgrade my-release . --set images.airflow.repository=my-company/airflow --set images.airflow.tag=8a0da78 Docker Images: The Airflow image that are referenced as the default values in this chart are generated from this repository: https://github.com/astronomer/ap-airflow. Other non-airflow images used in this chart are generated from this repository: https://github.com/astronomer/ap-vendor. Parameters: The complete list of parameters supported by the community chart can be found on the Parameteres Reference page, and can be set under the `airflow` key in this chart. The following tables lists the configurable parameters of the Astronomer chart and their default values. | Parameter | Description | Default | | :----------------------------- | :-------------------------------------------------------------------------------------------------------- | :---------------------------- | | `ingress.enabled` | Enable Kubernetes Ingress support | `false` | | `ingress.acme` | Add acme annotations to Ingress object | `false` | | `ingress.tlsSecretName` | Name of secret that contains a TLS secret | `~` | | `ingress.webserverAnnotations` | Annotations added to Webserver Ingress object | `{}` | | `ingress.flowerAnnotations` | Annotations added to Flower Ingress object | `{}` | | `ingress.baseDomain` | Base domain for VHOSTs | `~` | | `ingress.auth.enabled` | Enable auth with Astronomer Platform | `true` | | `extraObjects` | Extra K8s Objects to deploy (these are passed through `tpl`). More about Extra Objects. | `[]` | | `sccEnabled` | Enable security context constraints required for OpenShift | `false` | | `authSidecar.enabled` | Enable authSidecar | `false` | | `authSidecar.repository` | The image for the auth sidecar proxy | `nginxinc/nginx-unprivileged` | | `authSidecar.tag` | The image tag for the auth sidecar proxy | `stable` | | `authSidecar.pullPolicy` | The K8s pullPolicy for the the auth sidecar proxy image | `IfNotPresent` | | `authSidecar.port` | The port the auth sidecar exposes | `8084` | | `gitSyncRelay.enabled` | Enables git sync relay feature. | `False` | | `gitSyncRelay.repo.url` | Upstream URL to the git repo to clone. | `~` | | `gitSyncRelay.repo.branch` | Branch of the upstream git repo to checkout. | `main` | | `gitSyncRelay.repo.depth` | How many revisions to check out. Leave as default `1` except in dev where history is needed. | `1` | | `gitSyncRelay.repo.wait` | Seconds to wait before pulling from the upstream remote. | `60` | | `gitSyncRelay.repo.subPath` | Path to the dags directory within the git repository. | `~` | Specify each parameter using the `--set key=value[,key=value]` argument to `helm install`. For example, sh helm install --name my-release --set executor=CeleryExecutor --set enablePodLaunching=false . Walkthrough using kind: Install kind, and create a cluster We recommend testing with Kubernetes 1.25+, example: sh kind create cluster --image kindest/node:v1.25.11 Confirm it's up: sh kubectl cluster-info --context kind-kind Add Astronomer's Helm repo sh helm repo add astronomer https://helm.astronomer.io helm repo update Create namespace + install the chart sh kubectl create namespace airflow helm install airflow -n airflow astronomer/airflow It may take a few minutes. Confirm the pods are up: sh kubectl get pods --all-namespaces helm list -n airflow Run `kubectl port-forward svc/airflow-webserver 8080:8080 -n airflow` to port-forward the Airflow UI to http://localhost:8080/ to confirm Airflow is working. Login as _admin_ and password _admin_. Build a Docker image from your DAGs: 1. Start a project using astro-cli, which will generate a Dockerfile, and load your DAGs in. You can test locally before pushing to kind with `astro airflow start`. `sh mkdir my-airflow-project && cd my-airflow-project astro dev init` 2. Then build the image: `sh docker build -t my-dags:0.0.1 .` 3. Load the image into kind: `sh kind load docker-image my-dags:0.0.1` 4. Upgrade Helm deployment: sh helm upgrade airflow -n airflow --set images.airflow.repository=my-dags --set images.airflow.tag=0.0.1 astronomer/airflow Extra Objects: This chart can deploy extra Kubernetes objects (assuming the role used by Helm can manage them). For Astronomer Cloud and Enterprise, the role permissions can be found in the Commander role. yaml extraObjects: - apiVersion: batch/v1beta1 kind: CronJob metadata: name: "{{ .Release.Name }}-somejob" spec: schedule: "*/10 * * * *" concurrencyPolicy: Forbid jobTemplate: spec: template: spec: containers: - name: myjob image: ubuntu command: - echo args: - hello restartPolicy: OnFailure Contributing: Check out our contributing guide! License: Apache 2.0 with Commons Clause
start-llms
This repository is a comprehensive guide for individuals looking to start and improve their skills in Large Language Models (LLMs) without an advanced background in the field. It provides free resources, online courses, books, articles, and practical tips to become an expert in machine learning. The guide covers topics such as terminology, transformers, prompting, retrieval augmented generation (RAG), and more. It also includes recommendations for podcasts, YouTube videos, and communities to stay updated with the latest news in AI and LLMs.
frigate
Frigate is a complete and local NVR designed for Home Assistant with AI object detection. It uses OpenCV and Tensorflow to perform realtime object detection locally for IP cameras. Use of a Google Coral Accelerator is optional, but highly recommended. The Coral will outperform even the best CPUs and can process 100+ FPS with very little overhead.
next-token-prediction
Next-Token Prediction is a language model tool that allows users to create high-quality predictions for the next word, phrase, or pixel based on a body of text. It can be used as an alternative to well-known decoder-only models like GPT and Mistral. The tool provides options for simple usage with built-in data bootstrap or advanced customization by providing training data or creating it from .txt files. It aims to simplify methodologies, provide autocomplete, autocorrect, spell checking, search/lookup functionalities, and create pixel and audio transformers for various prediction formats.
Numpy.NET
Numpy.NET is the most complete .NET binding for NumPy, empowering .NET developers with extensive functionality for scientific computing, machine learning, and AI. It provides multi-dimensional arrays, matrices, linear algebra, FFT, and more via a strong typed API. Numpy.NET does not require a local Python installation, as it uses Python.Included to package embedded Python 3.7. Multi-threading must be handled carefully to avoid deadlocks or access violation exceptions. Performance considerations include overhead when calling NumPy from C# and the efficiency of data transfer between C# and Python. Numpy.NET aims to match the completeness of the original NumPy library and is generated using CodeMinion by parsing the NumPy documentation. The project is MIT licensed and supported by JetBrains.
openllmetry
OpenLLMetry is a set of extensions built on top of OpenTelemetry that gives you complete observability over your LLM application. Because it uses OpenTelemetry under the hood, it can be connected to your existing observability solutions - Datadog, Honeycomb, and others. It's built and maintained by Traceloop under the Apache 2.0 license. The repo contains standard OpenTelemetry instrumentations for LLM providers and Vector DBs, as well as a Traceloop SDK that makes it easy to get started with OpenLLMetry, while still outputting standard OpenTelemetry data that can be connected to your observability stack. If you already have OpenTelemetry instrumented, you can just add any of our instrumentations directly.
helix
HelixML is a private GenAI platform that allows users to deploy the best of open AI in their own data center or VPC while retaining complete data security and control. It includes support for fine-tuning models with drag-and-drop functionality. HelixML brings the best of open source AI to businesses in an ergonomic and scalable way, optimizing the tradeoff between GPU memory and latency.
Text-To-Video-AI
Text-To-Video-AI is a tool that utilizes AI to generate videos from text. Users can easily create videos by providing text input, making content creation more efficient and accessible. The tool simplifies the video creation process by automating the conversion of text into engaging video content. With Text-To-Video-AI, users can quickly produce high-quality videos without the need for advanced video editing skills. The tool aims to empower content creators, marketers, educators, and individuals looking to enhance their video production capabilities.
learnopencv
LearnOpenCV is a repository containing code for Computer Vision, Deep learning, and AI research articles shared on the blog LearnOpenCV.com. It serves as a resource for individuals looking to enhance their expertise in AI through various courses offered by OpenCV. The repository includes a wide range of topics such as image inpainting, instance segmentation, robotics, deep learning models, and more, providing practical implementations and code examples for readers to explore and learn from.
pipecat
Pipecat is an open-source framework designed for building generative AI voice bots and multimodal assistants. It provides code building blocks for interacting with AI services, creating low-latency data pipelines, and transporting audio, video, and events over the Internet. Pipecat supports various AI services like speech-to-text, text-to-speech, image generation, and vision models. Users can implement new services and contribute to the framework. Pipecat aims to simplify the development of applications like personal coaches, meeting assistants, customer support bots, and more by providing a complete framework for integrating AI services.
mslearn-ai-fundamentals
This repository contains materials for the Microsoft Learn AI Fundamentals module. It covers the basics of artificial intelligence, machine learning, and data science. The content includes hands-on labs, interactive learning modules, and assessments to help learners understand key concepts and techniques in AI. Whether you are new to AI or looking to expand your knowledge, this module provides a comprehensive introduction to the fundamentals of AI.
guardrails
Guardrails is a Python framework that helps build reliable AI applications by performing two key functions: 1. Guardrails runs Input/Output Guards in your application that detect, quantify and mitigate the presence of specific types of risks. To look at the full suite of risks, check out Guardrails Hub. 2. Guardrails help you generate structured data from LLMs.
documentation
Vespa documentation is served using GitHub Project pages with Jekyll. To edit documentation, check out and work off the master branch in this repository. Documentation is written in HTML or Markdown. Use a single Jekyll template _layouts/default.html to add header, footer and layout. Install bundler, then $ bundle install $ bundle exec jekyll serve --incremental --drafts --trace to set up a local server at localhost:4000 to see the pages as they will look when served. If you get strange errors on bundle install try $ export PATH=“/usr/local/opt/[email protected]/bin:$PATH” $ export LDFLAGS=“-L/usr/local/opt/[email protected]/lib” $ export CPPFLAGS=“-I/usr/local/opt/[email protected]/include” $ export PKG_CONFIG_PATH=“/usr/local/opt/[email protected]/lib/pkgconfig” The output will highlight rendering/other problems when starting serving. Alternatively, use the docker image `jekyll/jekyll` to run the local server on Mac $ docker run -ti --rm --name doc \ --publish 4000:4000 -e JEKYLL_UID=$UID -v $(pwd):/srv/jekyll \ jekyll/jekyll jekyll serve or RHEL 8 $ podman run -it --rm --name doc -p 4000:4000 -e JEKYLL_ROOTLESS=true \ -v "$PWD":/srv/jekyll:Z docker.io/jekyll/jekyll jekyll serve The layout is written in denali.design, see _layouts/default.html for usage. Please do not add custom style sheets, as it is harder to maintain.
reader
Reader is a tool that converts any URL to an LLM-friendly input with a simple prefix `https://r.jina.ai/`. It improves the output for your agent and RAG systems at no cost. Reader supports image reading, captioning all images at the specified URL and adding `Image [idx]: [caption]` as an alt tag. This enables downstream LLMs to interact with the images in reasoning, summarizing, etc. Reader offers a streaming mode, useful when the standard mode provides an incomplete result. In streaming mode, Reader waits a bit longer until the page is fully rendered, providing more complete information. Reader also supports a JSON mode, which contains three fields: `url`, `title`, and `content`. Reader is backed by Jina AI and licensed under Apache-2.0.
pgvecto.rs
pgvecto.rs is a Postgres extension written in Rust that provides vector similarity search functions. It offers ultra-low-latency, high-precision vector search capabilities, including sparse vector search and full-text search. With complete SQL support, async indexing, and easy data management, it simplifies data handling. The extension supports various data types like FP16/INT8, binary vectors, and Matryoshka embeddings. It ensures system performance with production-ready features, high availability, and resource efficiency. Security and permissions are managed through easy access control. The tool allows users to create tables with vector columns, insert vector data, and calculate distances between vectors using different operators. It also supports half-precision floating-point numbers for better performance and memory usage optimization.
atomic_agents
Atomic Agents is a modular and extensible framework designed for creating powerful applications. It follows the principles of Atomic Design, emphasizing small and single-purpose components. Leveraging Pydantic for data validation and serialization, the framework offers a set of tools and agents that can be combined to build AI applications. It depends on the Instructor package and supports various APIs like OpenAI, Cohere, Anthropic, and Gemini. Atomic Agents is suitable for developers looking to create AI agents with a focus on modularity and flexibility.
kernel-memory
Kernel Memory (KM) is a multi-modal AI Service specialized in the efficient indexing of datasets through custom continuous data hybrid pipelines, with support for Retrieval Augmented Generation (RAG), synthetic memory, prompt engineering, and custom semantic memory processing. KM is available as a Web Service, as a Docker container, a Plugin for ChatGPT/Copilot/Semantic Kernel, and as a .NET library for embedded applications. Utilizing advanced embeddings and LLMs, the system enables Natural Language querying for obtaining answers from the indexed data, complete with citations and links to the original sources. Designed for seamless integration as a Plugin with Semantic Kernel, Microsoft Copilot and ChatGPT, Kernel Memory enhances data-driven features in applications built for most popular AI platforms.
20 - OpenAI Gpts
Complete Legal Code Translator
Translates all legal doc sections into code with detailed comments.
Complete Apex Test Class Assistant
Crafting full, accurate Apex test classes, with 100% user service.
Prompt Peerless - Complete Prompt Optimization
Premier AI Prompt Engineer for Advanced LLM Optimization, Enhancing AI-to-AI Interaction and Comprehension. Create -> Optimize -> Revise iteratively
Apple Foundation Complete Code Expert
A detailed expert trained on all 72,000 pages of Apple Foundation, offering complete coding solutions. Saving time? https://www.buymeacoffee.com/parkerrex ☕️❤️
Apple CoreHaptics Complete Expert
A detailed expert trained on all 1,071 pages of Apple CoreHaptics, offering complete coding solutions. Saving time? https://www.buymeacoffee.com/parkerrex ☕️❤️
Apple PencilKit Complete Code Expert
A detailed expert trained on all 1,823 pages of Apple PencilKit, offering complete coding solutions. Saving time? https://www.buymeacoffee.com/parkerrex ☕️❤️
Apple MapKit Complete Code Expert
A detailed expert trained on all 5,961 pages of Apple MapKit, offering complete coding solutions. Saving time? https://www.buymeacoffee.com/parkerrex ☕️❤️
Apple CoreData Complete Code Expert
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Apple Activity Kit Complete Code Expert
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