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Source channel @olddriverGDstudy · Post #14 · Mar 17

由于前段时间群里发生了买资源之间的掐架事件,记录一些话。 无忌说: 无论有些伙计是卖资源还是什么, 车队也管不着 反正车队的资源是免费获取的 不过,就算是卖资源 不要护逼, 不要为了那所谓的标签故意推不靠谱的资源, 还不允许别人反映, 就算卖资源,也要卖靠谱的资源, 不靠谱的资源给别人卖了别人会寒心, 赚那几十块钱倒了牌子有意思吗? 做人做事都要凭良心, 不要纠缠什么利益, 单纯的做一个修车人, 不快乐吗? 彩虹(少妇小专家)说: 修车就是修车 你以为你是柳永? 你以为你是李白? 公益大队 我们要的是什么 我们要的是性爱的欢愉? 我们要的灵魂的交流? 我们要的是水乳交融的感受? 我们要的是洒脱感? 都错了 我们要的是整片森林 我们要的是广阔天地 我们要的是雄鹰展翅在这片土地上空 我们用几辆碎银要的是什么 女人 御姐 嫩妹 淑女 熟女 环肥燕瘦 各有各的滋味 各有各的感觉 各有各的微笑 各有各的呻吟 各有各的美好 各有各的回忆 要的是什么 问问你自己 爱情 肉体 灵魂 是统一的吗 是矛盾的吗 是对立而统一的吗 是螺旋前进的吗 曾经志在四方的我们 甘心被推广 被卖资源 被鸡头 被黑车 左右自己的情感吗 影响自己的勇气吗 不 大队 要的是杀伐的乐趣 要的是勇做先锋的勇气 要的是山无棱才敢与君绝的决心 要的是踏破铁鞋无觅处,得来全不费功夫的洒脱 要的是待从头,收拾旧山河的豪迈 要的是怒发冲冠,凭栏处,潇潇雨歇的悲壮 要的是手接飞猱搏雕虎,侧足焦原未言苦的勇气 悲痛啊 可悲啊 大队狂客落魄尚如此啊 愿我们风云感会起屠钓吧 要继承先人的意志啊 要有原则啊 幼女 未成年 龙女 都不能去搞 加油吧,各位 (彩虹(少妇小专家)是无锡车队的管理,无忌的朋友,纯粹的出击者) 作者:无忌 标签:#原创,#杂谈

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djangoproject

@djangoproject · Post #251 · 02/02/2017, 06:06 PM

https://www.analyticsvidhya.com/blog/2016/08/deep-learning-path/?utm_content=bufferd56c5&utm_medium=social&utm_source=linkedin.com&utm_campaign=buffer #Deep_Learning, a prominent topic in #Artificial_Intelligence domain, has been in the spotlight for quite some time now. It is especially known for its breakthroughs in fields like Computer Vision and Game playing (Alpha GO), surpassing human ability. Since the last survey, there has been a drastic increase in the trends. (click here to check out the survey) Here is what Google trends shows us:

DSR Corporation News

@dsr_news · Post #252 · 12/13/2022, 10:28 AM

🙋🏻‍♂️ Знакомьтесь, это Бруно Оливейра, VP of Engineering в Noema, дочерней компании DSR Corporation. Noema занимается созданием решений с использованием технологий AI и Computer Vision. 👨🏻‍💻 Именно интерес к CV привел Бруно в DSR. 💬 — Не так просто найти компанию, которая специализируется на создании CV/AI продуктов для использования в реальной жизни. Это именно то, чем мне нравится заниматься, — рассказывает Бруно. #dsr_team#doingsoftwareright#noema#computer_vision#artificial_intelligence

GitHub Trends

@githubtrending · Post #14732 · 05/21/2025, 12:30 PM

#csharp#ai#artificial_intelligence#llm#openai#sdk Semantic Kernel is a tool that helps developers build and manage AI systems easily. It supports multiple programming languages like C#, Python, and Java, making it versatile for different projects. This tool allows you to connect your AI models to various services and databases, which helps in automating tasks and making decisions based on user inputs. It's especially useful for businesses because it's reliable, secure, and can handle complex workflows. By using Semantic Kernel, developers can create intelligent AI agents that can interact with users and perform tasks efficiently. https://github.com/microsoft/semantic-kernel

GitHub Trends

@githubtrending · Post #15068 · 08/17/2025, 11:30 AM

#python#artificial_intelligence#cybersecurity#generative_ai#llm#pentesting Cybersecurity AI (CAI) is an open-source, lightweight framework that helps you build AI agents to find and fix security vulnerabilities efficiently. It supports many AI models and tools, works on multiple operating systems, and allows human control during tasks. CAI automates complex security testing steps like scanning, exploiting, and validating bugs, making bug bounty hunting easier and faster. It also logs detailed traces for better analysis and supports teamwork among AI agents. Using CAI can boost your cybersecurity skills, save time, and improve your ability to protect systems from attacks by combining AI power with your expertise. https://github.com/aliasrobotics/cai

GitHub Trends

@githubtrending · Post #15278 · 11/07/2025, 02:00 PM

#python#agents#artificial_intelligence#cybersecurity#generative_ai#llm#penetration_testing Strix is a free, open-source tool that uses AI agents to automatically find and fix security problems in your apps by acting like real hackers—running your code, hunting for vulnerabilities, and proving they’re real by actually exploiting them, not just guessing[1][2]. It works fast, gives clear reports, and can even suggest fixes or create pull requests to help you secure your code quickly. You can run it on your own computer, in your development pipeline, or use a cloud version for easier setup. The main benefit is that you get thorough, real-world security testing without the slow pace and high cost of manual checks, helping you catch and fix issues before they become serious problems. https://github.com/usestrix/strix

Crypto M - Crypto News

@CryptoM · Post #64620 · 04/09/2026, 11:35 AM

🚀 AINFT Transitions to B.AI Brand Focused on Agent Finance The official Twitter account of AINFT will transition to B.AI starting today. According to ChainCatcher, the B.AI brand aims to advance Agent Finance, which involves AI Agents autonomously managing funds, executing trades, and optimizing returns, thereby granting artificial intelligence true financial autonomy and accelerating the realization of Artificial General Intelligence (AGI). To ensure a smooth transition for the community, the brand will implement phased upgrades to avoid the impact of a one-time switch. During this process, AINFT will continue to operate as a core sub-brand within the B.AI ecosystem. All content, technological iterations, and community activities related to AINFT will be migrated to the new platform @AINFTcom. #B_AI#Agent_Finance#AI_Agents#Artificial_Intelligence#AGI#Technology_Transition#AINFT#Financial_Autonomy#Blockchain#Crypto

djangoproject

@djangoproject · Post #413 · 08/15/2017, 12:34 PM

http://codeinpython.com/tutorials/deep-learning-tensorflow-keras-pytorch/?nonamp=1 Deep Learning #Tensorflow vs #Keras vs #PyTorch #Deep_learning is the application of artificial #neural_networks (ANNs) to learn tasks. These tasks contain more than one hidden layer. Deep learning is part of a broader family of #machine_learning. Machine learning itself is a part of #Artificial_Intelligence(#AI).

GitHub Trends

@githubtrending · Post #15123 · 09/06/2025, 11:30 AM

#rust#artificial_intelligence#big_data#data_engineering#distributed_computing#machine_learning#multimodal#python#rust Daft is a powerful, easy-to-use data engine that lets you process large-scale data using Python or SQL with high speed and efficiency. It supports complex data types like images and tensors, works well interactively for quick data exploration, and can scale to huge cloud clusters using Ray. Daft integrates smoothly with cloud storage and data catalogs, making it ideal for data engineering, analytics, and machine learning workflows. By using Daft, you can handle big, multimodal datasets faster and more flexibly, improving your ability to analyze and prepare data for AI models without complex setup or slowdowns. https://github.com/Eventual-Inc/Daft

GitHub Trends

@githubtrending · Post #14926 · 07/08/2025, 11:30 AM

#jupyter_notebook#artificial_intelligence#book#large_language_models#llm#llms#oreilly#oreilly_books You can learn how to use Large Language Models (LLMs) effectively through the book *Hands-On Large Language Models* by Jay Alammar and Maarten Grootendorst. This book uses nearly 300 custom illustrations to explain key concepts and practical tools for working with LLMs, including tokenization, transformers, prompt engineering, fine-tuning, and advanced text generation. It also provides runnable code examples in Google Colab, making it easy to practice and apply what you learn. This resource helps you understand and build your own LLM applications confidently, saving you time and effort in mastering complex AI technology. It’s highly recommended for anyone wanting hands-on experience with LLMs. https://github.com/HandsOnLLM/Hands-On-Large-Language-Models

GitHub Trends

@githubtrending · Post #15545 · 03/07/2026, 12:30 PM

#elixir#agent#ai#artificial_intelligence#elixir#event_driven_architecture#functional_programming#orchestration#workflow Jido is a pure functional framework for Elixir to build autonomous multi-agent workflows. Agents are immutable data with a simple `cmd/2` function that transforms state purely and outputs directives for effects like signals or spawning, handled by OTP runtime. It formalizes patterns like standard signals, reusable actions, and hierarchies over raw GenServer, adding AI tools, strategies (ReAct, FSM), and supervision. You benefit by creating scalable, testable, fault-tolerant agent systems easily for production AI apps, saving reinvented code. https://github.com/agentjido/jido

djangoproject

@djangoproject · Post #350 · 06/23/2017, 07:07 AM

http://www.datapine.com/blog/technology-buzzwords/ 12 IT & Technology Buzzwords You Won’t Be Able To Avoid In 2017 #Virtual_Assistants #Artificial_Intelligence (#AI) #Augmented_Reality / #Virtual_Reality #Deep_Learning / #Advanced_Machine_Learning #Blockchain Everything On-Demand (The Uber Effect) Digital Twin Smart Factory / Industry 4.0 Actionable Analytics / Self-service analytics Internet of Things / Device Mash / Ambient UX React JS / React Native Quantum Computing

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