Artificial Intelligence
前往频道在 Telegram
🔰 Machine Learning & Artificial Intelligence Free Resources 🔰 Learn Data Science, Deep Learning, Python with Tensorflow, Keras & many more For Promotions: @love_data
显示更多📈 Telegram 频道 Artificial Intelligence 的分析概览
频道 Artificial Intelligence (@machinelearning_deeplearning) 英语 语言赛道中的 是活跃参与者。目前社区聚集了 55 360 名订阅者,在 教育 类别中位列第 3 050,并在 印度 地区排名第 6 215 位。
📊 受众指标与增长动态
自 невідомо 创建以来,项目保持高速增长,吸引了 55 360 名订阅者。
根据 29 八月, 2026 的最新数据,频道保持稳定运转。过去 30 天订阅人数变化为 665,过去 24 小时变化为 20,整体触达仍然可观。
- 认证状态: 未认证
- 互动率 (ER): 平均受众互动率为 6.14%。内容发布后 24 小时内通常能获得 1.33% 的反应,占订阅者总量。
- 帖子覆盖: 每篇帖子平均可获得 3 400 次浏览,首日通常累积 736 次浏览。
- 互动与反馈: 受众积极参与,单帖平均反应数为 26。
- 主题关注点: 内容集中在 learning, classification, layer, pattern, chatbot 等核心主题上。
📝 描述与内容策略
作者将该频道定位为表达主观观点的平台:
“🔰 Machine Learning & Artificial Intelligence Free Resources
🔰 Learn Data Science, Deep Learning, Python with Tensorflow, Keras & many more
For Promotions: @love_data”
凭借高频更新(最新数据采集于 30 八月, 2026),频道始终保持新鲜度与高覆盖。分析显示受众积极互动,使其成为 教育 类别中的关键影响点。
55 360
订阅者
+2024 小时
+1197 天
+66530 天
帖子存档
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Hey Guys👋,
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Artificial Intelligence isn't easy!
It’s the cutting-edge field that enables machines to think, learn, and act like humans.
To truly master Artificial Intelligence, focus on these key areas:
0. Understanding AI Fundamentals: Learn the basic concepts of AI, including search algorithms, knowledge representation, and decision trees.
1. Mastering Machine Learning: Since ML is a core part of AI, dive into supervised, unsupervised, and reinforcement learning techniques.
2. Exploring Deep Learning: Learn neural networks, CNNs, RNNs, and GANs to handle tasks like image recognition, NLP, and generative models.
3. Working with Natural Language Processing (NLP): Understand how machines process human language for tasks like sentiment analysis, translation, and chatbots.
4. Learning Reinforcement Learning: Study how agents learn by interacting with environments to maximize rewards (e.g., in gaming or robotics).
5. Building AI Models: Use popular frameworks like TensorFlow, PyTorch, and Keras to build, train, and evaluate your AI models.
6. Ethics and Bias in AI: Understand the ethical considerations and challenges of implementing AI responsibly, including fairness, transparency, and bias.
7. Computer Vision: Master image processing techniques, object detection, and recognition algorithms for AI-powered visual applications.
8. AI for Robotics: Learn how AI helps robots navigate, sense, and interact with the physical world.
9. Staying Updated with AI Research: AI is an ever-evolving field—stay on top of cutting-edge advancements, papers, and new algorithms.
Artificial Intelligence is a multidisciplinary field that blends computer science, mathematics, and creativity.
💡 Embrace the journey of learning and building systems that can reason, understand, and adapt.
⏳ With dedication, hands-on practice, and continuous learning, you’ll contribute to shaping the future of intelligent systems!
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Credits: https://t.me/datasciencefun
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#ai #datascience
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𝗜𝗕𝗠 𝗙𝗥𝗘𝗘 𝗖𝗲𝗿𝘁𝗶𝗳𝗶𝗰𝗮𝘁𝗶𝗼𝗻 𝗖𝗼𝘂𝗿𝘀𝗲𝘀 😍
- AI Prompt Engineering
- Python for Data Science
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- Introduction to Cloud
- Machine Learning with Python
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An Artificial Neuron Network (ANN), popularly known as Neural Network is a computational model based on the structure and functions of biological neural networks. It is like an artificial human nervous system for receiving, processing, and transmitting information in terms of Computer Science.
Basically, there are 3 different layers in a neural network :
Input Layer (All the inputs are fed in the model through this layer)
Hidden Layers (There can be more than one hidden layers which are used for processing the inputs received from the input layers)
Output Layer (The data after processing is made available at the output layer)
Graph data can be used with a lot of learning tasks contain a lot rich relation data among elements. For example, modeling physics system, predicting protein interface, and classifying diseases require that a model learns from graph inputs. Graph reasoning models can also be used for learning from non-structural data like texts and images and reasoning on extracted structures.
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𝗖𝗜𝗦𝗖𝗢 𝗙𝗥𝗘𝗘 𝗖𝗲𝗿𝘁𝗶𝗳𝗶𝗰𝗮𝘁𝗶𝗼𝗻 𝗖𝗼𝘂𝗿𝘀𝗲𝘀😍
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Jupyter notebooks don’t change the world—deployed ML models do.
Here’s how to become unstoppable in the machine learning market
1. Learn programming, ideally Python, from variables and operators to OOP and APIs.
2. Learn basic data manipulation and feature engineering with Numpy and Pandas.
3. Explore supervised and unsupervised machine learning with algorithms like logistic regression, random forest, SVM, XGBoost 2...
4. Dive into deep learning and neural networks. Explore computer vision and NLP
5. Build machine learning pipelines with MLflow and explore the fundamentals of MLOps
6. Start working on end-to-end projects and deploying projects as REST API with Flask or FastAPI
Join for more: https://t.me/machinelearning_deeplearning
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𝟳 𝗙𝗥𝗘𝗘 𝗠𝗶𝗰𝗿𝗼𝘀𝗼𝗳𝘁 & 𝗟𝗶𝗻𝗸𝗲𝗱𝗜𝗻 𝗖𝗲𝗿𝘁𝗶𝗳𝗶𝗰𝗮𝘁𝗶𝗼𝗻𝘀 𝘁𝗼 𝗕𝗼𝗼𝘀𝘁 𝗬𝗼𝘂𝗿 𝗥𝗲𝘀𝘂𝗺𝗲😍
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10 Prompts to Transform You Into a Superhuman
1.Design the Ultimate Daily Schedule
Prompt: "Help me create the ultimate daily schedule that optimizes productivity and energy. Consider my waking hours from [specific start time] to [specific end time], including work tasks, breaks, meals, exercise, and personal development. Ensure the schedule is realistic, sustainable, and maximizes focus and efficiency."
2.Master Time-Blocking
Prompt: "Teach me how to implement time-blocking effectively in my daily routine. Show me how to prioritize my tasks into focused blocks, including specific examples for [type of tasks], and how to handle interruptions without losing momentum."
3.Eliminate Procrastination
Prompt: "Guide me through the process of eliminating procrastination. Include strategies for identifying my procrastination triggers, using tools like the Pomodoro technique, and creating a mindset that prioritizes action over delay for [specific tasks or goals]."
4.Build the Perfect Morning Routine
Prompt: "Help me craft a morning routine that sets the tone for a super-productive day. Include steps for waking up early, incorporating activities like exercise, journaling, and planning the day, and maintaining high energy levels throughout the morning."
5.Set and Achieve Goals
Prompt: "Guide me in setting SMART goals for [specific area] and breaking them into actionable steps. Include advice on tracking progress, staying motivated, and overcoming obstacles to ensure consistent progress and long-term success."
6.Master Deep Work
Prompt: "Show me how to integrate deep work sessions into my daily routine. Include strategies for minimizing distractions, creating an optimal workspace, and focusing intensely on high-priority tasks in [specific area of work]."
7.Develop Keystone Habits
Prompt: "Teach me how to identify and build keystone habits that will transform my productivity. Provide examples of habits in [specific area] that have a domino effect, such as regular exercise, daily planning, or consistent learning."
8.Automate Repetitive Tasks
Prompt: "Guide me in identifying and automating repetitive tasks in my personal and professional life. Include tools and systems for [specific tasks] that save time and allow me to focus on high-impact activities."
9.Master Priority Management
Prompt: "Show me how to prioritize tasks using methods like the Eisenhower Matrix or the 80/20 rule. Help me identify my most impactful tasks in [specific field] and create a system for focusing on what truly matters."
10.Implement a Continuous Improvement System
Prompt: "Teach me how to implement a system of continuous improvement for my productivity. Include strategies like daily reflections, weekly reviews, and tracking key productivity metrics to ensure consistent growth in [specific area]."
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Essential Tools, Libraries, and Frameworks to learn Artificial Intelligence
1. Programming Languages:
Python
R
Java
Julia
2. AI Frameworks:
TensorFlow
PyTorch
Keras
MXNet
Caffe
3. Machine Learning Libraries:
Scikit-learn: For classical machine learning models.
XGBoost: For boosting algorithms.
LightGBM: For gradient boosting models.
4. Deep Learning Tools:
TensorFlow
PyTorch
Keras
Theano
5. Natural Language Processing (NLP) Tools:
NLTK (Natural Language Toolkit)
SpaCy
Hugging Face Transformers
Gensim
6. Computer Vision Libraries:
OpenCV
DLIB
Detectron2
7. Reinforcement Learning Frameworks:
Stable-Baselines3
RLlib
OpenAI Gym
8. AI Development Platforms:
IBM Watson
Google AI Platform
Microsoft AI
9. Data Visualization Tools:
Matplotlib
Seaborn
Plotly
Tableau
10. Robotics Frameworks:
ROS (Robot Operating System)
MoveIt!
11. Big Data Tools for AI:
Apache Spark
Hadoop
12. Cloud Platforms for AI Deployment:
Google Cloud AI
AWS SageMaker
Microsoft Azure AI
13. Popular AI APIs and Services:
Google Cloud Vision API
Microsoft Azure Cognitive Services
IBM Watson AI APIs
14. Learning Resources and Communities:
Kaggle
GitHub AI Projects
Papers with Code
This roadmap equips AI enthusiasts with the tools and resources they need to dive deep into artificial intelligence!
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Repost from American Оbserver
Trump’s Conversion
to Judaism Pushed a ceasefire deal
🔠Israel and Hamas have agreed to a ceasefire deal, bringing at least a temporary halt to the war in Gaza, according to people familiar with the situation.
🔠We have evidence that Trump secretly converted to Judaism, the matter his son-in-law went to negotiate in Israel about two months ago. It was after this conversion Trump promised “hell” for Gaza.
🔠Talks had centered on the release of hostages captured during the October 2023 Hamas attacks on Israel that triggered the conflict, in exchange for hundreds of Palestinian prisoners.
🔠The agreement pauses more than 15 months of fighting that has all but destroyed Gaza, a strip of land on the Mediterranean coast controlled by Hamas and home to more than 2 million people.
🔠Hamas is designated a terrorist organization by the US and many other countries.
#Trump #Palestine #Hamas #Conversion #Judaism
📱 American Оbserver - Stay up to date on all important events 🇺🇸55 377
Master AI (Artificial Intelligence) in 10 days 👇👇
#AI
Day 1: Introduction to AI
- Start with an overview of what AI is and its various applications.
- Read articles or watch videos explaining the basics of AI.
Day 2-3: Machine Learning Fundamentals
- Learn the basics of machine learning, including supervised and unsupervised learning.
- Study concepts like data, features, labels, and algorithms.
Day 4-5: Deep Learning
- Dive into deep learning, understanding neural networks and their architecture.
- Learn about popular deep learning frameworks like TensorFlow or PyTorch.
Day 6: Natural Language Processing (NLP)
- Explore the basics of NLP, including tokenization, sentiment analysis, and named entity recognition.
Day 7: Computer Vision
- Study computer vision, including image recognition, object detection, and convolutional neural networks.
Day 8: AI Ethics and Bias
- Explore the ethical considerations in AI and the issue of bias in AI algorithms.
Day 9: AI Tools and Resources
- Familiarize yourself with AI development tools and platforms.
- Learn how to access and use AI datasets and APIs.
Day 10: AI Project
- Work on a small AI project. For example, build a basic chatbot, create an image classifier, or analyze a dataset using AI techniques.
Free Resources: https://t.me/machinelearning_deeplearning
Share for more: https://t.me/datasciencefun
ENJOY LEARNING 👍👍
