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Join a community of passionate learners and builders! We dive deep into: 🔹 Machine Learning (Algorithms, Models, MLOps) 🔹 Coding Tips & Best Practices (Python, AI/ML, Automation) 🔸 collaborative problem solving (challenges ,Q&A....) @codewithmemo
نمایش بیشترکشور مشخص نشده استفناوری و برنامهها57 220
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آرشیو پست ها
You're processing an infinite stream of numbers and need to continuously maintain the median. You cannot store all numbers due to memory constraints. What data structures and algorithms would you use, and how would they scale?
Repost from Learn JavaScript
+7
🔰 JavaScript Decorators & Annotations
Decorators enable metaprogramming by extending classes/methods at design time.
It's Day 4 Unlocked Day 4: Data Fundamentals
Importance of data in AI
Data types: numerical, categorical, text
Basic data preprocessing
Introduction to Pandas
Every year, a massive amount of CO2 is emitted from electricity generation
worldwide. To reduce CO 2 emissions and plan our energy strategy accordingly,
it is essential to gather an idea about future CO2 emissions. Therefore, develop
a 10-year CO2 emission forecasting model. The dataset and its description are
available here: https://www.kaggle.com/datasets/txtrouble/carbon-emissions.
Day 3: Platforms for Practice
Introduction to Google Colab, Kaggle
Jupyter Notebook basics
GitHub for AI projects
Brain storming Questions after Day 2:
1. How are input data handled before implementing ML algorithms? Mention the
steps.
2. Why is data augmentation required, and how is it implemented?
3. The datasets often contain missing data. How can this problem be addressed?
4. What do stationary and non-stationary time series signify? Differentiate
between them using an example.
5. Why do we need different types of ML algorithms? Briefly discuss.
6. Discuss the relationship between deep learning and neural networks. What are
the advantages of deep learning methods?
اکنون در دسترس! پژوهش تلگرام ۲۰۲۵ — مهمترین بینشهای سال 
