π Collecting Data Across Different Regions?
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Data analysis often starts long before the dashboard or visualization.
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Using residential IPs from different locations can help when you need to test or collect location-specific data.
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Data Analytics pinned Β«π Collecting Data Across Different Regions? Data analysis often starts long before the dashboard or visualization. When collecting public web data, regional differences can affect the content, prices, search results, or other information returned to yourβ¦Β»
Once you start visualizing your SQL schemas like this, there's no going back.
sqltoerdiagram.com
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Forwarded from Machine Learning with Python
This channels is for Programmers, Coders, Software Engineers.
0οΈβ£ Python
1οΈβ£ Data Science
2οΈβ£ Machine Learning
3οΈβ£ Data Visualization
4οΈβ£ Artificial Intelligence
5οΈβ£ Data Analysis
6οΈβ£ Statistics
7οΈβ£ Deep Learning
8οΈβ£ programming Languages
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Forwarded from Machine Learning with Python
If you're just starting to learn machine learning and want to delve deeper into the mathematics required for machine learning and deep learning, I recommend trying this platform. It's something like LeetCode for machine learning.
This is not an advertisement: I personally used it and decided to share it with you.
https://deep-ml.com
https://t.me/CodeProgrammer
This is not an advertisement: I personally used it and decided to share it with you.
https://deep-ml.com
https://t.me/CodeProgrammer
Forwarded from Machine Learning
pandas_vs_polars_cheatsheet.png
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Have you seen the Stanford lecture notes on GPU architecture and CUDA programming?
Excellent course!
https://gfxcourses.stanford.edu/cs149/fall25/lecture/gpuarch/
https://t.me/DataAnalyticsXβ
Excellent course!
https://gfxcourses.stanford.edu/cs149/fall25/lecture/gpuarch/
https://t.me/DataAnalyticsX
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This section contains reference materials for Python, presented concisely, structured, and with ready-to-use code examples. It includes a general cheat sheet for the language, as well as separate materials on specific libraries and development areas. Multithreading, multiprocessing, asyncio, GIL, and other topics are also covered in detail.
π Here's the link: kb.txtly.ru
πRussian lang
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Have you seen the interactive explanation of the Transformer?
It's a really cool visualization of how the architecture works.
https://poloclub.github.io/transformer-explainer/
It's a really cool visualization of how the architecture works.
https://poloclub.github.io/transformer-explainer/
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Forwarded from Machine Learning with Python
"How to Train a Neural Network" is a concise summary of the MIT course lectures on deep learning from 2024. It focuses on one of the fundamental questions in neural networks: how a model learns its weights.
The summary examines the training process from a mathematical perspective. It covers topics such as forward propagation, loss functions, gradients, backpropagation, and gradient-based optimization methods.
I believe this is an interesting resource for those who want to go beyond a general, intuitive understanding of neural networks and begin to delve into the mathematics that underlies their training.
https://ocw.mit.edu/courses/6-7960-deep-learning-fall-2024/mit6_7960_f24_lec2.pdf
https://t.me/CodeProgrammerπ€©
The summary examines the training process from a mathematical perspective. It covers topics such as forward propagation, loss functions, gradients, backpropagation, and gradient-based optimization methods.
I believe this is an interesting resource for those who want to go beyond a general, intuitive understanding of neural networks and begin to delve into the mathematics that underlies their training.
https://ocw.mit.edu/courses/6-7960-deep-learning-fall-2024/mit6_7960_f24_lec2.pdf
https://t.me/CodeProgrammer
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Forwarded from Machine Learning with Python
This channels is for Programmers, Coders, Software Engineers.
0οΈβ£ Python
1οΈβ£ Data Science
2οΈβ£ Machine Learning
3οΈβ£ Data Visualization
4οΈβ£ Artificial Intelligence
5οΈβ£ Data Analysis
6οΈβ£ Statistics
7οΈβ£ Deep Learning
8οΈβ£ programming Languages
β
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