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GitHub has launched its learning platform: all #courses and certificates in one place.
#Git, #GitHub, #MCP, using #AI, #VSCode, and much more.
And most of the content is #free: โ https://learn.github.com
๐ @codeprogrammer
#Git, #GitHub, #MCP, using #AI, #VSCode, and much more.
And most of the content is #free: โ https://learn.github.com
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โค8๐1
Learn Python with the University of Helsinki
โ With an official certificate
โ From zero to advanced level
โ 14 parts with practical tasks
All content is available โ here
https://programming-25.mooc.fi/
๐ @codeprogrammer
โ With an official certificate
โ From zero to advanced level
โ 14 parts with practical tasks
All content is available โ here
https://programming-25.mooc.fi/
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โค12๐1๐1
Here's the full path I would recommend to build production-grade AI agents this year:
โช๏ธ a foundation in Python and algorithms
โช๏ธ mathematics and the basics of ML
โช๏ธ transformers and LLMs
โช๏ธ prompt engineering
โช๏ธ memory and RAG
โช๏ธ tools and integrations
โช๏ธ frameworks like LangChain or CrewAI
โช๏ธ multi-agent systems
โช๏ธ testing, deployment, and security
๐ @Codeprogrammer
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โค5๐1
๐ฏ Want to Upskill in IT? Try Our FREE 2026 Learning Kits!
SPOTO gives you free, instant access to high-quality, updated resources that help you study smarter and pass exams faster.
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SPOTO gives you free, instant access to high-quality, updated resources that help you study smarter and pass exams faster.
โ Latest Exam Materials:
Covering #Python, #Cisco, #PMI, #Fortinet, #AWS, #Azure, #AI, #Excel, #comptia, #ITIL, #cloud & more!
โ 100% Free, No Sign-up:
All materials are instantly downloadable
โ Whatโs Inside:
ใป๐IT Certs E-book: https://bit.ly/3Mlu5ez
ใป๐IT Exams Skill Test: https://bit.ly/3NVrgRU
ใป๐Free IT courses: https://bit.ly/3M9h5su
ใป๐คFree PMP Study Guide: https://bit.ly/4te3EIn
ใปโ๏ธFree Cloud Study Guide: https://bit.ly/4kgFVDs
๐ Become Part of Our IT Learning Circle! resources and support:
https://chat.whatsapp.com/FlG2rOYVySLEHLKXF3nKGB
๐ฌ Want exam help? Chat with an admin now!
wa.link/8fy3x4
โค3
Want to turn any image into ASCII art? It's not magic, just simple brightness processing.
It's tedious and stupid to do it manually
img = [
[255, 0, 0],
[0, 255, 0]
]
# Now we need to pick a symbol for each pixel...
# What a hassle.Problem:
Manually selecting symbols by brightness is a pain. We need to automate the conversion of grayscale to symbols.
from PIL import Image
def image_to_ascii(path, width=100):
img = Image.open(path)
aspect = img.height / img.width
height = int(width * aspect * 0.55)
img = img.resize((width, height)).convert('L')
ascii_chars = '@%#*+=-:. '
pixels = img.getdata()
ascii_art = '\n'.join(
ascii_chars[pixel * (len(ascii_chars) - 1) // 255]
for pixel in pixels
)
lines = [ascii_art[i:i+width] for i in range(0, len(ascii_art), width)]
return '\n'.join(lines)
print(image_to_ascii('cat.jpg'))
How it works:
convert('L') converts the image to grayscale
Each pixel (0-255) is assigned a symbol from the set
The darker the pixel, the "denser" the symbol (e.g., '@'), the lighter - the "weaker" (space)
Let's write a converter with customizable palette:
class AsciiConverter:
PALETTES = {
'default': '@%#*+=-:. ',
'blocks': 'โrayed ',
'detailed': '$@B%8&WM#*oahkbdpqwmZO0QLCJUYXzcvunxrjft/\\|()1{}[]?-_+~<>i!lI;:,"^`\'. '
}
def __init__(self, palette_name='default'):
if palette_name not in self.PALETTES:
raise ValueError(f'ะะตั ัะฐะบะพะน ะฟะฐะปะธััั, ะธะดะธะพั. ะัะฑะตัะธ ะธะท: {list(self.PALETTES.keys())}')
self.chars = self.PALETTES[palette_name]
def convert(self, image_path, width=80):
# ... code to convert using self.chars ...
return ascii_result
Try specifying a non-existent palette - you'll get a clear error.
Key parameters:
๐ต Width - determines the size of the final ASCII art๐ต Character palette - affects the detail and style๐ต Aspect ratio - important for correct display๐ต Inversion - you can invert the brightness for a dark background
Important:
ASCII art isn't just a fun thing. It's used to visualize data in the console, create creative logs, and even "hide" information in plain sight.
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โค9๐3๐2
Numpy_Cheat_Sheet.pdf
4.8 MB
NumPy Cheat Sheet: Data Analysis in Python
This #Python cheat sheet is a quick reference for #NumPy beginners.
Learn more:
https://www.datacamp.com/cheat-sheet/numpy-cheat-sheet-data-analysis-in-python
https://t.iss.one/DataAnalyticsX
This #Python cheat sheet is a quick reference for #NumPy beginners.
Learn more:
https://www.datacamp.com/cheat-sheet/numpy-cheat-sheet-data-analysis-in-python
https://t.iss.one/DataAnalyticsX
โค9๐1๐ฅ1๐1
nature papers: 1200$
Q1 and Q2 papers 700$
Q3 and Q4 papers 400$
Doctoral thesis (complete) 600$
M.S thesis 300$
paper simulation 200$
Contact @Omidyzd62
Q1 and Q2 papers 700$
Q3 and Q4 papers 400$
Doctoral thesis (complete) 600$
M.S thesis 300$
paper simulation 200$
Contact @Omidyzd62
โค5๐1
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โค13๐2๐ฏ2
AI Developers โ finally something serious.
A German company ๐ฉ๐ช (Brainlancer GmbH) is launching a curated B2B platform on April 1st, 2026.
Not a freelance marketplace.
Not an agency network.
A verified AI builder network.
Only a few spots are still open.
If you can actually ship outcomes like:
โข RAG / Agents in production
โข Automations + API integrations
โข FastAPI tools, internal apps, backend systems
โ apply now (free + anonymous).
https://assesment.brainlancer.com/?src=telegram
Step 1: 5 min form
Step 2: 15โ20 min AI interview
Step 3: short call โ early access
๐ Brainlancer.com (Landingpage)
๐ https://www.linkedin.com/in/soner-catakli/ (CEO)
A German company ๐ฉ๐ช (Brainlancer GmbH) is launching a curated B2B platform on April 1st, 2026.
Not a freelance marketplace.
Not an agency network.
A verified AI builder network.
Only a few spots are still open.
If you can actually ship outcomes like:
โข RAG / Agents in production
โข Automations + API integrations
โข FastAPI tools, internal apps, backend systems
โ apply now (free + anonymous).
https://assesment.brainlancer.com/?src=telegram
Step 1: 5 min form
Step 2: 15โ20 min AI interview
Step 3: short call โ early access
๐ Brainlancer.com (Landingpage)
๐ https://www.linkedin.com/in/soner-catakli/ (CEO)
โค14๐1๐ฅ1
Forwarded from Learn Python Hub
This channels is for Programmers, Coders, Software Engineers.
0๏ธโฃ Python
1๏ธโฃ Data Science
2๏ธโฃ Machine Learning
3๏ธโฃ Data Visualization
4๏ธโฃ Artificial Intelligence
5๏ธโฃ Data Analysis
6๏ธโฃ Statistics
7๏ธโฃ Deep Learning
8๏ธโฃ programming Languages
โ
https://t.iss.one/addlist/8_rRW2scgfRhOTc0
โ
https://t.iss.one/Codeprogrammer
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Forwarded from Learn Python Hub
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9 key concepts of artificial intelligence, explained in 7 minutes
- Tokenization
- #TextDecoding
- #PromptEngineering
- Multi Step #AI Agents
- #RAGs
- #RLHF
- #VAE
- #DiffusionModels
- #LoRA
๐ @Python53
- Tokenization
- #TextDecoding
- #PromptEngineering
- Multi Step #AI Agents
- #RAGs
- #RLHF
- #VAE
- #DiffusionModels
- #LoRA
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โค10๐3
https://t.iss.one/RAICompass
ู ุจุงุฏุฑุฉ ุฌู ููุฉ ูุฑุฌู ุงูุงูุถู ุงู ุงูููุง - ููุณูุฑููู (ู ุจุงุฏุฑุฉ ูุงู ุฉ)๐ธ๐พ
ู ุจุงุฏุฑุฉ ุฌู ููุฉ ูุฑุฌู ุงูุงูุถู ุงู ุงูููุง - ููุณูุฑููู (ู ุจุงุฏุฑุฉ ูุงู ุฉ)
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Telegram
ู
ุจุงุฏุฑุฉ "ุจูุตูุฉ ุงูุฐูุงุก ุงูุตูุนู ุงูู
ุณุคูู"
RAI.Compass
ุฐูุงุกู ูููุฏู ุงูุถู ูุฑ... ูููุถุจุท ุจุงูู ุนูุงุฑ ...ููุตูุน ุงูู ุณุชูุจู ุงูู ุณุคูู
ู ุคุณุณ ุงูู ุจุงุฏุฑุฉ: ุฏ. ุณูุณู ุงุณุฌูุน
ุฐูุงุกู ูููุฏู ุงูุถู ูุฑ... ูููุถุจุท ุจุงูู ุนูุงุฑ ...ููุตูุน ุงูู ุณุชูุจู ุงูู ุณุคูู
ู ุคุณุณ ุงูู ุจุงุฏุฑุฉ: ุฏ. ุณูุณู ุงุณุฌูุน
๐ฅ2
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Master Python together with the University of Helsinki
โข get an official certificate after completion
โข go from complete beginner to confident level
โข 14 intensive modules with practical tasks
The course is waiting for you here
https://programming-25.mooc.fi/
โข get an official certificate after completion
โข go from complete beginner to confident level
โข 14 intensive modules with practical tasks
The course is waiting for you here
https://programming-25.mooc.fi/
โค12๐1
๐จ๐ปโ๐ป When I was just starting out and trying to get into the "data" field, I had no one to guide me, nor did I know what exactly I should study. To be honest, I was confused for months and felt lost.
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โค11๐3
Forwarded from Data Analytics
These 9 lectures from Stanford are a pure goldmine for anyone wanting to learn and understand LLMs in depth
Lecture 1 - Transformer: https://lnkd.in/dGnQW39t
Lecture 2 - Transformer-Based Models & Tricks: https://lnkd.in/dT_VEpVH
Lecture 3 - Tranformers & Large Language Models: https://lnkd.in/dwjjpjaP
Lecture 4 - LLM Training: https://lnkd.in/dSi_xCEN
Lecture 5 - LLM tuning: https://lnkd.in/dUK5djpB
Lecture 6 - LLM Reasoning: https://lnkd.in/dAGQTNAM
Lecture 7 - Agentic LLMs: https://lnkd.in/dWD4j7vm
Lecture 8 - LLM Evaluation: https://lnkd.in/ddxE5zvb
Lecture 9 - Recap & Current Trends: https://lnkd.in/dGsTd8jN
Start understanding #LLMs in depth from the experts. Go through each step-by-step video.
https://t.iss.one/DataAnalyticsX๐
Lecture 1 - Transformer: https://lnkd.in/dGnQW39t
Lecture 2 - Transformer-Based Models & Tricks: https://lnkd.in/dT_VEpVH
Lecture 3 - Tranformers & Large Language Models: https://lnkd.in/dwjjpjaP
Lecture 4 - LLM Training: https://lnkd.in/dSi_xCEN
Lecture 5 - LLM tuning: https://lnkd.in/dUK5djpB
Lecture 6 - LLM Reasoning: https://lnkd.in/dAGQTNAM
Lecture 7 - Agentic LLMs: https://lnkd.in/dWD4j7vm
Lecture 8 - LLM Evaluation: https://lnkd.in/ddxE5zvb
Lecture 9 - Recap & Current Trends: https://lnkd.in/dGsTd8jN
Start understanding #LLMs in depth from the experts. Go through each step-by-step video.
https://t.iss.one/DataAnalyticsX
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โค7๐3๐2
Design patterns are proven solutions to common problems in development. If you've ever found yourself constantly writing the same thing when creating objects or struggling with managing different types of objects, then the factory pattern might be exactly what you need.
In this tutorial:
https://www.freecodecamp.org/news/how-to-use-the-factory-pattern-in-python-a-practical-guide/
you'll learn what a factory is, why it's useful, and how to implement it in #Python. We'll gather practical examples that will show when and how to apply this pattern in real tasks.
The code can be found on #GitHub
https://github.com/balapriyac/python-basics/tree/main/design-patterns/factory
https://t.iss.one/CodeProgrammer
In this tutorial:
https://www.freecodecamp.org/news/how-to-use-the-factory-pattern-in-python-a-practical-guide/
you'll learn what a factory is, why it's useful, and how to implement it in #Python. We'll gather practical examples that will show when and how to apply this pattern in real tasks.
The code can be found on #GitHub
https://github.com/balapriyac/python-basics/tree/main/design-patterns/factory
https://t.iss.one/CodeProgrammer
โค6