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Data Science & Machine Learning

Data Science & Machine Learning

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Join this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free For collaborations: @love_data

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📈 Analytical overview of Telegram channel Data Science & Machine Learning

Channel Data Science & Machine Learning (@datasciencefun) in the English language segment is an active participant. Currently, the community unites 75 837 subscribers, ranking 2 107 in the Education category and 4 219 in the India region.

📊 Audience metrics and dynamics

Since its creation on невідомо, the project has demonstrated rapid growth, gathering an audience of 75 837 subscribers.

According to the latest data from 22 June, 2026, the channel demonstrates stable activity. Although there has been a change in the number of participants by 728 over the last 30 days and by -2 over the last 24 hours, overall reach remains high.

  • Verification status: Not verified
  • Engagement rate (ER): The average audience engagement rate is 3.00%. Within the first 24 hours after publication, content typically collects 1.05% reactions from the total number of subscribers.
  • Post reach: On average, each post receives 2 278 views. Within the first day, a publication typically gains 794 views.
  • Reactions and interaction: The audience actively supports content: the average number of reactions per post is 3.
  • Thematic interests: Content is focused on key topics such as learning, accuracy, distribution, panda, dataset.

📝 Description and content policy

The author describes the resource as a platform for expressing subjective opinions:
Join this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free For collaborations: @love_data

Thanks to the high frequency of updates (latest data received on 23 June, 2026), the channel maintains relevance and a high level of publication reach. Analytics show that the audience actively interacts with content, making it an important point of influence in the Education category.

75 837
Subscribers
-224 hours
+637 days
+72830 days
Posts Archive
👉A handy notebook on handling missing values Link : 👇👇 https://www.kaggle.com/parulpandey/a-guide-to-handling-missing-values-in-python A list of NLP Tutorials Link : 👇👇 https://github.com/lyeoni/nlp-tutorial “An Implementation and Explanation of the Random Forest in Python” by Will Koehrsen 👇👇 https://link.medium.com/GCWFv81v95 “How to analyse 100s of GBs of data on your laptop with Python” by Jovan Veljanoski 👇👇 https://link.medium.com/V8xS82Cax6

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Scatter plot is used to?
Anonymous voting

Recall how many of the true positives were recalled (found), i.e. how many of the correct hits were also found. Its formula would be
Anonymous voting

Precision is one indicator of a machine learning model's performance – the quality of a positive prediction made by the model. Its formula would be?
Anonymous voting

Type-2 error is?
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Type-1 Error is?
Anonymous voting

Seeing Theory : A visual introduction to probability and statistics Link :👇👇 https://seeing-theory.brown.edu/ “The Projects You Should Do to Get a Data Science Job” by Ken Jee 👇👇 https://link.medium.com/Q2DnxSGRO6

👉The Ultimate Guide to the Pandas Library for Data Science in Python 👇👇 https://www.freecodecamp.org/news/the-ultimate-guide-to-the-pandas-library-for-data-science-in-python/amp/ A Visual Intro to NumPy and Data Representation . Link : 👇👇 https://jalammar.github.io/visual-numpy/ Matplotlib Cheatsheet 👇👇 https://github.com/rougier/matplotlib-cheatsheet SQL Cheatsheet 👇👇 https://websitesetup.org/sql-cheat-sheet/

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Start working on any project if you are a beginner and want to grow your career as a data scientist You will learn much more as you practice and work on projects from yourself You can find dataset in this channel or go to kaggle to find any random dataset and just work on it Learning concepts is fine but most of the learnings come from projects I know that might feel boring at first time but as you move forward, it become interesting

K-means vs DBScan ML Algorithm DBScan is more robust to noise. DBScan is better when the amount of clusters is difficult to guess. K-means has a lower complexity, i.e. it will be much faster, especially with a larger amount of points.

What is the curse of dimensionality? Why do we care about it? Data in only one dimension is relatively tightly packed. Adding a dimension stretches the points across that dimension, pushing them further apart. Additional dimensions spread the data even further making high dimensional data extremely sparse. We care about it, because it is difficult to use machine learning in sparse spaces.

Dimensionality reduction techniques Singular Value Decomposition (SVD) Principal Component Analysis (PCA) Linear Discriminant Analysis (LDA) T-distributed Stochastic Neighbor Embedding (t-SNE) Autoencoders Fourier and Wavelet Transforms

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Data_science Numpy cheat sheet

Chatbot project using ML Before using this you have to install Tensorflow, keras , pickle, nltk by using pip install in command prompt

Pandas

🎲Dice_roll_Simulator_Gui with python in 2 minute 😊

Fake news Detection Machine Learning Project with 92%Accuracy it contain compressed file in which "jupyter notebook file and dataset"✅