Telegram Web Link
Classification of Deep Learning Models
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CS109 Data Science
By Harvard University

โŒ›๏ธ 12 weeks
โœ… Video lectures
โœ… Slides
โœ… Lab exercises

๐Ÿ”— http://cs109.github.io/2015/pages/videos.html

Note: i have issues with first video link but others are fine.

#datascience #python #harvard
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Types of Data Professionals
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Visualize data on Google Maps Platform

Learn to translate external data sources to graphics on maps.

โœ… Free Online Course
๐Ÿงฑ 4 modules
๐ŸŽฌ Video Lectures
๐Ÿƒโ€โ™‚๏ธ Self paced
๐Ÿ“Š Lab: 1
๐Ÿงฎ Quiz
Source: Google

๐Ÿ”— https://developers.google.com/learn/pathways/maps-visualize-data?hl=en

#Data_Science #Google_Map #Data_Visualization
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Python for Data Science: A Beginnerโ€™s Guide

Python is a programmer darling for plenty of reasons: the language is easy to read and work with, relatively simple to learn, and popular enough that thereโ€™s a great community and plenty of resources available.
And if you needed one more reason to consider starting Python for beginners, it plays an important role in lucrative data careers as well! Learning Python for data science or data analysis will give you a variety of useful skills.

โœ… Free Online Tutorial
๐Ÿงฑ 8 modules
๐Ÿƒโ€โ™‚๏ธ Self paced
Source: learntocodewithme

๐Ÿ”— Course Link


#Data_Science #python #Python_For_Data_Science
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Data Science With Python Workflow Cheat Sheet

Creator: business Science
Stars โญ๏ธ: 75
Forked By: 38
https://github.com/business-science/cheatsheets/blob/master/Data_Science_With_Python_Workflow.pdf


#Data #Science #cheatSheet
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Data Science Lifestyle
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How do Transformers work?

All
the Transformer models mentioned above (GPT, BERT, BART, T5, etc.) have been trained as language models. This means they have been trained on large amounts of raw text in a self-supervised fashion. Self-supervised learning is a type of training in which the objective is automatically computed from the inputs of the model. That means that humans are not needed to label the data!

This type of model develops a statistical understanding of the language it has been trained on, but itโ€™s not very useful for specific practical tasks. Because of this, the general pretrained model then goes through a process called transfer learning. During this process, the model is fine-tuned in a supervised way โ€” that is, using human-annotated labels โ€” on a given task

๐Ÿ”— Read More
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Data Science Workflow
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Datasets for Data Science and Machine Learning

Ten
years ago, it use be years ago quite difficult to find good datasets for data science and machine learning projects. Today, we have the opposite problem.
Weโ€™ve been flooded with lists and lists of datasets. The problem nowadays is not finding datasets, but rather sifting through them to keep the relevant ones.
Well, weโ€™ve done that for you right here.
Below, youโ€™ll find a curated list of free datasets for data science and machine learning, organized by their use case. Youโ€™ll find both hand-picked datasets and our favorite aggregators.

โœ… Exploratory Analysis
โœ… General Machine Learning
โœ… Deep Learning
โœ… Natural Language Processing
โœ… Cloud-Based Machine Learning
โœ… Time Series Analysis
โœ… Recommender Systems
โœ… Specific Industries
โœ… Streaming Data
โœ… Web Scraping
โœ… Current Events

๐Ÿ”— Source Link


#Data_Science #python #datasets
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Forwarded from Python Learning
Machine Learning Engineer Roadmap
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1000 Data Science Projects
you can run on the browser with IPython.

Explore from 1000+ ready code templates to kickstart your AI projects
โญ๏ธClassification
โญ๏ธRegression
โญ๏ธClustering

๐Ÿ”— Source link

#ai #ml #data_science #deep_learning
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Data-Driven Materials Science: Status, Challenges, and Perspectives
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Google just dropped Generative AI learning path with 9 courses:
๐Ÿค–: Intro to Generative AI
๐Ÿค–: Large Language Models
๐Ÿค–: Responsible AI
๐Ÿค–: Image Generation
๐Ÿค–: Encoder-Decoder
๐Ÿค–: Attention Mechanism
๐Ÿค–: Transformers and BERT Models
๐Ÿค–: Create Image Captioning Models
๐Ÿค–: Intro to Gen AI Studio
https://www.cloudskillsboost.google/paths/118
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Data Science Engineering, your way

An introduction to different Data Science engineering concepts and Applications using Python and R
These series of tutorials on Data Science engineering will try to compare how different concepts in the discipline can be implemented in the two dominant ecosystems nowadays: R and Python.

We will do this from a neutral point of view. Our opinion is that each environment has good and bad things, and any data scientist should know how to use both in order to be as prepared as posible for job market or to start personal project.

To get a feeling of what is going on regarding this hot topic, we refer the reader to DataCamp's Data Science War infographic. Their infographic explores what the strengths of R are over Python and vice versa, and aims to provide a basic comparison between these two programming languages from a data science and statistics perspective.

Far from being a repetition from the previous, our series of tutorials will go hands-on into how to actually perform different data science taks such as working with data frames, doing aggregations, or creating different statistical models such in the areas of supervised and unsupervised learning.

We will use real-world datasets, and we will build some real data products. This will help us to quickly transfer what we learn here to actual data analysis situations.

Link

#ai #ml #data_science
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How To Label Data

At LightTag, we create tools to annotate data for natural language processing (NLP). At its core, the process of annotating at scale is a team effort. Managing the annotation process draws on the same principles as managing any other human endeavor. You need to clearly understand what needs to be done, articulate it repeatedly to your team, give them the tools and training to execute effectively, measure their performance against your goals, and help them improve over time. we will draw on our experience with various annotation projects to describe the seven distinct stages of an annotation life cycle that Jane will go through. We will explain the purpose of each stage, describe key considerations that should occur during each, and wrap each stage up with the assets you should expect to have at the end.

Link

#ml #data_science
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Data Science Helps Engineers Discover New Materials for Solar Cells and LEDs
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R Programming Language free courses

R Programming Tutorial - Learn the Basics of Statistical Computing
๐Ÿ†“
Free Online Course
๐ŸŽฌ 20 video lesson
Duration โฐ: 2-3 hours worth of material
๐Ÿƒโ€โ™‚๏ธ Self paced
Resource: freecodecamp
๐Ÿ”— Course Link

NOC:Foundations of R Software, IIT Kanpur
๐ŸŽฌ 53 video lesson
โฐ 12 Modules
Taught by: Prof. Shalabh
Source: NPTEL
๐Ÿ”— Course Link

R Basics - R Programming Language Introduction
Rating โญ๏ธ: 4.6 out of 5
Students ๐Ÿ‘จโ€๐ŸŽ“: 207,088
Duration โฐ: 4hr 06min
Created by: R-Tutorials Training
๐Ÿ”— Course Link

R Shiny for Data Science Tutorial โ€“ Build Interactive Data-Driven Web Apps
๐Ÿ†“
Free Online Course
๐ŸŽฌ 8 video lesson
Duration โฐ: 1-2 hours worth of material
๐Ÿƒโ€โ™‚๏ธ Self paced
Resource: freecodecamp
๐Ÿ”— Course Link

NOC:Essentials of Data Science With R Software _ 1: Probability and Statistical Inference, IIT Kanpur
๐ŸŽฌ 71 video lesson
โฐ 13 Modules
Taught by: Prof. Shalabh
Source: NPTEL
๐Ÿ”— Course Link

NOC:Essentials of Data Science With R Software _ 2: Sampling Theory and Linear Regression Analysis, IIT Kanpur
๐ŸŽฌ 51 video lesson
โฐ 13 Modules
Taught by: Prof. Shalabh
Source: NPTEL
๐Ÿ”— Course Link

Mastering R Programming (Apr 2023)
Rating โญ๏ธ: 4.3 out of 5
Students ๐Ÿ‘จโ€๐ŸŽ“: 6,161
Duration โฐ: 1hr 47min
Created by: Proton Expert Systems & Solutions
๐Ÿ”— Course Link

Statistical Computing with R - a gentle introduction (Login Required)
๐Ÿ†“
Free Online Course
Duration โฐ: 6-8 Hours study
๐Ÿƒโ€โ™‚๏ธ Self paced
Teacher: Max Reuter, Chris Barnes
Resource: University College London
๐Ÿ”— Course Link

R Programming For Beginners-Full Course | Learn R in 3 Hours| R Language Tutorial | Great Learning
๐Ÿ†“
Free Online Course
๐ŸŽฌ 14 video lesson
Duration โฐ: 3-4 hours worth of material
๐Ÿƒโ€โ™‚๏ธ Self paced
Resource: Great Learning
๐Ÿ”— Course Link

NOC:Business analytics and data mining Modeling using R, IIT Roorkee
๐ŸŽฌ 60 video lesson
โฐ 12 Modules
Taught by: Dr. Gaurav Dixit
Source: NPTEL
๐Ÿ”— Course Link

Learn Live - Explore and analyze data with R
๐Ÿ†“
Free Online Course
๐ŸŽฌ 9 video lesson
Duration โฐ: 1-2 hours worth of material
๐Ÿƒโ€โ™‚๏ธ Self paced
Resource: Class Central
๐Ÿ”— Course Link

R Programming Full Course for 2023 | R Programming For Beginners | R Tutorial | Simplilearn
๐Ÿ†“ Free Online Course
๐ŸŽฌ 1 video lesson
Duration โฐ: 10-11 hours worth of material
๐Ÿƒโ€โ™‚๏ธ Self paced
Resource: Youtube
๐Ÿ”— Course Link


Books
The Book of R
R Programming for Data Science - Roger D. Peng
R for Beginners


#R #R_Language #R_Programming_Language
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2025/09/15 14:46:50
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