Datasets Guide π
A practical and beginner-friendly guide that walks you through everything you need to know about datasets in machine learning and deep learning. This guide explains how to load, preprocess, and use datasets effectively for training models. It's an essential resource for anyone working with LLMs or custom training workflows, especially with tools like Unsloth.
Importance:
Understanding how to properly handle datasets is a critical step in building accurate and efficient AI models. This guide simplifies the process, helping you avoid common pitfalls and optimize your data pipeline for better performance.
Link: https://docs.unsloth.ai/basics/datasets-guide
#MachineLearning #DeepLearning #Datasets #DataScience #AI #Unsloth #LLM #TrainingData #MLGuide
β‘οΈ BEST DATA SCIENCE CHANNELS ON TELEGRAM π
A practical and beginner-friendly guide that walks you through everything you need to know about datasets in machine learning and deep learning. This guide explains how to load, preprocess, and use datasets effectively for training models. It's an essential resource for anyone working with LLMs or custom training workflows, especially with tools like Unsloth.
Importance:
Understanding how to properly handle datasets is a critical step in building accurate and efficient AI models. This guide simplifies the process, helping you avoid common pitfalls and optimize your data pipeline for better performance.
Link: https://docs.unsloth.ai/basics/datasets-guide
#MachineLearning #DeepLearning #Datasets #DataScience #AI #Unsloth #LLM #TrainingData #MLGuide
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This fascinating dataset focuses on distinguishing between real dog images and those generated by AI models. With over 26,000 images in the full version, itβs neatly organized into Train, Validation, and Test sets, each containing both images and label files (0: real dog, 1: AI-generated dog). Whether you're working on image classification, evaluating generative model quality, exploring data augmentation, or conducting advanced computer vision research, this dataset offers a rich and versatile resource. Perfect for anyone exploring the intersection of AI and visual perception!.
https://t.me/datasets1
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Ai Generated Dogs.zip
993.4 MB
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πAge Detection - Face Recognition Dataset
β otos of people from 18 to 60 for face detection and age determination
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#AgeDetectionDataset#FacialAnalysis#AgeEstimation#FaceRecognitionDataset#BiometricData#DeepLearning#MachineLearningDataset#AgeGroupClassification#SelfieDataset#IDPhotoDataset
https://t.me/datasets1π―
β otos of people from 18 to 60 for face detection and age determination
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The Age Detection dataset is built upon a collection of selfies and ID card images, featuring high-quality facial photographs of individuals between the ages of 18 and 60. The dataset is divided into five distinct age groups: 18β20, 21β30, 31β40, 41β50, and 51β60, with separate folders for training and testing purposes. Each image is accompanied by a CSV file containing rich metadata, including the individualβs exact age, true gender, country, ethnicity, as well as the file extension and resolution for each photo. The demographic diversity within the datasetβcovering various ethnicities, genders, and nationalitiesβmakes it highly suitable for developing and evaluating deep learning models for age estimation, facial recognition, and biometric analysis. The full commercial version contains over 95,000 photos and is available for purchase via the TrainingData platform. In addition, several supplementary datasets are offered, including selfie-video datasets, bald-person datasets, and anti-spoofing datasets, making this a comprehensive resource for advanced biometric system development.
#AgeDetectionDataset#FacialAnalysis#AgeEstimation#FaceRecognitionDataset#BiometricData#DeepLearning#MachineLearningDataset#AgeGroupClassification#SelfieDataset#IDPhotoDataset
https://t.me/datasets1π―
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Kaggle Data Hub
Your go-to hub for Kaggle datasets β explore, analyze, and leverage data for Machine Learning and Data Science projects.
Admin: @HusseinSheikho || @Hussein_Sheikho
Admin: @HusseinSheikho || @Hussein_Sheikho
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Age Detection.zip
336.7 MB
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Forwarded from Machine Learning with Python
πHuman Action Recognition (HAR) Dataset
β The dataset features 15 different classes of Human Activities.
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#AI #ArtificialIntelligence #MachineLearning #DeepLearning #Python #DataScience #ComputerVision #TensorFlow #PyTorch #CNN #VisionAI #OpenCV #ImageClassification #HumanActivityRecognition #HAR #BehaviorAnalysis #SmartSurveillance #PoseEstimation #MLProjects #AIChallengeπ―
https://t.me/datasets1π―
β The dataset features 15 different classes of Human Activities.
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he Human Activity Recognition (HAR) dataset consists of over 12,000 labeled images spanning 15 distinct human activity classes, including actions such as calling, dancing, running, and sleeping. Each image represents a single activity and is organized into separate folders corresponding to its class label. The objective is to develop a convolutional neural network (CNN)-based image classification model capable of accurately predicting the activity being performed in each image. A separate test set of 5,400 unlabeled images is provided for evaluation, along with a submission template that specifies the required format for output predictions. This task falls under the broader domain of computer vision and has practical applications in surveillance, healthcare monitoring, human-computer interaction, and behavior analysis.
#AI #ArtificialIntelligence #MachineLearning #DeepLearning #Python #DataScience #ComputerVision #TensorFlow #PyTorch #CNN #VisionAI #OpenCV #ImageClassification #HumanActivityRecognition #HAR #BehaviorAnalysis #SmartSurveillance #PoseEstimation #MLProjects #AIChallengeπ―
https://t.me/datasets1π―
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Human Action Recognition.zip
296.8 MB
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πShips/Vessels in Aerial Images
β 26900 ANNOTATED images - Detect ships in Aerial/satellite imagery
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#AI #ArtificialIntelligence #MachineLearning #DeepLearning #Python #DataScience #ComputerVision #TensorFlow #PyTorch #CNN #VisionAI #OpenCV #ImageClassification #HumanActivityRecognition #HAR #BehaviorAnalysis #SmartSurveillance #PoseEstimation #MLProjects #AIChallengeπ―
https://t.me/datasets1π―
β 26900 ANNOTATED images - Detect ships in Aerial/satellite imagery
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This dataset contains a vast collection of 26.9k images, which have been carefully annotated for the specific purpose of ship detection. The bounding box annotations are presented in the YOLO format, which allows for accurate and efficient detection of the ships in the images. The dataset has been curated to include images of only one class - "ship" - thus enabling streamlined and precise analysis.
The detection of ships or vessels within an image is a vital task that has significant practical applications. Maritime safety is one such application, as the detection of ships can help prevent accidents at sea by providing early warnings of potential collisions or obstacles. Fisheries management is another important use case, where the detection of fishing vessels can aid in monitoring fishing activities and preventing overfishing. In addition, ship detection can be used for marine pollution monitoring, defense and maritime security, protection from piracy, illegal immigration, and a range of other purposes.
#AI #ArtificialIntelligence #MachineLearning #DeepLearning #Python #DataScience #ComputerVision #TensorFlow #PyTorch #CNN #VisionAI #OpenCV #ImageClassification #HumanActivityRecognition #HAR #BehaviorAnalysis #SmartSurveillance #PoseEstimation #MLProjects #AIChallengeπ―
https://t.me/datasets1π―
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Ships_Vessels in Aerial Images.zip
353 MB
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Forwarded from Learn Python Hub
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#RemoteSensing #LandUseClassification #SatelliteImagery #EuroSAT #GeospatialAI
https://t.me/datasets1
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πTop10_Cryptocurrencies_03_2025
π Daily historical price and volume data for 10 top cryptocurrencies (market_cap)
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#CryptoData #TimeSeriesAnalysis #Bitcoin #Ethereum #CryptocurrencyMarket
https://t.me/datasets1π―
The Top10_Cryptocurrencies_03_2025 dataset provides daily historical data on the top 10 cryptocurrencies by market capitalization, including well-known assets like Bitcoin and Ethereum. For each coin, it includes the daily closing price and trading volume in USD, formatted with dates in βdd/mm/yyβ for readability. This dataset is ideal for time-series analysis, market trend visualization, forecasting models, and comparative studies between major cryptocurrencies.
#CryptoData #TimeSeriesAnalysis #Bitcoin #Ethereum #CryptocurrencyMarket
https://t.me/datasets1
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