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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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📈 Аналитический обзор Telegram-канала Data Science & Machine Learning

Канал Data Science & Machine Learning (@datasciencefun) языкового сегмента Английский является активным участником. Сейчас сообщество объединяет 75 860 подписчиков, занимая 2 107 место в категории Образование и 4 219 место в регионе Индия.

📊 Показатели аудитории и динамика

С момента создания невідомо проект демонстрирует стремительный рост, собрав аудиторию из 75 860 подписчиков.

Согласно последним данным от 22 июня, 2026, канал показывает стабильную активность. За последние 30 дней изменение числа участников составило 728, а за последние 24 часа — -2, при этом общий охват остаётся высоким.

  • Статус верификации: Не верифицирован
  • Уровень вовлечённости (ER): Средний показатель вовлечённости аудитории составляет 3.00%. В первые 24 часа после публикации контент обычно набирает 1.05% реакций от общего числа подписчиков.
  • Охват публикаций: В среднем каждый пост получает 2 278 просмотров. В течение первых суток публикация набирает 794 просмотров.
  • Реакции и взаимодействия: Аудитория активно поддерживает контент: среднее количество реакций на один пост — 3.
  • Тематические интересы: Контент сосредоточен на ключевых темах, таких как learning, accuracy, distribution, panda, dataset.

📝 Описание и контентная политика

Автор описывает ресурс как площадку для выражения субъективного мнения:
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

Благодаря высокой частоте обновлений (последние данные получены 23 июня, 2026) канал поддерживает актуальность и высокий уровень охвата публикаций. Аналитика показывает, что аудитория активно взаимодействует с контентом, что делает его важной точкой влияния в категории Образование.

75 860
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-224 часа
+637 дней
+72830 день
Архив постов
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PROJECT IDEAS LIST – (CSE FINAL YEAR) 1 1. Booking Photography Project 2. City Life System Project 3. E-Magazine System Project 4. E-Tuitions System Project 5. Magazine College System Project 6. Event File Automation System Project 7. Learning Portal System Project 8. Nirman Website System Project 9. Ship Management System Project 10.Placement Cell System Project 11.Cancer Project System Project 12.E-Procurement System Project 13.Project Management System Project 14.knowledge-based Community Sharing System Project 2 15.Offer-Bazar System Project 16.Online-E-Gas System Project 17.Income-Tax-Return-Processing System Project 18.Online Staff Leave Management System Project 19.Employee-Expense-Management System Project 20.Exam Seating Arrangement System Project 21.Color Hunt Gaming project System Project 22.Online Form Request System Project 23.Electronic-Veg-Market System Project 24.Satvara Matrimony System Project 25.Query Handler System Project 26.Grade Processing System Project 27.AES–Photo Encryption System Project 28.Image Enhancement System Project 29.Paradarshia Corruption Free Economy System Project 30.Implementation Of Floyd’s Algorithm System Project 3 31.Atm Location Search System Project 32.E-Farming System Project 33.Time Table Management System Project 34.Admin Mall System Project 35.Bulls-Eye-Quiz System Project 36.Smarter Work Management System Project 37.Online Grievance Redressal System Project 38.Real Estate Magicbricks System Project 39.Apartment Management System Project 40.Medical shop Management System Project 41.Security Mail Communicator System Project 42.Feedback Analysis Of interviews System Project 43.Intelligent Hospital System Project 44.Tender Management System TMS System Project 45.Virtual Learning Environment (VLE) System Project 46.Online Loan Application System Project 4 47.Retail Purchase & Tracking System Project 48.Opinion Mining For Social Networking Sites System Project 49.Project Information System Project 50.Student Friendly College Management System Project 51.Online Book Store System Project 52.Sentimental Analysis For Mobile Networks System Project 53.Report Generation System Project 54.Feedback Information System Project 55.Health Prediction Management System Project 56.Online Book Review Management System Project 57.Suspicious Email Detection System Project 58.Student Monitoring System Project 59.Online College magazine System Project 60.Sports Event Management System Project 61.Restaurant Management System Project 62.Online House Rental Management System Project 5 63.Online Food Ordering & Service System Project 64.Online Course Management System Project 65.Online Cab Booking System Project 66.Online College Voting System Project 67.Cluster Analysis and Disease Mapping System Project 68.College Feedback System Project 69.Result Analysis System Project 70.E Plastic System Project 71.E Banking System Project 72.Assignments and Materials System Project 73.Vehicle Management System Project 74.Recipe Management System Project 75.Online Event Attendance System Project 76.Online Parking System Project 77.E-Auction System Project 78.Telecom Services System Project 6 79.Airline Reservation System Project 80.E-Waste Application System Project 81.Exam Invigilation System Project 82.Library Management System Project 83.Patient Follow Up System Project 84.Event Management System Project 85.Career Information System Project 86.E-Gas Sewa Application System Project 87.Student Attendance Management System Project 88.Office Level Student Information System Project 89.Online Pharmacy System Project 90.Online Recruitment System Project 91.Credit Card Fraud Detection System Project 92.Smart General Library System Project 93.Venue Booking System Project 94.A Secure Two-Factor Authentication Scheme System Project

You should definitely check the documentation of numpy and scikit learn if you are facing difficulty in answering above questions https://numpy.org/doc/stable/ https://scikit-learn.org/ Share the channel link with your friends to help them too in learning data science and machine learning 👇👇 http://t.me/datasciencefun

Which function is used to randomly reorder a Series or rows in Dataframe?
Anonymous voting

Which of the following is correct code to generate 20 normally distributed random numbers? import numpy as np
Anonymous voting

Which type of data is separated into bins for analysis
Anonymous voting

Just a correction here "np.nan" instead of "na.nan" Hope you all are aware that mostly we import numpy as np

Which of the following is incorrect code to replace na values with 0 in data?
Anonymous voting

Majority is correct Well done guys 👍👍 Scikit learn can be specially used to solve classification, regression, clustering and dimensionality reduction problems

Which Scipy package can be used to solve differential equations?
Anonymous voting

Which Scipy package can be used for standard continuous and discrete probability distributions?
Anonymous voting

Keyboard shortcuts for data scientists

Which of the following is not a function of scikit learn?
Anonymous voting

An Artificial Neuron Network (ANN), popularly known as Neural Network is a computational model based on the structure and functions of biological neural networks. It is like an artificial human nervous system for receiving, processing, and transmitting information in terms of Computer Science. Basically, there are 3 different layers in a neural network : Input Layer (All the inputs are fed in the model through this layer) Hidden Layers (There can be more than one hidden layers which are used for processing the inputs received from the input layers) Output Layer (The data after processing is made available at the output layer) Graph data can be used with a lot of learning tasks contain a lot rich relation data among elements. For example, modeling physics system, predicting protein interface, and classifying diseases require that a model learns from graph inputs. Graph reasoning models can also be used for learning from non-structural data like texts and images and reasoning on extracted structures.