Code for the CUP Elements on text analysis in Python for social scientists
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Updated
Sep 11, 2022 - Jupyter Notebook
Code for the CUP Elements on text analysis in Python for social scientists
This repository contains the code and datasets for creating the machine learning models in the research paper titled "Time-series forecasting of Bitcoin prices using high-dimensional features: a machine learning approach"
Lead Scoring is such a powerful metric when it comes to quantifying the lead & it is nowadays used by every CRM. In this repository, we are going to take a look at the UpGrad lead scoring case study and see how can we solve this problem through several supervised machine learning models.
Website sources for Applied Machine Learning for Tabular Data
MachineShop: R package of models and tools for machine learning
Repository for several data science and analysis projects
En este proyecto de GitHhub podrás encontrar parte del material que utilizo para impartir las clases de Introducción a la Ciencia de Datos (Data Science) con Python.
First rank winner in the Machine Learning Course Competition for class 2021-2022. Airline ticket price prediction from end to end (analysis - preprocessing - modeling - testing - deployment - documentation) between Indian cities
This is the repository of Hamoye 2022 Summer Internship Capstone Project by Neural-Network Team
Neuronal morphology preparation and classification using Machine Learning.
This project aims to identify, build and tune robust classification models to effectively classify quality red wines using on their characteristics.
IntelELM: A Python Framework for Intelligent Metaheuristic-based Extreme Learning Machine
The repository contains exercises on Machine Learning algorithms in R, using RStudio. Used to dive into ML, data preprocessing, data visualisation, and data exploration.
Basics of classification and bias
Using Classification Models with cross-validation and hyperparameter tuning to predict shoppers decision to make online purchase.
Save time by copying and pasting template for ML Models
Comparison between model when using for IMDB classification
This project is a network intrusion detector that uses machine learning algorithms to distinguish between bad (intrusions/attacks) and good (normal) connections. The UI is built using Flask framework and the KDD Cup 1999 dataset is used for training. Python, Flask, and Scikit-learn are the main technologies used in this project.
A scikit-learn compatible hyperbox-based machine learning library in Python
In simpler words we tell whether a user on Social Networking site after clicking the ad’s displayed on the website,end’s up buying the product or not. This could be really helpful for the company selling the product. Lets say that its a car company which has paid the social networking site(For simplicity we’ll assume its Facebook from now on)to …
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