Streamlit component for the Yellowbrick visualization and model diagnostics library
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Updated
Jul 8, 2021 - Python
Streamlit component for the Yellowbrick visualization and model diagnostics library
Fancylit is a python module that contains pre-packaged Streamlit code to render fancy visualizations, run modeling tasks, and data exploration
For our final project, our group chose to use a dataset (from Kaggle) that contained medical transcriptions and the respective medical specialties (4998 datapoints). We chose to implement multiple supervised classification machine learning models - after heavily working on the corpora - to see if we were able to correctly classify the medical spβ¦
Training neural networks to classify network traffic by L7 protocol.
Here I will share some of my data visualizations using a variety of datasets, technologies and tools.
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Evaluation of Machine Learning Models with Yellowbrick
This repo consists of data visualization project done for wealth management dataset from Kaggle. I have used various Machine Learning classifiers to calculate accuracy and precision to determine which model works best for this dataset. The agenda of this project is to analyze the trend of customer churn from a wealth management company.
K-means++ clustering on fragrance accords π€
Projeto de clusterizaΓ§Γ£o de dados de e-commerce utilizando K-Means e DBSCAN para segmentar clientes e produtos.
Capstone Project for the Data Scientist Nanodegree by Udacity.
Unsupervised Learning Model Evaluation
An assignment on basics of scikit-learn
A Deep Dive of Craigslist US Used Car Sales Data Using ML and Visualizations Presented Within a Webpage
An analysis that predicts individual health insurance costs charged by health insurance companies based on age, sex, BMI, children, smoking, and region using predictive modeling and machine learning.
FastRide: NYC Taxi Trip Duration Prediction employs machine learning techniques to accurately predict the duration of taxi trips in New York City, helping transportation businesses optimize operations and enhance customer satisfaction.
Performing a clustering model for Bank Customer Dataset using K-Means clustering
Vous Γͺtes consultant pour Olist, une solution de vente sur les marketplaces en ligne. Olist souhaite que vous fournissiez Γ ses Γ©quipes d'e-commerce une segmentation des clients quβelles pourront utiliser au quotidien pour leurs campagnes de communication.
An assignment on setting up python environment for machine learning
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