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1

Predicting-the-closing-stock-price-of-APPLE-using-LSTM

In this project we will be looking at data from the stock market, particularly some technology stocks. We will learn how to use pandas to get stock information, visualize different aspects of it, and finally we will look at a few ways of analyzing the risk of a stock, based on its previous performance history.
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22
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2

Data-Science-Projects-From-Kaggle

Data science projects from the Kaggle website: Data Analysis, Data Visualization, Machine Learning, Time Series Analysis, Computer Vision, Natural Language Processing, Predictive Modeling ...
Jupyter Notebook
10
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3

beginner_python_projects

This repository contain 10 python friendly projects for bigenner to start learning python by building projects.
Python
7
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4

Minimizing-Churn-Rate-Through-Analysis-of-Financial-Habits

The objective of this model is to predict which users are likely to churn, so that the company can focus on re-engaging these users with the product. These efforts can be email reminders about the benefits of the product, especially focusing on features that are new or that the user has shown to value.
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6
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5

Predicting_Loan_Defaulters_Using_Deep_Learning

In this case study, we will also develop a basic understanding of risk analytics in banking and financial services and understand how data is used to minimise the risk of losing money while lending to customers.
Jupyter Notebook
5
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6

Machine-Learning-Algorithms-Tutorials

Basic Machine Learning Algorithms tutorials (Linear Regression, Logistic Regression, SVM, Random Forest, Bagging, KNN, K-Means ...)
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5
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7

Natural-Language-Processing

Natural Language Processing projects and Tutorials
Jupyter Notebook
4
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8

IBM_HR_Analytics_Employee_And_Performance

Predict attrition of your valuable employees
Jupyter Notebook
3
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9

machine_learning_in_python_with_scikit_learn

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3
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10

Fashion-Class-Classification

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2
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11

Using-Gradient-Boosting-for-Time-Series-prediction-tasks

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2
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12

Machine_Learning_Deployment_with_Streamlit

In this project, I used data from a Kaggle competition and build machine learning models to classify a text as Disaster or Not. The model is deployed on Heroku.
Python
2
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13

Natural_Language_Processing_Sentiment_Analysis

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2
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14

MNIST-Handwritten-Digit-Recognition

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2
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15

data_analysis_in_python_with_pandas

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2
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16

Directing-Customers-to-Subscription-Through-App-Behavior-Analysis

The objective of this model is to predict which users will not subscribe to the paid membership so that greater marketing efforts can go into trying to "convert" them to paid users.
Jupyter Notebook
2
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17

House-price-prediction-Kaggle-Competition

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2
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18

SIIM-ISIC-Melanoma-Classification

Identify melanoma in lesion images Kaggle Competition
Jupyter Notebook
2
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19

Business-Case-Study-Audiobook-app

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2
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20

Algorithms_and_data_structures

Python
2
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21

Data-Science-BEST-practices

Data science and EDA best practices using Pandas
Jupyter Notebook
2
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22

Euler_Problems

Python
2
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23

Predicting-heart-disease-using-machine-learning

Experiments with the Cleveland database have concentrated on simply attempting to distinguish presence (values 1,2,3,4) from absence (value 0). See if you can find any other trends in heart data to predict certain cardiovascular events or find any clear indications of heart health.
Jupyter Notebook
2
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24

Real-or-Not-NLP-with-Disaster-Tweets

Predict which Tweets are about real disasters and which ones are not
Jupyter Notebook
2
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25

Natural-Language-Processing-with-Python

Can you use this dataset to build a prediction model that will accurately classify which texts are spam?
Jupyter Notebook
2
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26

Cifar-10_Image_Classification_Using_CNNs

The CIFAR-10 dataset consists of 60000 32x32 colour images in 10 classes, with 6000 images per class. There are 50000 training images and 10000 test images.
Jupyter Notebook
2
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27

Time_Series_Analysis_Tutorial

A time series is a series of data points indexed (or listed or graphed) in time order. Most commonly, a time series is a sequence taken at successive equally spaced points in time.
Jupyter Notebook
2
star
28

CoderByte

Python
2
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29

Credit-Card-Fraud-Detection

The Credit Card Fraud Detection Problem includes modeling past credit card transactions with the knowledge of the ones that turned out to be a fraud. This model is then used to identify whether a new transaction is fraudulent or not. Our aim here is to detect 100% of the fraudulent transactions while minimizing the incorrect fraud classifications.
Jupyter Notebook
2
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30

data_visualization

Python
2
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31

web_page_dashboard

Python
1
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32

Automobile_Consulting_Company_Predicting_Cars_Prices

Jupyter Notebook
1
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33

Blue-Book-for-Bulldozers-Kaggle-Competition

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1
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34

Malaria_Cell_Classification_Using_CNNs

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1
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35

Git_and_GitHub_Tutorial

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1
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36

pandas

Full data analysis and data visualization projects notebooks using Pandas, Numpy, matplotlib and seaborn
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1
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37

Predicting-the-Likelihood-of-E-Signing-a-Loan-Based-on-Financial-History

Develop a model to predict for 'quality' applicants are those who reach a key part of the loan application process.
Jupyter Notebook
1
star
38

Telecom_Customer_Churn_Prediction

Predict behavior to retain customers. You can analyze all relevant customer data and develop focused customer retention programs.
Jupyter Notebook
1
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39

Computer_Vision_with_OpenCV_and_TensorFlow

Jupyter Notebook
1
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40

talk-to-youtube-videos

Youtube assitant using OpenAI, Langchain, and FastAPI - Using this API you can ask questions directly to your favorate podcast.
Python
1
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