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Flight_Fare_Prediction
Aim of the project is to predict the fare of the flight.movie-recommendation-system
IPL_score_prediction
Heart-Disease--Classification
We have a data which classified if patients have heart disease or not according to features in it. We will try to use this data to create a model which tries predict if a patient has this disease or not. We will use logistic regression (classification) algorithm.Fake-News-Classifier-using-LSTM
Car_price_prediction
DIABETES-PREDICTION
Predicting if a person has Diabetes or not using Logistic Regression ClassifierNYC-Taxi-Fare-Problem
Credit-Card-Fraud-Classification
Creating and comparing accuracies of different machine learning classification models to classify whether a transaction is fraud or not on imbalanced dataset. Imbalanced datasets are those where there is a severe skew in the class distribution, such as 1:100 or 1:1000 examples in the minority class to the majority classMALARIA_DETECTION
Its a Deep Learning problem statement where aim of the project is to detect whether a person has Malaria or not. We do this by using Transfer Learning technique(VGG 19)Stock-Sentiment-Analysis
stock sentiment analysis using headlinesFootball-Data-Visualization
stock-price-prediction-using-LSTM
machine-learning-basics
My first step towards Machine Learning - Knowing basics of all the important machine learning algorithmsLoan-Prediction
Its a Binary Classification problem where aim is to predict whether an indivisual will get a loan or not. using different machine learning classifiers.FAKE-NEWS-DETECTION
Detection of Fake news using Passive Agressive classifier and TfidfVectorizer. Accuracy achieved with this model is 92.98% .DNA-classifier
DNA classifier using Natural Language Processing. Used K-mer method to convert sequence strings into fixed size wordsPredicting-Lung-disease
Built a CNN model to Predict whether a person have a normal lung disease or Pneumonia by providing X-ray images of lungs as training data.Air-Quality-Index--Deployment
House-price-prediction
Handeling-Imbalanced-Dataset-using-Neural-Networks
HR_Analytics
Topic-modelling
Sentiment-Analysis
Performing sentiment analysis on the data set given to us. Accuracy achieved with our model is 70.91%Spam-Detection-classification
Classfying whether a message is spam or not by applying natural language processing and classification methods on the given dataset.Love Open Source and this site? Check out how you can help us