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Free-Mentors
Free Mentors is a social initiative where accomplished professionals become role models to young people to provide free mentorship sessions.socketio
socket io in nodejssocketio-chat_app_flutter-
chatting app in flutterSEVEN-SEGMENT.X
Blockchain-react-native
NFT market placeflutter_webrtc
webtrc in flutterJenkins
UIforRwandaAdministrationLevels
Dispaly Provinces,Districts,Sectors,ells and Villagesngirimana
blockchain
Block chain App in pythonmeal-react-native
murikahomeltd
Murika-frontendtraffic-light-using-assembly
parcel-tracking-system
RSA
RSA algorithm is asymmetric cryptography algorithm. Asymmetric actually means that it works on two different keys i.e. Public Key and Private Key. As the name describes that the Public Key is given to everyone and Private key is kept private.expenseTracker
expense trackerMobile-application-development
notaria
Notariachallenge
Display users with their corresponding posttodo
todoMyDiary-Adc
MyDiary is an online journal where users can pen down their thoughts and feelings.recipe-app-api
slack-clone
Nexter
house rentingsocket-test-in-java
blog
blogbidirectional-visitorCounter
ML_KNN
Welcome to the KNN Project! This will be a simple project very similar to the lecture, except you'll be given another data set. Go ahead and just follow the directions below.expense-tracker-in-reactjs
tictac-in-python
portfolio
This is my portfolio web to showcase my skills and experienceshopNow
forum
forummurika
from all to allshop-app
SearchIT
Instructions for submission Create an account on [Codepen.io](https://codepen.io/) and attempt the following question. You are required to make use of only HTML, CSS and JavaScript, and NO FRAMEWORKS. Please submit via this form before 4 pm on Sunday, August 18th, 2019.mydiarydb
Location-and-messaging
crypto-coine-real-time-data
burger-app
burgerquiz
quiz app in flutterBlog_NextJS
Promptopia
expense-tracker-react-native
summarizer
ISSE_12_23
wingi-challenge
counter-and-notification
traffic-light
nestjs-task-management
airbnb-clone
react_album-challenge
zoom-clone
zoom clonechartCord
Real time chart using socketNextJs-Landing-Page
qr-code-scanner
vbCrud
Crud operations in VBPandas_exercise
Pandas exericiseautomatic-door-opening-simulator
data-analyis-project
entrance-control
Student-computer-record
react-native-authentication
React native authenticationfikia
Fikia team projectuber-eat-react--native
travel-advisor
job-post-blog
job post blogalan-AI-new-app
products-crude-with-spash-screen
myapp
first react native appig-clone-React-native
This is the instagram apllication clone developed using React native ,formik,yup and firebasetask-manager-in-nestjs
drag-and-drop
Drag and drop project management typescripttrillo
html template for reservations for car rental flight,hotel and toursmydiary-api
natours
the nature adventuresdiffie-helman
Diffie-Hellman is a way of generating a shared secret between two people in such a way that the secret can't be seen by observing the communication. That's an important distinction: You're not sharing information during the key exchange, you're creating a key together.price-calculator
block_test
Event-Booking-REST-API
AnnounceIT
argocd_public-repo
go-concurency
card-game
mern_chat_socket_io
Dockerizing-Django-with-Postgres-Redis-and-Celery
Web-3
Krypt - Web 3.0 Blockchain Applicationcar-showcase
ML_LinearRegression
You just got some contract work with an Ecommerce company based in New York City that sells clothing online but they also have in-store style and clothing advice sessions. Customers come in to the store, have sessions/meetings with a personal stylist, then they can go home and order either on a mobile app or website for the clothes they want. The company is trying to decide whether to focus their efforts on their mobile app experience or their website. They've hired you on contract to help them figure it out! Let's get started! Just follow the steps below to analyze the customer data (it's fake, don't worry I didn't give you real credit card numbers or emails).ticketing-microservice
blog_api_springboot
ML_logistcs-regression
In this project we will be working with a fake advertising data set, indicating whether or not a particular internet user clicked on an Advertisement. We will try to create a model that will predict whether or not they will click on an ad based off the features of that user. This data set contains the following features: * 'Daily Time Spent on Site': consumer time on site in minutes * 'Age': cutomer age in years * 'Area Income': Avg. Income of geographical area of consumer * 'Daily Internet Usage': Avg. minutes a day consumer is on the internet * 'Ad Topic Line': Headline of the advertisement * 'City': City of consumer * 'Male': Whether or not consumer was male * 'Country': Country of consumer * 'Timestamp': Time at which consumer clicked on Ad or closed window * 'Clicked on Ad': 0 or 1 indicated clicking on Adgymn
Utilizing two unique APIs, design the best and most cutting-edge fitness exercises app!.Golds Gym is the best React Fitness App you can currently find on YouTube and throughout the entire internet. It has the functionality to select exercise categories and specific muscle groups, browse more than a thousand exercises with useful examples, pagination, exercise details, pull related videos from YouTube, display similar exercises, and much more.diffie-helman-algorithm-
Diffie–Hellman key exchange establishes a shared secret between two parties that can be used for secret communication for exchanging data over a public network. The conceptual diagram at the top of the page illustrates the general idea of the key exchange by using colors instead of very large numbers.Guess-Number
An integer between 0 and 100 is chosen in this straightforward game. You enter your predictions, and the system notifies you of your success or failure and whether you should try a higher or lower number.ledger
UI designFood-delivery-react-native
hotelUI
html,css temlateproduct_crud_operation
class assignment API to be fetched in Android Applicaationdecision-trees-and-random-forest-
For this project we will be exploring publicly available data from [LendingClub.com](www.lendingclub.com). Lending Club connects people who need money (borrowers) with people who have money (investors). Hopefully, as an investor you would want to invest in people who showed a profile of having a high probability of paying you back. We will try to create a model that will help predict this. Lending club had a [very interesting year in 2016](https://en.wikipedia.org/wiki/Lending_Club#2016), so let's check out some of their data and keep the context in mind. This data is from before they even went public. We will use lending data from 2007-2010 and be trying to classify and predict whether or not the borrower paid back their loan in full. You can download the data from [here](https://www.lendingclub.com/info/download-data.action) or just use the csv already provided. It's recommended you use the csv provided as it has been cleaned of NA values. Here are what the columns represent: * credit.policy: 1 if the customer meets the credit underwriting criteria of LendingClub.com, and 0 otherwise. * purpose: The purpose of the loan (takes values "credit_card", "debt_consolidation", "educational", "major_purchase", "small_business", and "all_other"). * int.rate: The interest rate of the loan, as a proportion (a rate of 11% would be stored as 0.11). Borrowers judged by LendingClub.com to be more risky are assigned higher interest rates. * installment: The monthly installments owed by the borrower if the loan is funded. * log.annual.inc: The natural log of the self-reported annual income of the borrower. * dti: The debt-to-income ratio of the borrower (amount of debt divided by annual income). * fico: The FICO credit score of the borrower. * days.with.cr.line: The number of days the borrower has had a credit line. * revol.bal: The borrower's revolving balance (amount unpaid at the end of the credit card billing cycle). * revol.util: The borrower's revolving line utilization rate (the amount of the credit line used relative to total credit available). * inq.last.6mths: The borrower's number of inquiries by creditors in the last 6 months. * delinq.2yrs: The number of times the borrower had been 30+ days past due on a payment in the past 2 years. * pub.rec: The borrower's number of derogatory public records (bankruptcy filings, tax liens, or judgments).Love Open Source and this site? Check out how you can help us