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Sibanjan Das

DZone Core CORE

Zone Leader at DZone

Hyderabad, IN

Joined Sep 2016

About

Business Analytics and Data Science consultant. Get in touch with him on Twitter: @sibanjandas

Stats

Reputation: 3921
Pageviews: 829.0K
Articles: 20
Comments: 3

Expertise

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AI/ML

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Articles

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AI Survey 2018: Insights and Suggestions
Let's take a look at some insights and suggestions of Artificial Intelligence and Machine Learning as well as explore tools to help you start learning AI.
Updated May 19, 2022
· 7,936 Views · 5 Likes
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MLOps for Enterprise AI
MLOps has started to emerge as a new trending keyword. This article provides an assessment of current trends, tools, and maturity models for MLOps.
March 12, 2022
· 9,910 Views · 3 Likes
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How Related Are Your Documents?
Measure document similarity automatically and query them efficiently.
May 1, 2019
· 6,587 Views · 4 Likes
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Drag and Drop Visualization in R
Explore drag and drop visualization in R and look at how to install esquisse in R.
February 20, 2019
· 9,231 Views · 4 Likes
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Data Sampling Methods in R
Read this article in order to learn more about data sampling methods in R and what two types sampling methods can be broadly classified in.
June 6, 2018
· 38,487 Views · 3 Likes
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How to Cluster Images With the K-Means Algorithm
Learn how to read an image and cluster different regions of the image using the k-means algorithm and the SciPy library.
March 28, 2018
· 57,884 Views · 7 Likes
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Orange: A Handy Open-Source Tool for Creating Machine Learning Models
Orange is an extremely easy-to-use, lightweight, drag-and-drop tool for building machine learning models and analyzing data. More importantly, it is open source!
March 13, 2018
· 15,337 Views · 12 Likes
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Develop Custom Ensemble Models Using Caret in R
Here we review some different ways to create ensemble learning models and compare the accuracy of their results, seeing how each functions better as a composite.
February 13, 2018
· 15,754 Views · 7 Likes
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Decision Trees and Pruning in R
Learn about using the function rpart in R to prune decision trees for better predictive analytics and to create generalized machine learning models.
November 30, 2017
· 64,945 Views · 3 Likes
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Handling Character Data for Machine Learning
Learn about different methods of encoding character attributes for creating useful machine learning models, including frequency-based encoding and hash encoding.
November 21, 2017
· 28,000 Views · 7 Likes
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Data Manipulation in R Using dplyr
Learn about the primary functions of the dplyr package and the power of this package to transform and manipulate your datasets with ease in R.
November 15, 2017
· 9,528 Views · 5 Likes
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Reinforcement Learning for the Enterprise
Reinforcement learning is a first step towards artificial intelligence that can survive in a variety of environments instead of being tied to certain rules or models.
October 21, 2017
· 14,208 Views · 8 Likes
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A Trial Run With H2O AutoML in R: Automated Machine Learning Functionality
No more coding for different models, noting down the results, and selecting the best model — AutoML is going to do all of these for you while you brew a cuppa!
October 10, 2017
· 19,104 Views · 4 Likes
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Decision Trees vs. Clustering Algorithms vs. Linear Regression
The goal of someone learning ML should be to use it to improve everyday tasks—whether work-related or personal. To do this, it's important to first understand algorithms.
September 26, 2017
· 28,080 Views · 17 Likes
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Feed-Forward Neural Networks With mxnetR
mxnetR is a Deep Learning package that works with all Deep Learning flavors, including feed-forward neural networks. FNNs have simple processing units with hidden layers.
February 21, 2017
· 7,342 Views · 4 Likes
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CART and Random Forests for Practitioners
Both CART and Random Forests help data scientists better understand algorithms and work with dirty data. However, they still have some key differences.
February 10, 2017
· 15,132 Views · 4 Likes
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Prediction Zone: Using R With Shiny
Sibanjan Das offers up a tutorial for building a web-based cluster and prediction analysis application through using R with the open source Shiny framework. Oh yeah, and he embedded the app directly into this DZone article... shine on you crazy data scientist.
January 30, 2017
· 19,042 Views · 9 Likes
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The First Steps to Analyzing Data in R
What steps should be taken when you want to analyze a data set in R? Enjoy these first steps to prepare your data for a variety of use cases.
January 17, 2017
· 20,217 Views · 8 Likes
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Predict Customer Churn Using R and Tableau
An in-depth tutorial exploring how you can combine Tableau and R together to predict your rate of customer turnover.
January 16, 2017
· 25,592 Views · 1 Like
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Anomaly Detection Using H2O Deep Learning
In this article, we jump straight into creating an anomaly detection model using Deep Learning and anomaly package from H2O.
December 6, 2016
· 24,478 Views · 7 Likes

Refcards

Refcard #269

Understanding Data Quality

Understanding Data Quality

Trend Reports

Trend Report

Enterprise AI

In recent years, artificial intelligence has become less of a buzzword and more of an adopted process across the enterprise. With that, there is a growing need to increase operational efficiency as customer demands arise. AI platforms have become increasingly more sophisticated, and there has become the need to establish guidelines and ownership.In DZone's 2022 Enterprise AI Trend Report, we explore MLOps, explainability, and how to select the best AI platform for your business. We also share a tutorial on how to create a machine learning service using Spring Boot, and how to deploy AI with an event-driven platform. The goal of this Trend Report is to better inform the developer audience on practical tools and design paradigms, new technologies, and the overall operational impact of AI within the business.This is a technology space that's constantly shifting and evolving. As part of our December 2022 re-launch, we've added new articles pertaining to knowledge graphs, a solutions directory for popular AI tools, and more.

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Comments

Anomaly Detection Using H2O Deep Learning

Nov 06, 2017 · Sibanjan Das

Thank You!! Here is the link for the data file and code. https://github.com/sibanjan/h2o

Predict Customer Churn Using R and Tableau

Sep 24, 2017 · Sibanjan Das

HI Kriti, Depends on the R package you are using for modeling. Generally, it does not and you have to do the required transformations manually. There are many methods such as one hot encoding to transform categorical variable before creating an ML model. However, now a days we have certain R packages such as H2O which does this for you. Hope this helps. Thanks.

Anomaly Detection Using H2O Deep Learning

Dec 08, 2016 · Sibanjan Das

Hello Karim, Thanks that you liked it. Sorry, I missed uploading the data and code. Will do that and post the link.

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