The reality is that there are many different
types of data, with various purposes for different business goals. Below,
the most important types of data for your business will be
explained.
Big Data
Big Data is a
term heard often in the last couple of years. It is data characterized by its
volume, variety and velocity. This means that it is so voluminous and complex
that it cannot be analyzed with traditional business intelligence tools. In the
last decade, companies were all about learning to deal with Big Data and using
it to make better-informed business decisions.
Big Data comes
from everywhere and it is nothing new. However, it stays new because the
definition and structure of big data are constantly changing. This happens due
to the rapid and constant growth of data. For example, Big Data used to be
expressed in terabytes, while now it is expressed in exabytes.
Smart Data
In contrast to
Big Data, Smart Data is actionable and does make sense, and has a
clear purpose. It is not about the volume of the data you are collecting - it
is about the actions you take in response to that data. It is a concept that
developed along with the development of algorithm-based technologies such as
artificial intelligence and machine learning.
Smart Data is
usually generated close to the data source, using edge computing technologies.
So instead of collecting all data from a source, we process the data in the
source to end dumping in our data lake only the valuable data; the Smart Data.
Dark Data
Dark Data is
the data that lies below the surface, hiding within the company's internal
networks and holding piles of relevant information that can be moved to the
data lake and generate vital business and operational insights. This type of
data forms the biggest part of all existing data. According to KPMG research,
80% of data is Dark Data. This means there are a lot of hidden opportunities
lying in the hollows of Dark Data.
The many
sources that were being ignored or hard to access, can now be treated as data
gold mines. This is possible due to cutting-edge technology that can reach into
the places that hold Dark Data.
Machine Data
Simply put,
Machine Data is the data created by the systems, technologies and
infrastructure powering modern businesses. It comes from places like control
and operational systems, sensors and Internet of Things and your industrial
network.
If made
accessible and usable, Machine Data is argued to be able to help organizations
troubleshoot problems, identify threats and use machine learning to help
predict future issues.
Even if you
are a machine manufacturer or you have assets and devices in your business
hiding relevant operational information, being able to gather device data for
observability and analysis of usage and performance is a must. With Machine
Data, you can feed any compelling cloud analytics and advanced services
systems.
Transaction Data
This is the
most basic form of data and easiest to understand. This is data describing an
event or business activity. It describes orders, invoices, production
activities, hiring and firing employees, etc.
Master Data
Master Data is
the key element for transactional data. Master Data describes places, parties,
and things (products, items) involved in the activity.
Reference Data
Reference Data
is a subset of Master Data. It is usually standardized data that is governed by
certain codification. It is not so difficult to understand Reference Data. It
is data that defines values to be used by other data fields. These values are
often consistent and do not change much over time. Some examples of Reference
Data are units of measurements, country codes and corporate codes.
Reporting Data
It is an
aggregated data compiled for the purpose of analytics and reporting. This data
consists of Transactional, Master and Reference Data.
Metadata
Metadata is
the term used to refer to data that describes other data. In a more concrete
explanation, Metadata is the data that describes the structure of and some
meaning about other data. It explains definitions of data that you might not
see at first sight, such as usage of data, creators of data, users of data,
relations of data. You could see it as a little book that contains all you need
to know about your data. Simply put, Metadata is data about data.
Conclusion
As you have understood by now, there are many different types of
data. Each type of data has relations to another type,
and each type has a different beneficial purpose. Understanding the
benefit and purpose of each type will help your business with data collection,
analytics, and business decisions.
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