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Big Data Concepts (INFS 4020)

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INFS 4020 – Big Data Concepts
Assignment 2: Big Data Strategy Proposal (SP2 2022)
DUE: By 11PM, June 10, 2022
General instructions:
• This assignment is worth 50% of your final grade. It is due no later than 11 pm June 10, 2022
• You will need to submit your assignment via learnonline. The file you submit needs to be in a pdf
format and prepared using the template provided.
• The word limit for this assignment is 3,000 words +/- 10%. Marks will be deducted if the
assignment is too short (min 2,700 words) or too long (max 3,300 words).
• Any late submission will attract a penalty of 10% per day, or part thereof, the assignment is
late. The cut-off time is 11pm each day.
Assessment task overview:

Photos by Balázs Kétyi and Carl Heyerdahl on Unsplash
You are required to develop a proposal for senior management of a selected organisation to
implement a Big Data strategy designed to meet a specific business priority. Your proposal should
include recommendations of Big Data technologies and suggest analytics plus and end-user
application. You should justify your recommendations and include a high-level architecture diagram
to show how the proposed technologies would fit together.
Assume that the audience know little about Big Data, but they want to make better use of their data
which is why you have been invited to submit a proposal. However, your proposal is not just a sales
pitch – you must demonstrate that you know what you are talking about, back up your arguments
with evidence and communicate your ideas effectively.
This assignment is your opportunity to
ing together the knowledge you have acquired in this
course, apply it to a business scenario and further develop your communication skills.
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Assessment task details:
From Table 1 below, choose an organisation and the associated priority, whichever interests you the
most. Then develop a proposal for a Big Data strategy to address the chosen organisation’s key
priority. In developing your proposal consider the following:
• Organisations have been named to provide some context for your proposal, but these are
hypothetical scenarios. Please do not contact the organisations!
• You do not have to research what your chosen organisation does with their data. Assume
that they have no Big Data capability cu
ently and develop your proposal accordingly.
• You are recommending what would need to be done, not actually doing it – i.e. you don’t
have to build any Big Data capacity or do Big Data analysis.
• You will need to make use of research. However, simply finding and presenting information
of ‘experts’ will not be enough to earn a good grade. You will need to work things out for
yourself and communicate your understanding of Big Data concepts and technologies.
Organisation Key Priority
Walmart
Deciding what is the optimal inventory management
Commonwealth Bank of
Australia
Improve customer relationship and cross-sell capability
Qantas airline Increase fuel efficiency through better flight planning
Myer
Improve omni-channel shopping experience
Table 1. Selected organisations and their key priorities
Understanding the priority:
Consider what questions would need to be answered to understand the key priority. See the
Microsoft resources around the questions ‘Is Big Data the right solution?’ and ‘Determining
analytical goals‘. A good starting point is here:
https:
msdn.microsoft.com/enus/li
ary/dn749858.aspx
Note: These are Microsoft resources so naturally they suggest Microsoft technologies. You do not
have to use those technologies in your proposal.
Data sources:
https:
msdn.microsoft.com/en-us/li
ary/dn749858.aspx
https:
msdn.microsoft.com/en-us/li
ary/dn749858.aspx
https:
msdn.microsoft.com/en-us/li
ary/dn749858.aspx
https:
msdn.microsoft.com/en-us/li
ary/dn749858.aspx
https:
msdn.microsoft.com/en-us/li
ary/dn749858.aspx

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From the questions to be answered you need to identify the information needed and the data
sources that can provide that information. It may be that some of the data would not exist (that you
know of) so you would be recommending that it be collected.
Big Data technologies:
Once you know the data needed and where it would come from, decide which Big Data technologies
would be appropriate to capture, store, process, clean, share, visualise and use that data. This
should include suggested analytics and an end user application – would it be a predictive app or
something else?
Provide
ief descriptions of the technologies required to deliver the Big Data capability and give an
example of one technology for each component of your strategy (e.g.: processing of streaming data
– Apache Spark). The technology choices will depend on the data types in data sources you are
ecommending.
Don’t focus on a specific tool or vendor. You can use the Big Data/AI Landscape diagram from Week
2 to investigate and recommend technologies.
High-level architecture:
Your proposal should include a diagram of a high-level architecture showing the different
technologies and how they fit together. This, once again, is intended for a non-technical audience.
Refer to resources from Weeks 9 to 11 for examples.
Big Data visualisation examples:
Provide two examples (screen shots with appropriate referencing) of Big Data visualisations to give
the audience an indication of what you would be providing them (or if you had built a prototype).
Explain the visualisations. The more relevant to the business priority and organisation the better.
Importantly, these visualisations should be based on Big Data.
Benefits and adoption challenges:
Clearly articulate the benefits of the proposed strategy. You should also discuss any challenges of Big
Data adoption and Big Data analytics, including data quality, privacy and security, in general and
specific to your proposal. Include some recommendations of how your organisation could address
these challenges in the context of the strategy you are proposing.
Executive summary:
An executive summary is a short document or section of a document produced for business
purposes. It summarises a longer report so that readers can become acquainted with the contents of
the report without having to read it all.
Write your executive summary after you have finished your Big Data strategy proposal. You should
use short, concise paragraphs and write your executive summary in the same order as the full
proposal.
Referencing:
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Key resource is this website: www.unisa.edu.au
eferencing. You should use the Harvard UniSA
eferencing style.
Reference all diagrams appropriately, both in-text and in your list of references. This includes your
visualisation examples. If you adapt a diagram for your purposes, acknowledge the original source.
Referencing is important for assignments to: (a) expand your knowledge of the assignment topic and
(b) provide evidence to the claims you make and (c) demonstrate you know what you are talking
about to make a convincing proposal and (d) provide other examples or case studies.
The general rule is if you are using information or data that is not of your own creation then you
need to acknowledge it. This includes the screenshots and any data you use. Not only is this for
academic integrity but to add weight to your recommendations – to show they are just not opinions.
The more you can back up your suggestions with research, examples, etc the higher mark you will
eceive.
How many references?
That depends on how many points you are making. Generally, more is better because you have used
more sources to understand the topic and reinforce your points.
A minimum of 5 references is required. However, just adding as many references as possible without
using them in the assignment will not earn maximum marks.
Do not plagiarise, i.e. do not copy directly from references without using quotation marks or without
including a reference, and make sure that you follow the rules when paraphrasing.
Keep direct quotes to a minimum.
We want your understanding on the topic, not copied words from experts – this only demonstrates
that you can research well, not apply your learning.
Reference quality:
The type (quality) of references makes a difference and this is considered in the marks as well. Feel
free to use the course readings.
Avoid marketing/vendor sites and general websites - the quality is not assured because anyone can
get a website up regardless of their expertise and marketing material from software companies is
usually biased. The exception would be news sites when you want to report an event or where they
are the sole vendor of a technology. References from global research companies like Gartner,
Fo
ester, McKinsey incorporate insight gained from customers who have actually implemented
technologies with various levels of success and failure. This
eadth of experience, and in particular
applicability to different industries, is well worth including.
Relying exclusively on Google to find references is a poor approach – try the li
ary catalogue instead
and include at least two academic sources, e.g. journal articles.
Since this is a fast-moving area, look for references from the last 5 years.
http:
www.unisa.edu.au
eferencing
http:
www.unisa.edu.au
eferencing

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Presentation and structure:
The structure should be in a logical format that flows well. A sample template for the assignment is
on the course website. Please use this structure – you can add to it with sub-headings if you wish.
Since this is proposal for a business audience, it should be presented in a professional format making
it easy to read. An efficient layout is also important but do not spend too much time on making it
look good and not enough time on the content.
Using bullet points are OK occasionally but you will need sentences for each point (i.e. just a bullet
point list with no explanation is not suitable).
Word limit:
3,000 words +/- 10% (minimum 2,700 words to maximum 3,300 words) overall
You need to include an executive summary exactly one page in length.
Marks will be deducted if the assignment is too short or too long. Keeping to a word limit requires a
focus on what the audience most needs to know
Answered 7 days After May 30, 2022

Solution

Shubham answered on Jun 06 2022
99 Votes
INFS 4020 – Big Data Concepts (SP2 2022)
Assignment 2 – Big Data Strategy Proposal
[Your Name]
[Date]
Executive Summary
Big Data is a new age technology, which has changed the business uses data in the operations and marketing of their
ands. The presented report discusses about how use of Big Data can help Walmart world’s leading retail organization can enhance the inventory replenish management system. The key consideration will be discussed which is important to know why and how big data is essential. This will be followed by explaining data sources and their usage in inventory management. The architecture will help to understand the working so that process is clear to the audience. The reflection on challenges and benefit faced by Big Data usage will help in addressing the issues during implementation and finally the report will be concluded.
Table of Contents
Executive Summary    2
Introduction    4
Introduction to Big data    4
Organizational overview    4
Key priority considerations    4
    Determining requirements    5
    Designing the architecture    5
    Specify the infrastructure    5
    Load the data    5
    Query and transform the data    6
    Evaluate the results    6
    Visualize and analyse the results    6
    Automate and manage the solution    7
Data sources    7
Benefits and challenges    10
Conclusion    11
References    12
Introduction
Introduction to Big data
Data is being generated every minute. With IoT and IoM different types of data has been added to the systems. It is expected that by 2025, 465 exabytes of data will be generated each day and therefore as an individuals human beings are generating data which is growing exponentially. According to Aryal et.al (2018) the art of taking decisions will be no more important if Big Data information is not used wisely by implementing technologies, which are supporting profitable decisions for businesses. Big Data Technologies are utility software, which helps to extract information from unstructured and voluminous data so that predictions can be made by reducing the failure risks.
Organizational overview
Walmart is an American Public Corporation which was founded by Sam Walton who opened its first store on July 2,1962 In Rogers, Arkansas (Walmart, 2022). The main motive of Wamart is to offer lowest price anytime and anywhere. It operates supermarkets, grocery stores, discount stores, hypermarkets, departments and neighbourhood markets. It has 210 distribution centers and it holds world’s largest clubs, servicing stores and direct deliveries to customers. It is present in 23 more countries outside US serving millions of customers everyday. It also works towards diversity and inclusion, creating sustainable future and ensuring that communities are coming close to each other (Walmart, 2022).
Key priority considerations
Source: https:
docs.microsoft.com/en-us/previous-versions/msp-n-p/dn749858(v=pandp.10)?redirectedfrom=MSDN
Big Data in supply chain has revolutionized the way inventory management is done. Be it automobile, pharma, retail or manufacturing supply chain and inventory are backbones of the businesses. To decide o appropriate levels of inventory to be managed Big Data can be helpful in estimating how much inventory levels will be beneficial.
· Determining requirements
Knowing precisely how much stock is expected to satisfy client need without overloading is likely every distribution center chief's main goal (Brkanić, 2020). Enormous information empowers retailers and providers to monitor stock levels, how much is required and where. Since prior ordering data to foresee request, screen stock levels was a tedious action, huge information speeds up the interaction and empowers opportune navigation. Walmart can optimize routes so that it can also lower down the transportation costs along with inventory replenishment.
· Designing the architecture
Multi-occupancy: With a presence in excess of 24 nations, Walmart really want a solitary stage in which the occupants truly convey the elements and that does not
eak when new highlights are added (Aryal et.al, 2018).
· Specify the infrastructure
It need high end server and cloud storage so that real time processing for the data can be supported anywhere and anytime by its managers. Kafka can work with enormous volumes of information without any problem. The software and the designed network should be profoundly adaptable, appropriated and shortcoming open minded. It should have high throughput for both distributing and buying in messages. It should also ensures zero margin time and no information misfortune.
· Load the data
The data will be collected from distribution centers, clubs, service warehouses and supply chain systems through reports. The customer feedback and purchasing trends will also be used to collect data for inventory replenishment (Zhang et.al, 2022). For instance use of Apache Kafka is an open-source conveyed streaming stage created by Apache Software Foundation. It is a distribute endorser based shortcoming lenient informing framework and a hearty line fit for taking care of enormous volumes of information.
It permits us to pass the message starting with one point then onto the next. Kafka is utilized for building continuous streaming information pipelines and constant streaming applications. Kafka is written in Java and Scala. Apache Kafka coordinates very well with Spark and Storm for ongoing streaming information investigation.
· Query and transform the data
Constant dynamic by assorted downstream customers on close continuous renewal orders and plans - Walmart need to have adaptability to stream continuous information into various layers so shoppers can peruse information from this multitude of big data technology subjects at whatever point they distribute the information (Zhang et.al, 2022).
· Evaluate the results
More tight agreements among inputs and the recharging motor: Walmart want exceptionally close agreements between the sources of info and the actual motor, on the grounds that the sources of info and the qualities or properties we get from them are critical for plan precision. At the point when it truly do accomplish information catch, it needs to know what is changing, so having a substantial agreement between the information and the renewal engine is vital.
· Visualize and analyse the results
Source: Data Profits
The depletion graph shows that what is the order cycle and when to maintain the safety stock. The calculations are made by using formulae and customers and audiences can easily check it with figures.
Source: Techcrunch.com
The...
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