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香港商业essay代写 Business Intelligence代写

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香港商业essay代写

CST3340

Business Intelligence

Coursework 2

香港商业essay代写 Your project may use any combination of data analysis techniques, data-mining algorithms and software that has been covered in the module.

  Overview

This section contains the material for coursework 2.  It is worth 60% of the final grade for this module.

 Important Dates  香港商业essay代写

You must ensure you meet the deadlines for each element.

Element Type Due Date
Individual CW2 Report

40% of the final module grade  香港商业essay代写

Formative Feedback During Labs in Week 23: Week beginning: 28th June 2021
Final Report Week 24: Midnight Friday 9th July 2021
Oral Presentation for CW2

20% of the final module grade

Pre-recorded Oral Presentation Midnight Friday 16th July 2021
Summative Feedback August 2021

Plagiarism

Plagiarism in data analysis is easy to spot. Please be aware that the penalties are severe, and your final degree award classification is at risk.

Coursework Content

Coursework 2 should be done individually.

香港商业essay代写
香港商业essay代写

Where to submit  香港商业essay代写

Each student should submit an individual report of no more than 2400-word.  Please do not include your name or student Id as your submission will be marked anonymously. You are also expected to attend a 5-minute oral presentation. The presentation is compulsory, students who do not attend the presentation will fail this coursework.

All submission should be via the submission link in your learning environment.

Do not handwritten assessed coursework directly to your tutor, and do not submit it by email to your tutor.  Coursework which is not submitted via unihub will not be accepted.

Coursework Requirements:  香港商业essay代写

You are required to analyse a large data set of your choice, which has been agreed with your module tutor:

Your project may use any combination of data analysis techniques, data-mining algorithms and software that has been covered in the module.  You may also apply them to any aspect(s) of the dataset for knowledge discovery.

You should cover the areas indicated below and your findings should be presented in the form of a report no more than 2400 word.  You will also be expected to give a 5-minute oral presentation.

Please see below the aspects that you should consider:

Individual Report

  • Data Analysis and Visualisation (35 marks)
    • Introduction to the data set.
    • Initial analysis of the data using visualisation techniques within Tableau (use diagrams/graphs to highlight important patterns/findings).
    • Discussion and interpretation of result.
    • Discussion of overall trends and patterns observed.
  • Selection of Data Mining Algorithm (10 marks)
    • Select one data mining algorithm suitable for further analysis of your data.
    • Clearly justify your choice, with reference to the visualisation analysis carried out.
  •  Data Pre-processing (10 marks)
    • Identify your input and class variables, if relevant (i.e. which variable are you going to consider for your class variables).   香港商业essay代写
    • Identify and resolve any anomalies in the data (i.e.  missing values, outliers etc.).
    • Carry out any appropriate pre-processing/transformations to the data set.
  • Data Mining (25 marks)
    • Use the chosen data mining algorithm for further analysis of your pre-processed data set.
    • Clearly discuss the implementation of the data mining algorithm.
    • Discuss and interpret the results.
  • Data Ethics (10 marks)
    • A discussion of data ethical issues related to the analysis and use of business data.
  • Conclusion (10 marks)
    • A discussion of the overall visualisation results (e.g. What were the important findings? Summary of overall trends and patterns).
    • A discussion of the data mining results (e.g. How well did the model fit your data?).
    • A discussion of the business intelligence that can be obtained from these results.
  • Oral Presentation (100 marks)
    • This 5-minuteoral presentation will allow you to discuss your analysis and results.

 

香港商业essay代写
香港商业essay代写

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