Books are the perfect way to acquire education and help in improving overall vision of any human being. The readers read books in physical and virtually as well, physical being actual purchase of the book and virtual being reading it off internet using tablet, kindle, laptop etc. The books market has always been on rise in any country and hence website giant such as Amazon have the dedicated section for the books, this shows the seriousness of consumers around the Australia and their interest in Books. The online sales around the world of books have increase exponentially hence, dedicated sections enable users to order books and they are being delivered in stipulated time by the service providers.
Project Problem
The major importance of study following:
Research Methodology
The various analysis techniques using statistical techniques and other tools provides the handful methods to conduct the data analysis on the data. To do the profit analysis we need to calculate the total monthly sales and corresponding monthly profit with respect to different attributes such as customer type, region, shipping and category of books on sale. The analysis based on description for the customer based on shipping, customer’s region and customer type. The p-test, two sample test and one-way ANOVA are being used in testing the comparison between the customer who bought the books and other factors based on the books. The analysis is being done using Python 3.6.
Analytical Findings
In this section, we carried the following
Profit Analysis
The table 1 below shows that the profit analysis of monthly sales in USD, monthly profit and respective profit percentages with respect to shipping, customer, region and category of the books. (Singh, 2012).
Table 1: Profit analysis according to for shipping type, customer type, region and category
Attributes |
Level |
Total Monthly Sale (in $) |
Total Monthly Profit (in $) |
Profit Percentage |
Shipping Type |
FREE |
20089 |
12210 |
18.84% |
PAID |
44734 |
25870 |
39.91% |
|
Customer Type |
Existing |
19124 |
7065 |
6.88% |
New |
83535 |
31015 |
30.21% |
|
Region |
SA |
61420 |
22736 |
22.15% |
WA |
41239 |
15344 |
14.95% |
|
Category |
Comics & Graphic Novels |
21032 |
7719 |
7.52% |
Literature & Fiction |
44409 |
16631 |
16.20% |
|
Mystery, Thriller & Suspense |
12239 |
4613 |
4.49% |
|
Romance |
24979 |
9117 |
8.88% |
The number of conclusions that can be made from Table 1 is that the average profit earning 17% hence every book is approximately giving 17% profit to the company. With the variance in profit being calculated for different attributes of the company, the profit share by the paid shipping is higher as compared to the free shipping in the current data analysis. The new type of customer provides very high profit as compared to the existing customers, the users from South Australia provide more orders and profit as compared to the Western Australia. Among the categories the Literature and Fiction sales have maximum profit as compared to other books category types. (Weimao Ke,2015)
Descriptive statistics on No’s of Customers
With the number of customers on board, the profit is analyzed based on existing and new customers on the website, the analysis is made with respect to customers who bought the book from website with respect to shipping type, customer type and region of the customer. The analysis is done using the mean and standard deviation analysis. The total monthly sales and profit are in propositional with each other hence, we are making the analysis in the table 2 below:
Table 2: Summary statistics for numbers of customer who bought the books for shipping type, customer type, region and category
Attributes |
Level |
Size |
Mean |
Standard Deviation |
Shipping Type |
FREE |
361 |
5.215 |
2.109 |
PAID |
807 |
4.237 |
2.201 |
|
Customer Type |
Existing |
217 |
4.701 |
2.302 |
New |
948 |
4.801 |
2.404 |
|
Region |
SA |
698 |
4.211 |
2.201 |
WA |
470 |
5.401 |
2.309 |
|
Category |
Comics & Graphic Novels |
237 |
4.989 |
2.431 |
Literature & Fiction |
505 |
4.201 |
2.210 |
|
Mystery, Thriller & Suspense |
137 |
4.303 |
2.778 |
|
Romance |
289 |
5.588 |
2.319 |
Following observations can be made using the table, the calculation done:
Two Sample t-test
The analysis we are going to do is the difference between the customers who bought the book with respect to their region, shipping type and customer’s region. Let us assume that there is no significant difference among the mean of customer and different attributes basis, we would take into consideration a hypothesis there is no significant difference between the mean of the customer and different attributes under consideration and alternate hypothesis that it effects the customer buying and various other factors involved. (Morlini, 2015)
Table 3: Two sample independent test for shipping type, customer type and region
Attributes |
Levels |
Test Statistic |
p-value |
Shipping Type |
Free and Paid |
11.72 |
0.000 |
Customer Type |
New and Existing |
0.34 |
0.832 |
Region |
WA and SA |
-9.89 |
0.000 |
As per the table 3 we can conclude that:
The customers who have bought the books in different categories would now be tested using the one-way ANOVA test, the null and alternative hypothesis have been defined below:
Null Hypothesis: there is significant difference among mean number customers who have made the purchase.
Alternative Hypothesis: there is no significant difference among mean number customers who have made the purchase
Table 4: Output of one-way ANOVA for Category
Attributes |
Level |
F Statistic |
P Value |
Category |
Comics & Graphic Novels, Mystery, Thriller & Suspense, Romance and Literature & Fiction |
14.12 |
0.000 |
From using the one-way ANOVA analysis test, with different categories we can make our alternative hypothesis was indeed correct and there have been different between mean number of customer and other categories from other. (Grazer, 1987)
In this section we would be doing the correlation analysis among the various aspect of the data provided, table 5 shows the different aspects of the data analysis that have been done.
Table 5: Pearson’s correlation coefficient
Product Price |
Sale Price |
Profit |
Numbers of customer |
|
Product Price |
1 |
0.985 |
0.023 |
0.109 |
Sale Price |
0.985 |
1 |
0.166 |
0.108 |
Profit |
0.023 |
0.166 |
1 |
0.006 |
Numbers of customer |
0.109 |
0.108 |
0.006 |
1 |
The following conclusions can be made using table 5:
The regression analysis that have been done using python to predict the monthly sales of the website by the customers with books bought as our prediction variable:
Table 6: Output of Regression Analysis
F Statistic |
5921.35 |
P Value |
0.000 |
R2 |
0.832 |
Intercept |
-12.193 |
Slope |
38.802 |
As per the table 6 we can conclude that P value being 0 signifies that relationship among the monthly sales and customers who are highly significant in reaching the required target value and variables. (Morlini, Minerva & Vichi, 2015) With the value of R2 being 0.832 we can suggest that the model fitting the data well and model used for the purpose is:
Total sale (in $) = -12.193 + 38.802 × No’s of Customers
Recommendations to the company
An implementation plan based on the recommendations you have provided
Conclusions
The average profit earning 17% hence every book is approximately giving 17% profit to the company. With the variance in profit being calculated for different attributes of the company, the profit share by the paid shipping is higher as compared to the free shipping in the current data analysis. The new type of customer provides very high profit as compared to the existing customers, the users from South Australia provide more orders and profit as compared to the Western Australia. Among the categories the Literature and Fiction sales have maximum profit as compared to other books category types.
The average profit earning 17% hence every book is approximately giving 17% profit to the company. With the variance in profit being calculated for different attributes of the company, the profit share by the paid shipping is higher as compared to the free shipping in the current data analysis. The new type of customer provides very high profit as compared to the existing customers, the users from South Australia provide more orders and profit as compared to the Western Australia. Among the categories the Literature and Fiction sales have maximum profit as compared to other books category types.
Using the regression analysis we can conclude that P value being 0 signifies that relationship among the monthly sales and customers who are highly significant in reaching the required target value and variables.
References
Fink, A. (2010). Advances in data analysis, data handling and business intelligence. Heidelberg: Springer.
Grazer, W., & Stiff, M. (1987). Statistical Analysis and Design in Marketing Journal Articles. Journal Of The Academy Of Marketing Science, 15(1), 70-73. doi: 10.1177/009207038701500109
Morlini, I., Minerva, T., & Vichi, M. (2015). Advances in Statistical Models for Data Analysis. Cham: Springer International Publishing.
Praveena, M., & Bharathi, B. (2017). A survey paper on big data analytics. 2017 International Conference On Information Communication And Embedded Systems (ICICES). doi: 10.1109/icices.2017.8070723
Singh, S., & Singh, N. (2012). Big Data analytics. 2012 International Conference On Communication, Information & Computing Technology (ICCICT). doi: 10.1109/iccict.2012.6398180
Weimao Ke, Borner, K., & Viswanath, L. Major Information Visualization Authors, Papers and Topics in the ACM Library. IEEE Symposium On Information Visualization. do
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