return-predictions | HU Assignment for Business Analystics
kandi X-RAY | return-predictions Summary
kandi X-RAY | return-predictions Summary
return-predictions is a Jupyter Notebook library. return-predictions has no bugs, it has no vulnerabilities and it has low support. You can download it from GitHub.
Customers send back a substantial part of the products that they purchase online. Return shipping is expensive for online platforms and return orders are said to reach 50% for certain industries and products. Nevertheless, free or inexpensive return shipping has become a customer expectation and de-facto standard in the fierce online competition on clothing, but shops have indirect ways to influence customer purchase behavior. For purchases where return seems likely, a shop could, for example, restrict payment options or display additional marketing communication. For this assignment, we are provided with real-world data by an online retailer. The task is to identify the items that are likely to be returned. When a customer is about to purchase a item, which is likely to be returned, the shops is planning to show a warning message. The task is to build a targeting model to balance potential sales and return risk in order to optimize shop revenue. The data we receive is artificially balanced (1:1 ratio between returns and non-returns).
Customers send back a substantial part of the products that they purchase online. Return shipping is expensive for online platforms and return orders are said to reach 50% for certain industries and products. Nevertheless, free or inexpensive return shipping has become a customer expectation and de-facto standard in the fierce online competition on clothing, but shops have indirect ways to influence customer purchase behavior. For purchases where return seems likely, a shop could, for example, restrict payment options or display additional marketing communication. For this assignment, we are provided with real-world data by an online retailer. The task is to identify the items that are likely to be returned. When a customer is about to purchase a item, which is likely to be returned, the shops is planning to show a warning message. The task is to build a targeting model to balance potential sales and return risk in order to optimize shop revenue. The data we receive is artificially balanced (1:1 ratio between returns and non-returns).
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Support
return-predictions has a low active ecosystem.
It has 0 star(s) with 0 fork(s). There are 1 watchers for this library.
It had no major release in the last 6 months.
return-predictions has no issues reported. There are no pull requests.
It has a neutral sentiment in the developer community.
The latest version of return-predictions is current.
Quality
return-predictions has no bugs reported.
Security
return-predictions has no vulnerabilities reported, and its dependent libraries have no vulnerabilities reported.
License
return-predictions does not have a standard license declared.
Check the repository for any license declaration and review the terms closely.
Without a license, all rights are reserved, and you cannot use the library in your applications.
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return-predictions releases are not available. You will need to build from source code and install.
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return-predictions Key Features
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return-predictions Examples and Code Snippets
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Vulnerabilities
No vulnerabilities reported
Install return-predictions
You can download it from GitHub.
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