Description: large_product_affinity is used to obtain Product Affinity using big data without PySpark environment
Project description
large_product_affinity
large_product_affinity is used to obtain Product Affinity using big data without PySpark environment
Features:
-
large_product_affinity has been proven to handle millions of rows of transactional data
-
It can also handle tens of thousands of products
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large_product_affinity requires only a dataframe with just two columns
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It requires minimal pre-processing
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No post-processing required
Requirements for Input data:
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Data should be in a dataframe format of two columns
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First column must be transaction id or any field containing transaction information
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Second column should be products corresponding to transactions in the first column
Input:
- Please, Choose an acceptable Support
Pre-Processing:
- No Nulls
Post-Processing:
None
Output:
- Product Affinity table is sorted in the order of Confidence and Lift in descending order.
Drawbacks:
-
The only drawback noted was the user's system capability to read data.
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Please, Use Modin or Dask to read large volumes of data if Pandas fails.
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