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Introduction

This repository is the implementation of KRED: Knowledge-Aware Document Representation for News Recommendations

Model description

KRED is a knowledge enhanced framework which enhance a document embedding with knowledge information for multiple news recommendation tasks. The framework mainly contains two part: representation enhancement part(left) and multi-task training part(right).

Data description:

We use MIND dataset in this repo, due to MIND dataset doesn't contain location information, so in this experiments we do not use the local news detection task.

Running the code

$ python main.py  (this will run KRED for user2item single task training set by default parameters)

we also offer a quick example in this notebook: kred_example.ipynb

Environment

The code has been tested running under Python 3.6.10, with the following packages installed (along with their dependencies):

  • numpy==1.19.1
  • pytorchtools==0.0.2
  • scikit-learn==0.23.2
  • scipy==1.5.2
  • torch==1.4.0

About

This is the source code for paper: KRED: Knowledge-Aware Document Representation for NewsRecommendations

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