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PyTorch implementations of Top-N recommendation, collaborative filtering recommenders.

Python 87.85% C++ 12.15%
recsys recommender-system pytorch pytorch-implementations collaborative-filtering

recsys_pytorch's Introduction

Hello world! This is Yoonki Jeong from South Korea!

  • I'm currently a research engineer @ Naver Corp.
  • I completed a master's degree @ Sungkyunkwan University, South Korea. (Mar. 2019 - Feb. 2021)
  • I'm interested in various technologies that can bridge the gap between areas far from and close to them.
  • I'm specifically interested in NLP, IR and RecSys.
  • Things that I'm into all the time: โšฝ๏ธ ๐ŸŽฌ ๐ŸŽง ๐Ÿง˜๐Ÿป โ˜•๏ธ

Languages and Tools

C++ Python Tensorflow PyTorch SQL Git

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recsys_pytorch's Issues

Cython backend troubles

Hi yoongi0428,

Thanks a lot for sharing this extensive recommender system implementation.
I have tried to run your code on python 3.8, however I run into trouble with the cython backend.
I get an error of the form:

/local/home/scheidlf/.pyxbld/temp.linux-x86_64-3.8/pyrex/utils/backend/cython/tool.c:610:10: fatal error: numpy/arrayobject.h: No such file or directory
#include "numpy/arrayobject.h"
^~~~~~~~~~~~~~~~~~~~~
compilation terminated.

I was wondering if you could share the environment you worked with or let us know which packages are required to run the code.

Best,
Flo

Questions about Evaluation and DAE input normalization

Hi,

First of all, thanks for sharing this strong work! I found this repo would be really useful for researchers.

While the overall code structure is very clean and intuitive to me, I have some questions about the evaluation code.

  1. I was just wondering what before_evaluation methods(in Model classes) are.

  2. I was wondering if your evaluation code is based on the assumption that the shape of the training matrix and test matrix are guaranteed to be the same or not. I found that the numbers of users in training and test matrices might be different as some users are dropped from the matrix in df_to_sparse. Does the evaluation code work even those shapes are not matched?

  3. Is there any reference about the input normalization for DAE(CDAE)?

  # normalize
  user_degree = torch.norm(rating_matrix, 2, 1).view(-1, 1)   # user, 1
  item_degree = torch.norm(rating_matrix, 2, 0).view(1, -1)   # 1, item
  normalize = torch.sqrt(user_degree @ item_degree)
  zero_mask = normalize == 0
  normalize = torch.masked_fill(normalize, zero_mask.bool(), 1e-10)

  normalized_rating_matrix = rating_matrix / normalize

Thanks!

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