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The Continuous Bag-of-Words model (CBOW) is frequently used in NLP deep learning. It's a model that tries to predict words given the context of a few words before and a few words after the target word.

Python 100.00%
pytorch pytorch-tutorial pytorch-implementation nlp nlp-deep-learning cbow embeddings

pytorch-continuous-bag-of-words's Introduction

continuous-bag-of-words

The Continuous Bag-of-Words model (CBOW) is frequently used in NLP deep learning. It is a model that tries to predict words given the context of a few words before and a few words after the target word. This is distinct from language modeling, since CBOW is not sequential and does not have to be probabilistic. Typically, CBOW is used to quickly train word embeddings, and these embeddings are used to initialize the embeddings of some more complicated model. Usually, this is referred to as pretraining embeddings. It almost always helps performance a couple of percent.

This is the solution of the final exercise of this great tutorial on NLP in PyTorch.

Example

Corpus

We are about to study the idea of a computational process.
Computational processes are abstract beings that inhabit computers.
As they evolve, processes manipulate other abstract things called data.
The evolution of a process is directed by a pattern of rules
called a program. People create programs to direct processes. In effect,
we conjure the spirits of the computer with our spells.

Context

People, create, to, direct

Output

programs

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pytorch-continuous-bag-of-words's Issues

Uiong with pre-trained word vectors

Hi!

I'm wondering if it's possible to use this model with Glove pre-trained word vectors?
How is it possible to substitute this part in that case?

data = []
for i in range(0, len(raw_text) - 2):
context = [raw_text[i-2], raw_text[i-1]]
target = raw_text[i]
data.append((context, target))

So, I don't have a raw text, but only word vectors and want to predict the next word of the sentence.

max 'vocab_size '

what is the biggest you've ever tested 'vocab_size ' value?
if 'vacab_size' is 100,000, emb_dim =128 is this appropriate

the input of linear1

    self.linear1 = nn.Linear(embedding_dim, 128)

Hi, why the input is embedding_dim, not 2contextembedding_dim

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