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Convbert Base Generator Finnish

Developed by Finnish-NLP
A Finnish ConvBERT generator model pre-trained with Replaced Token Detection (RTD) objective, specialized for fill-mask tasks.
Downloads 36
Release Time : 3/2/2022

Model Overview

This model is a Finnish ConvBERT generator model pre-trained using the Replaced Token Detection (RTD) objective, primarily designed for fill-mask tasks.

Model Features

Replaced Token Detection (RTD) Objective
Pre-trained with RTD objective, where the discriminator model predicts replaced tokens instead of traditional masked language modeling.
Hybrid Attention Block
Combines dynamic convolution across spans and self-attention heads to effectively model local and global input sequence dependencies.
Large-scale Finnish Pre-training
Pre-trained on multiple Finnish datasets including cleaned mC4, Wikipedia, and news archives.

Model Capabilities

Fill-mask
Finnish text understanding

Use Cases

Natural Language Processing
Fill-mask Task
Used to predict masked words in sentences, e.g., 'Moikka olen [MASK] kielimalli.'
The model can generate reasonable Finnish words to fill the masked positions.
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