generated_from_trainer language-identification openvino

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xlm-v-base-language-id

This model is a fine-tuned version of facebook/xlm-v-base on the google/fleurs dataset. It achieves the following results on the evaluation set:

Usage

The simplest way to use the model is with a text classification pipeline:

from transformers import pipeline

model_id = "juliensimon/xlm-v-base-language-id"
p = pipeline("text-classification", model=model_id)
p("Hello world")
# [{'label': 'English', 'score': 0.9802148342132568}]

The model is also compatible with Optimum Intel.

For example, you can optimize it with Intel OpenVINO and enjoy a 2x inference speedup (or more).

from optimum.intel.openvino import OVModelForSequenceClassification
from transformers import AutoTokenizer, pipeline

model_id = "juliensimon/xlm-v-base-language-id"
ov_model = OVModelForSequenceClassification.from_pretrained(model_id)
tokenizer = AutoTokenizer.from_pretrained(model_id)
p = pipeline("text-classification", model=ov_model, tokenizer=tokenizer)
p("Hello world")
# [{'label': 'English', 'score': 0.9802149534225464}]

An OpenVINO version of the model is available in the repository.

Intended uses & limitations

The model can accurately detect 102 languages. You can find the list on the dataset page.

Training and evaluation data

The model has been trained and evaluated on the complete google/fleurs training and validation sets.

Training procedure

The training script is included in the repository. The model has been trained on an p3dn.24xlarge instance on AWS (8 NVIDIA V100 GPUs).

Training hyperparameters

The following hyperparameters were used during training:

Training results

Training Loss Epoch Step Validation Loss Accuracy
0.6368 1.0 531 0.4593 0.9689
0.059 2.0 1062 0.0412 0.9899
0.0311 3.0 1593 0.0275 0.9918
0.0255 4.0 2124 0.0243 0.9928
0.017 5.0 2655 0.0241 0.9930

Framework versions