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# Text Embedding with Transformers
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*author: [Jael Gu](https://github.com/jaelgu)*
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<br />
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## Description
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A text embedding operator takes a sentence, paragraph, or document in string as an input
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and output an embedding vector in ndarray which captures the input's core semantic elements.
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This operator is implemented with pre-trained models from [Huggingface Transformers](https://huggingface.co/docs/transformers).
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<br />
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## Code Example
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Use the pre-trained model 'distilbert-base-cased'
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to generate a text embedding for the sentence "Hello, world.".
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*Write the pipeline*:
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```python
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import towhee
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towhee.dc(["Hello, world."]) \
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.text_embedding.transformers(model_name="distilbert-base-cased")
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```
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<br />
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## Factory Constructor
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Create the operator via the following factory method:
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***text_embedding.transformers(model_name="bert-base-uncased")***
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**Parameters:**
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***model_name***: *str*
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The model name in string.
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The default model name is "bert-base-uncased".
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Supported model names:
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<details><summary>Albert</summary>
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- albert-base-v1
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- albert-large-v1
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- albert-xlarge-v1
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- albert-xxlarge-v1
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- albert-base-v2
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- albert-large-v2
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- albert-xlarge-v2
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- albert-xxlarge-v2
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</details>
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<details><summary>Bart</summary>
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- facebook/bart-large
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</details>
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<details><summary>Bert</summary>
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- bert-base-cased
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- bert-large-cased
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- bert-base-multilingual-uncased
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- bert-base-multilingual-cased
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- bert-base-chinese
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- bert-base-german-cased
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- bert-large-uncased-whole-word-masking
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- bert-large-cased-whole-word-masking
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- bert-large-uncased-whole-word-masking-finetuned-squad
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- bert-large-cased-whole-word-masking-finetuned-squad
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- bert-base-cased-finetuned-mrpc
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- bert-base-german-dbmdz-cased
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- bert-base-german-dbmdz-uncased
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- cl-tohoku/bert-base-japanese-whole-word-masking
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- cl-tohoku/bert-base-japanese-char
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- cl-tohoku/bert-base-japanese-char-whole-word-masking
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- TurkuNLP/bert-base-finnish-cased-v1
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- TurkuNLP/bert-base-finnish-uncased-v1
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- wietsedv/bert-base-dutch-cased
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</details>
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<details><summary>BertGeneration</summary>
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- google/bert_for_seq_generation_L-24_bbc_encoder
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</details>
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<details><summary>BigBird</summary>
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- google/bigbird-roberta-base
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- google/bigbird-roberta-large
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- google/bigbird-base-trivia-itc
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</details>
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<details><summary>BigBirdPegasus</summary>
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- google/bigbird-pegasus-large-arxiv
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- google/bigbird-pegasus-large-pubmed
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- google/bigbird-pegasus-large-bigpatent
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</details>
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<details><summary>CamemBert</summary>
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- camembert-base
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- Musixmatch/umberto-commoncrawl-cased-v1
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- Musixmatch/umberto-wikipedia-uncased-v1
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</details>
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<details><summary>Canine</summary>
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- google/canine-s
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- google/canine-c
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</details>
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<details><summary>Convbert</summary>
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- YituTech/conv-bert-base
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- YituTech/conv-bert-medium-small
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- YituTech/conv-bert-small
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</details>
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<details><summary>CTRL</summary>
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- ctrl
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</details>
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<details><summary>DeBERTa</summary>
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- microsoft/deberta-base
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- microsoft/deberta-large
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- microsoft/deberta-xlarge
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- microsoft/deberta-base-mnli
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- microsoft/deberta-large-mnli
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- microsoft/deberta-xlarge-mnli
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- microsoft/deberta-v2-xlarge
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- microsoft/deberta-v2-xxlarge
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- microsoft/deberta-v2-xlarge-mnli
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- microsoft/deberta-v2-xxlarge-mnli
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</details>
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<details><summary>DistilBert</summary>
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- distilbert-base-uncased
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- distilbert-base-uncased-distilled-squad
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- distilbert-base-cased
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- distilbert-base-cased-distilled-squad
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- distilbert-base-german-cased
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- distilbert-base-multilingual-cased
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- distilbert-base-uncased-finetuned-sst-2-english
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</details>
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<details><summary>Electral</summary>
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- google/electra-small-generator
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- google/electra-base-generator
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- google/electra-large-generator
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- google/electra-small-discriminator
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- google/electra-base-discriminator
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- google/electra-large-discriminator
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</details>
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<details><summary>Flaubert</summary>
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- flaubert/flaubert_small_cased
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- flaubert/flaubert_base_uncased
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- flaubert/flaubert_base_cased
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- flaubert/flaubert_large_cased
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</details>
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<details><summary>FNet</summary>
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- google/fnet-base
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- google/fnet-large
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</details>
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<details><summary>FSMT</summary>
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- facebook/wmt19-ru-en
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</details>
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<details><summary>Funnel</summary>
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- funnel-transformer/small
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- funnel-transformer/small-base
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- funnel-transformer/medium
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- funnel-transformer/medium-base
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- funnel-transformer/intermediate
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- funnel-transformer/intermediate-base
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- funnel-transformer/large
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- funnel-transformer/large-base
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- funnel-transformer/xlarge-base
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- funnel-transformer/xlarge
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</details>
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<details><summary>GPT</summary>
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- openai-gpt
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- gpt2
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- gpt2-medium
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- gpt2-large
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- gpt2-xl
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- distilgpt2
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- EleutherAI/gpt-neo-1.3B
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- EleutherAI/gpt-j-6B
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</details>
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<details><summary>I-Bert</summary>
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- kssteven/ibert-roberta-base
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</details>
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<details><summary>LED</summary>
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- allenai/led-base-16384
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</details>
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<details><summary>MobileBert</summary>
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- google/mobilebert-uncased
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</details>
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<details><summary>MPNet</summary>
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- microsoft/mpnet-base
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</details>
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<details><summary>Nystromformer</summary>
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- uw-madison/nystromformer-512
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</details>
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<details><summary>Reformer</summary>
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- google/reformer-crime-and-punishment
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</details>
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<details><summary>Splinter</summary>
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- tau/splinter-base
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- tau/splinter-base-qass
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- tau/splinter-large
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- tau/splinter-large-qass
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</details>
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<details><summary>SqueezeBert</summary>
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- squeezebert/squeezebert-uncased
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- squeezebert/squeezebert-mnli
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- squeezebert/squeezebert-mnli-headless
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</details>
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<details><summary>TransfoXL</summary>
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- transfo-xl-wt103
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</details>
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<details><summary>XLM</summary>
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- xlm-mlm-en-2048
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- xlm-mlm-ende-1024
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- xlm-mlm-enfr-1024
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- xlm-mlm-enro-1024
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- xlm-mlm-tlm-xnli15-1024
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- xlm-mlm-xnli15-1024
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- xlm-clm-enfr-1024
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- xlm-clm-ende-1024
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- xlm-mlm-17-1280
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- xlm-mlm-100-1280
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</details>
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<details><summary>XLMRoberta</summary>
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- xlm-roberta-base
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- xlm-roberta-large
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- xlm-roberta-large-finetuned-conll02-dutch
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- xlm-roberta-large-finetuned-conll02-spanish
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- xlm-roberta-large-finetuned-conll03-english
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- xlm-roberta-large-finetuned-conll03-german
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</details>
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<details><summary>XLNet</summary>
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- xlnet-base-cased
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- xlnet-large-cased
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</details>
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<details><summary>Yoso</summary>
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- uw-madison/yoso-4096
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</details>
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<br />
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## Interface
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The operator takes a piece of text in string as input.
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It loads tokenizer and pre-trained model using model name.
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and then return text embedding in ndarray.
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**Parameters:**
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***text***: *str*
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The text in string.
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**Returns**:
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*numpy.ndarray*
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The text embedding extracted by model.
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