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@@ -29,7 +29,7 @@ model-index:
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  verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiZGE5MWJmZGUxMGMwNWFhYzVhZjQwZGEwOWQ4N2Q2Yjg5NzdjNDFiNDhiYTQ1Y2E5ZWJkOTFhYmI1Y2Q2ZGYwOCIsInZlcnNpb24iOjF9.TIdH-tOx3kEMDs5wK1r6iwZqqSjNGlBrpawrsE917j1F3UFJVnQ7wJwaj0OIgmC4iw8OQeLZL56ucBcLApa-AQ
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  ---
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- # Multilingual XLM-RoBERTa large for QA on various languages
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  ## Overview
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  **Language model:** xlm-roberta-large
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  **Training data:** SQuAD 2.0
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  **Eval data:** SQuAD dev set - German MLQA - German XQuAD
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  **Training run:** [MLFlow link](https://public-mlflow.deepset.ai/#/experiments/124/runs/3a540e3f3ecf4dd98eae8fc6d457ff20)
 
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  **Infrastructure**: 4x Tesla v100
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  ## Hyperparameters
@@ -52,7 +53,51 @@ lr_schedule = LinearWarmup
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  warmup_proportion = 0.2
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  doc_stride=128
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  max_query_length=64
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- ```
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ## Performance
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  Evaluated on the SQuAD 2.0 English dev set with the [official eval script](https://worksheets.codalab.org/rest/bundles/0x6b567e1cf2e041ec80d7098f031c5c9e/contents/blob/).
@@ -118,6 +163,7 @@ tokenizer = AutoTokenizer.from_pretrained(model_name)
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  **Tanay Soni:** tanay.soni@deepset.ai
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  ## About us
 
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  <div class="grid lg:grid-cols-2 gap-x-4 gap-y-3">
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  <div class="w-full h-40 object-cover mb-2 rounded-lg flex items-center justify-center">
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  <img alt="" src="https://raw.githubusercontent.com/deepset-ai/.github/main/deepset-logo-colored.png" class="w-40"/>
@@ -127,13 +173,12 @@ tokenizer = AutoTokenizer.from_pretrained(model_name)
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  </div>
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  </div>
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- [deepset](http://deepset.ai/) is the company behind the open-source NLP framework [Haystack](https://haystack.deepset.ai/) which is designed to help you build production ready NLP systems that use: Question answering, summarization, ranking etc.
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-
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  Some of our other work:
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- - [Distilled roberta-base-squad2 (aka "tinyroberta-squad2")]([https://huggingface.co/deepset/tinyroberta-squad2)
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- - [German BERT (aka "bert-base-german-cased")](https://deepset.ai/german-bert)
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- - [GermanQuAD and GermanDPR datasets and models (aka "gelectra-base-germanquad", "gbert-base-germandpr")](https://deepset.ai/germanquad)
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  ## Get in touch and join the Haystack community
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@@ -141,6 +186,6 @@ Some of our other work:
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  We also have a <strong><a class="h-7" href="https://haystack.deepset.ai/community">Discord community open to everyone!</a></strong></p>
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- [Twitter](https://twitter.com/deepset_ai) | [LinkedIn](https://www.linkedin.com/company/deepset-ai/) | [Discord](https://haystack.deepset.ai/community) | [GitHub Discussions](https://github.com/deepset-ai/haystack/discussions) | [Website](https://deepset.ai)
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- By the way: [we're hiring!](http://www.deepset.ai/jobs)
 
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  verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiZGE5MWJmZGUxMGMwNWFhYzVhZjQwZGEwOWQ4N2Q2Yjg5NzdjNDFiNDhiYTQ1Y2E5ZWJkOTFhYmI1Y2Q2ZGYwOCIsInZlcnNpb24iOjF9.TIdH-tOx3kEMDs5wK1r6iwZqqSjNGlBrpawrsE917j1F3UFJVnQ7wJwaj0OIgmC4iw8OQeLZL56ucBcLApa-AQ
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  ---
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+ # Multilingual XLM-RoBERTa large for Extractive QA on various languages
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  ## Overview
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  **Language model:** xlm-roberta-large
 
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  **Training data:** SQuAD 2.0
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  **Eval data:** SQuAD dev set - German MLQA - German XQuAD
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  **Training run:** [MLFlow link](https://public-mlflow.deepset.ai/#/experiments/124/runs/3a540e3f3ecf4dd98eae8fc6d457ff20)
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+ **Code:** See [an example extractive QA pipeline built with Haystack](https://haystack.deepset.ai/tutorials/34_extractive_qa_pipeline)
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  **Infrastructure**: 4x Tesla v100
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  ## Hyperparameters
 
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  warmup_proportion = 0.2
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  doc_stride=128
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  max_query_length=64
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+ ```
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+
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+ ## Usage
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+
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+ ### In Haystack
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+ Haystack is an AI orchestration framework to build customizable, production-ready LLM applications. You can use this model in Haystack to do extractive question answering on documents.
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+ To load and run the model with [Haystack](https://github.com/deepset-ai/haystack/):
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+ ```python
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+ # After running pip install haystack-ai "transformers[torch,sentencepiece]"
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+
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+ from haystack import Document
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+ from haystack.components.readers import ExtractiveReader
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+
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+ docs = [
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+ Document(content="Python is a popular programming language"),
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+ Document(content="python ist eine beliebte Programmiersprache"),
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+ ]
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+
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+ reader = ExtractiveReader(model="deepset/xlm-roberta-large-squad2")
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+ reader.warm_up()
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+
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+ question = "What is a popular programming language?"
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+ result = reader.run(query=question, documents=docs)
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+ # {'answers': [ExtractedAnswer(query='What is a popular programming language?', score=0.5740374326705933, data='python', document=Document(id=..., content: '...'), context=None, document_offset=ExtractedAnswer.Span(start=0, end=6),...)]}
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+ ```
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+ For a complete example with an extractive question answering pipeline that scales over many documents, check out the [corresponding Haystack tutorial](https://haystack.deepset.ai/tutorials/34_extractive_qa_pipeline).
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+
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+ ### In Transformers
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+ ```python
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+ from transformers import AutoModelForQuestionAnswering, AutoTokenizer, pipeline
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+
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+ model_name = "deepset/xlm-roberta-large-squad2"
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+
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+ # a) Get predictions
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+ nlp = pipeline('question-answering', model=model_name, tokenizer=model_name)
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+ QA_input = {
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+ 'question': 'Why is model conversion important?',
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+ 'context': 'The option to convert models between FARM and transformers gives freedom to the user and let people easily switch between frameworks.'
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+ }
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+ res = nlp(QA_input)
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+
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+ # b) Load model & tokenizer
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+ model = AutoModelForQuestionAnswering.from_pretrained(model_name)
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+ tokenizer = AutoTokenizer.from_pretrained(model_name)
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+ ```
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  ## Performance
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  Evaluated on the SQuAD 2.0 English dev set with the [official eval script](https://worksheets.codalab.org/rest/bundles/0x6b567e1cf2e041ec80d7098f031c5c9e/contents/blob/).
 
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  **Tanay Soni:** tanay.soni@deepset.ai
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  ## About us
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+
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  <div class="grid lg:grid-cols-2 gap-x-4 gap-y-3">
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  <div class="w-full h-40 object-cover mb-2 rounded-lg flex items-center justify-center">
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  <img alt="" src="https://raw.githubusercontent.com/deepset-ai/.github/main/deepset-logo-colored.png" class="w-40"/>
 
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  </div>
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  </div>
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+ [deepset](http://deepset.ai/) is the company behind the production-ready open-source AI framework [Haystack](https://haystack.deepset.ai/).
 
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  Some of our other work:
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+ - [Distilled roberta-base-squad2 (aka "tinyroberta-squad2")](https://huggingface.co/deepset/tinyroberta-squad2)
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+ - [German BERT](https://deepset.ai/german-bert), [GermanQuAD and GermanDPR](https://deepset.ai/germanquad), [German embedding model](https://huggingface.co/mixedbread-ai/deepset-mxbai-embed-de-large-v1)
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+ - [deepset Cloud](https://www.deepset.ai/deepset-cloud-product), [deepset Studio](https://www.deepset.ai/deepset-studio)
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  ## Get in touch and join the Haystack community
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  We also have a <strong><a class="h-7" href="https://haystack.deepset.ai/community">Discord community open to everyone!</a></strong></p>
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+ [Twitter](https://twitter.com/Haystack_AI) | [LinkedIn](https://www.linkedin.com/company/deepset-ai/) | [Discord](https://haystack.deepset.ai/community) | [GitHub Discussions](https://github.com/deepset-ai/haystack/discussions) | [Website](https://haystack.deepset.ai/) | [YouTube](https://www.youtube.com/@deepset_ai)
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+ By the way: [we're hiring!](http://www.deepset.ai/jobs)