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Add transformers.js support

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  1. README.md +31 -0
README.md CHANGED
@@ -7,6 +7,7 @@ tags:
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  - mteb
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  - arctic
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  - snowflake-arctic-embed
 
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  model-index:
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  - name: snowflake-snowflake-arctic-embed-xs
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  results:
@@ -3010,6 +3011,36 @@ for query, query_scores in zip(queries, scores):
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  print(score, document)
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  ```
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  ## FAQ
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  - mteb
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  - arctic
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  - snowflake-arctic-embed
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+ - transformers.js
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  model-index:
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  - name: snowflake-snowflake-arctic-embed-xs
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  results:
 
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  print(score, document)
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  ```
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+ ### Using Transformers.js
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+
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+ If you haven't already, you can install the [Transformers.js](https://huggingface.co/docs/transformers.js) JavaScript library from [NPM](https://www.npmjs.com/package/@xenova/transformers) by running:
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+ ```bash
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+ npm i @xenova/transformers
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+ ```
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+
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+ You can then use the model to compute embeddings as follows:
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+
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+ ```js
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+ import { pipeline, dot } from '@xenova/transformers';
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+
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+ // Create feature extraction pipeline
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+ const extractor = await pipeline('feature-extraction', 'Snowflake/snowflake-arctic-embed-xs', {
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+ quantized: false, // Comment out this line to use the quantized version
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+ });
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+
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+ // Generate sentence embeddings
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+ const sentences = [
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+ 'Represent this sentence for searching relevant passages: Where can I get the best tacos?',
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+ 'The Data Cloud!',
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+ 'Mexico City of Course!',
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+ ]
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+ const output = await extractor(sentences, { normalize: true, pooling: 'cls' });
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+
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+ // Compute similarity scores
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+ const [source_embeddings, ...document_embeddings ] = output.tolist();
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+ const similarities = document_embeddings.map(x => dot(source_embeddings, x));
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+ console.log(similarities); // [0.5044895661144148, 0.5636021124426508]
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+ ```
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  ## FAQ
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