Instructions to use tomaarsen/Qwen3-Reranker-8B-seq-cls with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- sentence-transformers
How to use tomaarsen/Qwen3-Reranker-8B-seq-cls with sentence-transformers:
from sentence_transformers import CrossEncoder model = CrossEncoder("tomaarsen/Qwen3-Reranker-8B-seq-cls") query = "Which planet is known as the Red Planet?" passages = [ "Venus is often called Earth's twin because of its similar size and proximity.", "Mars, known for its reddish appearance, is often referred to as the Red Planet.", "Jupiter, the largest planet in our solar system, has a prominent red spot.", "Saturn, famous for its rings, is sometimes mistaken for the Red Planet." ] scores = model.predict([(query, passage) for passage in passages]) print(scores) - Transformers
How to use tomaarsen/Qwen3-Reranker-8B-seq-cls with Transformers:
# Load model directly from transformers import AutoTokenizer, AutoModelForSequenceClassification tokenizer = AutoTokenizer.from_pretrained("tomaarsen/Qwen3-Reranker-8B-seq-cls") model = AutoModelForSequenceClassification.from_pretrained("tomaarsen/Qwen3-Reranker-8B-seq-cls", device_map="auto") - Notebooks
- Google Colab
- Kaggle
Tom Aarsen commited on
Commit ·
1493faf
1
Parent(s): 5fa9408
Convert the model to a SequenceClassification variant
Browse files- README.md +130 -7
- config.json +9 -2
- model-00001-of-00005.safetensors → model-00001-of-00004.safetensors +2 -2
- model-00002-of-00005.safetensors → model-00002-of-00004.safetensors +2 -2
- model-00003-of-00005.safetensors → model-00003-of-00004.safetensors +2 -2
- model-00004-of-00005.safetensors → model-00004-of-00004.safetensors +2 -2
- model-00005-of-00005.safetensors +0 -3
- model.safetensors.index.json +400 -400
README.md
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license: apache-2.0
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base_model:
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- Qwen/Qwen3-8B-Base
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-
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pipeline_tag: text-ranking
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---
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# Qwen3-Reranker-8B
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<img src="https://qianwen-res.oss-accelerate-overseas.aliyuncs.com/logo_qwen3.png" width="400"/>
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<p>
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## Highlights
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The Qwen3 Embedding model series is the latest proprietary model of the Qwen family, specifically designed for text embedding and ranking tasks. Building upon the dense foundational models of the Qwen3 series, it provides a comprehensive range of text embeddings and reranking models in various sizes (0.6B, 4B, and 8B). This series inherits the exceptional multilingual capabilities, long-text understanding, and reasoning skills of its foundational model. The Qwen3 Embedding series represents significant advancements in multiple text embedding and ranking tasks, including text retrieval, code retrieval, text classification, text clustering, and bitext mining.
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KeyError: 'qwen3'
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```
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-
###
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```python
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# Requires transformers>=4.51.0
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return scores
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tokenizer = AutoTokenizer.from_pretrained("Qwen/Qwen3-Reranker-8B", padding_side='left')
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-
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model = AutoModelForCausalLM.from_pretrained("Qwen/Qwen3-Reranker-8B").eval()
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# We recommend enabling flash_attention_2 for better acceleration and memory saving.
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# model = AutoModelForCausalLM.from_pretrained("Qwen/Qwen3-Reranker-8B", torch_dtype=torch.float16, attn_implementation="flash_attention_2").cuda().eval()
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task = 'Given a web search query, retrieve relevant passages that answer the query'
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queries = [
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"
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]
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documents = [
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"
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"
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]
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pairs = [format_instruction(task, query, doc) for query, doc in zip(queries, documents)]
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scores = compute_logits(inputs)
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print("scores: ", scores)
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```
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📌 **Tip**: We recommend that developers customize the `instruct` according to their specific scenarios, tasks, and languages. Our tests have shown that in most retrieval scenarios, not using an `instruct` on the query side can lead to a drop in retrieval performance by approximately 1% to 5%.
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license: apache-2.0
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base_model:
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- Qwen/Qwen3-8B-Base
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tags:
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- transformers
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- sentence-transformers
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pipeline_tag: text-ranking
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---
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# Qwen3-Reranker-8B
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<img src="https://qianwen-res.oss-accelerate-overseas.aliyuncs.com/logo_qwen3.png" width="400"/>
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<p>
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> [!NOTE]
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> This is a copy of the [Qwen3-Reranker-8B](https://huggingface.co/Qwen/Qwen3-Reranker-8B) model, part of the [Qwen3 Reranker series](https://huggingface.co/collections/Qwen/qwen3-reranker-6841b22d0192d7ade9cdefea), modified as a sequence classification model instead. See [Updated Usage](#updated-usage) for details on how to use it, or [Original Usage](#original-usage) for the original usage.
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>
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> See [this discussion](https://huggingface.co/Qwen/Qwen3-Reranker-0.6B/discussions/3) for details on the conversion approach.
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## Highlights
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The Qwen3 Embedding model series is the latest proprietary model of the Qwen family, specifically designed for text embedding and ranking tasks. Building upon the dense foundational models of the Qwen3 series, it provides a comprehensive range of text embeddings and reranking models in various sizes (0.6B, 4B, and 8B). This series inherits the exceptional multilingual capabilities, long-text understanding, and reasoning skills of its foundational model. The Qwen3 Embedding series represents significant advancements in multiple text embedding and ranking tasks, including text retrieval, code retrieval, text classification, text clustering, and bitext mining.
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KeyError: 'qwen3'
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```
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### Updated Usage
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#### Updated Sentence Transformers Usage
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```python
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# Requires transformers>=4.51.0
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from sentence_transformers import CrossEncoder
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def format_queries(query, instruction=None):
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prefix = '<|im_start|>system\nJudge whether the Document meets the requirements based on the Query and the Instruct provided. Note that the answer can only be "yes" or "no".<|im_end|>\n<|im_start|>user\n'
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if instruction is None:
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instruction = (
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"Given a web search query, retrieve relevant passages that answer the query"
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)
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return f"{prefix}<Instruct>: {instruction}\n<Query>: {query}\n"
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def format_document(document):
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suffix = "<|im_end|>\n<|im_start|>assistant\n<think>\n\n</think>\n\n"
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return f"<Document>: {document}{suffix}"
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model = CrossEncoder("tomaarsen/Qwen3-Reranker-8B-seq-cls")
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task = "Given a web search query, retrieve relevant passages that answer the query"
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queries = [
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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]
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documents = [
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"Venus is often called Earth's twin because of its similar size and proximity.",
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"Mars, known for its reddish appearance, is often referred to as the Red Planet.",
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"Jupiter, the largest planet in our solar system, has a prominent red spot.",
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"Saturn, famous for its rings, is sometimes mistaken for the Red Planet.",
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]
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pairs = [
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[format_queries(query, task), format_document(doc)]
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for query, doc in zip(queries, documents)
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]
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scores = model.predict(pairs)
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print(scores.tolist())
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# [0.0003314583736937493, 0.9842268824577332, 0.004446804523468018, 0.009984465315937996]
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```
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#### Updated Transformers Usage
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```python
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# Requires transformers>=4.51.0
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from transformers import AutoModelForSequenceClassification, AutoTokenizer
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def format_instruction(instruction, query, doc):
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prefix = '<|im_start|>system\nJudge whether the Document meets the requirements based on the Query and the Instruct provided. Note that the answer can only be "yes" or "no".<|im_end|>\n<|im_start|>user\n'
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suffix = "<|im_end|>\n<|im_start|>assistant\n<think>\n\n</think>\n\n"
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if instruction is None:
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instruction = (
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"Given a web search query, retrieve relevant passages that answer the query"
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)
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output = f"{prefix}<Instruct>: {instruction}\n<Query>: {query}\n<Document>: {doc}{suffix}"
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return output
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tokenizer = AutoTokenizer.from_pretrained("tomaarsen/Qwen3-Reranker-8B-seq-cls", padding_side="left")
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model = AutoModelForSequenceClassification.from_pretrained("tomaarsen/Qwen3-Reranker-8B-seq-cls").eval()
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# We recommend enabling flash_attention_2 for better acceleration and memory saving.
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# model = AutoModelForSequenceClassification.from_pretrained("tomaarsen/Qwen3-Reranker-8B-seq-cls", torch_dtype=torch.float16, attn_implementation="flash_attention_2").cuda().eval()
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max_length = 8192
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task = "Given a web search query, retrieve relevant passages that answer the query"
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queries = [
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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]
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documents = [
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"Venus is often called Earth's twin because of its similar size and proximity.",
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"Mars, known for its reddish appearance, is often referred to as the Red Planet.",
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"Jupiter, the largest planet in our solar system, has a prominent red spot.",
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"Saturn, famous for its rings, is sometimes mistaken for the Red Planet.",
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]
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pairs = [format_instruction(task, query, doc) for query, doc in zip(queries, documents)]
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inputs = tokenizer(
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pairs,
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padding=True,
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truncation=True,
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max_length=max_length,
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return_tensors="pt",
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)
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logits = model(**inputs).logits.squeeze()
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print(logits.tolist())
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# [-8.011678695678711, 4.133551120758057, -5.411122798919678, -4.5966949462890625]
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scores = logits.sigmoid()
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print(scores.tolist())
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# [0.00033145773340947926, 0.9842268824577332, 0.004446760285645723, 0.009984418749809265]
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```
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### Original Usage
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#### Original Transformers Usage
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```python
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# Requires transformers>=4.51.0
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return scores
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tokenizer = AutoTokenizer.from_pretrained("Qwen/Qwen3-Reranker-8B", padding_side='left')
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model = AutoModelForCausalLM.from_pretrained("Qwen/Qwen3-Reranker-8B").eval()
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# We recommend enabling flash_attention_2 for better acceleration and memory saving.
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# model = AutoModelForCausalLM.from_pretrained("Qwen/Qwen3-Reranker-8B", torch_dtype=torch.float16, attn_implementation="flash_attention_2").cuda().eval()
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task = 'Given a web search query, retrieve relevant passages that answer the query'
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queries = [
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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"Which planet is known as the Red Planet?",
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]
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documents = [
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"Venus is often called Earth's twin because of its similar size and proximity.",
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"Mars, known for its reddish appearance, is often referred to as the Red Planet.",
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"Jupiter, the largest planet in our solar system, has a prominent red spot.",
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"Saturn, famous for its rings, is sometimes mistaken for the Red Planet.",
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]
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pairs = [format_instruction(task, query, doc) for query, doc in zip(queries, documents)]
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scores = compute_logits(inputs)
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print("scores: ", scores)
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# scores: [0.00033198529854416847, 0.9842491745948792, 0.00445373822003603, 0.010004101321101189]
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```
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📌 **Tip**: We recommend that developers customize the `instruct` according to their specific scenarios, tasks, and languages. Our tests have shown that in most retrieval scenarios, not using an `instruct` on the query side can lead to a drop in retrieval performance by approximately 1% to 5%.
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config.json
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{
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"architectures": [
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-
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],
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"attention_bias": false,
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"attention_dropout": 0.0,
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"head_dim": 128,
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"hidden_act": "silu",
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"hidden_size": 4096,
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"initializer_range": 0.02,
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"intermediate_size": 12288,
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"max_position_embeddings": 40960,
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"max_window_layers": 36,
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"model_type": "qwen3",
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"num_attention_heads": 32,
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"num_hidden_layers": 36,
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"num_key_value_heads": 8,
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"rms_norm_eps": 1e-06,
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"rope_scaling": null,
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"rope_theta": 1000000,
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"sliding_window": null,
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"tie_word_embeddings": false,
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"torch_dtype": "bfloat16",
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-
"transformers_version": "4.
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"use_cache": true,
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"use_sliding_window": false,
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"vocab_size": 151669
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{
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"architectures": [
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"Qwen3ForSequenceClassification"
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],
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"attention_bias": false,
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"attention_dropout": 0.0,
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"head_dim": 128,
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"hidden_act": "silu",
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"hidden_size": 4096,
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"id2label": {
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"0": "LABEL_0"
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},
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"initializer_range": 0.02,
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"intermediate_size": 12288,
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"label2id": {
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"LABEL_0": 0
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},
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"max_position_embeddings": 40960,
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"max_window_layers": 36,
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"model_type": "qwen3",
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"num_attention_heads": 32,
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"num_hidden_layers": 36,
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"num_key_value_heads": 8,
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"pad_token_id": 151643,
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"rms_norm_eps": 1e-06,
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"rope_scaling": null,
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"rope_theta": 1000000,
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"sliding_window": null,
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"tie_word_embeddings": false,
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