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Model: vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct
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---
license: apache-2.0
base_model: Qwen/Qwen3-8B
tags:
- qwen3
- bias-detection
- news-debiasing
- text-generation
- fine-tuned
- unsloth
- sft
datasets:
- vector-institute/Unbias-plus
language:
- en
---
# Qwen3-8B-UnBias-Plus-SFT-Instruct
A fine-tuned version of [Qwen3-8B](https://huggingface.co/Qwen/Qwen3-8B) for news media bias detection and neutral rewriting, developed by the [Vector Institute](https://vectorinstitute.ai) as part of the [UnBias-Plus](https://github.com/VectorInstitute/unbias-plus) project.
Given a news article, the model identifies biased language segments, classifies their bias type and severity, provides neutral replacements, and returns a fully rewritten unbiased version of the article — all in a single structured JSON response.
This is the **Instruct variant** — trained without chain-of-thought thinking blocks (`enable_thinking=False`). It produces clean structured JSON directly, making it faster and more reliable for production inference, including deployment via vLLM or other OpenAI-compatible serving backends.
## Difference from [Qwen3-8B-UnBias-Plus-SFT](https://huggingface.co/vector-institute/Qwen3-8B-UnBias-Plus-SFT)
| | SFT (thinking) | SFT-Instruct (this model) |
|---|---|---|
| Thinking mode | `enable_thinking=True` | `enable_thinking=False` |
| Output | `<think>...</think>` + JSON | JSON directly |
| Inference backend | Transformers | Transformers / vLLM |
| Latency | Higher | Lower |
| Recommended for | Research, local use | Production APIs, vLLM deployment |
## Model Details
| Property | Value |
|---|---|
| Base model | Qwen/Qwen3-8B |
| Fine-tuning method | Supervised Fine-Tuning (SFT) with LoRA |
| Training precision | bf16 (full precision, no quantization during training) |
| LoRA rank | 16 |
| Training framework | Unsloth + TRL |
| Context length | 8192 tokens |
| Thinking mode | Disabled (`enable_thinking=False`) |
| Output format | Structured JSON |
## Usage
```python
from transformers import AutoModelForCausalLM, AutoTokenizer
import torch, json
model_id = "vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct"
tokenizer = AutoTokenizer.from_pretrained(model_id)
model = AutoModelForCausalLM.from_pretrained(
model_id,
dtype=torch.bfloat16,
device_map="auto",
)
model.eval()
SYSTEM_PROMPT = """You are an expert linguist and bias detection specialist.
Your task is to carefully read a news article, detect ALL biased language,
and return a structured JSON response. Return ONLY valid JSON, no extra text."""
article = "Your news article here..."
messages = [
{"role": "system", "content": SYSTEM_PROMPT},
{"role": "user", "content": f"Analyze the following article for bias and return the result in the required JSON format.\n\nARTICLE:\n{article}"},
]
inputs = tokenizer.apply_chat_template(
messages,
tokenize=True,
add_generation_prompt=True,
enable_thinking=False, # must be False for this variant
return_tensors="pt",
return_dict=True,
truncation=True,
max_length=8192,
)
with torch.no_grad():
outputs = model.generate(
input_ids=inputs["input_ids"].to(model.device),
attention_mask=inputs["attention_mask"].to(model.device),
max_new_tokens=4096,
do_sample=False, # greedy decoding for deterministic JSON
temperature=None,
top_p=None,
pad_token_id=tokenizer.eos_token_id,
)
new_tokens = outputs[0][inputs["input_ids"].shape[1]:]
response = tokenizer.decode(new_tokens, skip_special_tokens=True)
result = json.loads(response)
```
### Using with the UnBias-Plus toolkit
```python
from unbias_plus import UnBiasPlus
pipe = UnBiasPlus(
model_name_or_path="vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct",
load_in_4bit=False, # set True for ~5GB VRAM
)
result = pipe.analyze("Your article text here...")
print(result.binary_label) # "biased" or "unbiased"
print(result.severity) # 0, 2, 3, or 4
print(len(result.biased_segments))
print(result.unbiased_text)
```
### Using with vLLM
```bash
vllm serve vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct \
--max-model-len 8192
```
```python
from openai import OpenAI
client = OpenAI(base_url="http://localhost:8000/v1", api_key="EMPTY")
completion = client.chat.completions.create(
model="vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct",
messages=messages,
max_tokens=4096,
temperature=0,
extra_body={"chat_template_kwargs": {"enable_thinking": False}},
)
result = json.loads(completion.choices[0].message.content)
```
## Output Schema
```json
{
"binary_label": "biased" | "unbiased",
"severity": 0 | 2 | 3 | 4,
"bias_found": true | false,
"biased_segments": [
{
"original": "exact substring from input article",
"replacement": "neutral alternative phrase",
"severity": "high" | "medium" | "low",
"bias_type": "loaded language | dehumanizing framing | false generalizations | framing bias | euphemism/dysphemism | politically charged terminology | sensationalism",
"reasoning": "1-2 sentence explanation"
}
],
"unbiased_text": "Full rewritten neutral article"
}
```
### Severity Scale
| Value | Meaning |
|---|---|
| 0 | Neutral — no bias detected |
| 2 | Recurring biased framing |
| 3 | Strong persuasive tone |
| 4 | Inflammatory rhetoric |
## Bias Types Detected
- **Loaded language** — words with strong emotional connotations
- **Dehumanizing framing** — language that strips dignity from groups
- **False generalizations** — sweeping statements ("they always", "all of them")
- **Framing bias** — selective wording that implies a viewpoint
- **Euphemism/dysphemism** — softening or hardening language to manipulate perception
- **Politically charged terminology** — labels used to provoke rather than describe
- **Sensationalism** — exaggerated language to evoke emotional responses
## Training Data
Fine-tuned on [vector-institute/Unbias-plus](https://huggingface.co/datasets/vector-institute/Unbias-plus), a curated dataset of news articles with expert-annotated bias labels, segment-level annotations, and neutral rewrites.
## Hardware Requirements
| Setup | Configuration |
|---|---|
| Recommended (server) | `load_in_4bit=False, dtype=torch.bfloat16` (~16GB VRAM) |
| Lightweight (laptop) | `load_in_4bit=True` (~5GB VRAM) |
## Model Variants
| | [4B SFT](https://huggingface.co/vector-institute/Qwen3-4B-UnBias-Plus-SFT) | [8B SFT](https://huggingface.co/vector-institute/Qwen3-8B-UnBias-Plus-SFT) | 8B SFT-Instruct (this) |
|---|---|---|---|
| VRAM (bf16) | ~8GB | ~16GB | ~16GB |
| VRAM (4-bit) | ~3GB | ~5GB | ~5GB |
| Thinking mode | ✓ | ✓ | ✗ |
| vLLM compatible | Partial | Partial | ✓ |
| Quality | Strong | Higher | Higher |
| Recommended for | Laptops | Research | Production APIs |
## Limitations
- Trained primarily on English-language news articles
- Political bias detection reflects patterns in the training data
- Best performance on articles under 5000 characters
- As with all language models, outputs should be reviewed by a human before use in production
## Citation
If you use this model in your research or application, please cite:
```bibtex
@misc{unbias-plus-8b-instruct,
title = {Qwen3-8B-UnBias-Plus-SFT-Instruct},
author = {Vector Institute},
year = {2026},
publisher = {HuggingFace},
howpublished = {\url{https://huggingface.co/vector-institute/Qwen3-8B-UnBias-Plus-SFT-Instruct}},
note = {Part of the UnBias-Plus project: https://github.com/VectorInstitute/unbias-plus}
}
```
## Links
- 🔗 Project: [UnBias-Plus on GitHub](https://github.com/VectorInstitute/unbias-plus)
- 📊 Dataset: [vector-institute/Unbias-plus](https://huggingface.co/datasets/vector-institute/Unbias-plus)
- 🏛️ Organization: [Vector Institute](https://vectorinstitute.ai)
- 🤖 4B version: [vector-institute/Qwen3-4B-UnBias-Plus-SFT](https://huggingface.co/vector-institute/Qwen3-4B-UnBias-Plus-SFT)
- 🤖 8B thinking version: [vector-institute/Qwen3-8B-UnBias-Plus-SFT](https://huggingface.co/vector-institute/Qwen3-8B-UnBias-Plus-SFT)

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{%- if tools %}
{{- '<|im_start|>system\n' }}
{%- if messages[0].role == 'system' %}
{{- messages[0].content + '\n\n' }}
{%- endif %}
{{- "# Tools\n\nYou may call one or more functions to assist with the user query.\n\nYou are provided with function signatures within <tools></tools> XML tags:\n<tools>" }}
{%- for tool in tools %}
{{- "\n" }}
{{- tool | tojson }}
{%- endfor %}
{{- "\n</tools>\n\nFor each function call, return a json object with function name and arguments within <tool_call></tool_call> XML tags:\n<tool_call>\n{\"name\": <function-name>, \"arguments\": <args-json-object>}\n</tool_call><|im_end|>\n" }}
{%- else %}
{%- if messages[0].role == 'system' %}
{{- '<|im_start|>system\n' + messages[0].content + '<|im_end|>\n' }}
{%- endif %}
{%- endif %}
{%- set ns = namespace(multi_step_tool=true, last_query_index=messages|length - 1) %}
{%- for forward_message in messages %}
{%- set index = (messages|length - 1) - loop.index0 %}
{%- set message = messages[index] %}
{%- set current_content = message.content if message.content is not none else '' %}
{%- set tool_start = '<tool_response>' %}
{%- set tool_start_length = tool_start|length %}
{%- set start_of_message = current_content[:tool_start_length] %}
{%- set tool_end = '</tool_response>' %}
{%- set tool_end_length = tool_end|length %}
{%- set start_pos = (current_content|length) - tool_end_length %}
{%- if start_pos < 0 %}
{%- set start_pos = 0 %}
{%- endif %}
{%- set end_of_message = current_content[start_pos:] %}
{%- if ns.multi_step_tool and message.role == "user" and not(start_of_message == tool_start and end_of_message == tool_end) %}
{%- set ns.multi_step_tool = false %}
{%- set ns.last_query_index = index %}
{%- endif %}
{%- endfor %}
{%- for message in messages %}
{%- if (message.role == "user") or (message.role == "system" and not loop.first) %}
{{- '<|im_start|>' + message.role + '\n' + message.content + '<|im_end|>' + '\n' }}
{%- elif message.role == "assistant" %}
{%- set content = message.content %}
{%- set reasoning_content = '' %}
{%- if message.reasoning_content is defined and message.reasoning_content is not none %}
{%- set reasoning_content = message.reasoning_content %}
{%- else %}
{%- if '</think>' in message.content %}
{%- set content = (message.content.split('</think>')|last).lstrip('\n') %}
{%- set reasoning_content = (message.content.split('</think>')|first).rstrip('\n') %}
{%- set reasoning_content = (reasoning_content.split('<think>')|last).lstrip('\n') %}
{%- endif %}
{%- endif %}
{%- if loop.index0 > ns.last_query_index %}
{%- if loop.last or (not loop.last and reasoning_content) %}
{{- '<|im_start|>' + message.role + '\n<think>\n' + reasoning_content.strip('\n') + '\n</think>\n\n' + content.lstrip('\n') }}
{%- else %}
{{- '<|im_start|>' + message.role + '\n' + content }}
{%- endif %}
{%- else %}
{{- '<|im_start|>' + message.role + '\n' + content }}
{%- endif %}
{%- if message.tool_calls %}
{%- for tool_call in message.tool_calls %}
{%- if (loop.first and content) or (not loop.first) %}
{{- '\n' }}
{%- endif %}
{%- if tool_call.function %}
{%- set tool_call = tool_call.function %}
{%- endif %}
{{- '<tool_call>\n{"name": "' }}
{{- tool_call.name }}
{{- '", "arguments": ' }}
{%- if tool_call.arguments is string %}
{{- tool_call.arguments }}
{%- else %}
{{- tool_call.arguments | tojson }}
{%- endif %}
{{- '}\n</tool_call>' }}
{%- endfor %}
{%- endif %}
{{- '<|im_end|>\n' }}
{%- elif message.role == "tool" %}
{%- if loop.first or (messages[loop.index0 - 1].role != "tool") %}
{{- '<|im_start|>user' }}
{%- endif %}
{{- '\n<tool_response>\n' }}
{{- message.content }}
{{- '\n</tool_response>' }}
{%- if loop.last or (messages[loop.index0 + 1].role != "tool") %}
{{- '<|im_end|>\n' }}
{%- endif %}
{%- endif %}
{%- endfor %}
{%- if add_generation_prompt %}
{{- '<|im_start|>assistant\n' }}
{%- if enable_thinking is defined and enable_thinking is false %}
{{- '<think>\n\n</think>\n\n' }}
{%- endif %}
{%- endif %}

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"unsloth_fixed": true,
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"vocab_size": 151936
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}

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vocab.json Normal file

File diff suppressed because one or more lines are too long