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DavidAU/Qwen3-8B-192k-Context-6X-Josiefied-Uncensored

DavidAU Qwen 8.2B second-order
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Response includes
  • classification m-uncensored
  • files 14
  • benchmarks 11 entries
  • hub_downloads_all_time 1,569
  • author_summary 213 models
  • readme_text full
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Abliteration classifier · v1.0.0
M-U
Primary method

Uncensored (method unknown)

No other method signals detected in this model.
Confidence
LOW
Why this label 3 signals
Weak or ambiguous signals. Best guess based on catalog patterns; treat as tentative and check the evidence below.
  • 'uncensored' in name/tags but no 'abliterated' marker
  • method not identifiable from author declaration alone
  • may be DPO fine-tune, prompt engineering, or unknown technique
Refusal direction extraction

No specific extraction method could be identified for this model. The producer either did not document it or used a proprietary pipeline.

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Downloads · lifetime
2K
58 last 30d - cooling
Likes
9
Descendants
3
in 3 direct forks
Model age
17mo ago
created 2025-05-06
Downloads over time
Now1.6K→from13↑12,123%
05821.2K1.7K13 on May 7, 20251.6K on Oct 111.6K on Oct 10May '25Aug '25Nov '25FebMayAug
May 7, 2025 → Oct 11 · 114 snapshots · spans 522 days

Benchmarks

Benchmark Score Source
Entertainment 1 UGI
Hazardous 2.4 UGI
Natural Intelligence 16.98 UGI
Political lean -18.2% UGI
Sensitive-Info 16.78 UGI
SocPol 1.9 UGI
UGI 40.36 UGI
Willingness (10) 8.8 UGI
W10-Adherence 8.5 UGI
W10-Direct 9 UGI
Writing 23.38 UGI

Genealogy 3 direct forks

Full fork graph →

This model's place in the market. Above: what it was derived from. Below: the tree of everything derived from it.

Metadata

Tags
transformers safetensors qwen3 text-generation 192k context reasoning thinking uncensored conversational base_model:Goekdeniz-Guelmez/Josiefied-Qwen3-8B-abliterated-v1 base_model:finetune:Goekdeniz-Guelmez/Josiefied-Qwen3-8B-abliterated-v1 text-generation-inference

Related

Total size
15.3 GB
Files
14
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2025-05-07 07:18

Files by quantization

Auxiliary files 14 files 15.3 GB
model-00003-of-00004.safetensors 4.64 GB 52b0d57b download
model-00002-of-00004.safetensors 4.58 GB 15c1144e download
model-00001-of-00004.safetensors 4.57 GB daf07cd6 download
model-00004-of-00004.safetensors 1.47 GB ebd62f9b download
tokenizer.json 10.9 MB aeb13307 download
vocab.json 2.65 MB 4783fe10 download
model.safetensors.index.json 32.1 KB 10c7a171 download
tokenizer_config.json 9.48 KB f25f41d9 download
README.md 4.26 KB d87cf9b0 download
.gitattributes 1.53 KB 52373fe2 download
config.json 828 B b54a1444 download
added_tokens.json 707 B b54f9135 download
special_tokens_map.json 613 B ac23c0aa download
generation_config.json 214 B e4f1d319 download

README current version from Hugging Face


library_name: transformers
pipeline_tag: text-generation
tags:

  • 192k context
  • reasoning
  • thinking
  • qwen3
  • uncensored
    base_model:
  • Goekdeniz-Guelmez/Josiefied-Qwen3-8B-abliterated-v1

Qwen3-8B-192k-Context-6X-Josiefied-Uncensored

This repo contains the full precision source code, in "safe tensors" format to generate GGUFs, GPTQ, EXL2, AWQ, HQQ and other formats. The source code can also be used directly.

This repo is for Goekdeniz-Guelmez's excellent "Josiefied-Qwen3-8B-abliterated-v1", modified from 32k (32768) context to 192 k (196608) context modified using YARN as per tech notes at Qwen repo.

ORG model repo for this fine tune:

[ https://huggingface.co/Goekdeniz-Guelmez/Josiefied-Qwen3-8B-abliterated-v1 ]

Max context on this version is : 192k (196608)

Suggest min context limit of : 8k to 16k for "thinking" / "output".

This model can output 2k to over 13k.

To improve long form output performance (especially creative):

  • Temp 1+, 2+ or higher.
  • Top k 100+
  • Rep pen 1.02-1.09

Use Jinja Template or CHATML template.

Please refer the QWEN model card for details, benchmarks, how to use, settings, turning reasoning on/off/ system roles etc etc :

[ https://huggingface.co/Qwen/Qwen3-8B ]

OPTIONAL SYSTEM ROLE:

You may or may not need this, as most times Qwen3s generate their own reasoning/thinking blocks.

You are a deep thinking AI, you may use extremely long chains of thought to deeply consider the problem and deliberate with yourself via systematic reasoning processes to help come to a correct solution prior to answering. You should enclose your thoughts and internal monologue inside <think> </think> tags, and then provide your solution or response to the problem.

See document "Maximizing-Model-Performance-All..." below for how to "set" system role in various LLM/AI apps below.

IMPORTANT: Highest Quality Settings / Optimal Operation Guide / Parameters and Samplers

If you are going to use this model, (source, GGUF or a different quant), please review this document for critical parameter, sampler and advance sampler settings (for multiple AI/LLM aps).

This a "Class 1" (settings will enhance operation) model:

For all settings used for this model (including specifics for its "class"), including example generation(s) and for advanced settings guide (which many times addresses any model issue(s)), including methods to improve model performance for all use case(s) as well as chat, roleplay and other use case(s) (especially for use case(s) beyond the model's design) please see:

[ https://huggingface.co/DavidAU/Maximizing-Model-Performance-All-Quants-Types-And-Full-Precision-by-Samplers_Parameters ]

REASON:

Regardless of "model class" this document will detail methods to enhance operations.

If the model is a Class 3/4 model the default settings (parameters, samplers, advanced samplers) must be set for "use case(s)" uses correctly. Some AI/LLM apps DO NOT have consistant default setting(s) which result in sub-par model operation. Like wise for Class 3/4 models (which operate somewhat to very differently than standard models) additional samplers and advanced samplers settings are required to "smooth out" operation, AND/OR also allow full operation for use cases the model was not designed for.

BONUS - Use these settings for ANY model, ANY repo, ANY quant (including source/full precision):

This document also details parameters, sampler and advanced samplers that can be use FOR ANY MODEL, FROM ANY REPO too - all quants, and of course source code operation too - to enhance the operation of any model.

[ https://huggingface.co/DavidAU/Maximizing-Model-Performance-All-Quants-Types-And-Full-Precision-by-Samplers_Parameters ]

NOTE:

I strongly suggest you also visit the DavidAU GGUF (below) repo too for more details in using this model ; especially if it is "Class 3" or "Class 4" to get maximum performance from the model.

For full information about this model, including:

  • Details about this model and its use case(s).
  • Context limits
  • Special usage notes / settings.
  • Any model(s) used to create this model.
  • Template(s) used to access/use this model.
  • Example generation(s)
  • GGUF quants of this model

Please go to:

[ GGUFS REPO coming soon || LEFT MENU under "Quantizations" ]

[[ model card updates to follow || GGUF repo(s) pending ... ]]

README history 6 versions

The author's README evolved over time. Click a version to see its content at that point.

  1. 2025-05-07Update README.md85b64914.3 KB
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  2. 2025-05-06Update README.md036d5314.3 KB
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  5. 2025-05-06Update README.md1e3df661.1 KB
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  6. 2025-05-06Duplicate from DavidAU/Qwen3-8B-64k-Context-2X-Josiefied-Uncensoredf7574241.1 KB
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