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Model Detail

DavidAU logo

gemma-4-31B-it-The-DECKARD-HERETIC-UNCENSORED-Thinking

—
Provider: DavidAUCategory: codePipeline: image-text-to-textParameters: 31B
DB Score
0.2
Downloads
9K
Likes
48
Day
+0.0%
Week
+87.6%
Month
+0.0%
Overview

gemma-4-31B-it-The-DECKARD-HERETIC-UNCENSORED-Thinking is a code generation model with 31B parameters released by DavidAU. The model is registered under the image-text-to-text pipeline tag on Hugging Face, distributed under the permissive apache-2.0 license.

Technical

gemma-4-31B-it-The-DECKARD-HERETIC-UNCENSORED-Thinking ships with 31B parameters. Total weight footprint is approximately 31.3 GB, which is the relevant figure when planning local-inference VRAM. The apache-2.0 license is permissive, allowing commercial deployment and derivative work without per-seat fees, though attribution requirements still apply.

Trending Signal

Downloads of gemma-4-31B-it-The-DECKARD-HERETIC-UNCENSORED-Thinking have moved +87.6% over the trailing seven days. That puts the model in active uptrend territory; a sustained move of this size usually reflects a recent release, a viral integration, or a benchmark surprise rather than steady-state demand. These numbers are signal, not guarantee — week-over-week download counts on Hugging Face also reflect mirror traffic, CI scrapes, and one-off benchmarking runs.

Read about databubble_score →
Use Cases

gemma-4-31B-it-The-DECKARD-HERETIC-UNCENSORED-Thinking is best fit for code completion, repository-scale Q&A, and pair-programming integrations. It is a less obvious choice for one-shot generation of security-critical code without review. Treat this as a starting matrix rather than a benchmark verdict — the right deployment usually depends on the specific evaluation suite that mirrors your workload.

Download History
Research Paper
arXiv: 2403.08295→
Model Info
Licenseapache-2.0
Citations1,214 (142 influential)
Recent newsView all news →
Related News
arxivneutral40d ago

Gemma 4 Technical Report

arXiv:2607.02770v2 Announce Type: replace Abstract: We introduce Gemma 4, a new generation of open-weight, natively multimodal language models in the Gemma model family. Designed to advance compute efficiency and reasoning, the Gemma 4 model suite features dense and Mixture-of-Experts architectures,

arxivneutral43d ago

Do Active SAE Feature Planes Carry More Holonomy? A Preregistered Reversal in Gemma

arXiv:2607.20522v1 Announce Type: new Abstract: This paper tests whether holonomy concentrates on active sparse-autoencoder (SAE) feature planes in Gemma 2 2B, a concrete operationalization of the broader semantic-concentration prediction. Holonomy is measured at the final-token layer-12 to layer-13

arxiv53d ago

Trivial Prompt Reframing Bypasses Safety Guardrails in Google\'s MedGemma-4B

arXiv:2607.09804v1 Announce Type: cross Abstract: Open-weight medical language models are increasingly used as the base of patient-facing and clinician-support applications. Their model cards prohibit specific behaviors -- recommending exact drug dosages, issuing definitive diagnoses, prescribing tr

huggingface67d ago

Hugging Face and Cerebras bring Gemma 4 to real-time voice AI

arxiv67d ago

DistilledGemma: Balanced Efficiency-Accuracy for Person-Place Relation Extraction from Multilingual Historical Articles

arXiv:2606.29130v1 Announce Type: new Abstract: We present DistilledGemma, an efficient and accurate system for the HIPE-2026 shared task on person-place relation extraction from multilingual historical newspaper articles in English, German, and French. Our approach adopts a three-stage knowledge di

arxivneutral77d ago

How Transparent is DiffusionGemma?

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