All LLM Models

Browse 880 LLM models with VRAM requirements, quantization options, and hardware compatibility.

Understanding LLM VRAM Requirements

How much VRAM you need depends on the model size and quantization level. Quantization reduces the precision of model weights, trading small quality losses for significantly lower VRAM usage. For example, a 7B parameter model needs ~14 GB at FP16 but only ~4 GB at Q4_K_M quantization.

Model List

Llama3 8B Chinese Chat

shenzhi-wang · 8.0B · runs from 4.0 GB

8.2K 689

Llama3 8B Chinese Chat is a 8.0B-parameter open language model from shenzhi-wang in the Llama 3 family. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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MiniCPM5 1B Base

OpenBMB · 1.1B · runs from 0.8 GB

8.2K 21

MiniCPM5 1B Base is a 1.1B-parameter open language model from OpenBMB in the MiniCPM family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Mamba 2.8B HF

State Spaces · 2.8B · runs from 1.3 GB

8.2K 122

Mamba 2.8B HF is a 2.8B-parameter open language model from State Spaces. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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MiniCPM5 2B Base

OpenBMB · 2.5B · runs from 1.5 GB

8.1K 27

MiniCPM5 2B Base is a 2.5B-parameter open language model from OpenBMB in the MiniCPM family. It supports a context window of up to 524,288 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Gemma 2 2B Jpn IT

Google · 2.6B · runs from 5.8 GB

8.0K 217

Gemma 2 2B Jpn IT is a 2.6B-parameter open language model from Google in the Gemma 2 family. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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TIPO V2.1 1B A200M

KBlueLeaf · 991M · runs from 0.7 GB

7.9K 18

TIPO V2.1 1B A200M is a 991M-parameter open language model from KBlueLeaf. It supports a context window of up to 4,096 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Qwen2.5 Coder 3B Claude Opus 4.6 Distilled

ryzdfm · 3.1B · runs from 1.7 GB

7.9K 14

Qwen2.5 Coder 3B Claude Opus 4.6 Distilled is a 3.1B-parameter open language model from ryzdfm in the Qwen 2.5 family. It supports a context window of up to 32,768 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

ChatReasoningCode

ShellWhisperer 1.5B

fableforge-ai · 1.5B · runs from 0.8 GB

7.7K 10

ShellWhisperer 1.5B is a 1.5B-parameter open language model from fableforge-ai. It supports a context window of up to 32,768 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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DFM Mimir

danish-foundation-models · 1.8B · runs from 1.3 GB

7.6K 82

DFM Mimir is a 1.8B-parameter open language model from danish-foundation-models. It supports a context window of up to 4,096 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Tower Plus 9B

Unbabel · 9.2B · runs from 4.8 GB

7.2K 36

Tower Plus 9B is a 9.2B-parameter open language model from Unbabel. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Foundation Sec 8B

fdtn-ai · 8.0B · runs from 4.0 GB

7.1K 308

Foundation Sec 8B is a 8.0B-parameter open language model from fdtn-ai. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Nemotron Labs Diffusion 14B

NVIDIA · 13.5B · runs from 6.5 GB

7.1K 143

Nemotron Labs Diffusion 14B is a 13.5B-parameter open language model from NVIDIA in the Nemotron family. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Llm Jp 3.1 1.8B Instruct4

llm-jp · 1.9B · runs from 1.5 GB

7.0K 18

Llm Jp 3.1 1.8B Instruct4 is a 1.9B-parameter open language model from llm-jp. It supports a context window of up to 4,096 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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EuroLLM 9B Instruct 2512

utter-project · 9.2B · runs from 4.5 GB

6.9K 10

EuroLLM 9B Instruct 2512 is a 9.2B-parameter open language model from utter-project. It supports a context window of up to 32,768 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Quasar 3B A1B Preview

silx-ai · 2.9B · runs from 6.5 GB

6.7K 12

Quasar 3B A1B Preview is a 2.9B-parameter open language model from silx-ai. It supports a context window of up to 16,384 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Tiny Aya Base

Cohere · 3.3B · runs from 7.4 GB

6.6K 62

Tiny Aya Base is a 3.3B-parameter open language model from Cohere in the Aya family. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Salamandra 2B Instruct

BSC-LT · 2.3B · runs from 1.7 GB

6.3K 27

Salamandra 2B Instruct is a 2.3B-parameter open language model from BSC-LT. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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MiniCPM5 1B SFT

OpenBMB · 1.1B · runs from 0.8 GB

6.3K 45

MiniCPM5 1B SFT is a 1.1B-parameter open language model from OpenBMB in the MiniCPM family. It supports a context window of up to 131,072 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Carbon 3B

HuggingFaceBio · 3.5B · runs from 1.9 GB

6.1K 52

Carbon 3B is a 3.5B-parameter open language model from HuggingFaceBio. It supports a context window of up to 32,768 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Qwen3.5 4B PTBR

lucasmg09 · 4B · runs from 1.5 GB

5.8K 2

Qwen3.5 4B PTBR is a 4B-parameter open language model from lucasmg09 in the Qwen 3.5 family. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Txgemma 2B Predict

Google · 2.6B · runs from 1.2 GB

5.8K 56

Txgemma 2B Predict is a 2.6B-parameter open language model from Google in the Gemma 2 family. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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LFM2 2.6B Longevity

Liquid AI · 2.6B · runs from 1.5 GB

5.8K 49

LFM2 2.6B Longevity is a 2.6B-parameter open language model from Liquid AI in the LFM2 family. It supports a context window of up to 128,000 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Qwen3 8B Heretic

DreamFast · 8.2B · runs from 4.1 GB

5.7K 43

Qwen3 8B Heretic is a 8.2B-parameter open language model from DreamFast in the Qwen 3 family. It supports a context window of up to 40,960 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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SILMA 9B Instruct v1.0

silma-ai · 9.2B · runs from 4.8 GB

5.5K 83

SILMA 9B Instruct v1.0 is a 9.2B-parameter open language model from silma-ai. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Baichuan2 7B Base

baichuan-inc · 7B · runs from 3.3 GB

5.5K 85

Baichuan2-7B-Base is Baichuan Intelligence's second-generation 7-billion-parameter pretrained base model, a bilingual English/Chinese language model, not instruction-tuned, trained on 2.6 trillion tokens of high-quality data, up from 1.2 trillion for the original Baichuan-7B. It reports the best results among same-size open models on Chinese and English benchmarks including C-Eval, MMLU, CMMLU, and BBH. A separately released Baichuan2-7B-Chat provides the aligned, conversational counterpart to this base checkpoint, along with a 4-bit quantized chat variant. At 7 billion parameters it runs easily on a single consumer GPU. Context length is 4,096 tokens. It is released under a custom Baichuan2 Community License plus Apache 2.0 for the code: free for research, and free for commercial use only for organizations with under 1 million daily active users that are not themselves software or cloud service providers, subject to a written authorization request. It was published in August 2023.

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Fable Traces

AliesTaha · 4.0B · runs from 2.2 GB

5.3K 208

Fable Traces is a 4.0B-parameter open language model from AliesTaha. It supports a context window of up to 262,144 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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OFFELLIA Gemma 4 E4B 8B Claude 4.6 Opus Reasoning MTP

Brunobkr · 4B · runs from 1.9 GB

5.1K 2

OFFELLIA Gemma 4 E4B 8B Claude 4.6 Opus Reasoning MTP is a 4B-parameter open language model from Brunobkr in the Gemma 4 family. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Sarashina2.2 3B Instruct v0.1

sbintuitions · 3.4B · runs from 2.1 GB

5.0K 38

Sarashina2.2 3B Instruct v0.1 is a 3.4B-parameter open language model from sbintuitions. It supports a context window of up to 8,192 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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TinyLlama 1.1B Chat V0.6

TinyLlama · 1.1B · runs from 0.8 GB

4.9K 113

TinyLlama 1.1B Chat V0.6 is a 1.1B-parameter open language model from TinyLlama in the TinyLlama family. It supports a context window of up to 2,048 tokens. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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Gollem V4 250M Pl

SlayerLab · 250M · runs from 0.6 GB

4.9K 2

Gollem V4 250M Pl is a 250M-parameter open language model from SlayerLab. See its VRAM requirements by quantization and which GPUs and Macs can run it locally below.

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