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Large language models (LLMs)
Browse every major large language model in one place. This LLM list tracks frontier and open-source foundation models โ GPT, Claude, Gemini, Llama, Mistral, Qwen and 400+ more โ with parameter counts, context windows, benchmark scores and provider pricing.
StyleGAN-XL
๐จ๐ณ Max Planck Institute for Intelligent Systems
DeBERTaV3large + KEAR
๐บ๐ธ Microsoft
OPT-175B
๐บ๐ธ Meta AI
CogView2
๐จ๐ณ Tsinghua University
GraphBP
๐บ๐ธ Texas A&M
Sparse all-MLP
๐บ๐ธ Meta AI
XMC-GAN
๐บ๐ธ Google Research
Stable Diffusion (LDM-KL-8-G)
๐บ๐ธ Runway
VLM-4
๐ซ๐ท LightOn
BERT-RBP
๐ฏ๐ต Waseda University
DALLยทE 2
๐บ๐ธ OpenAI
PaLM (540B)
๐บ๐ธ Google Research
Monarch-GPT-2-Medium
๐บ๐ธ Stanford University
Monarch-GPT-2-Small
๐บ๐ธ Stanford University
NoPos
๐บ๐ธ Tel Aviv University
Chinchilla
๐ฌ๐ง DeepMind
GraSR
๐บ๐ธ Shanghai Jiao Tong University
Make-A-Scene
๐บ๐ธ Meta AI
MemSizer (language modeling)
๐บ๐ธ Meta AI
Segatron -XL base, M=150 + HCP
๐บ๐ธ Microsoft Research
Segatron-XL large, M=384 + HCP
๐บ๐ธ Microsoft Research
Transformer Large + HCP
๐บ๐ธ University of Waterloo
GPT3-6.7B + muP
๐บ๐ธ Microsoft
MegaSyn
๐บ๐ธ Collaborations Pharmaceuticals
RQ-Transformer (LSUN-cat dataset)
๐ฐ๐ท Kakao
Statement Curriculum Learning
๐บ๐ธ OpenAI
DeepNet
๐บ๐ธ Microsoft Research
IT5 Base
๐ฎ๐น gsarti
PolyCoder
๐บ๐ธ Carnegie Mellon University (CMU)
FourCastNet
๐บ๐ธ NVIDIA
ST-MoE
๐บ๐ธ Google
Midjourney V1
๐บ๐ธ Midjourney
LaMDA
๐บ๐ธ Google
ProteinBERT
๐บ๐ธ Hebrew University of Jerusalem
GPT-NeoX-20B
๐บ๐ธ EleutherAI
MaskGIT (ImageNet)
๐บ๐ธ Google Research
RETRO-7B
๐ฌ๐ง DeepMind
AlphaCode
๐ฌ๐ง DeepMind
DARK
๐จ๐ณ University College London (UCL)
InstructGPT 1.3B
๐บ๐ธ OpenAI
InstructGPT 175B
๐บ๐ธ OpenAI
InstructGPT 350M
๐บ๐ธ OpenAI
InstructGPT 6B
๐บ๐ธ OpenAI
Primer (GPT-3 XL-like 1.9B)
๐บ๐ธ Google Brain
OntoProtein
๐บ๐ธ Zhejiang University (ZJU)
AbLang (heavy sequences)
๐บ๐ธ University of Oxford
data2vec (language)
๐บ๐ธ Meta AI
Japanese-GPT-1B
๐ฏ๐ต rinna
SignalP 6.0
๐ฉ๐ฐ Technical University of Denmark
Vespa
๐บ๐ธ Technical University of Munich
ERNIE 3.0 Titan
๐จ๐ณ Baidu
Fairseq-dense 13B
๐บ๐ธ Meta AI
GLIDE
๐บ๐ธ OpenAI
LDM-1.45B
๐บ๐ธ Heidelberg University
MoE-1.1T
๐บ๐ธ Meta AI
XGLM-7.5B
๐บ๐ธ Meta AI
Contriever
๐บ๐ธ Meta AI
HSO
๐บ๐ธ Toyota Technological Institute at Chicago
LongT5
๐บ๐ธ Google Research
GLaM
๐บ๐ธ Google
About Large language models (LLMs)
Large language models (LLMs) are the foundation of modern generative AI โ general-purpose text models trained on vast corpora that can write, reason, summarise, translate and code. Choosing the best LLM is rarely about a single winner: the best AI model for one task may lag on another. Reasoning-heavy work rewards models that score well on benchmarks like MMLU, GPQA and AIME, while agentic and tool-use workloads care more about instruction following, function calling and long-context recall. When you compare LLMs, weigh raw capability against the practical constraints that decide cost and feasibility โ context window, throughput, latency, licensing and price per million tokens. Open-source LLMs such as Llama, Qwen, Mistral and DeepSeek let you self-host and fine-tune, while proprietary frontier models from OpenAI, Anthropic and Google often lead on raw quality. Use our benchmarks to see where each model ranks, and put two candidates side by side with compare before you commit to a provider.
Frequently asked questions
What is the best LLM right now?
There is no single best LLM โ it depends on the task. Frontier proprietary models from OpenAI, Anthropic and Google tend to lead on reasoning benchmarks, while open-source LLMs like Llama, Qwen and DeepSeek are best when you need to self-host or fine-tune. Compare candidates on the benchmarks page for your specific workload.
What is the best open source LLM?
The strongest open-source and open-weights LLMs at any given time typically come from the Llama, Qwen, Mistral and DeepSeek families. They can be downloaded, self-hosted and fine-tuned, and the top ones rival proprietary models on many benchmarks. Filter the list above by availability to see current open-weights options.
How do I compare two LLMs?
Use the compare tool to put two models side by side on parameters, context window, availability and benchmark scores, then check the benchmarks page for task-specific rankings such as MMLU, GPQA and coding scores.