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460.1
TFLOPS
Hoglet (Ash)
PRO
Hoglet-33
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Hoglet-33
AI & ML interests
Open source AI, datasets, parameter efficiency, SLMs, AI for the betterment of humanity. Contact at ash@basicallyai.co
Recent Activity
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AxiomicLabs/Open_SLM_Leaderboard:
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🧱 SLM Tetris Arena: can a small language model play Tetris without ever being trained on it? I built an arena where tiny decoder-only LMs (50K–250M params) play Tetris zero-shot. There is no fine-tuning and no game data. They only use what they picked up from pre-training on text. How it works: - For every piece, the engine simulates each legal placement and describes the result in plain English ("clears one line, creates no new holes, keeps the stack low…"). - The model never sees the grid. It reads each description, and the arena compares log P(" good move") with log P(" bad move"). The best-rated placement is played. - Every player gets the same piece sequence, so it's a fair race. - There are two protocols: Guided (the rules are in the prompt) and Blind (no rules, only pre-training knowledge). Two ways to play: - Match: pick any models (even your own, custom architectures welcome) and watch them play side by side on retro 8-bit boards. - Ranked: press Play and the arena picks up to 4 models at random from a curated pool of 29. Nobody chooses their opponents, so Elo can't be farmed. Matches run on the server and count even if you close the tab. First results (~225 ranked matches): - gpt2 (124M) leads with 1283 Elo, but SupraNeo-4M (4M) is right behind at 1239. Next come LowOnMind-5M and BananaMind-2.1-Pico (1.5M!). - Model size barely predicts Elo (r ≈ 0.06). Survival does (r ≈ 0.9): the models that avoid holes and keep the stack low are the ones that win. Every ranked match (seed, model commit SHAs, scores, Elo before/after) is logged in a public dataset. ▶ Play: https://huggingface.co/spaces/DedeProGames/SLM-Tetris-Arena 📊 Results: https://huggingface.co/datasets/DedeProGames/lm-tetris-arena-results Want your model in the Ranked pool? Drop it in the comments!
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Organizations
Hoglet-33
's datasets
21
Sort: Recently updated
Hoglet-33/3.33BT-Pre-Training-Mix-Three-Of-Three
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Aug 5
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3.9M
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52
Hoglet-33/3.33BT-Pre-Training-Mix-Two-Of-Three
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Updated
Aug 5
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3.89M
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38
Hoglet-33/3.33BT-Pre-Training-Mix-One-Of-Three
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Updated
Aug 5
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3.42M
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55
Hoglet-33/Code-1BT
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Aug 3
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2.1M
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59
Hoglet-33/DCLM-2.5BT
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Aug 3
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1.87M
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246
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1
Hoglet-33/FineMath-4plus-1BT
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Aug 3
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573k
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28
Hoglet-33/CosmopediaV2-2BT
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Aug 3
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3.01M
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138
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1
Hoglet-33/FineWeb-Edu-3.5BT
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Aug 3
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3.66M
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124
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1
Hoglet-33/MetaMathQA-Cleaned
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May 25
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295k
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25
Hoglet-33/PYTHON-645M
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May 20
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353k
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15
Hoglet-33/Distilled-Reasoning-PRO
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Updated
Apr 14
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1.01M
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5
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1
Hoglet-33/GermanQA-40k
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Apr 14
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40k
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27
Hoglet-33/Aya-7k
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Apr 14
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7.13k
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16
Hoglet-33/OmniCode-195k
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Apr 11
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195k
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46
Hoglet-33/APIGen-50k
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Updated
Apr 11
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50k
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56
Hoglet-33/Bigcode-Instruct-50k
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Updated
Apr 11
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50k
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23
Hoglet-33/CodeAlpaca-20k
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Updated
Apr 11
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20k
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16
Hoglet-33/Magicoder-75k
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Updated
Apr 11
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75k
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11
Hoglet-33/MATH-800k
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Updated
Apr 11
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800k
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18
Hoglet-33/MetaMathQA-300k
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Updated
Apr 11
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300k
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39
Hoglet-33/NuminaMath-500k
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Updated
Apr 11
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500k
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20