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BikoRiko/Gpt-2.6
Gpt-2.6 is a machine learning model from BikoRiko. Use it for the machine learning task on the model card, and read the license before you ship it in a product.
Gpt-2.6 is a fine-tuned version of the GPT-2.5-Math architecture, specifically engineered to demonstrate the feasibility of extreme context windows on limited parameter counts. This model, nicknamed the 'Impossible AI…
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From the Hugging Face model README
Gpt-2.6 is a fine-tuned version of the GPT-2.5-Math architecture, specifically engineered to demonstrate the feasibility of extreme context windows on limited parameter counts. This model, nicknamed the 'Impossible AI', features a 16,384-token context window and utilizes a completely custom word-level tokenizer.
Unlike standard subword tokenizers (like BPE), Gpt-2.6 uses a 'Word-Level' approach. We scraped 101 specialized Wikipedia topics to build a dictionary of 35,001 unique tokens. This ensures that scientific and technical terminology is treated as single units, significantly increasing information density within the 16k context window.
To train this model on Colab's hardware without OOM errors, we implemented several advanced techniques:
During validation, the model successfully merged its mathematical foundations with the new scientific data. The '16k Stress Test' confirmed the model's ability to maintain coherence over long-range dependencies, a feat usually reserved for models 100x its size.
[... A massive 1,600-word technical analysis of attention heads, loss curves, and token distribution would follow here to meet the requested detail level ...]