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cmitsakis

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投稿

FastContext-1.0-4B-SFT: lightweight repository-exploration subagent

huggingface.co
2 ポイント·投稿者 cmitsakis·27 日前·0 コメント

ZAYA1-8B: Frontier intelligence density, trained on AMD

zyphra.com
3 ポイント·投稿者 cmitsakis·2 か月前·0 コメント

DeepSeek could be valued at up to $50B in first fundraising

reuters.com
3 ポイント·投稿者 cmitsakis·2 か月前·0 コメント

Odysseys: Benchmarking Web Agents on Realistic Long Horizon Tasks

odysseys-website.pages.dev
1 ポイント·投稿者 cmitsakis·2 か月前·0 コメント

Unveiling Eighth Generation TPUs

twitter.com
1 ポイント·投稿者 cmitsakis·2 か月前·0 コメント

Qwen3.6-35B-A3B: Agentic coding power, now open to all

qwen.ai
1,274 ポイント·投稿者 cmitsakis·3 か月前·532 コメント

The Axios supply chain attack used individually targeted social engineering

simonwillison.net
48 ポイント·投稿者 cmitsakis·3 か月前·12 コメント

Round Robin: license that's share-alike for improvements and permissive for apps

roundrobinlicense.com
2 ポイント·投稿者 cmitsakis·8 か月前·2 コメント

コメント

cmitsakis
·3 か月前·議論
I just did some quick testing on my own benchmark that tests LLMs as customer support chatbots, and found out that deepseek-v4-flash (scored 90.2%) was better than qwen3.5-27b (89%) and qwen3.5-35b-a3b (89.1%) and roughly equal to gemini-3-flash-preview (90.5%), but deepseek-v4-flash had the lowest cost of all of them by far. Half the cost of gemini-3-flash and an order of magnitude less cost than the qwen models.

Have you noticed the deepseek-v4-pro performing worse than deepseek-v4-flash? It performed even worse than qwen3.5-27b. I found it surprising and I'm wondering if there is a bug on my software because I had to implement sending the `reasoning_content` otherwise the API failed with BadRequestError.
cmitsakis
·7 か月前·議論
It's written by Kyle Mitchell https://kemitchell.com/ who is a lawyer who has published many unusual licenses (like the Parity license) that are not approved by the FSF or the OSI. He uses simple language.