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Model Release1d ago

New Powerful AI Model: GigaChat 3.5 Reasoning This open-source LLM actually thinks before it answers!

GigaChat 3.5 Reasoning is a newly released open-source LLM designed for complex coding, math, and reasoning with step-by-step verification.

#GigaChat#Open Source#LLM#Reasoning Model#Hugging Face#DeepSeek#AI#Benchmarks

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Observed across 6 sources

1 editorial report Β· 5 verified social mentions. The most authoritative report leads while later evidence completes the story.

AI PromptsPrimary source

New Powerful AI Model: GigaChat 3.5 Reasoning This open-source LLM actually thinks before it answers!

Open report

Social corroboration

telegram52h before report

πŸ€– GigaChat 3.5 Reasoning 🎯 Thinks before answering: breaks problems into stages, builds plans, and self-corrects 🎯 Explores multiple step-by-step reasoning paths for math & coding, using automated verification to reinforce correct answers 🎯 Autonomously decides when to call external tools or revise earlier steps 🎯 Highly token-efficient: uses 37% fewer tokens than DeepSeek V4 Flash Preview on math problems, thanks to proprietary linear attention πŸ“ˆ Benchmark gains over non-reasoning version: β€’ IFBench: 44 β†’ 77 β€’ Natural Plan: 64 β†’ 80 β€’ LiveCodeBench v6: 56 β†’ 85 #GigaChat35 #ReasoningAI #OpenSourceLLM #LongContextAI #AICodingAssistant πŸ“¦ MIT License. Weights on Hugging Face: fp8 | bf16

Open mention
telegram25h before report

πŸš€ GigaChat 3.5 Reasoning β€” a new open-source LLM that thinks before it answers. It breaks problems into stages, builds a plan, checks intermediate results, and self-corrects. Built on GigaChat 3.5 Ultra, it explores multiple step-by-step reasoning paths for math & coding, using automated verification to reinforce correct answers. ⚑️ Proprietary linear attention makes it highly efficient on long contexts, retaining key points without re-matching from scratch. It’s also token-efficient: uses 37% fewer tokens than DeepSeek V4 Flash Preview on math problems! πŸ“ˆ Benchmark gains over non-reasoning version: β€’ IFBench: 44 β†’ 77 β€’ Natural Plan: 64 β†’ 80 β€’ LiveCodeBench v6: 56 β†’ 85 πŸ“¦ MIT license. Weights on Hugging Face: fp8 | bf16

Open mention
telegram20h before report

❓ Tired of LLMs that hallucinate on complex tasks? What if your AI could: β€’ Explore multiple step-by-step reasoning paths? β€’ Use automated verification to reinforce correct answers? β€’ Check its own work and self-correct? β€’ Autonomously decide when to call external tools? GigaChat 3.5 Reasoning does all of this. This open-source LLM (built on GigaChat 3.5 Ultra) actually thinks before answering. It uses proprietary linear attention for efficient long-context handling, consuming 37% fewer tokens than DeepSeek V4 Flash Preview on math problems. Real-world performance: βœ“ IFBench: 44 β†’ 77 βœ“ Natural Plan: 64 β†’ 80 βœ“ LiveCodeBench v6: 56 β†’ 85 πŸ”— MIT License. Weights on Hugging Face: fp8 | bf16

Open mention
telegram1h before report

GigaChat 3.5 Reasoning: Advanced step-by-step problem solving GigaChat 3.5 Reasoning is a new open-source LLM designed to reason, not just respond. Built on GigaChat 3.5 Ultra, it processes math and coding tasks by exploring multiple step-by-step reasoning paths, using automated verification to reinforce correct trajectories. This enables autonomous multi-step planning, external tool invocation, and self-correction. The model features a proprietary linear attention architecture, optimizing long-context efficiency by retaining key processed points rather than re-matching from scratch. It is highly token-efficient, consuming on average 37% fewer tokens than DeepSeek V4 Flash Preview on math problems. Benchmark gains over the non-reasoning version: β€’ IFBench: 44 β†’ 77 β€’ Natural Plan: 64 β†’ 80 β€’ LiveCodeBench v6: 56 β†’ 85 Open-sourced under the MIT license. Weights available on Hugging Face: fp8 | bf16

Open mention
telegram1d ago

πŸ€– New Powerful AI Model: GigaChat 3.5 Reasoning This open-source LLM actually thinks before it answers! Perfect for complex coding, math, and reasoning prompts. βœ… Built on GigaChat 3.5 Ultra: explores multiple step-by-step reasoning paths βœ… Automated verification reinforces correct answers, enabling self-correction βœ… Autonomously decides when to call external tools or revise earlier steps βœ… Highly efficient: Linear attention uses 37% fewer tokens than DeepSeek V4 Flash Preview πŸ“ˆ Massive benchmark gains over non-reasoning versions: β€’ IFBench: 44 β†’ 77 β€’ Natural Plan: 64 β†’ 80 β€’ LiveCodeBench v6: 56 β†’ 85 πŸ”— Open-sourced under MIT license. Weights on Hugging Face: fp8 | bf16

Open mention
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