GenueAI/Tessera-4
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Tessera 4
The Frontier of Efficiency: ORPO-Distilled Reasoning
Tessera 4 is a specialized mini-model designed to prove that massive scale is not a requirement for world-class reasoning. By utilizing ORPO (Odds Ratio Preference Optimization) and a high-signal distillation process from DeepSeek-R1, Tessera 4 achieves frontier-level performance in logic and mathematics while remaining small enough to run on consumer hardware (8GB VRAM).
๐ The Reasoning Breakthrough
Tessera 4 was trained with a specific focus: Logical Accuracy over General Trivia. While we purposely allowed MMLU scores to sit at 66%, the trade-off resulted in a reasoning engine that surpasses its own teacher (DeepSeek-R1) and rivals GPT-5-class thresholds on core logic benchmarks.
๐ Benchmark Comparison
Note: Benchmarks conducted on randomized high-signal subsets to verify zero-shot reasoning capabilities.
๐ ๏ธ Technical Specifications
- Training Duration: ~8 Hours
- Hardware: 1x RTX 3090
- Methodology: ORPO Distillation
- Optimization: Focused on Chain-of-Thought (CoT) path correction, eliminating the "verbose fluff" typical of larger reasoning models.
๐ป Hardware Requirements & Format
- Format: Full 16 Bit, 3090
- VRAM: Recommended 8GB+
- Compatibility: Optimized for LM Studio, Ollama, and llama.cpp.
๐ง Reasoning Showcase
All results generated at Q4_K_M quantization (4-bit).
๐ข 1. High-Precision Math (15 Factorial)
Test: Calculate 15! step-by-step. Result: 1,307,674,368,000 (100% Correct)
Tessera 4 demonstrates zero-shot numerical stability, maintaining digit precision across 14 layers of multiplication.
๐ 2. Unit Conversion & Physics
Test: A train travels 60km in 45 minutes. Find the speed in km/h. Result: 80 km/h (Correct)
The model correctly identifies the need to convert minutes to hours (0.75h) before applying the distance/time formula.
๐ฝ 3. Deep Logical Branching (The 3 Aliens)
Test: A complex "Truth-Teller, Liar, Alternator" puzzle. Result: Successfully identified Z=Truth, X=Alternator, Y=Liar (Correct)
Tessera 4 successfully tracked nested state changes and caught a logical contradiction in a secondary hypothesis branch.
๐ 4. Physical Grounding (The Car Wash)
Test: 100ft walk vs drive for a car wash. Result: Drive (Correct)
The model demonstrated common-sense grounding by realizing the "car" must be physically present at the car wash, overriding the "short walking distance" heuristic.
๐ฌ Prompt Format
To achieve the scores listed above, you must use the correct prompt template. Since this is distilled from R1, it utilizes the DeepSeek-V3/R1 style:
<|im_start|>system
You are a highly logical reasoning engine. Think step-by-step.<|im_end|>
<|im_start|>user
[Your Question Here]<|im_end|>
<|im_start|>assistant
<|thought|>