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README.md CHANGED
@@ -1,3 +1,227 @@
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- ---
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- license: apache-2.0
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- ---
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ ---
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+ license: apache-2.0
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+ tags:
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+ - finetuned
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+ - chat
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+ language:
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+ - en
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+ - ko
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+ - ja
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+ - zh
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+ pipeline_tag: text-generation
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+ library_name: transformers
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+ ---
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+
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+ # Trillion-7B-preview
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+
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+ <p align="center">
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+ <picture>
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+ <source media="(prefers-color-scheme: dark)" srcset="assets/Signiture_Trillion_BlackBG.png", width="300", style="margin: 40 auto;">
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+ <img src="assets/Signiture_Trillion_WhiteBG.png" alt="logo", width="300", style="margin: 40 auto;">
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+ </picture>
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+
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+
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+ ## Introduction
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+
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+ We introduce Trillion-7B-preview, a preview of our latest large language model designed to push the boundaries of multilingual scalability and performance.
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+
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+
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+ When comparing performance to training FLOPs for Trillion-7B-preview with competitive models, our model pushes the Pareto frontier, achieving ~66.5% average performance while using significantly fewer compute (~9.3×10²² FLOPs). It outperforms models like Mistral-7B-Instruct-v0.3 and SOLAR-10.7B-Instruct-v1.0 while remaining competitive with models requiring 3-8× more compute such as Qwen2.5-7B-Instruct and EXAONE-3.5-7.8B-Instruct. For full benchmark results, see tables below.
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+
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+ <p align="center">
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+ <img src="assets/frontier.png" alt="Average Performance vs. Approximate Training FLOPs" width="700">
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+ </p>
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+
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+ - Type: Causal Language Model
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+ - Training Stage: Pre-training & Post-training
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+ - Architecture: Transformer Decoder with RoPE, SwiGLU, RMSNorm
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+ - Number of Parameters: 7.76B
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+ - Number of Layers: 32
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+ - Number of Attention Heads: 32
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+ - Context Length: 4,096
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+ - Number of Tokens seen: 2T
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+ - Vocab Size: 128,128
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+
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+
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+ ## Quickstart
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+
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+ Here is a code snippet with `apply_chat_template` that demonstrates how to load the tokenizer and model and generate text.
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+
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+ ```python
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+ import torch
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+ from transformers import AutoModelForCausalLM, AutoTokenizer
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+
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+ model_name = "trillionlabs/Trillion-7B-preview"
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+
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+ model = AutoModelForCausalLM.from_pretrained(
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+ model_name,
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+ torch_dtype=torch.bfloat16,
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+ device_map="auto"
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+ )
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+ tokenizer = AutoTokenizer.from_pretrained(model_name)
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+
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+ prompt = "Tell me a hilarious knock knock joke."
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+ messages = [
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+ {"role": "user", "content": prompt}
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+ ]
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+ text = tokenizer.apply_chat_template(
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+ messages,
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+ tokenize=False,
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+ add_generation_prompt=True
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+ )
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+ model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
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+
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+ generated_ids = model.generate(
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+ **model_inputs,
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+ max_new_tokens=512
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+ )
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+ generated_ids = [
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+ output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
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+ ]
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+
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+ response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
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+ print(response)
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+
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+ """
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+ Sure! Here's a classic knock-knock joke that's guaranteed to make you chuckle:
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+ Knock, knock.
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+ Who's there?
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+ Lettuce.
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+ Lettuce who?
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+ Lettuce in, it's too cold out here!
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+ """
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+ ```
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+
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+ ## Evaluation
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+
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+ We selected a wide variety of benchmarks that evaluate general reasoning, knowledge recall, coding abilities, mathematical reasoning, and instruction following capabilities. We evaluated Trillion-7B-preview along with several leading large language models of similar size. Our model especially demonstrates strong performance on Korean benchmarks.
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+
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+
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+ <details>
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+ <summary> Full evaluation settings </summary>
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+
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+ | Benchmark | Language | Evaluation Setting | Metric |
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+ |:----------|:---------|:------------------|:-------|
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+ | **General Reasoning and Reading Comprehension** | | | |
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+ | • HellaSwag | English | 0-shot | accuracy |
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+ | • TruthfulQA_mc1 | English | 6-shot | accuracy |
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+ | • TruthfulQA_mc2 | English | 6-shot | accuracy |
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+ | • ARC:C | English | 0-shot | accuracy |
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+ | • HAERAE | Korean | 3-shot | accuracy |
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+ | • KoBEST | Korean | 5-shot | accuracy |
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+ | • BBH | English | 0-shot, CoT | accuracy |
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+ | • xwinograd_en | English | 0-shot | accuracy |
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+ | • xwinograd_jp | Japanese | 0-shot | accuracy |
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+ | • xwinograd_zh | Chinese | 0-shot | accuracy |
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+ | **Knowledge Recall** | | | |
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+ | • KMMLU | Korean | 5-shot | accuracy |
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+ | • MMLU | English | 5-shot | accuracy |
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+ | • Global-MMLU-Lite-en | English | 5-shot | accuracy |
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+ | • Global-MMLU-Lite-ko | Korean | 5-shot | accuracy |
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+ | • Global-MMLU-Lite-ja | Japanese | 5-shot | accuracy |
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+ | • Global-MMLU-Lite-zh | Chinese | 5-shot | accuracy |
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+ | **Coding** | | | |
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+ | • HumanEval | English | 0-shot, CoT | pass@1 |
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+ | • MBPP | English | 0-shot, CoT| pass@1 |
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+ | **Mathematical Reasoning** | | | |
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+ | • GSM8k | English | 0-shot, CoT | exact-match |
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+ | • MATH | English | 0-shot, CoT | exact-match |
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+ | • GPQA | English | 4-shot | accuracy |
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+ | • HRM8k | Korean | 0-shot, CoT | exact-match |
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+ | **Instruction Following and Chat** | | | |
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+ | • IFEval | English | 0-shot | strict-average |
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+ | • koIFEval* | Korean | 0-shot | strict-average |
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+ | • MT-Bench** | English | LLM-as-a-judge (gpt-4o-2024-08-06) | LLM score |
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+ | • KO-MT-Bench** | Korean | LLM-as-a-judge (gpt-4o-2024-08-06) | LLM score |
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+ | • LogicKor** | Korean | LLM-as-a-judge (gpt-4o-2024-08-06) | LLM score |
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+
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+ - *Note that koIFEval is our in-house evaluation benchmark for assessing instruction-following capabilities in Korean.
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+ - **Note that MT-Bench, KO-MT-Bench, and LogicKor use a 10-point scale.
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+
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+ </details>
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+
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+ ### Benchmark Results
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+
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+ - Trillion-7B-preview
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+ - [LGAI-EXAONE/EXAONE-3.5-7.8B-Instruct](https://huggingface.co/LGAI-EXAONE/EXAONE-3.5-7.8B-Instruct)
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+ - [google/gemma-2-9b-it](https://huggingface.co/google/gemma-2-9b-it)
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+ - [meta-llama/Llama-3.1-8B-Instruct](meta-llama/Llama-3.1-8B-Instruct)
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+ - [Qwen/Qwen2.5-7B-Instruct](Qwen/Qwen2.5-7B-Instruct)
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+ - [upstage/SOLAR-10.7B-Instruct-v1.0](upstage/SOLAR-10.7B-Instruct-v1.0)
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+ - [mistralai/Mistral-7B-Instruct-v0.3](mistralai/Mistral-7B-Instruct-v0.3)
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+
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+
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+ ### General Reasoning and Factuality
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+
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+ | Benchmark | Trillion-7B-preview | EXAONE-3.5-7.8B-Instruct | gemma-2-9b-it | Llama-3.1-8B-Instruct | Qwen2.5-7B-Instruct | SOLAR-10.7B-Instruct-v1.0 | Mistral-7B-Instruct-v0.3 |
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+ | --- | --- | --- | --- | --- | --- | --- | --- |
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+ | HellaSwag | 58.94 | 60.04 | 59.72 | 59.81 | 61.97 | 68.72 | 65.79 |
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+ | TruthfulQA_mc1 | 36.10 | 40.64 | 42.96 | 38.07 | 47.74 | 56.18 | 42.47 |
160
+ | TruthfulQA_mc2 | 54.10 | 59.74 | 60.09 | 54.54 | 64.72 | 70.64 | 59.41 |
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+ | ARC:C | 54.44 | 56.40 | 62.97 | 53.58 | 52.99 | 60.07 | 58.11 |
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+ | HAERAE | 80.02 | 76.08 | 68.01 | 63.15 | 65.17 | 60.86 | 47.75 |
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+ | KoBEST | 79.61 | 78.57 | 79.98 | 70.09 | 79.24 | 75.20 | 66.50 |
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+ | KMMLU | 48.09 | 45.39 | 46.66 | 41.41 | 50.15 | 41.66 | 33.59 |
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+ | MMLU | 63.52 | 65.65 | 72.24 | 68.32 | 74.23 | 65.20 | 61.84 |
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+ | Global-MMLU-Lite-en | 67.75 | 69.50 | 76.25 | 67.50 | 77.25 | 71.75 | 65.50 |
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+ | Global-MMLU-Lite-ko | 60.75 | 60.00 | 64.25 | 54.00 | 59.25 | 53.75 | 43.00 |
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+ | Global-MMLU-Lite-ja | 60.75 | 45.75 | 66.50 | 54.50 | 65.75 | 50.75 | 50.00 |
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+ | Global-MMLU-Lite-zh | 59.50 | 50.00 | 63.75 | 60.25 | 68.75 | 57.00 | 47.25 |
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+ | BBH | 41.94 | 53.30 | 28.77 | 43.16 | 53.68 | 52.91 | 45.09 |
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+ | xwinograd_en | 87.78 | 87.10 | 89.55 | 88.09 | 85.63 | 87.35 | 88.39 |
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+ | xwinograd_jp | 79.98 | 74.45 | 80.92 | 76.02 | 72.89 | 72.58 | 70.70 |
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+ | xwinograd_zh | 73.81 | 69.44 | 68.06 | 76.19 | 81.55 | 74.60 | 71.83 |
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+
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+ ### Coding
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+
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+ | Benchmark | Trillion-7B-preview | EXAONE-3.5-7.8B-Instruct | gemma-2-9b-it | Llama-3.1-8B-Instruct | Qwen2.5-7B-Instruct | SOLAR-10.7B-Instruct-v1.0 | Mistral-7B-Instruct-v0.3 |
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+ | --- | --- | --- | --- | --- | --- | --- | --- |
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+ | HumanEval | 55.48 | 79.26 | 60.98 | 67.68 | 81.71 | 34.76 | 36.59 |
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+ | MBPP | 40.40 | 61.40 | 8.40 | 39.20 | 51.00 | 29.40 | 36.00 |
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+
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+ ### Mathematical Reasoning
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+
184
+ | Benchmark | Trillion-7B-preview | EXAONE-3.5-7.8B-Instruct | gemma-2-9b-it | Llama-3.1-8B-Instruct | Qwen2.5-7B-Instruct | SOLAR-10.7B-Instruct-v1.0 | Mistral-7B-Instruct-v0.3 |
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+ | --- | --- | --- | --- | --- | --- | --- | --- |
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+ | GSM8k | 72.25 | 87.79 | 73.69 | 74.98 | 88.86 | 62.93 | 35.94 |
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+ | MATH | 32.70 | 70.68 | - | 38.30 | 71.50 | 14.38 | 12.12 |
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+ | GPQA | 32.81 | 38.61 | 36.83 | 30.58 | 34.15 | 28.35 | 32.59 |
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+ | HRM8k | 30.10 | 38.99 | 16.04 | - | 41.51 | 20.68 | 7.89 |
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+
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+ ### Instruction Following and Chat
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+
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+ | Benchmark | Trillion-7B-preview | EXAONE-3.5-7.8B-Instruct | gemma-2-9b-it | Llama-3.1-8B-Instruct | Qwen2.5-7B-Instruct | SOLAR-10.7B-Instruct-v1.0 | Mistral-7B-Instruct-v0.3 |
194
+ | --- | --- | --- | --- | --- | --- | --- | --- |
195
+ | IFEval | 79.13 | 81.42 | 75.48 | 74.93 | 75.85 | 51.61 | 52.64 |
196
+ | koIFEval | 66.58 | 54.65 | 43.30 | 36.07 | 48.55 | 26.12 | 34.22 |
197
+ | MT-Bench | 6.53 | 6.75 | - | 6.32 | 7.86 | 6.76 | 6.84 |
198
+ | KO-MT-Bench | 6.21 | 6.70 | - | 4.27 | 6.47 | 5.57 | 4.59 |
199
+ | LogicKor | 8.14 | 9.25 | 8.33 | 6.45 | 7.99 | 1.85 | 4.76
200
+
201
+
202
+
203
+
204
+ ## Limitations
205
+
206
+ - Language Support: The model is optimized for English, Korean, Japanese, and Chinese. Usage with other languages may result in degraded performance.
207
+ - Knowledge Cutoff: The model's information is limited to data available up to August 2023.
208
+ - Safety Mechanisms: This release does not yet include comprehensive safety features. Future updates will address this area.
209
+ - Release Status: This is a preliminary release version with planned enhancements and updates forthcoming.
210
+
211
+
212
+ ## License
213
+ This model repository is licensed under the Apache-2.0 License.
214
+
215
+
216
+ ## Citation
217
+ ```
218
+ @article{trillion7bpreview,
219
+ title={Trillion-7b-preview},
220
+ author={trillionlabs},
221
+ year={2025},
222
+ url={https://huggingface.co/trillionlabs/trillion-7b-preview-test}
223
+ }
224
+ ```
225
+
226
+ ## Contact
227
+ For inquiries, please contact: [email protected]
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1
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