Reasoning Base 20k Reasoning Base Dataset
This dataset is designed to train reasoning models so that they can think about complex problems like humans and then respond. The dataset includes a variety of questions from different fields (science, coding, mathematics, etc.), each with a detailed chain of ideas (COT) and the correct answer. The goal is to enable the model to learn and improve its reasoning process, identify and correct errors, and provide high-quality, detailed responses. The dataset is still under development.
Dataset structure
Data Fields
- User: The user's query or problem statement.
- assistant: The correct answer to the question.
- reasoning: A detailed, step-by-step reasoning process that explains how to arrive at the correct answer.
- template: Pre-applied RChatML chat template.
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