Difference between revisions of "Chain of Thought (CoT)"
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= <span id="Tree of Thoughts (ToT)"></span>Tree of Thoughts (ToT) = | = <span id="Tree of Thoughts (ToT)"></span>Tree of Thoughts (ToT) = | ||
* [https://bing.com/search?q=Tree+of+Thoughts PT-4's logic capabilities can be enhanced with a "Tree of Thoughts"] | * [https://bing.com/search?q=Tree+of+Thoughts PT-4's logic capabilities can be enhanced with a "Tree of Thoughts"] | ||
− | * [https://arxiv.org/abs/2305.08291 2305.08291 Large Language Model Guided Tree-of-Thought | arXiv.org] | + | * [https://arxiv.org/abs/2305.08291 2305.08291 Large Language Model Guided Tree-of-Thought | Jieyi Long -arXiv.org] |
− | * [https://arxiv.org/abs/2305.10601 2305.10601 Tree of Thoughts: Deliberate Problem Solving with Large | | + | * [https://arxiv.org/abs/2305.10601 2305.10601 Tree of Thoughts: Deliberate Problem Solving with Large | S. Yao, D. Yu, J. Zhao, I. Shafran, T. Griffiths, Y. Cao, K. Narasimhanar - Xiv.org] |
* [https://the-decoder.com/system-2-inspired-method-enhances-gpt-4s-logic-capability GPT-4's logic capabilities can be enhanced with a "Tree of Thoughts"] | * [https://the-decoder.com/system-2-inspired-method-enhances-gpt-4s-logic-capability GPT-4's logic capabilities can be enhanced with a "Tree of Thoughts"] | ||
* [https://arxiv.org/pdf/2305.10601.pdf Tree of Thoughts: Deliberate Problem Solving with Large Language Models | arXiv.org] | * [https://arxiv.org/pdf/2305.10601.pdf Tree of Thoughts: Deliberate Problem Solving with Large Language Models | arXiv.org] |
Revision as of 12:13, 25 May 2023
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AI can generate text that follows a logical and coherent sequence of ideas, building on previous statements to form a chain of thought.
Tree of Thoughts (ToT)
- PT-4's logic capabilities can be enhanced with a "Tree of Thoughts"
- 2305.08291 Large Language Model Guided Tree-of-Thought | Jieyi Long -arXiv.org
- 2305.10601 Tree of Thoughts: Deliberate Problem Solving with Large | S. Yao, D. Yu, J. Zhao, I. Shafran, T. Griffiths, Y. Cao, K. Narasimhanar - Xiv.org
- GPT-4's logic capabilities can be enhanced with a "Tree of Thoughts"
- Tree of Thoughts: Deliberate Problem Solving with Large Language Models | arXiv.org
"Tree of Thoughts" is a new framework for inferencing language models like GPT-4, inspired by prompt engineering methods like Chain of Thought. It is a novel approach aimed at improving the problem-solving capabilities of auto-regressive Large Language Model (LLM)s by allowing them to explore multiple reasoning paths over thoughts. To implement ToT as a software system, an LLM is augmented with additional modules including a prompter agent, a checker module, a memory module, and a ToT controller. These modules engage in a multi-round conversation with the LLM to solve a given problem. The memory module records the conversation and state history of the problem-solving process, which allows the system to backtrack to previous steps of the thought-process and explore other directions from there.