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Conversing with Data: How AI Makes Sense of Graphs
Thursday, November 7, 2024
Let's take LLM-GQP for instance. It melds graph techniques with model prompts, like asking questions of a digital map to find specific data. Then there's LLM-GIL, where the model learns from graphs, reasons with them, and turns theinformation into a format it can understand.
Prompts play a vital role here—they guide the LLMs on what to do. But it's not all smooth sailing. The article delves into the pros and cons of these models, their tricky aspects, and what the future might hold in terms of advancements and research.
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