Memory Sandbox: Transparent and Interactive Memory Management for Conversational Agents

August 03, 2023 Β· Declared Dead Β· πŸ› ACM Symposium on User Interface Software and Technology

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Authors Ziheng Huang, Sebastian Gutierrez, Hemanth Kamana, Stephen MacNeil arXiv ID 2308.01542 Category cs.HC: Human-Computer Interaction Citations 54 Venue ACM Symposium on User Interface Software and Technology Last Checked 3 months ago
Abstract
The recent advent of large language models (LLM) has resulted in high-performing conversational agents such as chatGPT. These agents must remember key information from an ongoing conversation to provide responses that are contextually relevant to the user. However, these agents have limited memory and can be distracted by irrelevant parts of the conversation. While many strategies exist to manage conversational memory, users currently lack affordances for viewing and controlling what the agent remembers, resulting in a poor mental model and conversational breakdowns. In this paper, we present Memory Sandbox, an interactive system and design probe that allows users to manage the conversational memory of LLM-powered agents. By treating memories as data objects that can be viewed, manipulated, recorded, summarized, and shared across conversations, Memory Sandbox provides interaction affordances for users to manage how the agent should `see' the conversation.
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