Papers › Husky: A Unified, Open-Source Language Agent for Multi-Step Reasoning

Husky: A Unified, Open-Source Language Agent for Multi-Step Reasoning

10 Jun 2024arXiv:2406.06469archive 2025-07-28

Joongwon Kim, Bhargavi Paranjape, Tushar Khot, Hannaneh Hajishirzi

Language agents perform complex tasks by using tools to execute each step precisely. However, most existing agents are based on proprietary models or designed to target specific tasks, such as mathematics or multi-hop question answering. We introduce Husky, a holistic, open-source language agent that learns to reason over a unified action space to address a diverse set of complex tasks involving numerical, tabular, and knowledge-based reasoning. Husky iterates between two stages: 1) generating the next action to take towards solving a given task and 2) executing the action using expert models and updating the current solution state. We identify a thorough ontology of actions for addressing complex tasks and curate high-quality data to train expert models for executing these actions. Our experiments show that Husky outperforms prior language agents across 14 evaluation datasets. Moreover, we introduce HuskyQA, a new evaluation set which stress tests language agents for mixed-tool reasoning, with a focus on retrieving missing knowledge and performing numerical reasoning. Despite using 7B models, Husky matches or even exceeds frontier LMs such as GPT-4 on these tasks, showcasing the efficacy of our holistic approach in addressing complex reasoning problems. Our code and models are available at https://github.com/agent-husky/Husky-v1.

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compute_exact_match_score agent-husky/husky-v1/husky/eval_husky.py official repository ran · violated contract fingerprinted no licence file found · pointer only · 866df55ab08453a5 · report
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wait_for_file agent-husky/husky-v1/husky/run_husky.py official repository ran · violated contract no licence file found · pointer only · 41bcd16dca4b6660 · report
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Tasks

Multi-hop Question AnsweringQuestion Answering

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Methods

Absolute Position EncodingsAdamAttentionBPEDense ConnectionsDropoutFocusGPT-4Label SmoothingLayer NormalizationLinear LayerMulti-Head AttentionOntologyPosition-Wise Feed-Forward LayerResidual ConnectionSETSoftmaxTransformer

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