activity
20182023
most citedReturn-Based Contrastive Representation Learning for Reinforcement Learning

18 citations · 46 across the 10 of their papers we have counts for

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6 papers · 1 filter

cs.AI20238 cited

Pre-Trained Large Language Models for Industrial Control

Lei Song, Chuheng Zhang, Li Zhao +1

For industrial control, developing high-performance controllers with few samples and low technical debt is appealing. Foundation models, possessing rich prior knowledge obtained fr…

cs.AI2023

Learning Multi-Agent Intention-Aware Communication for Optimal Multi-Order Execution in Finance

Yuchen Fang, Zhenggang Tang, Kan Ren +7

Order execution is a fundamental task in quantitative finance, aiming at finishing acquisition or liquidation for a number of trading orders of the specific assets. Recent advance…

cs.AI20234 cited

A Versatile Multi-Agent Reinforcement Learning Benchmark for Inventory Management

Xianliang Yang, Zhihao Liu, Wei Jiang +4

Multi-agent reinforcement learning (MARL) models multiple agents that interact and learn within a shared environment. This paradigm is applicable to various industrial scenarios su…

cs.AI20232 cited

Pointerformer: Deep Reinforced Multi-Pointer Transformer for the Traveling Salesman Problem

Yan Jin, Yuandong Ding, Xuanhao Pan +5

Traveling Salesman Problem (TSP), as a classic routing optimization problem originally arising in the domain of transportation and logistics, has become a critical task in broader…

cs.AI20234 cited

H-TSP: Hierarchically Solving the Large-Scale Travelling Salesman Problem

Xuanhao Pan, Yan Jin, Yuandong Ding +4

We propose an end-to-end learning framework based on hierarchical reinforcement learning, called H-TSP, for addressing the large-scale Travelling Salesman Problem (TSP). The propos…

cs.AI2020

Suphx: Mastering Mahjong with Deep Reinforcement Learning

Junjie Li, Sotetsu Koyamada, Qiwei Ye +7

Artificial Intelligence (AI) has achieved great success in many domains, and game AI is widely regarded as its beachhead since the dawn of AI. In recent years, studies on game AI h…