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Results for “rebalance” · papers 14 · wiki 1
Academic Papers · 14arXiv q-fin live 8 · desk corpus 11
arXiv · arXiv q-fin · 2026

Concentrated Liquidity Provision: a Reinforcement Learning Perspective

Automated market makers (AMMs) are a cornerstone of decentralised finance (DeFi). Constant product markets with concentrated liquidity, such as UniswapV3, are now a well-established design. In these markets, liquidity providers (LPs) face a sequential decision problem: they must decide when to rebalance their positions and which price ranges to allocate capital to as market conditions evolve. We formulate dynamic liq

Georgios Chionas, Charalampos Kleitsikas, Stefanos Leonardos, Leandro Sánchez-Betancourt, Carmine Ventre
arXiv · arXiv q-fin · 2019

Unveiling the relation between herding and liquidity with trader lead-lag networks

We propose a method to infer lead-lag networks of traders from the observation of their trade record as well as to reconstruct their state of supply and demand when they do not trade. The method relies on the Kinetic Ising model to describe how information propagates among traders, assigning a positive or negative "opinion" to all agents about whether the traded asset price will go up or down. This opinion is reflect

Carlo Campajola, Fabrizio Lillo, Daniele Tantari
arXiv · arXiv q-fin · 2022

Internal multi-portfolio rebalancing processes: Linking resource allocation models and biproportional matrix techniques to portfolio management

This paper describes multi-portfolio `internal' rebalancing processes used in the finance industry. Instead of trading with the market to `externally' rebalance, these internal processes detail how portfolio managers buy and sell between their portfolios to rebalance. We give an overview of currently used internal rebalancing processes, including one known as the `banker' process and another known as the `linear' pro

Kelli Francis-Staite
arXiv · arXiv q-fin · 2026

The Engineering of Skew: A Path-Dependent Framework for Asymmetric Volatility Management

Volatility is the language in which finance often describes risk, but it is not the language in which institutions experience risk. Allocators live through drawdowns, liquidity needs, spending rules, rebalance decisions, board oversight, and the interval between a prior high-water mark and full recovery. This paper develops a path-dependent framework for asymmetric volatility management. The arithmetic of recovery is

Gregory A. Fanous
arXiv · arXiv q-fin · 2026

Market Regime Council for Dynamic Credit Assignment in Multi-Agent LLM Decision Systems

Multi-agent LLM decision systems for portfolio management still lack a principled way to assign credit across specialist agents, remain vulnerable to cold-start dominance under regime shifts, and offer limited transparency into how final allocations are formed. We propose Market Regime Council (MRC), a cooperative multi-agent decision system that computes exact Shapley credits across all single, pairwise, and Grand-c

Yunhua Pei, Zerui Ge, Jin Zheng, John Cartlidge
arXiv · arXiv q-fin · 2021

An Automated Portfolio Trading System with Feature Preprocessing and Recurrent Reinforcement Learning

We propose a novel portfolio trading system, which contains a feature preprocessing module and a trading module. The feature preprocessing module consists of various data processing operations, while in the trading part, we integrate the portfolio weight rebalance function with the trading algorithm and make the trading system fully automated and suitable for individual investors, holding a handful of stocks. The dat

Lin Li
arXiv · arXiv q-fin · 2020

Market Efficient Portfolios in a Systemic Economy

We study the ex-ante minimization of market inefficiency, defined in terms of minimum deviation of market prices from fundamental values, from a centralized planner's perspective. Prices are pressured from exogenous trading actions of leverage targeting banks, which rebalance their portfolios in response to asset shocks. We characterize market inefficiency in terms of two key drivers, the banks' systemic significance

Kerstin Awiszus, Agostino Capponi, Stefan Weber
arXiv · arXiv q-fin · 2019

Bayesian Filtering for Multi-period Mean-Variance Portfolio Selection

For a long investment time horizon, it is preferable to rebalance the portfolio weights at intermediate times. This necessitates a multi-period market model in which portfolio optimization is usually done through dynamic programming. However, this assumes a known distribution for the parameters of the financial time series. We consider the situation where this distribution is unknown and needs to be estimated from th

Shubhangi Sikaria, Rituparna Sen, Neelesh S. Upadhye
arXiv · arXiv · 2019

Momentum and liquidity in cryptocurrencies

The goal of this paper is to explore the relationship between momentum effects and liquidity in cryptocurrency markets. Portfolios based on momentum-liquidity bivariate sorts are formed and rebalanced on a varying number of cryptocurrencies through time. We find a strong momentum effect in the most liquid cryptocurrencies, which supports the theories of investor herding behavior. Moreover, we propose two profitable l

Stjepan Begušić, Zvonko Kostanjčar
arXiv · arXiv · 2026

Optimal Dynamic Fees for Automated Market Makers: A Stochastic Control Approach to Loss-Versus-Rebalancing

We study the fee policy of a liquidity provider (LP) in a constant-product automated market maker (AMM) whose fee can be adjusted continuously, as enabled by programmable hooks. Building on the loss-versus-rebalancing (LVR) framework of Milionis et al. (2022) and its extension to nonzero fees by Milionis et al. (2024), we model the LP's wealth relative to the continuously rebalanced benchmark as a controlled process

Farbod Ghasemlu
arXiv · arXiv · 2024

Rebalancing-versus-Rebalancing: Improving the fidelity of Loss-versus-Rebalancing

Automated Market Makers (AMMs) hold assets and are constantly being rebalanced by external arbitrageurs to match external market prices. Loss-versus-rebalancing (LVR) is a pivotal metric for measuring how an AMM pool performs for its liquidity providers (LPs) relative to an idealised benchmark where rebalancing is done not via the action of arbitrageurs but instead by trading with a perfect centralised exchange with

Matthew Willetts, Christian Harrington
arXiv · arXiv · 2024

Impermanent loss and loss-vs-rebalancing I: some statistical properties

There are two predominant metrics to assess the performance of automated market makers and their profitability for liquidity providers: 'impermanent loss' (IL) and 'loss-versus-rebalance' (LVR). In this short paper we shed light on the statistical aspects of both concepts and show that they are more similar than conventionally appreciated. Our analysis uses the properties of a random walk and some analytical properti

Abe Alexander, Lars Fritz
arXiv · arXiv · 2023

A Unified Framework for Fast Large-Scale Portfolio Optimization

We introduce a unified framework for rapid, large-scale portfolio optimization that incorporates both shrinkage and regularization techniques. This framework addresses multiple objectives, including minimum variance, mean-variance, and the maximum Sharpe ratio, and also adapts to various portfolio weight constraints. For each optimization scenario, we detail the translation into the corresponding quadratic programmin

Weichuan Deng, Pawel Polak, Abolfazl Safikhani, Ronakdilip Shah
arXiv · arXiv · 2021

Learning about latent dynamic trading demand

This paper presents an equilibrium model of dynamic trading, learning, and pricing by strategic investors with trading targets and price impact. Since trading targets are private, rebalancers and liquidity providers filter the child order flow over time to estimate the latent underlying parent trading demand imbalance and its expected impact on subsequent price pressure dynamics. We prove existence of the equilibrium

Xiao Chen, Jin Hyuk Choi, Kasper Larsen, Duane J. Seppi
Wiki Entities · 1
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