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Results for “microstructure” · papers 18 · wiki 36
Academic Papers · 18arXiv q-fin live 8 · desk corpus 13
arXiv · arXiv q-fin · 2025

Interpretable Hypothesis-Driven Trading:A Rigorous Walk-Forward Validation Framework for Market Microstructure Signals

We develop a rigorous walk-forward validation framework for algorithmic trading designed to mitigate overfitting and lookahead bias. Our methodology combines interpretable hypothesis-driven signal generation with reinforcement learning and strict out-of-sample testing. The framework enforces strict information set discipline, employs rolling window validation across 34 independent test periods, maintains complete int

Gagan Deep, Akash Deep, William Lamptey
arXiv · arXiv q-fin · 2016

Market Microstructure During Financial Crisis: Dynamics of Informed and Heuristic-Driven Trading

We implement a market microstructure model including informed, uninformed and heuristic-driven investors, which latter behave in line with loss-aversion and mental accounting. We show that the probability of informed trading (PIN) varies significantly during 2008. In contrast, the probability of heuristic-driven trading (PH) remains constant both before and after the collapse of Lehman Brothers. Cross-sectional analy

Mihaly Ormos, Dusan Timotity
OpenAlex · Journal of Business and Economic Statistics · 2006 · cites 1224

Realized Variance and Market Microstructure Noise

We study market microstructure noise in high-frequency data and analyze its implications for the realized variance (RV) under a general specification for the noise. We show that kernel-based estimators can unearth important characteristics of market microstructure noise and that a simple kernel-based estimator dominates the RV for the estimation of integrated variance (IV). An empirical analysis of the Dow Jones Indu

Peter Reinhard Hansen, Asger Lunde
OpenAlex · Review of Financial Studies · 2005 · cites 928

How Often to Sample a Continuous-Time Process in the Presence of Market Microstructure Noise

In theory, the sum of squares of log returns sampled at high frequency estimates their variance. When market microstructure noise is present but unaccounted for, however, we show that the optimal sampling frequency is finite and derives its closed-form expression. But even with optimal sampling, using say 5-min returns when transactions are recorded every second, a vast amount of data is discarded, in contradiction t

Yacine Aı̈t-Sahalia, Per A. Mykland, Lan Zhang
arXiv · arXiv q-fin · 2024

Liquidity Adjustment in Multivariate Volatility Modeling: Evidence from Portfolios of Cryptocurrencies and US Stocks

We develop a liquidity-sensitive multivariate volatility framework to improve the estimation of time-varying covariance structures under market frictions. We introduce two novel portfolio-level liquidity measures, liquidity jump and liquidity diffusion, which capture magnitude and volatility of liquidity fluctuation, respectively, and construct liquidity-adjusted return and volatility that reflect real-time liquidity

Qi Deng
OpenAlex · 1995 · cites 1352

Market microstructure theory

Foreword. 1. Markets and Market--Making. 2. Inventory Models. 3. Information--Based Models. 4. Strategic Trader Models I: Informed Traders. 5. Strategic Trader Models II: Uninformed Traders. 6. Information and the Price Process. 7. Market Viability and Stability. 8. Liquidity and the Relationships between Markets. 9. Issues in Market Performance.

Maureen O’Hara
arXiv · arXiv · 2013

Realtime market microstructure analysis: online Transaction Cost Analysis

Motivated by the practical challenge in monitoring the performance of a large number of algorithmic trading orders, this paper provides a methodology that leads to automatic discovery of the causes that lie behind a poor trading performance. It also gives theoretical foundations to a generic framework for real-time trading analysis. Academic literature provides different ways to formalize these algorithms and show ho

Robert Azencott, Arjun Beri, Yutheeka Gadhyan, Nicolas Joseph, Charles-Albert Lehalle
arXiv · arXiv · 2026

Mitigating Adverse Selection in Concentrated Liquidity AMMs with Dynamic Fees: An Agent-Based Model Approach

Automated Market Makers based on concentrated liquidity, such as Uniswap v3, significantly improve capital efficiency but expose Liquidity Providers (LPs) to adverse selection costs, formalized as Loss-Versus-Rebalancing (LVR). While theoretical literature quantifies these costs, the interplay between realistic blockchain microstructure and endogenous pricing mechanisms remains under-explored. This paper develops a g

Daniele Maria Di Nosse, Fabrizio Lillo
arXiv · arXiv · 2026

Herding and Liquidity in Order-Book Markets. II. Fundamental Anchoring and the Resilience of Liquidity

An order-book market whose liquidity provision is anchored to a fundamental value carries a restoring force: the price mean-reverts to value and the book refills after a shock. We show this restoring force is a robust intrinsic stabiliser and identify it causally-dialling the anchor down removes the mean-reversion, and a leverage-driven fire-sale then self-sustains. Separately, we ask whether a stressed market transm

Jan Novotny
arXiv · arXiv q-fin · 2023

Decentralised Finance and Automated Market Making: Predictable Loss and Optimal Liquidity Provision

Constant product markets with concentrated liquidity (CL) are the most popular type of automated market makers. In this paper, we characterise the continuous-time wealth dynamics of strategic LPs who dynamically adjust their range of liquidity provision in CL pools. Their wealth results from fee income, the value of their holdings in the pool, and rebalancing costs. Next, we derive a self-financing and closed-form op

Álvaro Cartea, Fayçal Drissi, Marcello Monga
arXiv · arXiv q-fin · 2019

Market Price of Trading Liquidity Risk and Market Depth

Price impact of a trade is an important element in pre-trade and post-trade analyses. We introduce a framework to analyze the market price of liquidity risk, which allows us to derive an inhomogeneous Bernoulli ordinary differential equation. We obtain two closed form solutions, one of which reproduces the linear function of the order flow in Kyle (1985) for informed traders. However, when traders are not as asymmetr

Masaaki Kijima, Christopher Ting
arXiv · arXiv q-fin · 2016

Dynamic portfolio optimization with liquidity cost and market impact: a simulation-and-regression approach

We present a simulation-and-regression method for solving dynamic portfolio allocation problems in the presence of general transaction costs, liquidity costs and market impacts. This method extends the classical least squares Monte Carlo algorithm to incorporate switching costs, corresponding to transaction costs and transient liquidity costs, as well as multiple endogenous state variables, namely the portfolio value

Rongju Zhang, Nicolas Langrené, Yu Tian, Zili Zhu, Fima Klebaner
arXiv · arXiv · 2026

Optimal Market Making in Prediction Markets

Prediction markets are attracting growing attention as trading volumes rise and their practical relevance increases. To ensure efficient price discovery, liquidity provision becomes ever more important. Due to the binary settlement structure in prediction markets, optimal market making leads to an optimization problem that is fundamentally different from the ones studied in classical settings. In this paper, we devel

Dominik Feil, Max Nendel
arXiv · arXiv · 2026

Uniform-Loss Automated Market Making for Prediction Markets

Automated market makers (AMMs) for prediction markets descend from market scoring rules, where a mechanism operator subsidizes a market to aggregate beliefs about uncertain events. The existing literature has focused on bounding the total worst-case loss to the subsidizer, but has not addressed how that loss is distributed across price states or over time. We use the framework of loss-versus-rebalancing (LVR) to stud

Ciamac C. Moallemi, Dan Robinson, Brian Zhu
arXiv · arXiv q-fin · 2021

FinRL: Deep Reinforcement Learning Framework to Automate Trading in Quantitative Finance

Deep reinforcement learning (DRL) has been envisioned to have a competitive edge in quantitative finance. However, there is a steep development curve for quantitative traders to obtain an agent that automatically positions to win in the market, namely \textit{to decide where to trade, at what price} and \textit{what quantity}, due to the error-prone programming and arduous debugging. In this paper, we present the fir

Xiao-Yang Liu, Hongyang Yang, Jiechao Gao, Christina Dan Wang
arXiv · arXiv · 2026

Quantifying Sub-Optimality in Routing for Automated Market Makers

We provide a large-scale empirical audit of DEX routing using 2.98 million WETH-USDC swaps on Ethereum. Comparing realized routes with optimized benchmarks, we measure an average shortfall of 2.02 bps per trade or \$24 million. To attribute losses, we introduce three reproducible optimal benchmarks: a Support-Constrained Optimum (SCO) that evaluates split quality conditional on the pools actually used; a Full-Venue O

Weiye Xi, Ciamac C. Moallemi
arXiv · arXiv · 2026

Retail Trader's Ruin: An Anatomy of Popular Signal Failure

We test whether five widely promoted retail signal families - trend, oscillator, candlestick, volume, and calendar rules - deliver a positive, economically meaningful, net-of-cost, and survivable edge. Practical viability is the conjunction of three predeclared gates: statistical edge after multiplicity correction, economic viability after trading costs, and finite-bankroll survival under leverage. Exposure-matched b

Adam Darmanin
arXiv · arXiv · 2026

Predictive Extrema, Unprofitable Policies: An AI-Assisted Audit of Candle-Based Binance Spot Timing Models

We audit whether candle-based machine-learning models can turn predictions of cryptocurrency extrema or short-horizon outcomes into positive Binance Spot paper policies after assumed costs. Numerical results come from scripted fixed-seed model runs and deterministic simulators; human-supervised AI agents supported the July 20 evidence-integrity revision through literature retrieval, separately tasked critique, artifa

Ayoub Jadouli
Wiki Entities · 36
Derivatives

Dealer Gamma Positioning

Dealer gamma positioning describes whether option dealers are structurally long or short gamma, shaping how hedging flows amplify or dampen market moves.

Microstructure

Primary Dealer Holdings

Primary dealer holdings track how much inventory dealers are carrying, offering insight into balance-sheet absorption, market-making capacity, and Treasury market strain.

Microstructure

Market Microstructure

How price actually forms through order flow, spreads, inventory, and participant interaction.

Quant

Market Impact Model

Market Impact Model — Price response to order flow used in optimal execution and capacity estimates.

Microstructure

Order Book Imbalance

Order Book Imbalance — Bid-ask size asymmetry predicting short-horizon price pressure.

Microstructure

Bid Ask Spread

Bid Ask Spread — Immediate cost of trading and compensation for liquidity providers.

Microstructure

Market Depth

Market Depth — Volume available near best prices — collapses precede volatility spikes.

Microstructure

Payment for Order Flow

Payment for Order Flow — Revenue model routing retail orders, affecting execution quality debates.

Microstructure

Dark Pool Volume

Dark Pool Volume — Off-exchange trading share influencing price discovery and lit-market toxicity.

Microstructure

Short Interest Ratio

Short Interest Ratio — Crowded short positioning that can fuel squeezes or confirm bearish consensus.

Microstructure

Securities Lending Fee

Securities Lending Fee — Cost to borrow stock for shorting — spikes signal specialness and squeeze risk.

Microstructure

Intraday Volatility

Intraday Volatility — Within-day return variation informing execution timing and gamma scalping.

Systems

Reg NMS

Reg NMS (Systems).

Crypto

Crypto Market Maker Inventory

Crypto Market Maker Inventory — Dealer inventory and hedge needs shaping crypto microstructure.

Microstructure

Limit Order Book

Limit Order Book (Microstructure).

Microstructure

Market Order Toxicity

Market Order Toxicity (Microstructure).

Microstructure

Adverse Selection Cost

Adverse Selection Cost — Loss MM suffer when trading against informed counterparties.

Microstructure

Effective Spread

Effective Spread (Microstructure).

Microstructure

Quoted Spread

Quoted Spread (Microstructure).

Microstructure

Dark Pool Crossing

Dark Pool Crossing — Non-displayed liquidity venues reducing information leakage.

Microstructure

Lit Market Fragmentation

Lit Market Fragmentation — Split liquidity across exchanges raising routing complexity.

Microstructure

Queue Position Value

Queue Position Value (Microstructure).

Microstructure

Odd Lot Trading

Odd Lot Trading — Sub-round-lot trades increasingly material in equity microstructure.

Microstructure

Auction Opening Cross

Auction Opening Cross (Microstructure).

Microstructure

Closing Auction Imbalance

Closing Auction Imbalance — Pre-close buy/sell imbalance that can move the print.

Microstructure

MOC Order Flow

MOC Order Flow (Microstructure).

Microstructure

Pinging Liquidity

Pinging Liquidity (Microstructure).

Microstructure

Spoofing Pattern

Spoofing Pattern (Microstructure).

Microstructure

Layering Abuse

Layering Abuse (Microstructure).

Microstructure

Limit Order Book US equities

Limit Order Book US equities — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book EU equities

Limit Order Book EU equities — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book futures

Limit Order Book futures — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book ETF

Limit Order Book ETF — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book options

Limit Order Book options — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book FX spot

Limit Order Book FX spot — Execution quality, book dynamics, or venue microstructure concept.

Microstructure

Limit Order Book Treasury

Limit Order Book Treasury — Execution quality, book dynamics, or venue microstructure concept.

Option Blackboard · 0
No Option Blackboard entries matched.
Encyclopedia · 24
Microstructure · Foundations

Adverse Selection carry Regime

Adverse Selection carry Regime (Microstructure).

Microstructure · Foundations

Adverse Selection Cost

Adverse Selection Cost — Loss MM suffer when trading against informed counterparties.

Microstructure · Foundations

Adverse Selection crypto

Adverse Selection crypto — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection disinflation Regime

Adverse Selection disinflation Regime (Microstructure).

Microstructure · Foundations

Adverse Selection easing Regime

Adverse Selection easing Regime (Microstructure).

Microstructure · Foundations

Adverse Selection ETF

Adverse Selection ETF — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection EU equities

Adverse Selection EU equities — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection futures

Adverse Selection futures — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection FX spot

Adverse Selection FX spot — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection HY credit

Adverse Selection HY credit — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection IG credit

Adverse Selection IG credit — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection liquidity-crisis Regime

Adverse Selection liquidity-crisis Regime (Microstructure).

Microstructure · Foundations

Adverse Selection options

Adverse Selection options — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection recession Regime

Adverse Selection recession Regime (Microstructure).

Microstructure · Foundations

Adverse Selection reflation Regime

Adverse Selection reflation Regime (Microstructure).

Microstructure · Foundations

Adverse Selection risk-off Regime

Adverse Selection risk-off Regime (Microstructure).

Microstructure · Foundations

Adverse Selection risk-on Regime

Adverse Selection risk-on Regime (Microstructure).

Microstructure · Foundations

Adverse Selection stagflation Regime

Adverse Selection stagflation Regime (Microstructure).

Microstructure · Foundations

Adverse Selection tightening Regime

Adverse Selection tightening Regime (Microstructure).

Microstructure · Foundations

Adverse Selection Treasury

Adverse Selection Treasury — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Adverse Selection US equities

Adverse Selection US equities — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Arrival Price Slippage carry Regime

Arrival Price Slippage carry Regime (Microstructure).

Microstructure · Foundations

Arrival Price Slippage crypto

Arrival Price Slippage crypto — Execution quality, book dynamics, or venue microstructure concept.

Microstructure · Foundations

Arrival Price Slippage disinflation Regime

Arrival Price Slippage disinflation Regime (Microstructure).

Cards · 0
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