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Quantitative Finance

arXiv preprints from January 1, 2026 through September 5, 2026 — 01:26:26 EST

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Posted in q-fin.CP · 2026-09-03 · Atithi Acharya, Yue Sun, Brandon Augustino, Shouvanik Chakrabarti, Shree Hari Sureshbabu, Charlie Che

Global Multi-Maturity SPX-VIX Calibration Beyond Markovian Stitching

We develop a global framework for joint S&P 500 (SPX)-VIX smile calibration across multiple maturities without the conditional-independence restriction induced by Markovian stitching. Exact local and global feasibility are equivalent: every globally feasible law has a block-preserving SPX-Markovization that leaves each monthly...

💬 0 commentsarXiv:2609.04087v1PDF
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Posted in q-fin.MF · 2026-09-03 · Han Yanç

Bayesian Confidence Recalibration and Research-Equilibrium Criticality: Temporal Support in Robust Portfolios

Robust portfolio rules that reconstruct confidence sets after learning need not preserve the evaluator obtained by prior-by-prior Bayesian transport. In the Gaussian model, this discrepancy is summarized by natural-coordinate displacement: inherited transport preserves it whereas fresh reconstruction can replace it. We price evaluator...

💬 0 commentsarXiv:2609.03741v1PDF
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Posted in q-fin.PM · 2026-09-03 · Argimiro Arratia, Henryk Gzyl

An Entropic Factor Model for Robust Portfolio Replication

Portfolio replication, or the construction of a tradable basket of assets to match the risk-return profile of a target benchmark, is fundamentally an ill-posed inverse problem. When restricted to a subset of available assets, classical variance-minimizing models often yield unstable, over-leveraged portfolios highly vulnerable to...

💬 0 commentsarXiv:2609.03552v1PDF
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Posted in q-fin.TR · 2026-09-02 · Joseph Leclère, Mathieu Rosenbaum

Mean-field equilibrium of heterogeneous agents under market impact

Although market participants generally have access to a common information set, they make decisions based on forecasts formed over heterogeneous horizons. Because market impact depends on aggregate positions rather than trader identities, these decisions feed back into prices through their collective effect. We introduce a linear...

💬 0 commentsarXiv:2609.03115v1PDF
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Posted in q-fin.GN · 2026-09-02 · Federico Gatta, Manuel Naviglio, Francesco Tarantelli

Tempting the Agent: The Economics of Reputation without Persistent Identity in AI Agent Markets

Reputation is a fundamental mechanism through which markets sustain trust when service quality cannot be perfectly assessed ex ante, constituting a form of intertemporal economic capital by attracting future demand. Its effectiveness as a disciplinary mechanism depends not only on past interactions but also on the persistence of the...

💬 0 commentsarXiv:2609.02992v1PDF
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Posted in q-fin.PM · 2026-09-02 · Giovanni Dispoto, Marcello Restelli, Carmine Ventre

Eliciting ESG Preferences for Reinforcement Learning-Based Portfolio Optimization

Modern portfolio management increasingly demands a balance between traditional risk-adjusted returns and strict Environmental, Social, and Governance (ESG) mandates. Current Reinforcement Learning (RL) approaches typically optimize for a single ESG provider, neglecting the significant divergence in rating methodologies across the...

💬 0 commentsarXiv:2609.02677v1PDF
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Posted in q-fin.ST · 2026-09-02 · Vladimír Holý

Modeling Trade Durations under Temporal Granularity Effects in Forex Markets

Trade durations in high-frequency foreign exchange data exhibit increased occurrence near integer values. To address this empirical phenomenon, we propose the granularity-adjusted autoregressive conditional duration (GA-ACD) model. It is based on a novel two-component mixture distribution consisting of a standard generalized gamma...

💬 0 commentsarXiv:2609.02660v1PDF
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Posted in q-fin.PM · 2026-09-02 · Alejandro Rodriguez Dominguez

Uniform Inference and Certified Capacity at a Reflexive Stability Boundary

This paper develops uniform inference and certified capacity decisions for an estimated financial stability boundary. Conditional risk, temporary cross-impact, and effective risk-bearing capacity are jointly estimated from dependent observations. Conventional pointwise inference is reliable at a separated simple spectral root but can...

💬 0 commentsarXiv:2609.02535v1PDF
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Posted in q-fin.PM · 2026-09-02 · Alejandro Rodriguez Dominguez

Switching Frictions, Heterogeneous Trading Horizons, and Long-Memory Order Flow

This paper develops a mechanism through which costly changes in the representations used for portfolio choice can contribute to persistent signed order flow. Heterogeneous switching thresholds and opportunity volatility generate heterogeneous residence times, and renewal aggregation maps their execution-weighted tail into the decay of...

💬 0 commentsarXiv:2609.02525v1PDF
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Posted in q-fin.TR · 2026-09-02 · Minhyeok Lee

Price manipulation in nonlinear transient impact models: rigidity before memory and complete positivity after memory

Transient impact models compose a nonlinearity with a memory kernel, and the order of composition determines the criterion for absence of price manipulation. We classify both orders. If an arbitrary instantaneous law $f$ acts on the trading rate before any nonzero integrable Volterra kernel, nonnegative cost on every finite...

💬 0 commentsarXiv:2609.02447v1PDF
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Posted in q-fin.CP · 2026-09-02 · Shuyi Zhang, Frédéric Godin

Insights on Time-consistent Deep Hedging under Elicitable Dynamic Risk Measures

We study deep hedging in the context of dynamics risk measures, where sequential decisions are time-consistent. Whereas the literature in such context mainly considers low-dimensional problems with simple environment dynamics, we tackle the high-dimensional problem of basket option hedging; we show that the approach is feasible and...

💬 0 commentsarXiv:2609.02014v1PDF
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Posted in q-fin.TR · 2026-08-31 · Ezra Goliath, Tim Gebbie

Metaorder modelling and identification from public data

Market-order flow in financial markets exhibits long-range correlations. This is a widely known stylised fact of financial markets. A popular hypothesis for this stylised fact comes from the Lillo-Mike-Farmer (LMF) order-splitting theory. However, quantitative tests of this theory have historically relied on proprietary datasets with...

💬 0 commentsarXiv:2608.30999v2PDF
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Posted in q-fin.GN · 2026-08-31 · David Tan

Two Kinds of Nothing: What Insignificant Results in Finance Actually Show

Claims of the form "we find no evidence that X affects Y" appear throughout the applied finance literature, yet whether such a claim contains evidence of absence or absence of evidence depends entirely on its confidence interval. The term "statistically insignificant" is routinely read to mean zero economic effect. However, a more...

💬 0 commentsarXiv:2608.30490v2PDF
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Posted in q-fin.CP · 2026-09-01 · Andrea Molent, Marcellino Gaudenzi

Adaptive singular-point method for pricing and hedging surrenderable equity-linked contracts

We propose a deterministic numerical method for pricing and hedging surrenderable equity-linked life-insurance contracts with periodic premiums and fund contributions, maturity and death guarantees, and Bermudan surrender under correlated stochastic volatility and stochastic interest rates. The main computational challenge is the...

💬 0 commentsarXiv:2609.01323v1PDF
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Posted in q-fin.PM · 2026-09-01 · Jilang Miao, Nonna Sorokina

Harvesting the Variance Risk Premium in Nuclear and Energy Equities: A Short-Put Portfolio Derisking Strategy

We study whether nuclear and energy-adjacent equity options exhibit a harvestable variance risk premium. Using CRSP and OptionMetrics data for 2000-2024, we construct a systematic cash-secured short-put strategy on a curated universe of nuclear-related firms. The strategy compares at-the-money put implied volatility with GARCH-based...

💬 0 commentsarXiv:2609.01183v1PDF
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Posted in q-fin.RM · 2026-09-01 · Demetrio Lacava, Paolo Santucci de Magistris

Illiquidity at Risk

Market efficiency relies fundamentally on stable liquidity. Consequently, forecasting liquidity dynamics is a priority for both investors and regulators. We introduce a new tail-risk metric, Illiquidity-at-Risk (IlliQaR), designed to quantify the magnitude of extreme liquidity dry-ups. Relying upon the realized Amihud (a precise...

💬 0 commentsarXiv:2609.00943v1PDF
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Posted in q-fin.RM · 2026-09-01 · Nils Bundi

Pricing the DeFi Tail: Do Protocols or Depositors Price Operational Risk?

Similar to banks, DeFi protocols expose depositors to operational risk (USD 9.45 billion across 1,075 events since 2020). Unlike banks, they are not required to hold capital against it. A protocol may maintain a buffer voluntarily. Absent one, the risk falls on the depositor, who should then demand a risk premium in the supply yield....

💬 0 commentsarXiv:2609.00911v1PDF
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Posted in q-fin.CP · 2026-08-31 · Chiheb Ben Hammouda, Abderrahmene Ben Romdhane, Michael Samet, Raul F. Tempone

Single- and Multilevel Quadrature with Error Control for Fourier Pricing under the Rough Heston Model

Unlike the classical Heston model, Fourier pricing under the rough Heston model requires solving a fractional Riccati equation at every quadrature point. Since the required resolution varies with model parameters and quadrature point, a single uniform time discretization can be inefficient. We develop single- and multilevel...

💬 0 commentsarXiv:2609.00438v1PDF
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Posted in q-fin.CP · 2026-08-31 · Jing Wang, Shuaiqiang Liu, Cornelis Vuik

Latent-Space No-Arbitrage Geometry of Generative Models for Implied Volatility Surfaces

Generative models for implied volatility surfaces must produce outputs that satisfy static no-arbitrage constraints. We study these constraints in latent space. For a fixed generator, we assign each latent code a scalar margin determined by the no-arbitrage conditions of the generated surface. The codes with nonnegative margin form...

💬 0 commentsarXiv:2609.00332v1PDF
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Posted in q-fin.CP · 2026-08-31 · Fengrui Hua, Hengyi Yang, Xinlei Hao, Haohan Zhang, Bokai Cao, Yiyan Qi, Jia Li, Jian Guo

Agentic Quantitative Trading: A Survey of Workflows, Systems, and Evaluation

Quantitative trading is moving from isolated predictive models toward agentic workflows that combine reasoning, tool use, memory, and feedback. This survey reviews agentic quantitative trading across five stages: factor mining, signal discovery, portfolio construction, order execution, and risk management. We further examine agentic...

💬 0 commentsarXiv:2608.31041v1PDF
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Posted in q-fin.TR · 2026-08-31 · Ezra Goliath, Tim Gebbie

Metaorder modelling and identification from public data

Market-order flow in financial markets exhibits long-range correlations. This is a widely known stylised fact of financial markets. A popular hypothesis for this stylised fact comes from the Lillo-Mike-Farmer (LMF) order-splitting theory. However, quantitative tests of this theory have historically relied on proprietary datasets with...

💬 0 commentsarXiv:2608.30999v1PDF
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Posted in q-fin.CP · 2026-08-31 · Andrea Molent, Michel Vellekoop

Neural Calibration of a Complete Market Model

We propose a neural calibration method to construct a recombining binomial tree directly from a set of given option prices. Rather than estimating a continuous option pricing function or a local volatility surface as an intermediate object, a neural network is used to deform a benchmark lattice. This leads to a discrete pricing model...

💬 0 commentsarXiv:2608.30867v1PDF
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Posted in q-fin.CP · 2026-08-31 · Fang Fang, Xiaoyu Shen, Qinling Wang

Importance Sampling Enhanced with the COS Method for the Portfolio Risk Allocation

We introduce ISCOS, a cross-entropy importance-sampling calibration method for rare credit-portfolio losses. We derive Gaussian and Gaussian--inverse-Gamma proposals and analyse the propagation of finite-COS approximation errors to the fitted parameters. Numerical experiments for Gaussian and Student t-copula credit portfolios show...

💬 0 commentsarXiv:2608.30749v1PDF
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Posted in q-fin.MF · 2026-08-31 · Miklós Rásonyi

A note on markets with semi-static trading strategies

We investigate arbitrage in a discrete-time financial market model where, in addition to finitely many dynamically traded assets, there are also static options to choose from. We introduce the concept of small cones of random variables and present a sufficient condition for the attainable positions in the market to be closed in...

💬 0 commentsarXiv:2608.30558v1PDF
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Posted in q-fin.GN · 2026-08-31 · Hui Gong, Michail Samawi, Francesca Medda

Authority-Inference Separation in Agentic Finance: First-Line Control, Blockchain Enforcement, and Replayable Assurance

AI agents can select tools, counterparties, and transaction parameters, yet inference should not itself confer authority to execute a financial action. This study develops and evaluates Authority-Inference Separation (AIS), an intent-centered architecture for bounded agentic finance. AIS treats a financial action intent as the control...

💬 0 commentsarXiv:2608.30519v1PDF