We study the optimal placement problem of a stock trader who wishes to clear his/her inventory by a predetermined time horizon t, by using a limit order or a market order. For a diffusive market, we characterize the optimal limit order placement policy and analyze its behavior under different market conditions. In part…
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Optimal stock trading strategy with market orders and limit orders in a risky market.
To execute a trade, participants in electronic equity markets may choose to submit limit orders or market orders across various exchanges where a stock is traded. This decision is influenced by the characteristics of the order flow and queue sizes in each limit order book, as well as the structure of transaction fees a…
We identify and analyze statistical regularities and irregularities in the recent order flow of different NASDAQ stocks, focusing on the positions where orders are placed in the orderbook. This includes limit orders being placed outside of the spread, inside the spread and (effective) market orders. We find that limit …
Study analyzes order transitions in high, medium, and low market cap stocks using Markov chains.
Modeling aggressive market order arrivals using Hawkes factor models.
Using ultra-high-frequency data extracted from the order flows of 23 stocks traded on the Shenzhen Stock Exchange, we study the empirical regularities of order placement in the opening call auction, cool period and continuous auction. The distributions of relative logarithmic prices against reference prices in the thre…
Explains financial market simulation mechanisms and agent behaviors.
We briefly review data analysis of the Island order book, part of NASDAQ, which suggests a framework to which all limit order markets should comply. Using a simple exclusion particle model, we argue that short-time price over-diffusion in limit order markets is due to the non-equilibrium of order placement, cancellatio…
We study the relaxation dynamics of the bid-ask spread and of the midprice after a sudden, large variation of the spread, corresponding to a temporary crisis of liquidity in a double auction financial market. We find that the spread decays very slowly to its normal value as a consequence of the strategic limit order pl…
The study compares how deletions and trades affect stock prices and spread changes.
Adaptive market-making strategy improves profit by adjusting to order flow.
This paper is split in three parts: first we use labelled trade data to exhibit how market participants accept or not transactions via limit orders as a function of liquidity imbalance; then we develop a theoretical stochastic control framework to provide details on how one can exploit his knowledge on liquidity imbala…
Study on heavy tails in closing auction returns, explaining imbalance through limit order submission.
Study uses DNM theory to detect early warning signals of market instability.
We show that the statistics of spreads in real order books is characterized by an intrinsic asymmetry due to discreteness effects for even or odd values of the spread. An analysis of data from the NYSE order book points out that traders' strategies contribute to this asymmetry. We also investigate this phenomenon in th…
Trains a neural network to predict high-frequency trading outcomes.
We develop an empirical behavioural order-driven (EBOD) model, which consists of an order placement process and an order cancellation process. Price limit rules are introduced in the definition of relative price. The order placement process is determined by several empirical regularities: the long memory in order direc…
Optimizes trade execution with reinforcement learning for limit orders.
RL framework optimizes trading costs in noisy markets.
Paper proposes a COP model for Algo trading using LQR.
In this chapter we review some recent results on the dynamics of price formation in financial markets and its relations with the efficient market hypothesis. Specifically, we present the limit order book mechanism for markets and we introduce the concepts of market impact and order flow, presenting their recently disco…
This work models market regimes using CTMSTOU and simulates trading policies.
We propose a parametric model for the simulation of limit order books. We assume that limit orders, market orders and cancellations are submitted according to point processes with state-dependent intensities. We propose new functional forms for these intensities, as well as new models for the placement of limit orders …
RL agents optimize order execution in a realistic market simulation.
Investigates optimal strategies for market makers using internal liquidity.
Optimal market making strategy with price forecasts reduces inventory costs and spreads.
Project forecasts liquidity withdrawal using machine learning models.
Real-time detection of spoofing in cryptocurrency exchanges using neural networks.
We study the cause of large fluctuations in prices in the London Stock Exchange. This is done at the microscopic level of individual events, where an event is the placement or cancellation of an order to buy or sell. We show that price fluctuations caused by individual market orders are essentially independent of the v…
New approach uses secants to improve sensor placement and feature selection for nonlinear systems.
Study analyzes market equilibrium returns with price impact and transaction costs.
Paper proposes efficient UAV placement for aerial base stations.
Optimal bidding strategy for multi-platform ad auctions under budget constraints.
Standard models in economics stress the role of intelligent agents who maximize utility. However, there may be situations where, for some purposes, constraints imposed by market institutions dominate intelligent agent behavior. We use data from the London Stock Exchange to test a simple model in which zero intelligence…
Study shows how wealth distribution leads to volatility clustering in speculative markets.
We introduce a fully probabilistic framework of consumer product choice based on quality assessment. It allows us to capture many aspects of marketing such as partial information asymmetry, quality differentiation, and product placement in a supermarket.
A new model approximates complex functions in parameter space.
Although behavioral economics has demonstrated that there are many situations where rational choice is a poor empirical model, it has so far failed to provide quantitative models of economic problems such as price formation. We make a step in this direction by developing empirical models that capture behavioral regular…
We propose a limit order book (LOB) model with dynamics that account for both the impact of the most recent order and the shape of the LOB. We present an empirical analysis showing that the type of the last order significantly alters the submission rate of immediate future orders, even after accounting for the state of…
Placeto learns efficient device placements for any neural network graph.
Model shows liquidity stress crossover in market dynamics.
Study designs neural networks for fault localization, state estimation, and optimal PMU placement in power systems.
PLoP optimizes LoRA placement for efficient large model finetuning.
Market events such as order placement and order cancellation are examples of the complex and substantial flow of data that surrounds a modern financial engineer. New mathematical techniques, developed to describe the interactions of complex oscillatory systems (known as the theory of rough paths) provides new tools for…
ConvGNP improves sensor placement for climate monitoring.
A new first-order sampler improves diffusion probabilistic model sampling quality.
I consider the problem of the optimal limit order price of a financial asset in the framework of the maximization of the utility function of the investor. The analytical solution of the problem gives insight on the origin of the recently empirically observed power law distribution of limit order prices. In the framewor…