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Results for “convertibles” · papers 16 · wiki 1
Academic Papers · 16arXiv q-fin live 16 · desk corpus 2
arXiv · arXiv q-fin · 2026

When ratios fall: A dynamic approach to contingent convertibles

We propose a novel valuation framework for contingent convertible (CoCo) bonds based on the issuing bank's Common Equity Tier 1 (CET1) ratio, which is widely acknowledged as an indicator of a bank's solvency. Our approach develops a bivariate jump-diffusion model that captures the dynamic relationship linking the CET1 ratios, share prices, and CoCo bond prices, incorporating both continuous market movements and corre

Li Chen, Liang Wang, Weixuan Xia
arXiv · arXiv q-fin · 2019

151 Estrategias de Trading (151 Trading Strategies)

This book, which is in Spanish, provides detailed descriptions, including over 550 mathematical formulas, for over 150 trading strategies across a host of asset classes (and trading styles). This includes stocks, options, fixed income, futures, ETFs, indexes, commodities, foreign exchange, convertibles, structured assets, volatility (as an asset class), real estate, distressed assets, cash, cryptocurrencies, miscella

Zura Kakushadze, Juan Andrés Serur
arXiv · arXiv q-fin · 2025

Bootstrapping Liquidity in BTC-Denominated Prediction Markets

Prediction markets have gained adoption as on-chain mechanisms for aggregating information, with platforms such as Polymarket demonstrating demand for stablecoin-denominated markets. However, denominating in non-interest-bearing stablecoins introduces inefficiencies: participants face opportunity costs relative to the fiat risk-free rate, and Bitcoin holders in particular lose exposure to BTC appreciation when conver

Fedor Shabashev
arXiv · arXiv q-fin · 2021

A Game Theoretic Analysis of Liquidity Events in Convertible Instruments

Convertible instruments are contracts, used in venture financing, which give investors the right to receive shares in the venture in certain circumstances. In liquidity events, investors may have the option to either receive back their principal investment, or to receive a proportional payment after conversion of the contract to a shareholding. In each case, the value of the payment may depend on the choices made by

Ron van der Meyden
arXiv · arXiv q-fin · 2021

Callable convertible bonds under liquidity constraints and hybrid priorities

This paper investigates the callable convertible bond problem in the presence of a liquidity constraint modelled by Poisson signals. We assume that neither the bondholder nor the firm has absolute priority when they stop the game simultaneously, but instead, a proportion $m\in[0,1]$ of the bond is converted to the firm's stock and the rest is called by the firm. The paper thus generalizes the special case studied in

David Hobson, Gechun Liang, Edward Wang
arXiv · arXiv q-fin · 2026

CAST: A Cross-Asset State-Space Trading System for Drawdown Control in Stock Markets

Managing drawdown, the peak-to-trough decline in an investment portfolio's value, is a precondition for long-term survival in practical investment management. However, mainstream stock forecasting methods predominantly optimize returns or Sharpe ratios under the independent and identically distributed (i.i.d.) assumption. Real markets do not follow this assumption, triggering catastrophic drawdowns. We propose a cros

Yu Peng, Matloob Khushi, Josiah Poon
arXiv · arXiv q-fin · 2026

Hierarchical Graph Learning for Calendar Spread Strategies in Commodity Futures Markets

Commodity futures can be represented hierarchically, with underlying assets at the upper level and individual futures contracts at the lower level. Entities at each level can be connected by edges reflecting inherent correlations, with cross-level edges capturing contract-to-underlying asset connections. Building on our observations of these structures, we propose a hierarchical graph learning approach for calendar s

Yoonsik Hong, Diego Klabjan
arXiv · arXiv q-fin · 2026

Machine Learning-Based Bitcoin Trading Under Transaction Costs: Evidence From Walk-Forward Forecasting

This paper investigates whether machine learning forecasts of hourly BTC-USDT returns can be converted into economically meaningful trading performance after transaction costs. Using approximately 70,000 hourly observations from 2018-2026, XGBoost, LSTM, and iTransformer are evaluated in a 27-fold walk-forward protocol. All three models produce positive gross trading performance in selected configurations, but naive

Andrei Bysik, Robert Ślepaczuk
arXiv · arXiv q-fin · 2025

Market-Based Variance of Market Portfolio and of Entire Market

We present the unified market-based description of returns and variances of the trades with shares of a particular security, of the trades with shares of all securities in the market, and of the trades with the market portfolio. We consider the investor who doesn't trade the shares of his portfolio he collected at time t0 in the past. The investor observes the time series of the current trades with all securities mad

Victor Olkhov
arXiv · arXiv q-fin · 2024

Portfolio optimisation: bridging the gap between theory and practice

Portfolio optimisation is essential in quantitative investing, but its implementation faces several practical difficulties. One particular challenge is converting optimal portfolio weights into real-life trades in the presence of realistic features, such as transaction costs and integral lots. This is especially important in automated trading, where the entire process happens without human intervention. Several works

Cristiano Arbex Valle
arXiv · arXiv q-fin · 2022

Neural Augmented Kalman Filtering with Bollinger Bands for Pairs Trading

Pairs trading is a family of trading techniques that determine their policies based on monitoring the relationships between pairs of assets. A common pairs trading approach relies on describing the pair-wise relationship as a linear Space State (SS) model with Gaussian noise. This representation facilitates extracting financial indicators with low complexity and latency using a Kalman Filter (KF), that are then proce

Amit Milstein, Haoran Deng, Guy Revach, Hai Morgenstern, Nir Shlezinger
arXiv · arXiv q-fin · 2020

Principal Component Analysis and Factor Analysis for Feature Selection in Credit Rating

The credit rating is an evaluation of a company's credit risk that values the ability to pay back the debt and predict the likelihood of the debtor defaulting. There are various features influencing credit rating. Therefore, it is essential to select substantive features to explore the main reason for credit rating change. To address this issue, this paper exploited Principal Component Analysis and Factor Analysis as

Shenghuan Yang, lonut Florescu, Md Tariqul Islam
arXiv · arXiv q-fin · 2016

How much market making does a market need?

We consider a simple model for the evolution of a limit order book in which limit orders of unit size arrive according to independent Poisson processes. The frequencies of buy limit orders below a given price level, respectively sell limit orders above a given level are described by fixed demand and supply functions. Buy (resp. sell) limit orders that arrive above (resp. below) the current ask (resp. bid) price are c

Vít Peržina, Jan M. Swart
arXiv · arXiv q-fin · 2014

Dynamical Models of Stock Prices Based on Technical Trading Rules Part I: The Models

In this paper we use fuzzy systems theory to convert the technical trading rules commonly used by stock practitioners into excess demand functions which are then used to drive the price dynamics. The technical trading rules are recorded in natural languages where fuzzy words and vague expressions abound. In Part I of this paper, we will show the details of how to transform the technical trading heuristics into nonlin

Li-Xin Wang
arXiv · arXiv q-fin · 2012

Binomial Tree Model for Convertible Bond Pricing within Equity to Credit Risk Framework

In the present paper we fill an essential gap in the Convertible Bonds pricing world by deriving a Binary Tree based model for valuation subject to credit risk. This model belongs to the framework known as Equity to Credit Risk. We show that this model converges in continuous time to the model developed by Ayache, Forsyth and Vetzal [2003]. To this end, both forms of credit risk modeling, the so-called reduced (const

K. Milanov, O. Kounchev
arXiv · arXiv q-fin · 2012

On statistical indistinguishability of the complete and incomplete markets

The possibility of statistical evaluation of the market completeness and incompleteness is investigated for continuous time diffusion stock market models. It is known that the market completeness is not a robust property: small random deviations of the coefficients convert a complete market model into a incomplete one. The paper shows that market incompleteness is also non-robust: small deviations can convert an inco

Nikolai Dokuchaev
Wiki Entities · 1
Option Blackboard · 0
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Encyclopedia · 1
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