Machine learning detects frog calls in audio recordings with high accuracy.
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New method estimates animal density using acoustic data, accounting for unknown call identities.
Improved solver maintains positivity and accuracy across all time steps.
Deep learning identifies frog species and detects new ones.
Diagonal Frog: High-order positivity-preserving FD schemes for anisotropic Fokker-Planck equations
Feature selection and attribute reduction are crucial problems, and widely used techniques in the field of machine learning, data mining and pattern recognition to overcome the well-known phenomenon of the Curse of Dimensionality, by either selecting a subset of features or removing unrelated ones. This paper presents …
Data poisoning is an attack on machine learning models wherein the attacker adds examples to the training set to manipulate the behavior of the model at test time. This paper explores poisoning attacks on neural nets. The proposed attacks use "clean-labels"; they don't require the attacker to have any control over the …
In this article, a compact finite difference method is proposed for pricing European and American options under jump-diffusion models. Partial integro-differential equation and linear complementary problem governing European and American options respectively are discretized using Crank-Nicolson Leap-Frog scheme. In pro…
Efficient active learning method defends against malicious mislabeling and data poisoning attacks.
This anniversary paper is an occasion to recall some of the events that shaped institutional econophysics. But in these thoughts about the evolution of econophysics in the last 15 years we also express some concerns. Our main worry concerns the relinquishment of the simplicity requirement. Ever since the groundbreaking…
New backdoor attacks in FL can fool models on rare inputs.
Paper studies autoencoder-based anomaly detectors' robustness to adversarial poisoning attacks.
A new perspective on Call option pricing reveals identical prices for certain options.
Predicts customer call intent for auto dealerships using CNN.
Model earnings call transcripts for better stock price prediction.
Extracts credit-relevant information from earnings calls.
Derives a dual equation for various option types, leading to new pricing and hedging insights.
Proposes a model for clearing prices in financial markets due to margin calls.
The paper adjusts stock and strike prices for dividends after maturity in stock call pricing.
Big data from phone calls improves credit scoring models and profits.
The increasing popularity of cell phones has made them the most personal and ubiquitous communication devices nowadays. Typically, the ringing notifications of mobile phones are used to inform the users about the incoming calls. However, the notifications of inappropriate incoming calls sometimes cause interruptions no…
We examine the small expiry behaviour of European call options in stock price models of exponential Lévy type. In most cases of interest, we are able to identify the exact small expiry asymptotics. In "complete generality" we are able to show that the time value of the call option has O(τ) decay as τ(time to expiry) go…
This paper detects anomalies in cellular network traffic using hybrid methods.
This paper is devoted to the application of an -minimisation technique to construct an arbitrage-free call-option surface. We propose a nononparametric approach to obtaining model-free call option surfaces that are perfectly consistent with market quotes and free of static arbitrage. The approach is inspired from…
Improved method reduces projection calls for nonsmooth convex optimization.
Mitigates DeFi liquidations with reversible call options.
We investigate the position of the Buchen-Kelly density in a family of entropy maximising densities which all match European call option prices for a given maturity observed in the market. Using the Legendre transform which links the entropy function and the cumulant generating function, we show that it is both the uni…
In this paper, we investigate the generalization of the Call-Put duality equality obtained in [1] for perpetual American options when the Call-Put payoff is replaced by . It turns out that the duality still holds under monotonicity and concavity assumptions on . The specific analytical form of the …
ClovaCall introduces a new Korean call speech corpus for contact centers.
Study earnings calls to predict stock price movements, finding them more predictive than traditional data.
Paper solves stock loan pricing with finite maturity using integral equations.
In this paper we investigate a nonlinear generalization of the Black-Scholes equation for pricing American style call options in which the volatility term may depend on the underlying asset price and the Gamma of the option. We propose a numerical method for pricing American style call options by means of transformatio…
Improved approximations for call option prices in stochastic volatility models.
Let be an -dimensional umbilic-free hypersurface in the -dimensional Lorentzian space form . Three basic invariants of under the conformal transformation group of are a -form , called conformal -form, a symmetric tensor , called conformal second fun…
It is well known that in models with time-homogeneous local volatility functions and constant interest and dividend rates, the European Put prices are transformed into European Call prices by the simultaneous exchanges of the interest and dividend rates and of the strike and spot price of the underlying. This paper inv…
Given a hyperbolic surface, the set of all closed geodesics whose length is minimal form a graph on the surface, in fact a so-called fat graph, which we call the systolic graph. We study which fat graphs are systolic graphs for some surface (we call these admissible). There is a natural necessary condition on such grap…
MNN improves American call option pricing accuracy.
The study examines how including additional call option prices affects model-independent price bounds for exotic derivatives.
Paper analyzes U.S. broker call rate laws of motion and their implications.
New invariants show stronger virtual knot sets.
Asymptotic expansions for call prices and implied volatilities in exponential Lévy models.
ACI converts call center conversations into actionable data.
The space of call price functions has a natural noncommutative semigroup structure with an involution. A basic example is the Black--Scholes call price surface, from which an interesting inequality for Black--Scholes implied volatility is derived. The binary operation is compatible with the convex order, and therefore …
A statistical decision problem is hidden in the core of option pricing. A simple form for the price C of a European call option is obtained via the minimum Bayes risk, R_B, of a 2-parameter estimation problem, thus justifying calling C Bayes (B-)price. The result provides new insight in option pricing, among others obt…
Study shows physical drift affects put-call parity enforcement, not just option payoffs.
We discuss general notions of metrics and of Finsler structures which we call weak metrics and weak Finsler structures. Any convex domain carries a canonical weak Finsler structure, which we call its tautological weak Finsler structure. We compute distances in the tautological weak Finsler structure of a domain and we …
Algorithm estimates COVID-19 cases from phone calls.
Call Detail Records (CDRs) are data recorded by telecommunications companies, consisting of basic informations related to several dimensions of the calls made through the network: the source, destination, date and time of calls. CDRs data analysis has received much attention in the recent years since it might reveal va…