International Conference on

Quantitative Economics and Statistical Modeling (ICQESM-27)

28th – 29th Jan 2027 | Lima, Peru | Hybrid Mode
Proudly organized by the : Institute for Global Academic Excellence (IGAE)

Conference Session Tracks

SDG Wheel

Aligned with

UN Sustainable Development Goals

This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.

SDG 4
SDG 4 Quality Education
SDG 8
SDG 8 Decent Work and Economic Growth
SDG 9
SDG 9 Industry, Innovation and Infrastructure
SDG 10
SDG 10 Reduced Inequalities
SDG 11
SDG 11 Sustainable Cities and Communities
SDG 12
SDG 12 Responsible Consumption and Production
SDG 13
SDG 13 Climate Action
SDG 16
SDG 16 Peace, Justice and Strong Institutions
SDG 17
SDG 17 Partnerships for the Goals
Track 01

Advanced Econometric Techniques

This track explores innovative econometric methodologies that enhance the analysis of economic data. Topics include model selection, estimation techniques, and robustness in econometric modeling.

Track 02

Statistical Modeling in Finance

This session focuses on the application of statistical models in financial contexts, including risk assessment and asset pricing. Participants will discuss contemporary challenges and solutions in financial modeling.

Track 03

Machine Learning Applications in Data Science

This track examines the integration of machine learning techniques within data science frameworks. Emphasis will be placed on practical applications and case studies across various industries.

Track 04

Time Series Analysis and Forecasting

This session delves into methodologies for analyzing time-dependent data and generating forecasts. Participants will explore both traditional and modern approaches to time series modeling.

Track 05

Causal Inference and Experimental Design

This track addresses the principles and techniques of causal inference in statistical research. Discussions will include experimental design, observational studies, and the challenges of establishing causality.

Track 06

Big Data Analytics and Computational Methods

This session focuses on the challenges and techniques associated with analyzing large datasets. Topics include computational algorithms, data processing, and the implications of big data in statistical analysis.

Track 07

Regression Analysis: Theory and Applications

This track covers both the theoretical foundations and practical applications of regression analysis. Participants will engage in discussions on model diagnostics, variable selection, and interpretation of results.

Track 08

Predictive Analytics in Business and Economics

This session highlights the role of predictive analytics in decision-making processes within business and economic contexts. Case studies will illustrate the impact of predictive models on strategic planning.

Track 09

Panel Data Econometrics

This track focuses on the analysis of panel data, emphasizing techniques that account for both cross-sectional and time-series variations. Discussions will include fixed effects, random effects, and dynamic panel models.

Track 10

Optimization Techniques in Statistical Modeling

This session explores optimization methods used in statistical modeling to improve model performance. Topics will include parameter estimation, model fitting, and the role of optimization in statistical inference.

Track 11

Simulation Methods in Statistics

This track examines the use of simulation techniques in statistical analysis and model validation. Participants will discuss Monte Carlo methods, bootstrapping, and their applications in various fields.

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