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Articles 811 - 840 of 9353
Full-Text Articles in Finance and Financial Management
Local Environmental Organizations And Long-Term Investor Value Appropriation, Chune Young Chung, Gia Han Doan, Kainan Wang
Local Environmental Organizations And Long-Term Investor Value Appropriation, Chune Young Chung, Gia Han Doan, Kainan Wang
Finance Faculty Publications
Highlights
- We explore how external and internal firm factors influence the impact of local activism.
- Our results indicate a positive effect of local activism on LIVA.
- Firms tend to increase their environmental disclosures in response to local activism.
- Local activism effects are greater when long-term value is prioritized.
- The findings support the social movement theory.
Abstract
This study uses datasets representing local non-governmental organizations (NGOs) to examine how local environmental organizations enhance long-term investor value appropriation (LIVA). We explore how external and internal firm factors influence the impact of local activism. Our results indicate a positive effect of local activism …
How To Make Everything About Sanctions? Review Of “How Sanctions Work, Iran And The Impact Of Economic Warfare” By Bajoghli, Nasr, Salehi-Isfahani, And Vaez (2024), Siamak Javadi, Alborz Pakravan, Ojan Bahadori, Alireza Akhondi
How To Make Everything About Sanctions? Review Of “How Sanctions Work, Iran And The Impact Of Economic Warfare” By Bajoghli, Nasr, Salehi-Isfahani, And Vaez (2024), Siamak Javadi, Alborz Pakravan, Ojan Bahadori, Alireza Akhondi
Finance Faculty Publications
A 2024 book titled “How Sanctions Work, Iran and the Impact of Economic Warfare” by Narges Bajoghli, Vali Nasr, Djavad Salehi-Isfahani, and Ali Vaez argues that sanctions have had no impact on the behavior of the Islamic Republic in Iran (IR hereafter) and have instead inflicted pain on the ordinary Iranians. While the book does offer a useful description of the evolution of the sanctions against the IR, it fails in its analysis and conclusions.
Impact Of Industrial Park Platforms On Sme Financing: Evidence From The Ld Park, Zhendong Liu
Impact Of Industrial Park Platforms On Sme Financing: Evidence From The Ld Park, Zhendong Liu
Dissertations and Theses Collection (Open Access)
Small and medium-sized enterprises (SMEs) are essential to the Chinese economy. However, when seeking financing, SMEs often face stricter financing conditions and higher financing costs due to information asymmetry in the market, commonly referred to as the problem of “difficult and expensive financing.” This issue severely limits the growth potential of SMEs. This study explores the positive role that industrial parks play as a bridge between banks and SMEs in alleviating the “difficult and expensive financing” problem. The study surveyed 54 industrial parks and collected 268 valid questionnaires from banks, industrial parks, and SMEs. The data analysis yielded the following …
Production Box Cost Estimating Relationships For Dod Avionics, Carla J. Cisneros, Edward D. White, Brandon M. Lucas, Jonathan D. Ritschel, Robert D. Fass, Shawn M. Valentine
Production Box Cost Estimating Relationships For Dod Avionics, Carla J. Cisneros, Edward D. White, Brandon M. Lucas, Jonathan D. Ritschel, Robert D. Fass, Shawn M. Valentine
Faculty Publications
The authors use historical information obtained from the Cost Assessment Data Enterprise to estimate recurring production unit cost for DoD avionics via cost estimating relationships (CERs). The specific modeled responses include mean unit cost, median unit cost, and the 100th production unit cost (T100) utilizing learning curve theory. For T100, the authors adopt both a multiplicative and an additive error for CER comparison. Recommended CERs consist of the mean unit cost and the T100 utilizing a multiplicative error. Moreover, results reveal that weight has a significant effect on cost as well as a potential underaccounting of real price change or …
Anomalies, Option Volume, And Disagreement, Allaudeen Hameed, Byoung-Hyun Jeon
Anomalies, Option Volume, And Disagreement, Allaudeen Hameed, Byoung-Hyun Jeon
Finance Faculty Research and Publications
We document robust amplification of stock market anomaly returns associated with elevated option trading volume driven by disagreement trades. Consistent with the correction of mispricing associated with biased beliefs, anomaly returns are higher when disagreement option volume is high prior to earnings announcements. Additionally, we demonstrate that disagreement-based option volume is negatively related to future stock returns among stocks that are overpriced based on anomaly characteristics. Our findings also concentrate in stocks that are also difficult to short, emphasizing the combined impact of investor bias and shorting costs. Leveraging the staggered adoption of extensible Business Reporting Language, we establish a …
Sequential Investment Decisions For Mining Projects Using Compound Multiple Volatility Real Options Approach, Atul Chandra, Peter R. Hartley
Sequential Investment Decisions For Mining Projects Using Compound Multiple Volatility Real Options Approach, Atul Chandra, Peter R. Hartley
Research outputs 2022 to 2026
Managers evaluating investment decisions in mining projects have reported using the net present value approach (NPV). However, NPV has the drawback of collapsing variations from uncertainties in future project cash flows into a fixed expected project value today. Ignoring future uncertainties and contingencies can lead managers to make incorrect up-front binary decisions, such as investing in or abandoning the project now. The real options analysis approach (ROA) instead captures variations from uncertainties as volatilities in project value and allows flexibility in investment decisions to be contingent on information as it is revealed. Managers we consulted agreed that ROA is superior …
Physical Frictions And Digital Banking Adoption, Hyun Soo Choi, Roger Loh
Physical Frictions And Digital Banking Adoption, Hyun Soo Choi, Roger Loh
Research Collection Lee Kong Chian School Of Business
The behavioral literature suggests that minor frictions can elicit desirable behavior without obvious coercion. Using closures of ATMs in a densely populated city as an instrument for small frictions to physical banking access, we find that customers affected by ATM closures increase their usage of the bank's digital platform. Other spillover effects of this adoption of financial technology include increases in point-of-sale (POS) transactions, electronic funds transfers, automatic bill payments and savings, and a reduction in cash usage. Our results show that minor frictions can help overcome the status-quo bias and facilitate significant behavior change.
Do Women Receive Worse Financial Advice?, Utpal Bhattacharya, Amit Kumar, Sujata Visaria, Jing Zhao
Do Women Receive Worse Financial Advice?, Utpal Bhattacharya, Amit Kumar, Sujata Visaria, Jing Zhao
Research Collection Lee Kong Chian School Of Business
We arranged for trained undercover men and women to pose as potential clients and visit all 65 local financial advisory firms in Hong Kong. At financial planning firms, but not at securities firms, women were more likely than men to receive advice to buy only individual or only local securities. Female clients who signaled high confidence, high risk tolerance, or a domestic outlook were especially likely to receive this suboptimal advice. Our theoretical model explains these patterns as a result of statis-tical discrimination interacting with advisors’ incentives. Taste-based discrimination is unlikely to explain the results.
Temporal Relational Graph Convolutional Network Approach To Financial Performance Prediction, Jeyaraman Brindha Priyadarshini, Bing Tian Dai, Yuan Fang
Temporal Relational Graph Convolutional Network Approach To Financial Performance Prediction, Jeyaraman Brindha Priyadarshini, Bing Tian Dai, Yuan Fang
Research Collection School Of Computing and Information Systems
Accurately predicting financial entity performance remains a challenge due to the dynamic nature of financial markets and vast unstructured textual data. Financial knowledge graphs (FKGs) offer a structured representation for tackling this problem by representing complex financial relationships and concepts. However, constructing a comprehensive and accurate financial knowledge graph that captures the temporal dynamics of financial entities is non-trivial. We introduce FintechKG, a comprehensive financial knowledge graph developed through a three-dimensional information extraction process that incorporates commercial entities and temporal dimensions and uses a financial concept taxonomy that ensures financial domain entity and relationship extraction. We propose a temporal and …
A Garch-Midas Approach To Modelling Stock Returns, Ezekiel N.N. Nortey, Ruben Agbeli, Godwin Debrah, Theophilus Ansah-Narh, Edmund F. Agyemang
A Garch-Midas Approach To Modelling Stock Returns, Ezekiel N.N. Nortey, Ruben Agbeli, Godwin Debrah, Theophilus Ansah-Narh, Edmund F. Agyemang
School of Mathematical & Statistical Sciences Faculty Publications
Measuring stock market volatility and its determinants is critical for stock market participants, as volatility spillover effects affect corporate performance. This study adopted a novel approach to analysing and implementing GARCH-MIDAS modelling methods. The classical GARCH as a benchmark and the univariate GARCH-MIDAS framework are the GARCH family models whose forecasting outcomes are examined. The outcome of GARCH-MIDAS analyses suggests that inflation, interest rate, exchange rate, and oil price are significant determinants of the volatility of the Johannesburg Stock Market All Share Index. While for Nigeria, the volatility reacts significantly to the exchange rate and oil price. Furthermore, inflation, exchange …
Examining Performance Disparities In Palestinian Banks: A Comparative Analysis Of Islamic And Conventional Banks, Ra'fat Al-Jallad, Luai Antari
Examining Performance Disparities In Palestinian Banks: A Comparative Analysis Of Islamic And Conventional Banks, Ra'fat Al-Jallad, Luai Antari
An-Najah University Journal for Research - B (Humanities)
The study investigates the performance differentials between Islamic and conventional banks operating in Palestine across a number of dimensions. Research Problem: The study addresses the lack of comparative analysis between Islamic and conventional banks in Palestine, specifically examining performance disparities using the CAMEL approach. This is critical due to the recent trend of conventional banks acquiring Islamic banks, raising questions about the underlying performance differences. Purpose: The main purpose of this study is to analyze and compare the performance of Islamic and conventional banks in Palestine from 2011 to 2021, focusing on key performance dimensions such as capital adequacy, asset …
College Students’ Financial Literacy At An Eastern Kentucky Regional University, Hannah Barrett, Steve S. Chen, Christy L. Trent
College Students’ Financial Literacy At An Eastern Kentucky Regional University, Hannah Barrett, Steve S. Chen, Christy L. Trent
Atlantic Marketing Journal
Financial literacy is essential knowledge for recent college graduates to be able to manage a stable job, career, and personal wealth. This study examined the financial literacy of 228 college students (49.8% males; 50.2% females) at a regional public university in Eastern Kentucky. The participants were randomly invited to complete a 22-item online financial literacy survey, which was created based on the work of Cude et al. (2006). The survey contents included five demographic questions and 17 five-point Likert scales (1= strongly agree/ always, 5= strongly disagree/ never) to rate participants’ knowledge on investing, saving, budgeting, and credit. The data …
The Impact Of Rising Interest Rates, Bank Deposit Betas, And Credit Risk, Abby Craig, Jarrett Grose, Justin Tersoglio, Noah Vanhoy, Brooke Vivenzio
The Impact Of Rising Interest Rates, Bank Deposit Betas, And Credit Risk, Abby Craig, Jarrett Grose, Justin Tersoglio, Noah Vanhoy, Brooke Vivenzio
James Madison Undergraduate Research Journal (JMURJ)
Inflation of the U.S. dollar drove the Federal Reserve Board to enact four interest rate hikes of 0.75% and additional smaller hikes between March 2022 and April 2023. This paper examines how interest rate hikes affect bank deposit betas and credit risk for community banks, hot money banks, and alternative lending institutions based on data from March 2022 to April 2023. After analyzing data from the Federal Reserve Economic Database, this research found that bank deposit betas increase as interest rates rise, that community banks’ betas increase at a slower rate than hot money banks’ betas, and that the level …
An Analysis Of Drivers Of The Federal Funds Rate, Stephen Johnson, Neha Dixit, Martin Selzer Ph.D.
An Analysis Of Drivers Of The Federal Funds Rate, Stephen Johnson, Neha Dixit, Martin Selzer Ph.D.
SMU Data Science Review
The Federal Funds Rate (FFR) is a tool used by the Federal Reserve to set monetary policy on borrowing costs for consumers and businesses. The Fed’s primary motivation with the FFR is to control macroeconomic factors such as inflation and unemployment. Over time, policy stances for the Fed have varied in response to events such as the Great Recession, and more recently the COVID-19 pandemic. In light of the Fed’s actions following these events, there is intensified debate over which macroeconomic factors should be prioritized, and what magnitude of change is sufficient to warrant action. Additionally, when action is taken …
Pooling And Winsorizing Machine Learning Forecasts To Predict Stock Returns With High-Dimensional Data, Erik Mekelburg, Jack Strauss
Pooling And Winsorizing Machine Learning Forecasts To Predict Stock Returns With High-Dimensional Data, Erik Mekelburg, Jack Strauss
Finance: Faculty Scholarship
We evaluate US market return predictability using a novel data set of several hundred ag- gregated firm-level characteristics. We apply LASSO, Elastic Net, Random Forest, Neural Net, Extreme Gradient Boosting, and Light Gradient Boosting Machine methods and find these models experience large prediction errors that lead to forecast failures. However, winsorizing and pooling machine learning model forecasts provides consistent out-of-sample predictability. To assess robustness, we apply machine learning methods to high-dimensional data for Canada, China, Germany and the UK as well as the Goyal-Welch data. All machine learning models we consider, except for the ensemble pooled methods, fail to significantly …
Notes And Thoughts On Retrieving Historical Members Of The S&P 500 From Wrds, Lip Hwe Tee
Notes And Thoughts On Retrieving Historical Members Of The S&P 500 From Wrds, Lip Hwe Tee
Research Collection Library
Retrieving all historical members or constituents of the S&P 500 can be done using Python coding on the CRSP dataset through an API connection with WRDS (Wharton Research Data Services (WRDS), n.d. -f; WRDS, n.d. -e).
Machine Learning As Arbitrage: Can Economics Help Explain Ai?, Huahao Lu, Matthew Spiegel, Hong Zhang
Machine Learning As Arbitrage: Can Economics Help Explain Ai?, Huahao Lu, Matthew Spiegel, Hong Zhang
Sim Kee Boon Institute for Financial Economics
Machine learning algorithms have shown to be remarkably successful tools for predicting asset returns. However, the underlying economic mechanisms behind their performance remain unclear. This paper proposes a model-based dynamic arbitrage trading strategy that combines economic and statistical nonstationarity to demystify this black box. In predicting stock returns based on 153 firm characteristics (anomalies), our strategy ranks anomalies similarly to neural networks in the cross-section. Overall, it accounts for approximately 87.9 bps monthly alphas of the high-minus-low portfolios selected by neural networks in the time series. When unpublished anomalies and microcap stocks are excluded from trading, this strategy can fully …
The Impact Of Instrumental Attribution In Ai-Enabled Monitoring On Counterproductive Work Behavior, Qiang Zhang
The Impact Of Instrumental Attribution In Ai-Enabled Monitoring On Counterproductive Work Behavior, Qiang Zhang
Dissertations and Theses Collection (Open Access)
AI-enabled monitoring tools are theoretically expected to suppress unethical employee behavior. However, in practice, employees may perceive such monitoring as being driven by leaders' instrumental motives, primarily focused on personal performance evaluation and self-interest. This perception can foster feelings of job insecurity and moral disengagement, ultimately leading to counterproductive work behavior (CWB), which includes unethical employee behavior and turnover. These outcomes may undermine the intended effectiveness of AI-enabled monitoring tools. This study aims to explore the impact of Instrumental Attribution in AIenabled Monitoring (IAAIM) on CWB, specifically focusing on unethical employee behavior and turnover, through both theoretical and empirical lenses. …
Research On The Influence Mechanism Of Value Co-Creation On Enterprise Performance: Empirical Evidence From China's Motorsport Culture Industry, Xiaodong Weng
Dissertations and Theses Collection (Open Access)
We are in an era of digital economy and enterprise change management. The application of digital technologies such as Artificial Intelligence (AI), Blockchain, Cloud Computing, and Big Data (collectively known as ABCD technologies) has increased the competition in the value chain and value network between customers and enterprises. Users can now intervene in product design, transaction, and feedback before, during, and after the process, breaking through the limitations of time and space. They leverage their low-cost advantage to draw attention, shifting from a traditional, unidirectional supply logic to a value co-creation logic. This influences both enterprises and customers to produce …
Cash Holding And Corporate Governance On Company Financial Performance: Case Study Of Construction Infrastructure Project Supporting Industries On The Indonesian Stock Exchange, Mariana Ing Malelak, Zeplin Jiwa Husada Tarigan, Sautma Ronni Basana, Ferry Jie
Cash Holding And Corporate Governance On Company Financial Performance: Case Study Of Construction Infrastructure Project Supporting Industries On The Indonesian Stock Exchange, Mariana Ing Malelak, Zeplin Jiwa Husada Tarigan, Sautma Ronni Basana, Ferry Jie
Research outputs 2022 to 2026
The Indonesian government currently focuses on high infrastructure development to prepare for connectivity between one city and another. The massive construction of the new government capital is also called the archipelago's capital. This condition impacts companies supporting construction projects, which are growing rapidly. This growth is supported by corporate governance and the cash-holding industry, which supports infrastructure projects for the company's financial performance. This research aims to determine the role of cash holding and corporate governance (board skill, independent director, managerial ownership) on the financial performance of infrastructure-supporting manufacturing companies in Indonesia. The sample used in this research was 83 …
Tail Risk Network Analysis Of Asian Banks, Thach N. Pham, Robert Powell, Deepa Bannigidadmath
Tail Risk Network Analysis Of Asian Banks, Thach N. Pham, Robert Powell, Deepa Bannigidadmath
Research outputs 2022 to 2026
This study aims to investigate the tail risk dependence of individual banks in Asian emerging markets. Using value at risk and conditional value at risk to measure tail risk and employing the least absolute shrinkage and selection operator regression to build the network, this study analysed interconnectedness at three levels: system-wide, country level and individual bank level. This study yields three key findings. First, banks in Asian emerging markets have a notably high tail risk network, particularly during more extreme market conditions. Second, the smaller and more interconnected banks are the most systemically important in the region, rather than the …
Advancing Sustainable Investing: A Deep Learning Model For Multi-Source Stock Prediction, Hongxuan Yu, Tingting Zhang, Murat Kizildag
Advancing Sustainable Investing: A Deep Learning Model For Multi-Source Stock Prediction, Hongxuan Yu, Tingting Zhang, Murat Kizildag
Journal of Global Business Insights
The burgeoning role of the stock market within the national economy elevates the importance of precise stock price analysis and prediction, a field that has garnered substantial interest in academic research. Stock price fluctuations, influenced by many factors, including company fundamentals, market sentiment, capital flows, industry news, and macroeconomic policies, present a highly dynamic and complex challenge for predictive modeling. Addressing this challenge, our study introduces an innovative method that capitalizes on the synthesis of news text and stock price data for forecasting market movements. We employ GloVe embeddings to capture semantic nuances from news text and integrate them with …
Millennials’ Perception Towards Adaption And Intention Of M-Banking: Experience From A Developing Country, Noman Hasan, Md. Shahed Mahmud, Abdul Gaffar Khan, Reshma Pervin Lima, Shiblu Miah
Millennials’ Perception Towards Adaption And Intention Of M-Banking: Experience From A Developing Country, Noman Hasan, Md. Shahed Mahmud, Abdul Gaffar Khan, Reshma Pervin Lima, Shiblu Miah
Journal of Global Business Insights
In recent years, m-banking has been developed rapidly around the world. The research aims to measure millennials’ perception towards adaption and intention of m-banking from a developing country’s perspective. A PLS-SEM modeling approach was performed to test the hypothetical model. The empirical results reveal that perceived ease of use, perceived security and privacy, and perceived cost significantly affect the millennials’ attitude to adopt m-banking. In contrast, perceived usefulness and perceived self-efficacy have an insignificant effect. Furthermore, attitude towards adopting m-banking significantly impacts adoption and intention among millennials. Practical and theoretical implications have been identified based on the study results.
Improving Volatility Forecasting: A Study Through Hybrid Deep Learning Methods With Wgan, Adel Hassan A. Gadhi, Shelton Peiris, David E. Allen
Improving Volatility Forecasting: A Study Through Hybrid Deep Learning Methods With Wgan, Adel Hassan A. Gadhi, Shelton Peiris, David E. Allen
Research outputs 2022 to 2026
This paper examines the predictive ability of volatility in time series and investigates the effect of tradition learning methods blending with the Wasserstein generative adversarial network with gradient penalty (WGAN-GP). Using Brent crude oil returns price volatility and environmental temperature for the city of Sydney in Australia, we have shown that the corresponding forecasts have improved when combined with WGAN-GP models (i.e., ANN-(WGAN-GP), LSTM-ANN-(WGAN-GP) and BLSTM-ANN (WGAN-GP)). As a result, we conclude that incorporating with WGAN-GP will’ significantly improve the capabilities of volatility forecasting in standard econometric models and deep learning techniques.
Essays On Corporate Finance, Su Hee Yun
Essays On Corporate Finance, Su Hee Yun
Dissertations and Theses Collection (Open Access)
Chapter 1. The impact of ESG disasters on Green and Brown firms
I investigate the effect of a firm’s prior ESG reputation on the market impact of ESG incidents. I find that firms with a better ESG reputation, i.e., higher ESG ratings, experience less negative stock-market reactions and analysts' forecast revisions compared to firms with a poorer ESG reputation. But managers of Greener firms, when producing earnings guidance, do not forecast a lower impact of these incidents on future earnings. Similarly, actual decreases in future earnings following these incidents are not significantly different between Green and Brown firms. Altogether, the …
The Downstream Impact Of Upstream Tariffs: Evidence From Investment Decisions In Supply Chains, Thorsten Martin, Clemens A. Otto
The Downstream Impact Of Upstream Tariffs: Evidence From Investment Decisions In Supply Chains, Thorsten Martin, Clemens A. Otto
Research Collection Lee Kong Chian School Of Business
We study how US manufacturing firms' investment responds to tariff reductions in supplier industries. Our estimates, based on tariff reductions following multinational trade agreements, suggest that a hypothetical 10% reduction of all upstream tariffs would increase downstream investment by 4% to 6%. This estimate is not explained by decreasing uncertainty and stems from tariff reductions for homogeneous and low-R\&D inputs, consistent with the investment response resulting from cost reductions rather than superior foreign technology embodied in imported inputs. Evidence from an instrumental variable estimation using the sudden increase in Chinese import penetration suggests that import competition also increases downstream investment.
Low/No-Code And Traditional Code Integration In Digital Banking, Kim Siang Yeo, Alan @ Ali Madjelisi Megargel
Low/No-Code And Traditional Code Integration In Digital Banking, Kim Siang Yeo, Alan @ Ali Madjelisi Megargel
Research Collection School Of Computing and Information Systems
This paper seeks to combine the merits of Low/No-Code Programming (LNCP) with Traditional Programming (TP) systems to achieve true “agility” when creating banking infrastructure. While it is easy to fall prey to Shiny Object Syndrome in today’s dynamic and fast-paced banking technology world, it is not easy to pick out the right technology for today and tomorrow’s financial industry. Instead, LNCPs allow us to hedge all bets by equally lowering the technical entry barriers for each technology. The added integration of TP, when needed, also rounds out the faults related to sole LNCP use and provides any bank with a …
Climate Challenges: Central Banks In The Hot Seat – Rethinking Monetary Policy And Educational Activity, Łukasz Kurowski
Climate Challenges: Central Banks In The Hot Seat – Rethinking Monetary Policy And Educational Activity, Łukasz Kurowski
Journal of Banking and Financial Economics
Global warming poses many challenges for all economic entities. The two main challenges facing all countries are climate change mitigation and adaptation. Central banks also face difficult tasks in this context. The difficulty stems from the impact of climate change on all sectors of the economy. Central banking has to deal with the new challenges created by climate change for monetary policy, macroprudential policy, but also climate education. The aim of the article is to verify to what extent climate change is considered in the central bank’s main objective – monetary policy. Therefore, the article examines the frequency with which …
[Abstract For] Using Excel’S “Lambda” Function To Compute Modified Duration, Dollar Duration, And Bond Convexity, Tom Arnold, Joseph Farizo, Andrew C. Szakmary, Nancy Tran
[Abstract For] Using Excel’S “Lambda” Function To Compute Modified Duration, Dollar Duration, And Bond Convexity, Tom Arnold, Joseph Farizo, Andrew C. Szakmary, Nancy Tran
Finance Faculty Publications
We create a modified duration function that is more accessible than Excel’s current Macaulay duration function (=DURATION) which requires several details about the bond.
The dollar duration and convexity functions are not currently available in Excel’s default functions. When these functions are copied to a second Excel file, the functions automatically become available as functions within the second file without the need for recreating the functions.
We provide instructions on how to implement the =LAMBDA function to more than just the creation of the bond application functions.
Defining Value And Measuring Roi For Expatriate International Assignments In Firms That Internationalize As Born-Global Companies, Dale Collins
Electronic Theses and Dissertations
The expatriate international assignment, a time-tested tool for global organizations, is known to be expensive and fraught with risks; defining its value has proven difficult for multinational firms in the twentieth century that internationalized using multi-stage theory. Recently, born-global internationalization theory has gained momentum among emerging firms, notably technology-based firms employing expatriate assignments. This study asks, how do born-global firms define value or benefit when determining return on investment (ROI) for expatriate international assignments? Multi stage theory posits firms first establish domestic markets creating well-developed cultures and sophisticated policies designed to mitigate risk and contain costs prior to internationalizing. Born-global …