# I. INTRODUCTION The Nigeria economy has been on a stable growth over the years after the global financial crisis experienced in the 2000s which spared no country from being affected (Kirikalleli & Onyibor, 2020). The country GDP reached an all-time high of 546.68 billion USD, but decreased to 375.75 billion USD in 2017 (World Bank, 2021), and begin to appreciate to 448.12 billion USD before it was hit by recession in 2020, reversing three years of recovery, as a result of a drop in crude oil prices caused by weak global demand and containment efforts to combat the spread of COVID-19. The country economy was in the process of recovery when the COVID 19 pandemic struck and not only Nigeria economy was disrupted, but the global economy, which according to some studies opined will to some extent has an effect on the financial soundness of some countries (ECB, 2020; Phan & Narayan, 2020). African Development Bank (2021) observed that several economic sectors in Nigeria were affected by the containment measures, and the contraction outweigh demand-driven expansions in certain sectors, such as financial and information and communications technology (ICT) sectors. Meanwhile, the overall real GDP of Nigeria shrunk by 3% in 2020 with inflation rose to 12.8% in 2020 from 11.4% in 2019. At the time Nigeria was struck with COVID-19, the Central Bank of Nigeria lowered the policy rate by 100 basis points to 11.5% to shore up the country's flagging economy (AFDB, 2021). The reflection of pandemic-related spending pressures and revenue shortfalls was observed on the widened of the fiscal deficit which is financed mostly by domestic and foreign borrowing from 4.3% in 2019 to 5.2% in 2020 (AFDB, 2021). As of the second quarter of 2020, Nigeria public debt stood at 85.9 billion which is about 25% of the country GDP and 2.4% higher than that of 2019 (AFDB, 2021). Therefore, Nigeria faces a major financial risk due to its high debt service payments, which are expected to be London Journal of Research in Management and Business over 50% of federally collected revenue. Furthermore, due to a drop in oil revenues and insufficient foreign financial flows, the country's current account status was forecast to remain in deficit at 3.7% of GDP. (AFDB, 2021). With the current challenges in Nigeria, some potential risk include reduced fiscal space, further depletion in foreign reserves which could result in sharp exchange rate depreciation and inflationary pressure, as well as the possibility of a resurgence in COVID-19 cases may escalate these dangers. About the economic challenges in Nigeria which is similar to other emerging countries, Cevik 2011) which adapted the index and found a "spill-over effect" of the financial stress from advanced economies to emerging economies at the time of the global crisis in 2008. The study also demonstrates that in the emerging economies, the increase in the level of foreign reserves, fiscal balances, and the current account would reduce the effect of financial instabilities on the real economies. Moreover, a recent study by Kondoz et al., (2021) confirmed a bi-directional relationship between economic risk and financial risk in Venezuela, while a uni-directional causal relationship moving from economic risk to financial risk was found for Columbia and Peru. In addition, financial risk was found to significantly influence economic risk in Brazil and Argentina (Kondoz et al., 2021) and a feedback causal relationship was found between economic risk and financial risk at various frequencies and periods in China (Kirikkaleli, 2021). Surprisingly, to the best of the author's knowledge, no study has examined the asymmetric association between financial risk and economic risk in Nigeria. Even though the few studies in this aspect on other emerging countries show mixed findings which is an indication that the pathway of the causal relationship between financial development and economic growth is still a moot topic. Meanwhile, Kirikkaleli (2021) opined that the difference in the causality pattern could be as a result of the studies focus on different data sets, regions and periods. Therefore, our study empirically investigates the nature and direction of the relationship between financial risk and economic risks for Nigeria. To the best of the authors' knowledge, this aspect of economic and financial development in Nigeria from the risk viewpoint employing the dataset from the "Political Risk Service (PRS) Group has not been performed in the context of Nigeria, hence this constitutes one of the novelties of this study. Given this, our study aims to provide an in-depth understanding of the literature through the exploration of the nexus between finance and economic within the risk model, specifically for Nigeria to contribute to the literature. (2020) stated that methodologies are critical in producing impartial analysis results and emphasized the importance of employing novel econometric techniques. Failure of current time series-driven results can persuade policymakers to implement efficient policies. The innovative quantile regression methodology was used in this analysis to assess the relationship between economic risk and financial risk in Nigeria. The primary motive for this research is to add to the current literature to assess the economic risk and financial risk nexus by utilizing the innovative quantile regression (QR) technique. The Quantile London Journal of Research in Management and Business regression approach is characterized by its capability to discover the heterogeneous impact of covariates at different quantiles of the outcomes, as well as offers more robust and complete estimates in comparison to the mean regression when the normality assumption violated or the existence of outliers and long tails. As a result, the method appears to transform the quantile of one parameter into another, and the results have the opportunities to resolve questions about the interconnection between economic risk and financial risk at both higher and lower quantiles of time series data. With such a wide scale, this paper explores time-series dependency in Nigeria. We conclude that the findings of our study would provide significant direction for policy decision-making in Nigeria, and can as well be utilized by scholars and macroeconomic policymakers to take efforts by employing more suitable or alternative financial and economic decisions. The remainder of the paper is structured as follows: the review of appropriate studies are presented in Section 2; the description of data, sources and method of estimation was addressed in Section 3; and the result findings were presented in Section; while the study rounded up in Section 5 with the discussion, conclusion, and limitations, as well as the direction for future studies. # II. LITERATURE REVIEW The financial and economic vulnerabilities around the globe, especially the current pandemic have triggered the interest of scholars and policymakers to explore the factors that contribute to these vulnerabilities. Over the years, several theoretical and empirical studies have examined the nexus between financial and economic activities. Meanwhile, the studies in the context are limited, thus the aim of this study is to investigate the possible effect of financial risks on economic risks in Nigeria. The examination of the relationship between economics and finance in the literature revealed three main strands of hypotheses which are: the "finance-led growth", "growth-led finance", as well as the "feedback". Literature suggests that the "finance-led growth" and "growth-led" hypotheses are about the study of Patrick (1966) which are "supply-leading" and "demand-following" correspondingly. According to Kondoz et al., (2021), the "supply-leading" suggests "that development services acts as a catalyst and boosts economic growth". This view corroborates the position of King & Levine (1993) who maintained that an improvement in financial development influences economic growth substantially. Meanwhile, McKinnon (1973) and Shaw (1973) suggested that the opposite position is valid where instability exists within the financial system of a nation, which could lead to a decrease in economic growth and makes the economic stability becomes frozen (Odugbesan & Rjoub, 2020; Adebayo et al. 2021;Odugbesan et al. 2020;Rjoub et al. 2021a;2021b). As for the "demand-following", it suggests that financial activities are inactive and has no causal association with the economic growth process. This position infers that a "well-functioning" financial system is an antecedent of economic growth. Hassan, Sanches, and Yu (2011) posit that the third hypothesis which is "feedback" indicates a bi-directional causal link between financial development and economic growth. Moreover, the study of Goldsmith (1970) theoretically linked the stability of the financial system to macroeconomic soundness and financial structural dynamics. The study according to Eke et al. (2020) observed that in the "theory of institution", some actions and inactions have the capacity to influence politics and hence are instrumental to the success of the financial system. This position was evident in the study of Knoop (2013) who opined that in the context of emerging economies, poorly designed government policies and outrageous government borrowing can be disincentives, such as sabotaging credit information and winnowing financial repressions instead of promoting financial intermediation. Meanwhile, in recent times, rather than the underlying "finance-growth" hypothesis and perceptions, financial risk and economic uncertainty metrics are getting more attention from the researchers, owing to the unfavourable impact of country-based, regional, and global crises. Particularly, the current COVID- However, the asymmetric association between economic growth and financial development from the perspective of risk has not been previously investigated in the context of Nigeria, especially using the risk indices from PRS Group. Therefore, our study aims to apply the quantile regression (QR) technique to explore the nature of the relationship, as well as the direction of the association between financial risk and economic risk in Nigeria to fill the existing gap in the economic and finance literature. # III. METHODS # Data and Variables Using the quarterly data ranging from 1984Q1 to 2018Q4, this research adds to the risk literature by investigating the asymmetric relationship of economic and financial risk in Nigeria. The data of economic risk and financial risk were sourced from the PRS Group, which are expressed in levels. ICRG constructed the economic risk index by employing these components: GDP per Head of GDP, Current Account as a Percentage of GDP, Annual Inflation Rate, Budget Balance as a Percentage and Real GDP Growth. The scale of measuring the economic risk is between 0 (high economic risk level) to 50 (low economic risk level), showing the strengths and weaknesses of the economy. However, the financial risk index London Journal of Research in Management and Business contains the following subdivisions: Foreign Debt as a Percentage of GDP, Foreign Debt Service as a Percentage of Exports of Goods and Services, Current Account as a Percentage of Exports of Goods and Services, Exchange Rate Stability and Net International Liquidity as Months of Import Cover. Just like the economic risk measurement scale, the financial risk is also measured between 0 (high financial risk level) to 50 (low financial risk level), showing the ability of the country to pay its debt commitments. # Methodology To achieve the objective of this study, the flow of analysis to be undertaken in this study was depicted in The linear regression was the first method used in analyzing the interaction between two series but a progression was later developed by Koenker and Bassett (1979) known as the Quantile Regression framework (QRF). However, QAF is not immune from weakness, which is its inability to rightly capture dependence. During estimation, the interaction between two series does not consider the uncertainty at several conditional distribution levels. Sim and Zhou (2015) developed the Quantile on Quantile (QQ) method to solve the weakness of the QAF. Under the QQ method, the quantile of variable A or (B) acts as a function of variable B or (A). It helps to capture the changes in the relationship between the variables at every level of its conditional distribution, giving a representation of the dependence interaction. This allows for a better understanding of the relationship between the studied variables relative to other evaluation approaches (OLS (Ordinary Least Squares model) or Quantile Regression). However, it is based on the Non-Parametric Quantile Regression model which is defined in Equation 1 and 2 as follows: unknown function since the previous information of interconnection between the two series investigated is undisclosed. Given the vital role in managing the smoothness in the estimates, the choice of appropriate bandwidth is essential for a non-parametric analysis. Increased bandwidth shows larger bias strength, while decreased bandwidth means greater estimated variance. To balance the estimated biases and uncertainty, the right choice of bandwidth is crucial, therefore for this study choice of bandwidth was restricted to h=0.05 which is based on Sim and Zhou (2015)'s work. However, this study undertakes the stationarity test by using the Augmented Dickey-Fuller (ADF), Philip Perron (PP), Zivot and Andrews and Lee & Strazicich unit-root test, Furthermore, the study uses the BDS test to ascertain the nonlinearity of the variables employed. ? ? = ? ? ? ? ( ) + µ London Journal of Research in Management and Business IV. # RESULTS AND DISCUSSION # Descriptive Statistics The pattern of the economic risk and financial risk for Nigeria between 1984Q1 and 2018Q4 was depicted in Figure 2 and the summary of the descriptive statistics for financial and economic risk was highlighted in Table 1. For range, the economic risk is from 13.502 to 39.500 while the financial risk is between 21.583 and 49.00. The median and mean for economic risk are 30 and 29.26 respectively while for financial risk are 35.08 and 35.96 respectively. Using the Jarque-Bera and P-value, economic risk and financial risk are not normally distributed around its mean. The outcome of the conventional unit root test was described in Table 2. The unit root test was estimated to determine the stationarity nature of the series using the ADF and PP unit root test, which indicate that financial risk and economic risk are stationary since the null hypothesis is rejected at a 1% level of significance. All series are integrated at I(1). Furthermore, this study also investigated the stationarity nature in the presence of structural breaks by using the Zivot-Andrew (ZA) and Lee & Strazicich (LS) unit-roots. The conventional unit-roots outcomes are inconsistent because of their inability to incorporate structural breaks into the regression process. Table 3 reported the summary of the outcome of the ZA and LS unit-roots. At a 1% level of significance, the null hypothesis was rejected for all series, which displays that all series are stationary at I(1). The BDS test is used to confirm the linearity of the series. # Quantile on Quantile (QQ) regression The influence of financial risk on economic risk was depicted in Fig. 3 at different conditional distribution levels combining the lower and upper quantile of economic risk (0.10-0.90) with the lower and upper quantile of financial risk (0.10-0.90). There is a strong positive effect of financial risk on economic risk is established at lower quantile to medium quantile of financial risk (0.1-0.75) with lower quantile to upper quantile of economic risk (0.1-0.95). But the level of the positive effect of financial risk on economic risk weakens at the upper quantile of financial London Journal of Research in Management and Business risk (0.80-0.95) with lower quantile to the upper quantile of economic risk (0.1-0.95). In conclusion, it is observed that all quantile (either low, medium or high) of financial risk are positively influenced at all quantile (either low, medium or high) but at low and medium quantile the positive influence is stronger. This means that an increase in financial risk will positively affect economic risk in Nigeria. The effect of economic risk on financial risk in Nigeria was depicted in Figure 4. At low quantile (0.1-0.4), the effect of economic risk is negative with low quantile of financial risk (0.1-0.3), indicating that the increase of economic risk reduces financial risk. But in low quantile (0.1-0.5) the effect of economic risk is positive with medium and upper quantiles (0.6-0.95). Moreover, the effect of economic risk at medium to upper quantile (0.5-0.95) on financial risk at low and upper quantile (0.1-0.95) is positive. Therefore, the influence of economic risk on financial risk is positive in Nigeria, which means the increase in economic risk will impact financial risk positively. Furthermore, this outcome indicates that there is a feedback effect between economic risk and financial risk in Nigeria. by World Bank and other international donor organizations to adopt the Structural Adjustment Programme (SAP) in 1986. SAP was designed to address the export generation, especially in the agricultural sector, maintain macroeconomic stability, prevent overvalued exchange rates, reforms and restructuring economic consumption and output trends, restrict price distortions and strong dependence on crude oil exports and minimize the importation of consumer goods. However, SAP was unable to address the rest of these economic problems: such as price stability, economic prosperity, full employment, and balance of payment equilibrium were a mirage as foreign deficits continued to rise and the fiscal deficit grew more than ever. More recently, on 19 February 2015, the Naira was devalued from ?168/$1 to ?199/$1 while the Naira in the parallel market moves from ?196.13/$1 to ?213.2/$1. However, since March 2015, the official rate of the CBN remains fixed at ?197/$1, causing a massive gap and extreme exchange rate instability in the parallel market. However, the inflation rate rose steadily over time to 9.01% in December from 8.1% in February, which continued to rise to the end of 2016 (Federal Republic of Nigeria, 2017). From these findings, we can conclude that financial stability plays a vital role in sustaining a favourable economic situation in Nigeria. Therefore, to achieve economic stability in the country, policymakers need to develop a policy that will reduce the nation's financial uncertainty. # V. CONCLUSIONS With an economic growth rate of approximately 4.63% annually from 1990 to 2018, considering the domestic and global instability in finance during the whole period, along with the lack of empirical evidence for the asymmetric relationship between economic risk and financial risk in Nigeria, which motivates this study to investigate the asymmetric relationship using the novel quantile-on-quantile (QQ) approach. This current study would doubtless open an insightful discussion on the connection between financial and economic growth in China from a risk perspective, by the quarterly dataset for the duration of 1984Q1 until 2018Q4 is used from the PRS Group in this article. Thus, to the authors' understanding, no prior study has examined these associations utilizing the novel quantile-onquantile (QQ) approach. The Q-Q method is distinguished by its capacity to apply the concepts of quantile regression and non-parametric estimation analysis. As a consequence, the approach appears to transform one parameter's quantile into another, and the findings have the potential to respond to questions about the interconnection between economic risk, and financial risk at both lower and higher quantiles of time series data. From the Jarque-Bera and BDS outcome, the series is not normally distributed. The empirical outcome of the Q-Q method shows that: (i) the impact of economic risk on financial risk is positive; (ii) the impact of financial risk on economic risk is positive. This shows that a feedback association between financial risk and economic risk in Nigeria. This outcome is consistent with the findings from the Quantile regression approach as a robustness check. The following policy considerations are derived from this outcome: (i) to reduce financial uncertainty, the Minister of Finance and Central Bank of Nigeria should have a sound economic climate, especially in terms of economic growth, per capita income, inflation, and the current account; and (ii) foreign debt, liquidity, trade, and exchange rates should be regulated, and a steady growth rate should be achieved. However, this research allows for good research findings to be reported, further studies in other developed countries should be carried out. ![Scant studies have been conducted to inform the public about the association between economic risk and financial risk. That being said, the findings are often constrained to traditional scientific methodologies and generalized steps measures (Erbe et al. 1996; Dutta & Roy, 2011; Adebayo et al. (2020); Odugbesan & Adebayo, 2020; Sari et al. 2013; Sridi & Ghardallou, 2019). Recognizing the same concern, Sharif et al.](image-2.png "") ![Fig 1.](image-3.png "") 1![Figure 1: Flow of Analysis](image-4.png "Figure 1 :") ![dependent variables for the equations above are X and Y, indicating that the effect of X (Y) on Y (X) are been investigated in this technique. and represent the qth term of the ?](image-5.png "") 2![Figure 2: Trend of Economic Risk and Financial Risk (1984 -2018)](image-6.png "Figure 2 :") 3![Figure 3: Influence of Financial Risk on Economic Risk](image-7.png "Figure 3 :") 49![Figure 4: Influence of Economic Risk on Financial Risk](image-8.png "Figure 4 : 9 ©") 5![Figure 5: Quantiles of Economic Risk](image-9.png "Figure 5 :") 6![Figure 6: Quantiles of Financial Risk](image-10.png "Figure 6 :") pandemic took the world unaware and is wreakingeconomies and found financial stress to behavoc on global financial and economicsignificant economic activities that causeoperations (Phan and Narayan, 2020; Altig et al.significant economic slowdowns for the sampled2020; Choi, 2020) especially in developingcountries. This finding was corroborated bycountries. Given these, the rise in financial andAboura & Van Roye (2017) who study theeconomic instabilities in most developingsituation in France and conclude that financialcountries lends credence to the significance of thestress causes a significant deterioration ininvestigation of the link between economic andeconomic operation in the country. Meanwhile,financial risks.some recent studies demonstrate a bi-directionalrelationship between economic risk and financialEmpirically, several studies have supported therisk in Venezuela ("finance-led growth" hypothesis (Cournede &Denk, 2015; Creel et al. 2015; Ertugrul et al.,2020; King and Levine, 1993; Levine et al., 2000;McKinnon, 1973). However, the opposing viewwas presented in some studies that rejected the"finance-based growth" hypothesis and opinedthat a sound financial system does not accelerate the economic development in a country (Colombage, 2009; Demetriades & Law, 2006; Drobyazko et al. 2020; Kirikkaleli, 2016; Odhiambo, 2008; Rousseau & Wachtel, 2002). Meanwhile, a uni-directional relationship between economic growth and financial development was demonstrated in the study of Zang & Kim (2007). Moreover, in respect of financial crises, the studies of Furceri and Mourougane (2012) and Olivaud and Turner (2014) have demonstrated a significant impact of vulnerable financial systems on economic stabilities, which is an indication that the vulnerabilities in the financial system should be detected to take regulatory efforts and maintain stability in the economy. Some significant financial risk factors such as foreign reserves, fiscal balances, and low current account were highlighted in the study of Balakrishman et al.London Journal of Research in Management and Business(2011) and opined that the detrimental impact offinancial uncertainties on economic operationscan be ameliorated by putting into considerationseveral indicators of financial risk. The financialstress and economic activities in Turkey wereinvestigated by Cevik et al. (2013) by developingthe "Turkish Financial Stress Index". The studyemployed a bivariate VAR approach and foundthat financial stress has a significant causalrelationship with Turkey economic instability. Asimilar study was undertaken by Cevik et al.(2016) within the context of emerging Asian19 4economic risk and financial risk are not normallydistributed. Using linear methods will report aninaccurate or inconsistent outcome, based on theresults of the Jarque-Bera and BDS test in Tables1 and 4 respectively. Therefore, a non-linearmethod was employed in examining theinteraction between financial risk and economicrisk in Nigeria, which is the novel quantile onquantile (QQ) regression, the innovation of Simand Zhou (2015). According to Sharif et al.(2020),theQQapproachincorporatesnon-parametricandquantileregressionapproachestoidentify the framework'sasymmetric and spatial features over time. reveals the outcomes of the BDS test , which show that 1Economic RiskFinancial RiskMean29.2667235.96250Median30.0000035.08333Maximum39.5000049.00000Minimum13.5020021.58333Std. Dev.6.7353597.765963Skewness-0.2419370.180077Kurtosis1.9302771.931685Jarque-Bera8.0409067.414210Probability0.0179450.024548Observations140140 2Economic riskFinancial riskLevelFirst DifferenceLevelFirst DifferenceADF-3.2527-9.6096*-1.9014-11.2977*PP-3.0010-9.4522*-1.9731-11.3190** denotes 1% level of significance. 3Zivot-Andrews unit-root testLevelFirst DifferenceVariablesDecisionT-statisticBreak-YearT-statisticBreak-DateEconomic riskK &T-4.87791997Q3-9.8266*1995Q2I(1)Financial risk-4.09682009Q4-5.8514*2000Q2I(1)Lee & Strazicich unit-root testLevelFirst DifferenceT-statisticBreak-YearsT-statisticBreak-YearsEconomic risk-4.54501997Q1 2009Q3-9.7545*1987Q2 1995Q3I(1)K &TFinancial risk-4.98571997Q4 2014Q3-11.1100*1947Q2 1995Q1I(1)Note:* portray 1% level of significance 4VariablesM2ProbM3ProbM4ProbM5ProbM6ProbEconomic33.06220.00034.52370.000036.41100.00039.05010.000042.67830.000riskFinancial41.03140.00043.30140.00046.00440.00050.14200.000055.56840.000risk Volume 23 | Issue 1 | Compilation 1.0 © 2023 London Journals Press Analysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach Volume 23 | Issue 1 | Compilation 1.0 © 2023 London Journals Press Analysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach © 2023 London Journals PressAnalysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach Volume 23 | Issue 1 | Compilation 1.0 © 2023 London Journals Press Analysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach Volume 23 | Issue 1 | Compilation 1.0 © 2023 London Journals Press Analysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach Volume 23 | Issue 1 | Compilation 1.0 © 2023 London Journals Press Analysis of Asymmetric Linkage Between Financial Risk and Economic Risk in Nigeria: Application of Quantile Regression Approach * Financial stress and economic dynamics: The case of France SAboura BVan Roye International Economics 149 2017 * Sustainability of Energy-Induced Growth Nexus in Brazil: Do Carbon Emissions and Urbanization Matter? 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