Economy
Sustained Selling Pressure Sinks NGX Index by 2.03%
By Dipo Olowookere
The Nigerian Exchange (NGX) Limited remained in the red zone by 2.03 per cent on Thursday after investors maintained their profit-taking posture.
The desire to cash out some gains from equities left the local bourse battered at the close of trading activities yesterday, with the financial sector recording the heaviest loss.
The banking space shed 6.63 per cent, the insurance industry went down by 4.13 per cent, the energy counter depreciated by 0.74 per cent, and the consumer goods index slumped by 0.09 per cent.
Though the industrial goods sector appreciated by 0.69 per cent, it could not save the All-Share Index (ASI) from sinking, as it dropped 1,297.99 points to close at 62,748.94 points versus Wednesday’s 64,046.93 points.
In the same vein, the market capitalisation of the domestic stock exchange depleted by N707 billion to settle at N34.167 trillion compared with the preceding session’s N34.874 trillion.
The activity chart was red during the session due to the decline in the trading volume, value and the number of deals by 31.36 per cent, 17.32 per cent, and 25.81 per cent, respectively.
A total of 789.5 million shares worth N10.5 billion exchanged hands in 10,296 deals yesterday compared with the 1.2 billion shares worth N12.7 billion traded in 13,878 deals in the midweek session.
UBA topped the activity chart after transacting 99.0 million stocks valued at N1.3 billion, FBN Holdings transacted exchanged 72.7 million equities worth N1.3 billion, Transcorp traded 68.8 million shares for N280.8 million, FCMB sold 67.9 million shares for N415.9 million, and GTCO traded 51.2 million stocks valued at N1.8 billion.
Investor sentiment was weak on Thursday, as the market breadth index was negative after 57 equities finished on the losers’ chart, and 19 equities ended on the gainers’ table.
Omatek, Wema Bank, Fidelity Bank, Stanbic IBTC, and Transcorp Hotels lost 10.00 per cent each to trade at 54 Kobo, N4.50, N7.11, N61.20, and N35.55 apiece.
On the flip side, John Holt appreciated by 10.00 per cent to quote at N1.65, Dangote Sugar rose by 9.94 per cent to N29.85, NASCON improved by 9.91 per cent to N25.50, SAHCO increased by 9.80 per cent to N13.45, and Golden Guinea Breweries moved up by 9.74 per cent to N2.93.
Economy
Brent Settles at $95, WTI at $93 as Middle East Tensions Ease
By Adedapo Adesanya
The price of the crude oil benchmarks moderated by about 3 per cent on Thursday on investor hopes for an end to the United States-Israeli war with Iran that could reopen the Strait of Hormuz, following a ceasefire deal between Israel and Lebanon.
Brent futures lost $2.78 or 2.84 per cent to trade at $95.03 per barrel, while the US West Texas Intermediate (WTI) crude declined by $2.98 or 3.1 per cent to close at $93.04 per barrel.
Israel and Lebanon said they have agreed to implement a ceasefire on Wednesday, raising hopes for a deal between the US and Iran. Iran has made any agreement conditional in part on an end to fighting between Israel and Hezbollah, an Iran-aligned group in Lebanon. However, Israeli strikes in southern Lebanon continued on Thursday.
Iran signalled that there has been “no tangible progress” in the talks with the Americans on a potential deal, while the Israel-Lebanon ceasefire announced by the United States overnight appears shaky.
“No tangible progress has been achieved in the negotiation process,” Iran’s Foreign Minister Abbas Araghchi was quoted as saying by the semi-official Iranian news agency Tasnim.
The US and Iran have been exchanging messages on a framework proposal for a potential agreement for weeks. The oil market has reacted to each signal or hint of a breakthrough with sell-offs that sent Brent Crude prices to below $100 per barrel last week.
Despite the market hopes, the positions of the two sides appear to remain very distant, and a re-opening of the Strait of Hormuz is not imminent.
Earlier this week, Iran targeted civilian infrastructure in Kuwait and Bahrain, and alarms were raised at US military bases in Saudi Arabia, as Iran responded to the Israeli offensive in Lebanon.
The Republican-led US House of Representatives approved a resolution to block President Donald Trump from continuing the war against Iran. To take effect, the resolution would need Senate approval and a two-thirds majority in both chambers to override an almost certain Trump veto.
The Organisation of the Petroleum Exporting Countries (OPEC) expects robust oil demand growth and is not changing its estimate, according to its Secretary General, Haitham Al Ghais, on Thursday.
Economy
Dangote Refinery Raises Crude Oil Processing Capacity to 700,000bpd
By Adedapo Adesanya
Dangote Petroleum Refinery & Petrochemicals has increased its crude oil processing capacity to 700,000 barrels per day, exceeding its nameplate capacity of 650,000 barrels per day, reinforcing its position as the world’s largest single-train petroleum refinery.
The milestone was achieved during a performance test conducted by the refinery’s process licensors, highlighting the facility’s operational efficiency and ability to process additional feedstock while optimising output across its production units.
Vice President, Oil and Gas, Dangote Industries Limited, Mr Devakumar Edwin, said the increase forms part of a broader expansion strategy aimed at raising the refinery’s capacity to 1.4 million barrels per day within the next 30 months.
According to him, the planned expansion is expected to strengthen Nigeria’s energy security, eliminate dependence on imported refined petroleum products and position the country as a major regional export hub.
Mr Edwin noted that the refinery’s growth trajectory reflects ambitions that extend beyond meeting domestic demand, with a focus on establishing continental and global refining leadership.
The refinery, owned by billionaire Aliko Dangote, began fuel production in 2024 and has since scaled up output of petrol, diesel and jet fuel.
It supplies domestic markets and exports to African countries and Europe, including the United Kingdom, France and the Netherlands, while also shipping products to the United States and Saudi Arabia.
The refinery has also supplied petrol (called gasoline) to the United States and jet fuel to Saudi Arabia, further expanding its global footprint.
Dangote Refinery’s growing output has strengthened its role in stabilising fuel supply across Africa, particularly amid disruptions linked to geopolitical tensions in the Middle East. Industry observers say the facility has increasingly become a key source of energy security for several African nations.
Recall that Dangote Petroleum Refinery emerged as the world’s largest exporter of jet fuel in April, according to S&P Global Commodities.
The refinery has also contributed to reducing Nigeria’s dependence on imported fuel, easing pressure on foreign exchange reserves and supporting broader efforts to maximise value from the country’s crude oil resources.
Growing production levels have attracted interest from global crude suppliers and commodity trading firms, with the refinery sourcing feedstock from both domestic and international producers to sustain rising output.
Looking ahead, Dangote has outlined plans to transform the facility into the world’s largest refinery by 2028, with a targeted processing capacity of 1.4 million barrels per day.
The expansion is expected to generate significant economic benefits through increased industrial activity, job creation, export earnings and improved trade balances.
Beyond fuels, the refinery is also expected to strengthen downstream manufacturing through the supply of liquefied petroleum gas (LPG), polypropylene and other industrial feedstocks used in the production of packaging materials, consumer goods and detergents. Future plans also include the production of Linear Alkylbenzene (LAB), a key raw material in detergent manufacturing.
Economy
Monte Carlo Simulation for Trading Strategy Risk Assessment
Most traders evaluate a strategy by looking at its historical performance.
Common metrics such as total return, win rate, profit factor, maximum drawdown, and Sharpe ratio provide valuable information about how a strategy performed in the past.
The problem is that historical performance tells only one story.
Financial markets are inherently uncertain. Even a strategy with an impressive backtest can experience very different outcomes once it encounters changing market conditions, unexpected volatility, or an unfavorable sequence of trades.
This is why professional traders, quantitative researchers, and portfolio managers increasingly rely on Monte Carlo simulation as part of their risk assessment process.
Rather than focusing on a single historical outcome, Monte Carlo analysis explores thousands of possible scenarios, helping traders understand what could happen—not just what already happened.
Why Historical Performance Is Only Part Of The Picture
Backtesting remains one of the most important tools in strategy development.
Platforms such as MetaTrader 5 provide sophisticated testing environments that allow traders to evaluate Expert Advisors and trading systems using historical market data.
A typical backtest may show:
| Metric | Result |
|---|---|
| Net Profit | 35% |
| Win Rate | 54% |
| Maximum Drawdown | 12% |
At first glance, these numbers appear encouraging.
However, every backtest contains one important limitation:
History occurred only once.
The strategy followed a specific sequence of winning and losing trades. If those same trades had occurred in a different order, the overall experience could have looked very different.
This is where Monte Carlo analysis becomes valuable.
Understanding Sequence Risk
One of the most important concepts in Monte Carlo simulation is sequence risk.
Consider a simple series of trades:
| Trade | Result |
|---|---|
| 1 | +3% |
| 2 | +2% |
| 3 | -1% |
| 4 | +4% |
| 5 | -2% |
The overall result is positive.
However, if those same trades occurred in a different order:
| Trade | Result |
|---|---|
| 1 | -2% |
| 2 | -1% |
| 3 | +2% |
| 4 | +3% |
| 5 | +4% |
the final return may remain similar while the path becomes significantly more difficult.
The trader may experience:
- Larger drawdowns
- Longer recovery periods
- Increased psychological pressure
- Greater capital requirements
The strategy itself has not changed.
Only the sequence has changed.
Monte Carlo simulation explores thousands of these alternative scenarios to estimate how different trade sequences may influence future performance.
Exploring Thousands Of Possible Outcomes
Monte Carlo analysis works by generating large numbers of alternative outcomes based on historical strategy behavior.
A simplified process looks like this:
Historical Trade Results
↓
Randomization
↓
Simulation
↓
Repeat Thousands of Times
↓
Risk Analysis
Each simulation represents a plausible alternative version of history.
By repeating this process thousands of times, traders can estimate:
- Potential drawdowns
- Losing streak probabilities
- Capital requirements
- Performance variability
- Confidence intervals
The objective is not to predict the future.
The objective is to understand uncertainty.
Looking Beyond Average Returns
Many traders focus heavily on expected returns.
Risk professionals often focus on worst-case outcomes.
Consider two strategies:
| Metric | Strategy A | Strategy B |
|---|---|---|
| Average Return | 20% | 20% |
| Historical Drawdown | 10% | 10% |
At first glance, they appear nearly identical.
Monte Carlo analysis may reveal a different story:
| Risk Metric | Strategy A | Strategy B |
|---|---|---|
| Worst Simulated Drawdown | 18% | 35% |
| Probability of 20% Drawdown | 5% | 27% |
Although historical results appear similar, future risk characteristics may differ significantly.
This is one reason why institutional investors rarely rely solely on traditional backtest statistics.
The Reality Of Losing Streaks
One of the most underestimated aspects of trading is the impact of consecutive losses.
Even profitable strategies can experience difficult periods.
For example:
| Consecutive Trades |
|---|
| Loss |
| Loss |
| Loss |
| Loss |
| Loss |
| Loss |
Such sequences are completely normal.
However, they often create emotional pressure and lead traders to abandon otherwise profitable systems.
Monte Carlo analysis helps estimate:
- Expected losing streak lengths
- Worst-case losing streaks
- Probability of extended downturns
- Recovery requirements
Understanding these possibilities allows traders to set more realistic expectations before real capital is exposed.
Position Sizing And Capital Preservation
Position sizing is one of the most important applications of Monte Carlo analysis.
Even profitable strategies can fail if risk per trade is too aggressive.
Monte Carlo simulations help answer questions such as:
- How much capital is required?
- What position size is sustainable?
- What drawdown level is acceptable?
- What is the probability of account depletion?
For example, a strategy may appear relatively safe at 1% risk per trade.
The same strategy may exhibit a significant probability of severe drawdowns when risk increases to 5% per trade.
Understanding these relationships often leads to better risk-management decisions.
Portfolio Risk And Diversification
Monte Carlo simulation is not limited to individual strategies.
Portfolio managers frequently use it to evaluate:
- Multi-strategy portfolios
- Multi-asset portfolios
- Diversification effects
- Correlation risks
A portfolio may appear well diversified based on historical data.
However, asset relationships can change unexpectedly during periods of market stress.
Monte Carlo analysis helps traders evaluate how portfolios may behave under alternative scenarios rather than relying solely on historical observations.
Randomness Plays A Bigger Role Than Most Traders Realize
One of the most important lessons of Monte Carlo analysis is that randomness influences results more than many traders expect.
A profitable strategy can experience:
- Unfavorable timing
- Extended drawdowns
- Long losing streaks
- Temporary underperformance
without any deterioration in the underlying strategy.
Understanding this distinction helps traders separate:
| Normal Statistical Variation | Genuine Strategy Problems |
|---|---|
| Temporary drawdowns | Structural performance decline |
| Random losing streaks | Broken trading logic |
| Short-term underperformance | Changing market assumptions |
This perspective is essential for long-term strategy management.
Monte Carlo As Part Of A Complete Validation Process
Monte Carlo analysis works best when combined with other research methods.
Many professional workflows follow a process similar to:
| Step | Process |
|---|---|
| 1 | Strategy Development |
| 2 | Historical Backtesting |
| 3 | Optimization |
| 4 | Monte Carlo Analysis |
| 5 | Forward Testing |
| 6 | Deployment |
| 7 | Ongoing Monitoring |
The broader MetaTrader ecosystem supports many stages of this workflow through strategy testing, optimization, algorithmic development, and performance analysis tools.
The objective is not simply to find profitable strategies.
The objective is to understand how those strategies may behave when market conditions become less favorable.
Why Professional Firms Use Monte Carlo Analysis
Institutional investment firms focus on risk as much as return.
Their goal is not only to identify profitable opportunities but also to understand:
- Capital requirements
- Worst-case scenarios
- Portfolio resilience
- Survival probabilities
These considerations become increasingly important as capital allocations grow larger.
The same principles can benefit independent traders.
A strategy with slightly lower returns but substantially lower risk may ultimately prove more sustainable over the long term.
Understanding Risk Beyond The Backtest
Historical performance provides valuable information, but it tells only part of the story.
Monte Carlo simulation helps traders explore the uncertainty that exists beyond a single backtest result. By generating thousands of alternative scenarios, the technique provides insight into drawdowns, losing streaks, capital requirements, and portfolio resilience.
As algorithmic trading becomes increasingly sophisticated, risk assessment is becoming just as important as strategy development itself.
The most successful traders are often not those who find the highest returns.
They are those who understand the risks behind those returns and prepare for outcomes that may never appear in a traditional backtest.
In modern quantitative trading, understanding uncertainty can be just as valuable as identifying opportunity.
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