CAT 2025 Slot 1 VARC Question 13

Multiple choice (+3 / −1) · Reading Comprehension · Science · Try it, then check the answer and solution below.

Reading Comprehension Passage•~540 words
Understanding the key properties of complex systems can help us clarify and deal with many new and existing global challenges, from pandemics to poverty . . . A recent study in Nature Physics found transitions to orderly states such as schooling in fish (all fish swimming in the same direction), can be caused, paradoxically, by randomness, or ‘noise’ feeding back on itself. That is, a misalignment among the fish causes further misalignment, eventually inducing a transition to schooling. Most of us wouldn’t guess that noise can produce predictable behaviour. The result invites us to consider how technology such as contact-tracing apps, although informing us locally, might negatively impact our collective movement. If each of us changes our behaviour to avoid the infected, we might generate a collective pattern we had aimed to avoid: higher levels of interaction between the infected and susceptible, or high levels of interaction among the asymptomatic.
Complex systems also suffer from a special vulnerability to events that don’t follow a normal distribution or ‘bell curve’. When events are distributed normally, most outcomes are familiar and don’t seem particularly striking. Height is a good example: it’s pretty unusual for a man to be over 7 feet tall; most adults are between 5 and 6 feet, and there is no known person over 9 feet tall. But in collective settings where contagion shapes behaviour – a run on the banks, a scramble to buy toilet paper – the probability distributions for possible events are often heavy-tailed. There is a much higher probability of extreme events, such as a stock market crash or a massive surge in infections. These events are still unlikely, but they occur more frequently and are larger than would be expected under normal distributions.
What’s more, once a rare but hugely significant ‘tail’ event takes place, this raises the probability of further tail events. We might call them second-order tail events; they include stock market gyrations after a big fall and earthquake aftershocks. The initial probability of second-order tail events is so tiny it’s almost impossible to calculate – but once a first-order tail event occurs, the rules change, and the probability of a second-order tail event increases.
The dynamics of tail events are complicated by the fact that they result from cascades of other unlikely events. When COVID-19 first struck, the stock market suffered stunning losses followed by an equally stunning recovery. Some of these dynamics are potentially attributable to former sports bettors, with no sports to bet on, entering the market as speculators rather than investors. The arrival of these new players might have increased inefficiencies and allowed savvy long-term investors to gain an edge over bettors with different goals. . . .
One reason a first-order tail event can induce further tail events is that it changes the perceived costs of our actions and changes the rules that we play by. This game-change is an example of another key complex systems concept: nonstationarity. A second, canonical example of nonstationarity is adaptation, as illustrated by the arms race involved in the coevolution of hosts and parasites [in which] each has to ‘run’ faster, just to keep up with the novel solutions the other one presents as they battle it out in evolutionary time.
Which one of the options below best summarises the passage?
Answer and solution

Answer: D) The passage explains how noise can create order, then shows why complex systems with contagion are vulnerable to heavy-tailed cascades. It also explains why early shocks change rules through nonstationarity with a market illustration during the COVID-19 disruption.

📌 1. Passage Context & Central Idea
The passage discusses the properties of complex systems and their implications for global challenges like pandemics and poverty. It highlights how randomness (noise) can lead to orderly behavior, the vulnerability of complex systems to rare but significant events (heavy-tailed distributions), and the concept of nonstationarity, where initial shocks change the rules and increase the likelihood of further disruptions. The central argument is that understanding these dynamics is crucial for addressing global challenges effectively.
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2. Question Stem Analysis
The question asks for the option that best summarizes the passage. The focus is on identifying the main ideas and connecting them to the passage's structure and examples.
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⚡ 3. Option-by-Option Elimination
Option A
Claim: The passage explains how social outcomes generally follow normal distributions, making extreme events negligible, and suggests stabilizing averages rather than learning from large shocks.
Analysis: This is incorrect because the passage explicitly argues the opposite. It emphasizes that complex systems are vulnerable to rare, extreme events (heavy-tailed distributions), which occur more frequently than expected under normal distributions. The idea of "stabilizing averages" is not supported by the passage.
Trap: Misrepresents the passage's argument about normal vs. heavy-tailed distributions.
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Option B
Claim: The passage explains how speculative entrants always produce inefficiency after health shocks, and long-term investors invariably profit when new participants push prices away from fundamentals during crises like pandemics.
Analysis: While the passage mentions the entry of new speculators (e.g., former sports bettors) into markets during the COVID-19 pandemic and how this might have created inefficiencies, it does not state that this is a universal or always true outcome. The word "always" makes this option too extreme and not fully aligned with the passage's broader focus on complex systems.
Trap: Overgeneralizes and focuses on a specific example rather than the passage's main ideas.
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Option C
Claim: The passage explains how nonstationarity works in evolutionary biology and rejects its applications in markets or public health because adaptation is exclusive to parasite-host systems and cannot arise in technology-mediated social dynamics.
Analysis: This is incorrect because the passage explicitly applies the concept of nonstationarity to markets (e.g., the COVID-19 pandemic's impact on stock markets) and public health. The idea that adaptation is exclusive to parasite-host systems is contradicted by the passage, which discusses nonstationarity in broader contexts.
Trap: Misrepresents the scope and application of nonstationarity.
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Option D
Claim: The passage explains how noise can create order, shows why complex systems with contagion are vulnerable to heavy-tailed cascades, and explains why early shocks change rules through nonstationarity, with a market illustration during the COVID-19 disruption.
Analysis: This option accurately captures the main ideas of the passage. It references the role of noise in creating order (e.g., schooling in fish and the unintended consequences of contact-tracing apps), the vulnerability of complex systems to heavy-tailed events (e.g., stock market crashes and infection surges), and the concept of nonstationarity (e.g., the COVID-19 pandemic's impact on markets and the entry of new speculators). The market illustration during COVID-19 is also consistent with the passage.
Correct: This option aligns perfectly with the passage's structure and key arguments.
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🎯 4. Final Answer Confirmation
The correct answer is Option D, as it best summarizes the passage's main ideas and connects them to the examples and concepts discussed.
Correct Answer: D

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