PrepTest 124
Passage
Passage walkthrough
Topic: Science
Paragraph 1
- Paragraph note
- A generalization and an example
- Views, minor Meta-Structures, and the author's attitude
- Generalization - Sometimes, best pest control is using a predator
- Example - Cyclamen (Cyc) (pest)/Typhlodromus (Typh) (predator mite)
- Usual cycle - Cyc infest, get out of control year 2, Typh move in and control them
Paragraph 2
- Paragraph note
- Features of Typh that make them work
- Views, minor Meta-Structures, and the author's attitude
- Hungry
- Reproduction - method and rate (Similar to Cyc)
- Seasonal and population densities
- Reproduce only when there’s cyc
- Similar - Other predators that can control prey
Paragraph 3
- Paragraph note
- Study - Typh works
- Views, minor Meta-Structures, and the author's attitude
- Study - Greenhouse experiments - Strawberries (one with both, one with just Cyc and insecticide)
- Results - Just Cyc = out of control; Both = Cyc under control
Paragraph 4
- Paragraph note
- Study backed up in real world
- Views, minor Meta-Structures, and the author's attitude
- In study, insecticide more harm than good
- Real-world studies show same thing
- Average - Cyc population 25x with no predators
Main Point: In some cases, the most effective means of controlling an agricultural pest is by using its predator, as is exemplified by the Cyclamen/Typhlodromus relationship.
Key Lines?Lines 1-3 - A generalization is presented
Lines 4-6 - A specific example is noted
Lines 15-16 - List of factors owing to effectiveness introduced
Lines 33-37 - Features generalized to other predators
Lines 37-40 - Studies verify generalization
Lines 52-54 - Studies backed up in real world
Meta-Structure?Generalization/Example - This question is one of the best examples (pun intended) of the Generalization/Example Meta-Structures in the history of the exam. It starts out by making a very general - yet strong - statement about a particularly effective means of controlling a pest population. It then goes into “[a] case in point” that it spends the rest of the passage exploring. When this Meta-Structure is present, the main point is the generalization, and the correct answer to any main point question will generally reference the example, as well - though it sometimes doesn’t.
List - Paragraph 2 is a list of “several factors” that explain why Typh is such an effective predator and can keep Cyc in check. That paragraph even generalizes from Typh to other predators in the last sentence (Lines 33-37), which reinforces the Generalization/Example Meta-Structure above.
Similarities - Paragraph 2 has a lot of comparisons in its list of factors. There are similarities between Typh and Cyc that makes Typh such an effective predator, and similarities between Typh and other predators that show a pattern to what makes for an effective predator.
Last Thoughts?Paragraph 2 is difficult. There are a lot of details in there, and so we should be sure to head back there for any question that talks about similarities, any of the individual points of comparison/factors, or anything that sounds sciency, as that paragraph is the scienciest paragraph in the passage (yes, we just made up those words).
Paragraph 4 is interesting - it takes the studies from Paragraph 3 and shows that they pan out in the real world. One inherent flaw in any study is that it doesn’t necessarily represent the real world, but this passage gets around that to an extent by showing that the results can be found outside of a lab setting.
Question prompt
Why the credited answer is right
Credited answer: A
The notes below walk through why it fits the stem and how to eliminate the rest.
Question Type
Strategy Overview
Answer Anticipation
Answer choices
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AIn both treated and Remaining source text redacted.
Why choice A matches the stem
(A) The untreated plots would have the same outcome as in the initial experiment, as nothing changed there - the Cyc population would have been kept under control. In the treated plots, instead of killing off the Typh, the pesticide would slow down the reproduction of the Cyc. That means Typh would be present, eating the Cyc, and the Cyc population would grow more slowly because of their slowed-down reproductive cycle. Therefore, both sets of plots would see the Cyc population kept under control, making this the correct answer.
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BCyclamen mite populations in Remaining source text redacted.
Why choice B is not credited
(B) (Lines 1-3) This is a convoluted answer, so let’s rephrase it to make what is being compared easier to see. The first set of plots is treated plots with no predator. The second set of plots is untreated plots with predators. Both have something controlling the Cyc population - either the new insecticide, or the predators. However, there’s no way for us to directly compare which is more effective. If anything, the generalization that kicks the entire passage off and which the Author says is exemplified by the Typh/Cyc relationship suggests that the predators should be more effective, not the other way around, as this answer has it.
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CIn the treated plots, Remaining source text redacted.
Why choice C is not credited
(C) (Lines 23-27) The passage refers to the synchrony as seasonal, not related to reproductive speeds, so there’s no indication that a slowing of the prey population’s reproductive cycle would throw this synchrony off.
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DIn the treated plots, Remaining source text redacted.
Why choice D is not credited
(D) This answer is interesting in how it’s trying to trick you. It talks about the predator population dropping but then increasing. That makes sense if you think that the insecticide, in slowing the Cyc’s reproductive cycle, would cause their population to go down and then up once the slower cycle results in new Cyc babies. And, in responding to this change in population, the Typh population also goes down and then up. However, let’s think that through. The Typh and Cyc are both present, so the Typh is keeping Cyc in check. An insecticide is added that slows down the Cyc reproductive cycle, but it has no effect on Typh. That would mean the Typh population doesn’t change, but the increase in Cyc slows down, so those Typhs would end up eating a higher proportion of the Cyc population, leading to a decrease, which would then cause the Typh population to go down. But even that’s a bit of a leap, and when you feel yourself jumping through this many hoops to figure out if an answer is right or wrong, you’re probably looking at a quicksand answer - one that’s meant to eat up your time while not actually being correct.
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EIn the treated plots, Remaining source text redacted.
Why choice E is not credited
(E) (Lines 42-45) The passage says that, in the actual experiment, the second set of plots were kept Typh-free by using the insecticide. That implies that with a different insecticide that doesn’t kill Typh, there would be a Typh population present. So these treated plots would now have an insecticide working to control the Cyc population and Typh doing the same, so there’s a good chance that the pests wouldn’t grow to the point where they were damaging the crops.
What this tests
Discussion
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C? 1 reply
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Confused 1 reply
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Question Explanation 2 replies
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