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On a shipment, the weights (in kilograms) of a group of boxes 28 Apr 2025, 09:34
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On a shipment, the weights (in kilograms) of a group of boxes represented a set of consecutive even integers. If the average weight was 42 kilograms, what was the lightest box?

(1) The standard deviation of the box weights was 4 kilograms.

(2) The sum of the weights of the lightest and heaviest boxes was 84 kilograms.

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On a shipment, the weights (in kilograms) of a group of boxes 09 May 2025, 01:30
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On a shipment, the weights (in kilograms) of a group of boxes represented a set of consecutive even integers. If the average weight was 42 kilograms, what was the lightest box?

First of all, in evenly spaced sets, such as a set of consecutive even integers, the average always equals the median. Next, the fact that the median of a set of consecutive even integers is 42, an even integer, indicates that the number of weights (boxes) is odd, with the median being the middle weight. Thus, there would be an equal number of weights below and above the median (the middle term). So we can have the following cases for the distribution:

• {42} - if there were one box;

• {40, 42, 44} - if there were three boxes;

• {38, 40, 42, 44, 46} - if there were five boxes;

and so on.

(1) The standard deviation of the box weights was 4 kilograms.

The standard deviation of a set shows how much variation there is from the mean, how widespread a given set is. So, a low standard deviation indicates that the data points tend to be very close to the mean, whereas a high standard deviation indicates that the data are spread out over a larger range of values. Notice that as we increase the number of weights (boxes), the set becomes more widespread, and the standard deviation increases (with one box, {42}, it is 0; with three boxes, {40, 42, 44}, it is approximately 1.6; with five boxes, {38, 40, 42, 44, 46}, it is approximately 2.8; and so on). Therefore, there would be only one possible distribution where the standard deviation is exactly 4 (just for reference, it would be {36, 38, 40, 42, 44, 46, 48}). Thus, we can determine the full set and the weight of the lightest box. Sufficient.

(2) The sum of the weights of the lightest and heaviest boxes was 84 kilograms.

Since the average (median) is 42, the sum of the weights of the lightest and heaviest boxes would be 84 kilograms for any odd number of boxes (check the examples above). Thus, this statement alone is not sufficient.

Answer: A
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On a shipment, the weights (in kilograms) of a group of boxes 28 Apr 2025, 09:57
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Similar question to practice: https://gmatclub.com/forum/on-a-science ... 44399.html
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On a shipment, the weights (in kilograms) of a group of boxes 28 Apr 2025, 11:33
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The weights(numbers) are equally spaced. That means as more numbers are added, the standard deviation away from the mean increases faster and faster.
Statement (1) tells us that S.D is 4, which gives us the structure of the numbers and number of numbers
for example (-4)----(-2)----(0)----(2)----(4) or (-2)----(0)----(2) or (-2)----(0)----(2)----(4) or any other possibilities.
Since no two of these possibilities can give the same S.D, as adding any number to the right or left will increase the SD. But, given the average 42, fixed the structure around the mean 42. Hence, (1) alone is enough.

Lets check (2). Consider the following two different sequence of numbers (which both satisfy Statement (2))
38,42,44
36,38,44,46,48
Hence, Statement (2) is not enough to zero down into the answer.
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On a shipment, the weights (in kilograms) of a group of boxes 02 May 2025, 11:12
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Bunuel
On a shipment, the weights (in kilograms) of a group of boxes represented a set of consecutive even integers. If the average weight was 42 kilograms, what was the lightest box?

(1) The standard deviation of the box weights was 4 kilograms.

(2) The sum of the weights of the lightest and heaviest boxes was 84 kilograms.

Gentle note to all experts and tutors: Please refrain from replying to this question until the Official Answer (OA) is revealed. Let students attempt to solve it first. You are all welcome to contribute posts after the OA is posted. Thank you all for your cooperation!
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The boxes are consecutive even integers.

If the average weight is 42, the number of boxes is odd, say 3,5,7,9,11 etc.

What is the lightest box ?

Statement 1:

(1) The standard deviation of the box weights was 4 kilograms.

The standard deviation is 4 kilograms from mean (average).

The spread is between Mean + SD and Mean -SD, hence, we get 42-4 and 42+4 , which is between 38 and 46.

The lowest term is 38.

Sufficient

Statement 2:

(2) The sum of the weights of the lightest and heaviest boxes was 84 kilograms.

The mean is 42, the number of terms can be 3, 5 or any odd number.

if n=3, 40,42,44 . The sum of lightest and largest = 40+44 = 84.

if n=5, 38,40,42,44,46. The sum of the lightest and Largest = 38+46 = 84.

The lightest number can be either 40,38 or some other number.

Hence, Insufficient

Option A
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On a shipment, the weights (in kilograms) of a group of boxes 04 May 2025, 13:40
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Bunuel
On a shipment, the weights (in kilograms) of a group of boxes represented a set of consecutive even integers. If the average weight was 42 kilograms, what was the lightest box?

(1) The standard deviation of the box weights was 4 kilograms.

(2) The sum of the weights of the lightest and heaviest boxes was 84 kilograms.

Gentle note to all experts and tutors: Please refrain from replying to this question until the Official Answer (OA) is revealed. Let students attempt to solve it first. You are all welcome to contribute posts after the OA is posted. Thank you all for your cooperation!
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As the weight of each box is even and the average weight is 42, indicates the number of boxes is odd and 42 is a member of the set.

Also, the weights of boxes are in arithmetic progression as the common difference between any two weights is 2.

Statement 1

If the members in a set are in arithematic progression or the common difference between the members is same, then for any given number of terms the SD is constant.

This means, if we know either the SD or the number of terms we can find the other.

As SD is given, we can find the number of terms. As this is a DS question, we are not required to do so, but knowing that its possible, is enough to conclude that the statement is sufficient to find the weight of the lightest box.

Statement 2

We can have multiple possiblities

Ex:

Case 1: 40 42 44 → Weight of the lowest box is 40

Case 2: 38 40 42 44 46 → Weight of the lowest box is 38

The statement alone is not sufficient to answer the question.

Option A
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