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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 02:44
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C
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64% (02:26) correct 36% (02:06) wrong based on 662 sessions

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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2
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C
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 08:03
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2

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The question really asks if y > z?

Statement 1: 2y > w + z > can be yes, or no. Insufficient.
Statement 2: 2z < w+y > leads also to a yes or no answer. Insufficient.

Together, add the inequalities:

2y > w + z
w+y > 2z

3z + w < 3y + w
z<y

Sufficient. Answer C.
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 08:26
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2

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Solution:
We need to Find If Y > Z

Statement 1 :
Y/(w+Z) > 1/2
Y > (w+z)/2

This statement is not giving any relationship between Y and Z.
Insufficient

Statement 2:
z/(w + y) < 1/2

This statement is not giving any relationship between Y and Z.
Insufficient

Combining Statement 1 and 2
statement 1 can be written as
2Y > W +Z ------ Equation A

Statement 2 can be written as
2Z < W + Y
W + Y > 2Z ---- Euation B

Adding equation A and B

W + 3Y > W + 3Z
Y > Z -- Hence Option C must be correct.
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 09:22
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2

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one method is explained above..
another method could be..
as discussed on top we are basically asked" is y>z?"..
1) Statement 1 tells us \(\frac{y}{(w + z)} > \frac{1}{2}\)
or \(2y > w+z\).. add y to each side..
3y>w+x+y or y>total/3... insuff
2) statement 2 tells us \(\frac{z}{(w + y)}< \frac{1}{2}\)..
or \(2z < w+y\).. add z to each side..
3yz<w+x+y or \(z< \frac{total}{3}\)... insuff

combined we know that y> 1/3rd of total whereas z< 1/3rd of total..
so y>z.. suff
ans C
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 11:01
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2

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Question : Is y / (w+y+z) > z / (w+y+z)

Question : Is y > z ?

Statement 1: y/(w + z) > 1/2
i.e y is greater than (1/2) of w+z
Case-1: @ y = 4, w = 5 and z = 2 i.e. y > z
Case-2: @ y = 4, w = 2 and z = 5 i.e. y < z
NOT SUFFICIENT

Statement 2: z/(w + z) < 1/2
i.e z is greater than (1/2) of w+z
i.e. 2z < (w+z)
i.e. z < w
BUT z and y can't be compared, hence
NOT SUFFICIENT

Combining the two statements
z < w
and y/(w + z) > 1/2
i.e. (w + z) < 2y

i.e. Since, z < w therefore, (2z) < (w+z)

Combining the above two inequation
2z < (w + z) < 2y
i.e. z < y
SUFFICIENT

Answer: Option C
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 07 Jul 2015, 11:19
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2
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Statement 1 says "the ratio of yaks to other animals is greater than 1 to 2", or in other words, more than 1/3 of the animals are yaks. So the probability of picking a yak is greater than 1/3.

Statement 2 says "the ratio of zebras to other animals is less than 1 to 2", or in other words, less than 1/3 of the animals are zebras. So the probability of picking a zebra is less than 1/3.

So the two statements are sufficient together. Neither statement is sufficient alone, since we can get yes or no answers to the question by changing the fraction of animals which are wildebeests.
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 09 Jul 2015, 12:40
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probability of selecting 1 yak = y/x+y+z
probability of selecting 1 zebra= z/x+y+z
is p(y)>p(z) ie y > z ?

1. y/w+z >1/2
2y > w+z insufficient

2. z/w+y <1/2
2z<w+y insufficient

combine both:
2y > w+z
2z < w+y

this gives
2y-z >w and 2z - y <w

hence 2y-z >2z-y
which gives y>z
so option C
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 24 Jun 2017, 10:35
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Bunuel
A zoo has w wildebeests, y yaks, z zebras, and no other animals. If an animal is chosen at random from the zoo, is the probability of choosing a yak greater than the probability of choosing a zebra?

(1) y/(w + z) > 1/2

(2) z/(w + y) < 1/2

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Forget conventional ways of solving math questions. In DS, Variable approach is the easiest and quickest way to find the answer without actually solving the problem. Remember equal number of variables and independent equations ensures a solution.

There are 3 variables and 0 equation. Thus the answer E is most likely.

After setting up, we have the equivalent question if \(y > z\).

Condition 1)
\(\frac{y}{w+z} > \frac{1}{2}\) is equivalent to \(2y > w + z\).
This is not sufficient since we don't know the value of \(w\).

Condition 2)
\(\frac{z}{w+y} > \frac{1}{2}\) is equivalent to \(2z > w + y\).
This is not sufficient since we don't know the value of \(w\).

Conditions 1) & 2)
The difference of two inequality \(2y > w + z\) and \(2z > w + y\) is \(2(y-z) > z - y\) or \(3(y-z) > 0\).
Thus \(y > z\).
This is sufficient.

Therefore the answer is C.


For cases where we need 3 more equations, such as original conditions with “3 variables”, or “4 variables and 1 equation”, or “5 variables and 2 equations”, we have 1 equation each in both 1) and 2). Therefore, there is 80 % chance that E is the answer, while C has 15% chance and A, B or D has 5% chance. Since E is most likely to be the answer using 1) and 2) together according to DS definition. Obviously there may be cases where the answer is A, B, C or D.
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A zoo has w wildebeests, y yaks, z zebras, and no other animals. If 19 Jun 2025, 23:11
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