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Is product 2*x*5*y an even integer?
(1) 2 + x + 5 + y is an even integer
(2) x - y is an odd integer
(1) 2 + x + 5 + y is an even integer
(2) x - y is an odd integer
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09 Sep 2009, 05:14
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Is \(10xy\) an even integer?
In order for \(10xy=2*5xy\) to be even, \(5xy\) must be an integer. In this case, \(10xy=2*5xy\) would be \(2*integer\), which is an even number. Hence, essentially, the question is asking whether \(5xy\) is an integer.
However, it's important to note that \(x\) and \(y\) themselves don't necessarily have to be integers for \(5xy\) to be an integer. For instance, if \(x=\frac{7}{9}\) and \(y=\frac{9}{7}\), \(5xy\) is an integer. Nonetheless, if both \(x\) and \(y\) are integers, then \(5xy\) is certainly an integer, thereby making \(10xy\) even.
(1) \(7 + x + y\) is an even integer.
Since \(7+x+y\) is even, then \(x+y\) must be odd. If \(x=1\) and \(y=2\), the answer will be YES. However, if \(x=1.3\) and \(y=1.7\), the answer will be NO. Not sufficient.
(2) \(x-y\) is an odd integer.
If \(x=1\) and \(y=2\), the answer will be YES. However, if \(x=1.3\) and \(y=0.3\), the answer will be NO. Not sufficient.
(1)+(2) From (1) we know that \(x+y=odd\) and from (2) we know that \(x-y=odd\). Adding these two equations gives \((x+y)+(x-y)=odd_1+odd_2\), which results in \(2x=even\). This implies that \(x\) is an integer, and thus \(y\) is also an integer. Therefore, \(10xy=10*integer=even\). Sufficient.
Answer: C
In order for \(10xy=2*5xy\) to be even, \(5xy\) must be an integer. In this case, \(10xy=2*5xy\) would be \(2*integer\), which is an even number. Hence, essentially, the question is asking whether \(5xy\) is an integer.
However, it's important to note that \(x\) and \(y\) themselves don't necessarily have to be integers for \(5xy\) to be an integer. For instance, if \(x=\frac{7}{9}\) and \(y=\frac{9}{7}\), \(5xy\) is an integer. Nonetheless, if both \(x\) and \(y\) are integers, then \(5xy\) is certainly an integer, thereby making \(10xy\) even.
(1) \(7 + x + y\) is an even integer.
Since \(7+x+y\) is even, then \(x+y\) must be odd. If \(x=1\) and \(y=2\), the answer will be YES. However, if \(x=1.3\) and \(y=1.7\), the answer will be NO. Not sufficient.
(2) \(x-y\) is an odd integer.
If \(x=1\) and \(y=2\), the answer will be YES. However, if \(x=1.3\) and \(y=0.3\), the answer will be NO. Not sufficient.
(1)+(2) From (1) we know that \(x+y=odd\) and from (2) we know that \(x-y=odd\). Adding these two equations gives \((x+y)+(x-y)=odd_1+odd_2\), which results in \(2x=even\). This implies that \(x\) is an integer, and thus \(y\) is also an integer. Therefore, \(10xy=10*integer=even\). Sufficient.
Answer: C
22 Feb 2012, 08:26
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omerrauf
I dont get it. \(2\) is already being multiplied to the original number. so unless \(x\) and \(y\) is a fraction, let's say \(\frac{1}{2}\) then it could be odd, but as long as \(x\) and \(y\) are integers, there is no way this could be an odd number since it is being multiplied by \(2\). Now if we look at Statement A, it still does not tell us that \(x\) and \(y\) are integers or not. Since \(x\) could be \(\frac{1}{2}\) and \(y\) again could be \(\frac{1}{2}\) so A is obviously Insufficient. We cannot even establish if \(2*x*5*y\) is an integer, let alone it is even or not. And the presence of \(2\) is extremely misleading.
Now B says that \((x - y)\) is an odd integer. Let's suppose \(x=\frac{4}{3}\) and \(y=\frac{1}{3}\), then \((x-y)=1\) which is an odd integer as it is supposed to be but that does not make \(2*x*5*y\) an even integer an integer at all. On the other hand let x=4 and y=3 than \((x-y)=1\) which is again an odd integer so yes \(2*x*5*y\) is an even integer. Two different answers,
Hence Insufficient.
Now if we combine A & B:
Statement A: \(2+x+5+y\)is \(even\) so \((x+y)+7\) is \(even\) so \((x+y)\) has to be odd
Statement B: \(x-y=odd\) which is basically just restating Statement A.
There is something wrong with the question. Do you have a source for this one?
Now B says that \((x - y)\) is an odd integer. Let's suppose \(x=\frac{4}{3}\) and \(y=\frac{1}{3}\), then \((x-y)=1\) which is an odd integer as it is supposed to be but that does not make \(2*x*5*y\) an even integer an integer at all. On the other hand let x=4 and y=3 than \((x-y)=1\) which is again an odd integer so yes \(2*x*5*y\) is an even integer. Two different answers,
Hence Insufficient.
Now if we combine A & B:
Statement A: \(2+x+5+y\)is \(even\) so \((x+y)+7\) is \(even\) so \((x+y)\) has to be odd
Statement B: \(x-y=odd\) which is basically just restating Statement A.
There is something wrong with the question. Do you have a source for this one?
Is product 2*x*5*y an even integer?
Notice that we are not told that x and y are integers.
Question: \(2*x*5*y=even\). As there is 2 as a multiple, then this expression will be even if \(5xy=integer\). Basically we are asked is \(5xy=integer\) true?
Note that \(x\) and \(y\) may not be integers for \(2*x*5*y\) to be even (example \(x=\frac{7}{9}\) and \(y=\frac{9}{7}\)) BUT if they are integers then \(2*x*5*y\) is even.
(1) \(2+x+5+y=even\) --> \(7+x+y=even\) --> \(x+y=odd\). Not sufficient. (x=1 and y=2 answer YES BUT x=1.3 and y=1.7 answer NO)
(2) \(x-y=odd\). Not sufficient. (x=1 and y=2 answer YES BUT x=1.3 and y=0.3 answer NO)
(1)+(2) Sum (1) and (2) \((x+y)+(x-y)=odd_1+odd_2\) --> \(2x=even\) --> \(x=integer\) --> \(y=integer\) --> Both \(x\) and \(y\) are integers. Hence sufficient.
Answer: C.
Hope it's clear.
any help would be highly appreciated!!! 
