Events & Promotions
|
|
GMAT Club Daily Prep
Thank you for using the timer - this advanced tool can estimate your performance and suggest more practice questions. We have subscribed you to Daily Prep Questions via email.
Customized
for You
Track
Your Progress
Practice
Pays
Not interested in getting valuable practice questions and articles delivered to your email? No problem, unsubscribe here.
Apr 2512:30 AM EDT
-01:30 AM EDT
At one point, she believed GMAT wasn’t for her. After scoring 595, self-doubt crept in and she questioned her potential. But instead of quitting, she made the right strategic changes. The result? A remarkable comeback to 695. Check out how Saakshi did it.
Apr 2610:00 AM EDT
-11:00 AM EDT
The Target Test Prep course represents a quantum leap forward in GMAT preparation, a radical reinterpretation of the way that students should study. Try before you buy with a 5-day, full-access trial of the course for FREE!
Apr 2711:00 AM EDT
-12:00 PM EDT
Prefer video-based learning? The Target Test Prep OnDemand course is a one-of-a-kind video masterclass featuring 400 hours of lecture-style teaching by Scott Woodbury-Stewart, founder of Target Test Prep and one of the most accomplished GMAT instructors
Apr 2808:00 AM PDT
-11:00 AM PDT
Whether you are just beginning your MBA journey or fine-tuning your path to a 700+ score, GMAT Day is designed to give you a competitive edge.
08 Jun 2013, 18:41
Kudos
Bookmarks
What's the quickest way to factor a polynomial that has a coefficient other than 1 on the x^2 term? i.e. without using the quadratic equation.
e.g.
f(x)=2x^2-9x+9
e.g.
f(x)=2x^2-9x+9
Archived Topic
Hi there,
This topic has been closed and archived due to inactivity or violation of community quality standards. No more replies are possible here.
Where to now? Join ongoing discussions on thousands of quality questions in our Quantitative Questions Forum
Still interested in this question? Check out the "Best Topics" block below for a better discussion on this exact question, as well as several more related questions.
Thank you for understanding, and happy exploring!
lchen
Joined: 09 Apr 2013
Last visit: 20 Apr 2019
Posts: 37
Own Kudos:
Given Kudos: 2
Location: United States (DC)
Concentration: Strategy, Social Entrepreneurship
Schools: Ross '20 (A$)
GMAT 1: 750 Q50 V41
GPA: 3.55
WE:General Management (Non-Profit and Government)
Products:
alphabeta1234
The best alternative way is to graph it out by plugging in numbers until you see what the graph looks like. Just start anywhere:
x=0: \(2(0^2)-9(0)+9\); y = 9
x=1: \(2(1^2)-9(1)+9\); y = 2
x=2: \(2(2^2)-9(2)+9\); y = -1
x=3: \(2(3^2)-9(3)+9\); y = 0
x=4: \(2(4^2)-9(4)+9\); y = 5
Attachment:
2x^2 - 9x + 9.jpg [ 32 KiB | Viewed 7268 times ]
Is there a reason you do not want to solve it the usual way?
\(2x^2-9x+9 = (2x-3)(x-3)\)
x = \(\frac{3}{2}\) and 3
If it is because you don't understand it, it may be something you want to invest a little time into learning.
Just try all the combinations that have the product of the two integers equal the last number in the quadratic formula and find one that works. Obviously, it will get more complicated if the coefficient before \(x^2\) is not prime and/or there are multiple ways of dividing out the integer.
\((2x-9)(x-1) = 2x^2-11x+9\); no
\((2x+9)(x+1) = 2x^2+11x+9\); no
\((2x-1)(x-9) = 2x^2-19x+9\); no
\((2x+1)(x+9) = 2x^2+19x+9\); no
\((2x+3)(x+3) = 2x^2+9x+9\); no
\((2x-3)(x-3) = 2x^2-9x+9\); yes
You will get better at it over time. There is a reason that we haven't been taught other ways... this is the most efficient.
Kudos if this was helpful
08 Jun 2013, 20:01
Kudos
Bookmarks
The example problem that you posted took me a little less than 10 seconds to do in my head, without writing anything down.
My thought process was this:
What two numbers, when multiplied, are equal to + 9, but when added together (and one of the two numbers is multiplied by 2) equals -9?
Well the only things that multiply out to 9 are 3x3, -3x-3, 9x1, and -9x-1.
Then I have to find out which of these add up to -9 if one of them is multiplied by 2 (I get the 2 from 2x^2.. if the question was 5x^2 i would look for something multiplied by 5)
only thing that holds up here is -3, -3
These aren't the factors though. I now have to determine which number was multiplied by two when I added them up to get -9. In this case, it doesn't matter since they're both -3... (-3) + (2*-3) = -9
Now I divide the one that was multiplied by two and get (-3/2)
Then I flip the signs, and there are my factors. It's a very fast process.
If you're looking at
Ax^2 + Bx + C
It's really easy to find the factors if A is one... just figure out what two numbers add up to B and multiply out to C
If A is a prime number, then you have twice as many possibilities: one of the two numbers has to be multiplied by A when figuring out B, but C is left alone...
If A isn't prime, then it gets a bit more complicated but the same theory holds true.. just use your head and practice
EX: 20x^2+102x+10
since the adding part (b) is so much higher than the multiplying part (c), we know that the 20 is probably not evenly distributed..
(20x + 2) (x + 5)
=
20(x+.1)(x+5)
x= -.1, -5
My thought process was this:
What two numbers, when multiplied, are equal to + 9, but when added together (and one of the two numbers is multiplied by 2) equals -9?
Well the only things that multiply out to 9 are 3x3, -3x-3, 9x1, and -9x-1.
Then I have to find out which of these add up to -9 if one of them is multiplied by 2 (I get the 2 from 2x^2.. if the question was 5x^2 i would look for something multiplied by 5)
only thing that holds up here is -3, -3
These aren't the factors though. I now have to determine which number was multiplied by two when I added them up to get -9. In this case, it doesn't matter since they're both -3... (-3) + (2*-3) = -9
Now I divide the one that was multiplied by two and get (-3/2)
Then I flip the signs, and there are my factors. It's a very fast process.
If you're looking at
Ax^2 + Bx + C
It's really easy to find the factors if A is one... just figure out what two numbers add up to B and multiply out to C
If A is a prime number, then you have twice as many possibilities: one of the two numbers has to be multiplied by A when figuring out B, but C is left alone...
If A isn't prime, then it gets a bit more complicated but the same theory holds true.. just use your head and practice
EX: 20x^2+102x+10
since the adding part (b) is so much higher than the multiplying part (c), we know that the 20 is probably not evenly distributed..
(20x + 2) (x + 5)
=
20(x+.1)(x+5)
x= -.1, -5
