Schachfreizeit wrote:
BrentGMATPrepNow wrote:
Bunuel wrote:
If 4 is one solution of the equation x^2 + 3x + k = 10, where k is a constant, what is the other solution?
(A) -7
(B) -4
(C) -3
(D) 1
(E) 6
Let's first determine the value of k.
Since x =
4 is a solution to the equation x² + 3x + k = 10, we know that x =
4 SATISFIES the equation.
That is:
4² + 3(
4) + k = 10
Evaluate to get: 16 + 12 + k = 10
Solve for k to get: k =
-18So, the ORIGINAL equation is x² + 3x + (
-18) = 10
This is the same as: x² + 3x - 18 = 10
We now need to solve this equation.
First, set it equal to zero: x² + 3x - 28 = 0
Factor: (x + 7)(x - 4) = 0
So, x = -7 or x = 4
We already know that x = 4 is one solution.
So, the other solution is x = -7
Answer: A
Cheers,
Brent
how do I get from x² + 3x - 28 = 0 to (x + 7)(x - 4) = 0 How do you know that x² + 3x - 28=(x + 7)(x - 4) = 0?
Hi
Schachfreizeit Thanks for your query.
After looking at your post, I understand that you are unaware of the concept of solving quadratic equations using the “splitting the X-coefficient" method. Through this response, I’ll first introduce you to this concept, and then you’ll understand exactly what Brent did. 😊
INTRODUCTION TO CONCEPT (Splitting the X-Coefficient): Consider the equation: \(x^2 + 5x + 6 = 0\).
Now, how does this method actually work? Let us see how!
Our quadratic equation here is \(x^2 + 5x + 6 = 0\). Now, let us go step-by-step to learn this approach.
Step 1: Express the constant term as a product of two numbers.
Note that there can be multiple ways of doing this. For example, here, the constant term = 6 [\(x^2 + 5x + 6 = 0\)]
- So, the possible ways of expressing 6 as a product of two numbers are:
- (1 × 6); (2 × 3); (-1 × –6) and (-2 × –3).
Step 2: From the possible pairs of numbers obtained in Step 1, choose the pair whose
sum equals the coefficient of x.
Here, coefficient of x = +5 [\(x^2\)
+ 5x + 6 = 0]
- Pair 1 is (1, 6):
- Pair 2 is (2, 3):
- 2 + 3 = 5 = 5 (BINGO! No need to check further because no other pair will work. Check for yourself!)
Only 2 and 3 are possible.
Step 3: Split the coefficient of x into a sum of two numbers – the exact numbers found in Step 2.
That is, \(x^2 + 5x + 6 = x^2 + 2x + 3x + 6\)
Step 4: Take out common factors from the 4 terms obtained in Step 3 – separately from the first two terms and the last two terms. Continue taking common as shown below.
- x^2 + 2x + 3x + 6
- = x (x + 2) + 3 (x + 2) --- [Pairwise common]
- = (x + 2) (x + 3) ---- [(x + 2) common from both new terms]
And that’s it! Now, you can write \(x^2 + 5x + 6 = (x + 2) (x + 3) = 0\).
So, after seeing this explanation, I would suggest you to take a while here and try by yourself to convert x² + 3x – 28 to (x + 7) (x – 4).
I hope you have tried converting the above equation. Let me write the steps for you to verify your calculations.
SOLUTION TO ORIGINAL QUESTION: We have to solve \(x^2 + 3x – 28 = 0\).
Solution: Step 1: Splitting – 28 into a product of two numbers:
(- 1 × 28); (1 × - 28); (- 2 × 14); (2 × - 14); (- 4 × 7); (4 × - 7).
Step 2: Choosing the pair whose sum = x-coefficient = 3.
Only – 4 + 7 gives 3. So, chosen pair is (- 4 × 7).
Step 3: Rewriting the equation \(x^2 + 3x – 28\) as \(x^2 – 4x + 7x – 28\)
Step 4: Taking pair-wise common and then overall common:
\(x^2 – 4x + 7x – 28 = x (x – 4) + 7(x – 4) = (x + 7) (x – 4)\)
And that’s it! This is the entire process. And if you proceed one step further from here, you can easily say that the roots of this equation are –7 and 4.
PRACTICE QUESTIONS: Here are a few equations for you to practice. 😊
1. Solve \(x^2 + 10x + 16 = 0\).
2. Solve \(x^2 – 6x + 8 = 0\).
3. Solve \(x^2 + x – 12 = 0\).
Hope this helps!
Best,
Aditi Gupta
Quant expert,
e-GMAT