Solve the following problem:
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Solve the following problem:
Proceed to solve the given equation:
First, let's arrange the equation by moving terms:
Note that the expression on the left side can be factored using the perfect square trinomial formula for a binomial squared:
As shown below:
Therefore, we'll represent the rightmost term as a squared term:
Now let's examine again the perfect square trinomial formula mentioned earlier:
And the expression on the left side in the equation that we obtained in the last step:
Notice that the terms indeed match the form of the first and third terms in the perfect square trinomial formula (which are highlighted in red and blue),
However, in order to factor this expression (on the left side of the equation) using the perfect square trinomial formula mentioned, the remaining term must also match the formula, meaning the middle term in the expression (underlined with a line):
In other words - we will query whether we can represent the expression on the left side as:
And indeed it is true that:
Therefore we can represent the expression on the left side of the equation as a perfect square binomial:
From here we can take the square root of both sides of the equation (and don't forget there are two possibilities - positive and negative when taking the square root of an even power), then we'll easily solve by isolating the variable:
Let's summarize the solution of the equation:
Therefore the correct answer is answer C.
a = Coefficient of x²
b = Coefficient of x
c = Coefficient of the independent number
what is the value of \( a \) in the equation
\( y=3x-10+5x^2 \)
Look for the pattern . In , we have first term = , last term = , and middle term = .
You can always use the quadratic formula or try completing the square. But recognizing perfect squares saves time! Practice identifying when the last term is a perfect square like 1, 4, 9, 16, 25, etc.
When we get , taking the square root gives us . Since , we only get one unique solution: .
Absolutely! You could use the quadratic formula: . But factoring perfect squares is much faster when you spot the pattern!
When (like here), the parabola just touches the x-axis at exactly one point. This gives us one repeated root.
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