From 671c93e3227485018b262488d25bc63263fefdbe Mon Sep 17 00:00:00 2001 From: Kenneth Odle Date: Mon, 17 Jul 2023 08:32:24 -0400 Subject: [PATCH] Minor textual additions --- complete-the-square.tex | 34 ++++++++++++++++++++++++++-------- 1 file changed, 26 insertions(+), 8 deletions(-) diff --git a/complete-the-square.tex b/complete-the-square.tex index 2d11161..d54ffe1 100644 --- a/complete-the-square.tex +++ b/complete-the-square.tex @@ -20,6 +20,9 @@ margin=0.5in } +% Add an \hrule with space above and below +\newcommand\krule[2]{\vspace{#1}\hrule\vspace{#2}} + % Adjust the top and bottom margins % http://kb.mit.edu/confluence/pages/viewpage.action?pageId=3907057 \addtolength{\topmargin}{0.4in} @@ -68,13 +71,14 @@ The simplest quadratic equation to solve is the type where both sides are a perf \begin{split} 4x^2 &= 36 \\ \sqrt{4x^2} &= \sqrt{36} \\ +\sqrt{4}\times\sqrt{x^2} &= \sqrt{36} \\ 2x &= \pm6 \\ x &= \pm\frac{6}{2} \\ x &= \pm3 \end{split} \end{align} -\paragraph{Note:} Because we are taking the square root of a constant, we must include both the positive and negative values of the square root, hence $\pm3$. In story problems, the situation may mean that we can safely ignore one of these values. +\paragraph{Note:} Because we are taking the square root of a constant, we must include both the positive and negative values of the square root as the solution, hence $\pm3$. Substituting either $3$ or $-3$ into $x$ in the original equation results in a value of 36. (In story problems, the situation may mean that we can safely ignore one of these values.) \paragraph{Factorable equations} The other type of quadratic equation is one that can easily be solved by factoring. For example, @@ -109,7 +113,7 @@ Using either of these values for $x$ in equation \ref{eq2} will result in one of For equations that are not easily factored, a general solution called ``the quadratic equation'' can be used to solve any quadratic. -For any equation of the form $ax^2+bx+c=0$, the solution can be found by using: +For any equation of the form $ax^2+bx+c=0$, the solution (that is, the value for $x$) can be found by using: \begin{equation}\label{eq5} x=\frac{-b\pm\sqrt{b^2-4ac}}{2a} @@ -119,7 +123,7 @@ In reality, the quadratic equation is a generalized form of the solving techniqu \section{Completing the Square} -The general procedure for completing the square is to first make both sides of the equation into a perfect square, and then solving it as we did in \ref{eq1}. This is not a difficult process, but most students tend to get stuck on the first step---making the equation into a perfect square. +The general procedure for completing the square is to first make the left side of the equation into a perfect square (the right side will just be a number), and then solving it as we did in \ref{eq1}. This is not a difficult process, but most students tend to get stuck on the first step---making the left side into a perfect square. Here is the general procedure: @@ -132,17 +136,17 @@ Here is the general procedure: \item Solve for $x$. \end{enumerate} -\paragraph{Note:} Our goal is to make the \textit{left} side of the equation into a square. However, the right side will often not be a perfect square, as in equation set~(\ref{eq1}). This means that we will have a $\sqrt{~~}$ sign in our solution. +\paragraph{Note:} Our goal is to make the \textit{left} side of the equation into a square. However, the right side will often not be a perfect square, as in equation set~(\ref{eq1}) where the right side was $36$, which is simply $6^2$. This means that we will have a $\sqrt{~~}$ sign in our solution. \subsection{Example \#1} For our first example, we'll use an equation in which $a$ is already 1, so we can skip the first step. Our equation is \[x^2+4x+1=0\] -The second step is the move the constant term to the right side of the equation by subtracting 1 from both sides: \[x^2+4x+1-1=0-1\] \[x^2+4x=-1\] +The second step is to move the constant term to the right side of the equation by subtracting 1 from both sides: \[x^2+4x+1-1=0-1\] \[x^2+4x=-1\] Our value for $b$ is 4. $4\div2 = 2$ and $2^2=4$, so we will add 4 to both sides of the equation (step three): \[x^2+4x+4=-1+4\] \[x^2+4x+4=3\] -The left side is now a perfect square. Because $x^2+4x+4=(x+2)^2$ we can rewrite it as a perfect square (step four): \[(x+2)^2=3\] +The left side is now a perfect square, even though it doesn't look like it. Because $x^2+4x+4=(x+2)^2$ we can rewrite it as a perfect square (step four): \[(x+2)^2=3\] All that is left to do is to take the square root of both sides (step five): \[\sqrt{(x+2)^2}=\pm\sqrt{3}\] @@ -150,9 +154,9 @@ which gives us \[x+2=\pm\sqrt{3}\] and then solve for $x$ (step six): \[x=\pm\sqrt{3} -2\] -Conventionally, we would write this as $x=-2+\sqrt{3}$ or $x=-2-\sqrt{3}$. +Conventionally, we would write this as $x=-2+\sqrt{3}, -2-\sqrt{3}$. -\bigskip +\krule{6pt}{6pt} \noindent{}Here is the entire sequence all together: @@ -170,6 +174,20 @@ x &= -2\pm\sqrt{3} && && &&\text{Step 6} \end{aligned} \end{equation} +\hrule + +\section{Example \#2} + +For our second example, we will look at an equation where $a$ is not equal to 1. + +\section{Example \#3} + +For our third example, we will look at an equation where the right side is not a perfect square. + +\section{Example \#4} + +For our fourth example, we will look at an equation where neither $a$ is equal to 1 nor the right side is a perfect square. + \pagestyle{lastpage}% Remove the header from the last page; comment this out if the document ends on an odd-numbered page \end{document} \ No newline at end of file