User talk:Paul Wormer/scratchbook1

Point-normal representation

PD Image
Fig. 1. Equation for plane. X is arbitary point in plane;

\scriptstyle {\vec {\mathbf {a} }}

and

\scriptstyle {\hat {\mathbf {n} }}

are collinear.

In analytic geometry several closely related algebraic equations are known for a plane in three-dimensional Euclidean space. One such equation is illustrated in figure 1. Point P is an arbitrary point in the plane and O (the origin) is outside the plane. The point A in the plane is chosen such that vector

{\vec {d}}\equiv {\overrightarrow {OA}}

is orthogonal to the plane. The collinear vector

{\vec {n}}_{0}\equiv {\frac {1}{d}}{\vec {d}}\quad {\hbox{with}}\quad d\equiv \left|{\vec {d}}\,\right|

is a unit (length 1) vector normal (perpendicular) to the plane which is known as the normal of the plane in point A. Note that d is the distance of O to the plane. The following relation holds for an arbitrary point P in the plane

\left({\vec {r}}-{\vec {d}}\;\right)\cdot {\vec {n}}_{0}=0\quad {\hbox{with}}\quad {\vec {r}}\equiv {\overrightarrow {OP}}\quad {\hbox{and}}\quad {\vec {r}}-{\vec {d}}={\overrightarrow {AP}}.

This equation for the plane can be rewritten in terms of coordinates with respect to a Cartesian frame with origin in O. Dropping arrows for component vectors (real triplets) that are written bold, we find

\left(\mathbf {r} -\mathbf {d} \right)\cdot \mathbf {n} _{0}=0\Longleftrightarrow xa_{0}+yb_{0}+zc_{0}=d

with

\mathbf {d} =(a,\;b,\;c),\quad \mathbf {n} _{0}=(a_{0},\;b_{0},\;c_{0}),\quad \mathbf {r} =(x,\;y,\;z),

and

\mathbf {d} \cdot \mathbf {n} _{0}={\frac {1}{d}}\mathbf {d} \cdot \mathbf {d} =d={\sqrt {a^{2}+b^{2}+c^{2}}}.

Conversely, given the following equation for a plane

ax+by+cz=e,\,

it is easy to derive the same equation. Write

\mathbf {r} =(x,\;y,\;z),\quad \mathbf {f} =(a,\;b,\;c),\quad {\hbox{and}}\quad \mathbf {d} \equiv \left({\frac {e}{a^{2}+b^{2}+c^{2}}}\right)\mathbf {f} .

It follows that

\mathbf {f} \cdot \mathbf {r} =e=\mathbf {f} \cdot \mathbf {d} .

Hence we find the same equation,

\mathbf {f} \cdot (\mathbf {r} -\mathbf {d} )=0\;\Longrightarrow \;(\mathbf {r} -\mathbf {d} )\cdot \mathbf {n} _{0}=0\quad {\hbox{with}}\quad \mathbf {n} _{0}={\frac {1}{\sqrt {a^{2}+b^{2}+c^{2}}}}\mathbf {f}

where f , d, and n₀ are collinear. The equation may also be written in the following mnemonically convenient form

\mathbf {d} \cdot (\mathbf {r} -\mathbf {d} )=0,

which is the equation for a plane through a point A perpendicular to ${\overrightarrow {OA}}$ .

Three point representation

PD Image
Fig. 2. Plane through points A, B, and C.

Figure 2 shows a plane that by definition passes through the points A, B, and C. The point P is an arbitrary point in the plane and the reference point O is not in the plane. Referring to figure 2 we introduce the following definitions

{\vec {a}}={\overrightarrow {OA}},\quad {\vec {b}}={\overrightarrow {OB}},\quad {\vec {c}}={\overrightarrow {OC}},\quad {\vec {r}}={\overrightarrow {OP}}.

Clearly the following two non-collinear vectors belong to the plane

{\vec {u}}={\overrightarrow {AB}}={\vec {b}}-{\vec {a}},\quad {\vec {v}}={\overrightarrow {AC}}={\vec {c}}-{\vec {a}}.

Any vector in the plane can be written as a linear combination of these two vectors. In particular,

{\overrightarrow {AP}}={\vec {r}}-{\vec {a}}=\lambda {\vec {u}}+\mu {\vec {v}}.

The real numbers λ and μ specify the direction of ${\overrightarrow {AP}}$ . Hence the equation for the position vector ${\vec {r}}$ of the arbitrary point P in the plane

{\vec {r}}={\vec {a}}+\lambda {\vec {u}}+\mu {\vec {v}}

is known as the point-direction representation of the plane. This representation is equal to the three-point representation

{\vec {r}}={\vec {a}}+\lambda ({\vec {b}}-{\vec {a}})+\mu ({\vec {c}}-{\vec {a}})

User talk:Paul Wormer/scratchbook1

Point-normal representation

Three point representation

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