Use $d=\sqrt{(x_2-x_1)^2+(y_2-y_1)^2}$. Thus (i) $d=\sqrt{(4-2)^2+(1-3)^2}=2\sqrt2$, (ii) $d=\sqrt{4^2+(-4)^2}=4\sqrt2$, and (iii) $d=\sqrt{(-2a)^2+(-2b)^2}=2\sqrt{a^2+b^2}$.
(i) $2\sqrt{2}$
(ii) $4\sqrt{2}$
(iii) $2\sqrt{a^2+b^2}$
$d=\sqrt{36^2+15^2}=\sqrt{1296+225}=\sqrt{1521}=39$. Since Section 7.2 uses 1 km as one unit, the distance between the towns is 39 km.
The distance is 39 units, so the distance between the towns is 39 km.
The slope through $(1,5)$ and $(2,3)$ is $\dfrac{3-5}{2-1}=-2$. The slope through $(2,3)$ and $(-2,-11)$ is $\dfrac{-11-3}{-2-2}=\dfrac{7}{2}$. Since the slopes are not equal, the points are not collinear.
The points are not collinear.
Let the points be A$(5,-2)$, B$(6,4)$ and C$(7,-2)$. Then $AB=\sqrt{1^2+6^2}=\sqrt{37}$, $BC=\sqrt{1^2+(-6)^2}=\sqrt{37}$ and $AC=2$. Since $AB=BC$, the triangle is isosceles.
Yes, they form an isosceles triangle.
$AB=BC=CD=DA=\sqrt{18}=3\sqrt2$. Also, $AC=6$ and $BD=6$. Since all four sides are equal and the diagonals are equal, ABCD is a square.
Champa is correct; ABCD is a square.
(i) The four sides are all $\sqrt8$ and both diagonals are 4, so it is a square. (ii) The side lengths are $\sqrt{52},\sqrt{13},\sqrt{58},\sqrt{82}$, so there is no standard special quadrilateral from these data. (iii) Opposite sides are equal: $AB=CD=\sqrt{10}$ and $BC=DA=\sqrt{18}$, so the quadrilateral is a parallelogram.
(i) A square.
(ii) A quadrilateral with no special type indicated by equal/parallel side tests.
(iii) A parallelogram.
A point on the x-axis is $(x,0)$. Equating squared distances gives $(x-2)^2+5^2=(x+2)^2+9^2$. Hence $x^2-4x+29=x^2+4x+85$, so $x=-7$.
The point is $(-7,0)$.
$10^2=(10-2)^2+(y+3)^2$, so $100=64+(y+3)^2$. Thus $(y+3)^2=36$, giving $y=3$ or $y=-9$.
$y=3$ or $y=-9$.
$QP^2=(5-0)^2+(-3-1)^2=41$. Also $QR^2=x^2+(6-1)^2=x^2+25$. Equating gives $x^2+25=41$, so $x=\pm4$. Then compute $PR$ from P to each possible R.
$x=4$ or $x=-4$. In both cases $QR=\sqrt{41}$. If $x=4$, $PR=\sqrt{82}$; if $x=-4$, $PR=9\sqrt2$.
Equating squared distances: $(x-3)^2+(y-6)^2=(x+3)^2+(y-4)^2$. Expanding and simplifying gives $3x+y-5=0$.
$3x+y-5=0$.
Using section formula for ratio $2:3$, $x=\dfrac{2(4)+3(-1)}{5}=1$ and $y=\dfrac{2(-3)+3(7)}{5}=3$.
The point is $(1,3)$.
The two points divide the segment in ratios $1:2$ and $2:1$. Applying the section formula to A$(4,-1)$ and B$(-2,-3)$ gives $(2,-\dfrac{5}{3})$ and $(0,-\dfrac{7}{3})$.
The points of trisection are $(2,-\dfrac{5}{3})$ and $(0,-\dfrac{7}{3})$.
Taking A as origin, the green flag is on the 2nd line and at $\dfrac14$ of AD, so its coordinates are $(2,25)$. The red flag is on the 8th line and at $\dfrac15$ of AD, so its coordinates are $(8,20)$. Distance $=\sqrt{(8-2)^2+(20-25)^2}=\sqrt{61}$ m. The midpoint is $(\dfrac{2+8}{2},\dfrac{25+20}{2})=(5,22.5)$.
The distance between the green and red flags is $\sqrt{61}$ m. Rashmi should post the blue flag at $(5,22.5)$.
Let the ratio be $m:n$. Using x-coordinate, $-1=\dfrac{6m-3n}{m+n}$. This gives $2n=7m$, so $m:n=2:7$. The y-coordinate gives the same ratio.
The ratio is $2:7$.
A point on the x-axis has y-coordinate 0. Let the ratio be $m:n$. Then $0=\dfrac{5m-5n}{m+n}$, so $m=n$. The point is the midpoint: $(\dfrac{1-4}{2},\dfrac{-5+5}{2})=(-\dfrac32,0)$.
The ratio is $1:1$, and the point of division is $(-\dfrac{3}{2},0)$.
In a parallelogram, diagonals bisect each other. Midpoint of the diagonal joining $(1,2)$ and $(x,6)$ is $(\dfrac{1+x}{2},4)$. Midpoint of the diagonal joining $(4,y)$ and $(3,5)$ is $(\dfrac72,\dfrac{y+5}{2})$. Equating gives $x=6$ and $y=3$.
$x=6$ and $y=3$.
The centre is the midpoint of diameter AB. If A is $(x,y)$, then $\dfrac{x+1}{2}=2$ and $\dfrac{y+4}{2}=-3$. Therefore $x=3$ and $y=-10$.
A is $(3,-10)$.
Since $AP=\dfrac37 AB$, $AP:PB=3:4$. By section formula, $P=(\dfrac{3(2)+4(-2)}{7},\dfrac{3(-4)+4(-2)}{7})=(-\dfrac27,-\dfrac{20}{7})$.
$P=(-\dfrac{2}{7},-\dfrac{20}{7})$.
The required points are at $\dfrac14$, $\dfrac12$ and $\dfrac34$ of the way from A to B. Moving from $(-2,2)$ to $(2,8)$ changes coordinates by $(4,6)$, so the points are $(-1,\dfrac72)$, $(0,5)$ and $(1,\dfrac{13}{2})$.
$(-1,\dfrac{7}{2})$, $(0,5)$ and $(1,\dfrac{13}{2})$.
The diagonals are between $(3,0)$ and $(-1,4)$, and between $(4,5)$ and $(-2,-1)$. Their lengths are $\sqrt{(-4)^2+4^2}=4\sqrt2$ and $\sqrt{(-6)^2+(-6)^2}=6\sqrt2$. Area $=\dfrac12(4\sqrt2)(6\sqrt2)=24$ square units.
The area is 24 square units.