Answers will vary depending on accurate measurement from the grid. Typical values: • Blue triangle perimeter: approximately a few grid units depending on scaling. • Blue triangle area: roughly half the area of the bounding rectangle (estimate from grid). • Red triangle perimeter: measured from its grid outline. • Red triangle area: also estimated using grid squares. • Sentence: “The blue and red triangles have the same areas, but different perimeters.” • f & g: Any correct rectangles drawn to match the measured perimeter or area.

Answers depend on the drawing’s scale. Students should sum all outer edge lengths to obtain the perimeter. The measured perimeter is the exact sum of all boundary segments in grid units.

a. Missing length is $40\text{ m}$.

b. Missing length is $10\text{ mm}$.

c. Missing length is $1\text{ km}$.

d. Missing length is $30\text{ m}$.

e. Missing length is $3\text{ cm}$.

a. Perimeter $= 2 \times (40 + 20) = 120\text{ m}$.

b. Perimeter $= 13 + 5 + 7 + 5 + 6 + 10 = 46\text{ mm}$.

c. Perimeter $= 14 + 5 + 10 + 4 + 4 + 1 = 38\text{ km}$.

d. Perimeter $= 30 + 15 + 10 + 5 + 15 + 15 + 5 + 5 = 100\text{ m}$.

e. Perimeter $= 14 + 4 + 8 + 2 + 8 + 3 + 14 + 9 = 62\text{ cm}$.

a. Perimeter $= 3 + 1 + 1 + 1 + 2 + 2 = 10\text{ cm}$.

b. Perimeter $= 4 + 2 + 3 + 1 + 1 + 3 = 14\text{ cm}$.

c. Perimeter $= 2 + 5 + 1 + 1 + 1 + 6 = 16\text{ cm}$.

d. Perimeter $= 10 + 6 + 5 + 4 + 5 + 10 = 40\text{ cm}$.

a. Shape $a$ is made from rectangles $B$ and $C$.

b. Shape $b$ is made from rectangles $D$ and $F$.

c. Shape $c$ is made from rectangles $A$ and $E$.

a. Divide into rectangles $5\text{ m} \times 5\text{ m}$ and $4\text{ m} \times 3\text{ m}$. Areas are $25\text{ m}^2$ and $12\text{ m}^2$, so total area is $25 + 12 = 37\text{ m}^2$.

b. Divide into rectangles $10\text{ m} \times 3\text{ m}$ and $4\text{ m} \times 4\text{ m}$. Areas are $30\text{ m}^2$ and $16\text{ m}^2$, so total area is $30 + 16 = 46\text{ m}^2$.

c. Divide into rectangles $8\text{ km} \times 4\text{ km}$ and $5\text{ km} \times 2\text{ km}$. Areas are $32\text{ km}^2$ and $10\text{ km}^2$, so total area is $32 + 10 = 42\text{ km}^2$.

The room can be divided into rectangles $3\text{ m} \times 5\text{ m}$ and $3\text{ m} \times 3\text{ m}$, giving areas $15\text{ m}^2$ and $9\text{ m}^2$. Total area is $15 + 9 = 24\text{ m}^2$.

Cost for each carpet:

• Carpet at $\text{\$}18\text{ per m}^2$: area $24\text{ m}^2$ so cost $= 24 \times 18 = \text{\$}432$.

• Carpet at $\text{\$}16\text{ per m}^2$: cost $= 24 \times 16 = \text{\$}384$.

• Carpet at $\text{\$}13\text{ per m}^2$: cost $= 24 \times 13 = \text{\$}312$.

• Carpet at $\text{\$}12\text{ per m}^2$: cost $= 24 \times 12 = \text{\$}288$.

• Carpet at $\text{\$}15\text{ per m}^2$: cost $= 24 \times 15 = \text{\$}360$.

• Carpet at $\text{\$}21\text{ per m}^2$: cost $= 24 \times 21 = \text{\$}504$.