Asked by lisa

To solve for the whole-number measure of segment \( AD \) that would create triangles \( \triangle ABD \) and \( \triangle ACD \), we can use the properties of a rhombus and the triangle inequality theorem.

In a rhombus, the opposite sides are equal, and the diagonals bisect each other at right angles. This means that:
- \( AB = AD \) (sides of the rhombus)
- \( AC = BC \)

From the information given:
- \( AB = 4 \)
- \( AC = 5 \)
- \( BD = 8 \)
- \( CD = 15 \)

Given that \( AD \) is also a side of the rhombus, we can denote its length as \( AD \).

We can form triangles from the sides given:

1. For \( \triangle ABD \):
- The sides are \( AB = 4 \), \( AD = x \), and \( BD = 8 \).
- By the triangle inequality theorem:
- \( AB + AD > BD \) → \( 4 + x > 8 \) → \( x > 4 \)
- \( AB + BD > AD \) → \( 4 + 8 > x \) → \( 12 > x \)
- \( BD + AD > AB \) → \( 8 + x > 4 \) → \( x > -4 \) (not a constraint)

2. For \( \triangle ACD \):
- The sides are \( AC = 5 \), \( AD = x \), and \( CD = 15 \).
- Again by using the triangle inequality:
- \( AC + AD > CD \) → \( 5 + x > 15 \) → \( x > 10 \)
- \( AC + CD > AD \) → \( 5 + 15 > x \) → \( 20 > x \)
- \( CD + AD > AC \) → \( 15 + x > 5 \) → \( x > -10 \) (not a constraint)

Now, we need to combine the inequalities obtained from both triangles:
- From \( \triangle ABD \): \( 4 < x < 12 \)
- From \( \triangle ACD \): \( 10 < x < 20 \)

The intersection of these two sets of inequalities gives us:
- \( 10 < x < 12 \)

Since \( x \) must be a whole number, the only value that satisfies this inequality is \( x = 11 \).

Therefore, the whole-number measure of segment \( AD \) that would create triangles \( \triangle ABD \) and \( \triangle ACD \) is \( \boxed{11} \).