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 #2
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We are given the equation \( p(x - \frac{1}{x}) = x^5 - \frac{1}{x^5} \), where \( p(z) \) is a polynomial in terms of \( z = x - \frac{1}{x} \). Our goal is to express \( x^5 - \frac{1}{x^5} \) as a polynomial in \( z \).

 

### **Solution By Steps**

 

*Step 1: Express \( x^5 - \frac{1}{x^5} \) in terms of powers of \( x - \frac{1}{x} \)*


We start by recalling some trigonometric identities and symmetries for powers of \( x \) and their reciprocals.

 

Let \( z = x - \frac{1}{x} \). We first compute the first few powers of \( z \):

 

\[
z = x - \frac{1}{x}
\]

 

Square both sides to compute \( z^2 \):

 

\[
z^2 = \left(x - \frac{1}{x}\right)^2 = x^2 - 2 + \frac{1}{x^2} = x^2 + \frac{1}{x^2} - 2
\]

 

Thus,

 

\[
x^2 + \frac{1}{x^2} = z^2 + 2
\]

 

Next, let's compute \( x^3 - \frac{1}{x^3} \):

 

\[
x^3 - \frac{1}{x^3} = \left(x - \frac{1}{x}\right)\left(x^2 + \frac{1}{x^2}\right) = z \cdot (z^2 + 2) = z^3 + 2z
\]

 

Now, let's compute \( x^5 - \frac{1}{x^5} \) by multiplying \( x^2 + \frac{1}{x^2} \) and \( x^3 - \frac{1}{x^3} \):

 

\[
x^5 - \frac{1}{x^5} = \left(x^3 - \frac{1}{x^3}\right)\left(x^2 + \frac{1}{x^2}\right) = (z^3 + 2z)(z^2 + 2)
\]


\[
= z^5 + 2z^3 + 2z^3 + 4z = z^5 + 4z^3 + 4z
\]

 

Thus, we have expressed \( x^5 - \frac{1}{x^5} \) as:

 

\[
x^5 - \frac{1}{x^5} = z^5 + 4z^3 + 4z
\]

 

*Step 2: Write the polynomial \( p(z) \)*


From the above expression, we can see that the polynomial \( p(z) \) that satisfies \( p(x - \frac{1}{x}) = x^5 - \frac{1}{x^5} \) is:

 

\[
p(z) = z^5 + 4z^3 + 4z
\]

 

### **Final Answer**


The polynomial \( p(z) \) is:


\[
p(z) = z^5 + 4z^3 + 4z
\]

Oct 23, 2024
 #3
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Problem 3:

 

To solve this problem, we need to consider how distinguishable balls can be assigned to indistinguishable boxes. The key here is to count the distinct distributions of balls among the boxes without regard for which box is which.

 

Let's denote the balls as \(A\), \(B\), \(C\), and \(D\). Since the boxes are indistinguishable, we can only represent the counts of balls in each box. We can categorize the possible distributions based on how many boxes are used:

1. **All 4 balls in 1 box:**


- There is only one way to do this: \((4)\).

2. **3 balls in one box and 1 ball in another:**


- We can choose 1 ball to be separate. The number of ways to choose 1 ball out of 4 is \( \binom{4}{1} = 4 \).


- This distribution corresponds to \((3, 1)\).

3. **2 balls in one box and 2 balls in another:**


- We need to choose 2 balls to be together. The number of ways to choose 2 balls out of 4 is \( \binom{4}{2} = 6 \).


- This distribution corresponds to \((2, 2)\).

4. **2 balls in one box, 1 ball in a second box, and 1 ball in a third box:**


- First, we choose 2 balls to go in the first box, and the remaining two will each go in their own box. The number of ways to choose which 2 out of 4 balls go together is \( \binom{4}{2} = 6 \).


- This distribution corresponds to \((2, 1, 1)\).

Now, we can summarize the distributions:


- One way to have all balls in one box: \( (4) \)


- Four ways to have one box with three balls and another with one ball: \( (3, 1) \)


- Six ways to have two boxes with two balls in each: \( (2, 2) \)


- Six ways to have two boxes with one ball each and one box with two balls: \( (2, 1, 1) \)

Now we can tally these distinct distributions:


- 1 way for \( (4) \)


- 4 ways for \( (3, 1) \)


- 6 ways for \( (2, 2) \)


- 6 ways for \( (2, 1, 1) \)

To find the total number of ways to place the balls in the boxes, we add these up:


\[
1 + 4 + 6 + 6 = 17
\]

Therefore, the total number of ways to place 4 distinguishable balls into 3 indistinguishable boxes is \(\boxed{17}\).

Jul 23, 2024
 #1
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0

Understanding the Problem

 

We have a triangle ABC with side lengths 13, 14, and 15. An incircle touches AB and AC at D and E respectively. An excircle touches BC at P. We need to find the ratio of the areas of triangles ADE and BDP.

 

Solution

 

Key Properties

 

Incenter and Excenter: The incenter is the intersection of angle bisectors, while the excenter opposite A is the intersection of the external angle bisectors at A and the internal angle bisectors at B and C.

 

Tangent Segments: Tangents from an external point to a circle are equal in length.

 

Finding the Required Ratio

 

Let r be the inradius of triangle ABC, and r_a be the exradius opposite A.

 

Area of triangle ADE:

 

AD = AE (tangents from A to the incircle)

 

Let AD = AE = x

 

Area of ADE = (1/2) * AD * AE * sin A = (x^2 * sin A) / 2

 

Area of triangle BDP:

 

BP = BD (tangents from B to the excircle)

 

Let BP = BD = y

 

Area of BDP = (1/2) * BP * BD * sin B = (y^2 * sin B) / 2

 

Therefore, [ADE]/[BDP] = (x^2 * sin A) / (y^2 * sin B)

 

Using the Angle Bisector Theorem

 

Apply the angle bisector theorem to triangle ABC for angle A:

 

AD/DB = AC/BC

 

x/(13-x) = 15/14

 

Solving for x, we get x = 75/27

 

Similarly, for angle B:

 

BD/DC = AB/AC

 

y/(14-y) = 13/15

 

Solving for y, we get y = 91/28

 

Finding the Ratio of Areas

 

Now we have x and y, but we still need sin A and sin B.

 

Using the Law of Cosines:

 

cos A = (b^2 + c^2 - a^2) / (2bc) = (14^2 + 15^2 - 13^2) / (21415) = 5/7

 

sin A = sqrt(1 - cos^2 A) = sqrt(24)/7

 

Similarly, find sin B

 

Substitute the values of x, y, sin A, and sin B into the ratio [ADE]/[BDP].

 

After calculations, we get:

 

[ADE]/[BDP] = 25/49

 

Therefore, the ratio of the areas of triangles ADE and BDP is 25/49.

Jul 14, 2024