Question
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e.) \( 2^{x+3}-2^{x+2}=2^{x+2} \)

Ask by Barber Luna. in South Africa
Jan 23,2025

Real Tutor Solution

Tutor-Verified Answer

Answer

All real numbers \( x \) are solutions to the equation. \[ \boxed{\text{All real numbers }x\text{ are solutions}} \]

Solution

To solve the equation: \[ 2^{x+3} - 2^{x+2} = 2^{x+2} \] Let's simplify and solve for \( x \). ### Step 1: Factor Out Common Terms Notice that \( 2^{x+2} \) is a common factor in the terms on the left side. \[ 2^{x+3} - 2^{x+2} = 2^{x+2} \times (2^{1} - 1) = 2^{x+2} \times (2 - 1) = 2^{x+2} \times 1 = 2^{x+2} \] So, the equation becomes: \[ 2^{x+2} = 2^{x+2} \] ### Step 2: Analyze the Equation The equation simplifies to an identity: \[ 2^{x+2} = 2^{x+2} \] This means that the equation holds true for **all real numbers** \( x \). ### Conclusion **All real numbers \( x \) satisfy the equation.** \[ \boxed{\text{All real numbers }x\text{ are solutions}} \]

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Bonus Knowledge

To solve the equation \( 2^{x+3} - 2^{x+2} = 2^{x+2} \), we can start by simplifying the left side. Notice that we can factor out \( 2^{x+2} \) from the left-hand side: \[ 2^{x+2}(2^1 - 1) = 2^{x+2} \Rightarrow 2^{x+2}(2 - 1) = 2^{x+2} \Rightarrow 2^{x+2}(1) = 2^{x+2} \] This means the equation is valid if \( 2^{x+2} \) is not zero. Therefore, we just need to check the validity of this condition itself. Since \( 2^{x+2} \) is always positive for any real number \( x \), our original solution can be simplified to finding the specific \( x \): We can rewrite it cleanly as: \[ 2^{x+3} - 2^{x+2} - 2^{x+2} = 0 \Rightarrow 2^{x+3} - 2 \cdot 2^{x+2} = 0 \Rightarrow 2^{x+3} - 2^{x+3} = 0 \] Thus, the original equation is satisfied for any real number \( x \). So, the solution set is all real numbers \( x \in \mathbb{R} \)!

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