Show \(f(x)=5x^2+6x-9\) is Invertible on \(\mathbb{R}_+\) and Find \(f^{-1}\)

📺 Video Explanation

📝 Question

Let:

\[ f:\mathbb{R}_+\to[-9,\infty),\qquad f(x)=5x^2+6x-9 \]

where \(\mathbb{R}_+\) denotes the set of all non-negative real numbers.

Prove that \(f\) is invertible and:

\[ f^{-1}(y)=\frac{\sqrt{54+5y}-3}{5} \]

---

✅ Solution

🔹 Step 1: Show that \(f\) is one-one

Take:

\[ x_1,x_2\in\mathbb{R}_+ \]

Assume:

\[ f(x_1)=f(x_2) \]

Then:

\[ 5x_1^2+6x_1-9=5x_2^2+6x_2-9 \]

So:

\[ 5(x_1^2-x_2^2)+6(x_1-x_2)=0 \]

Factor:

\[ (x_1-x_2)\big[5(x_1+x_2)+6\big]=0 \]

Since:

\[ x_1,x_2\ge0 \]

we have:

\[ 5(x_1+x_2)+6>0 \]

Therefore:

\[ x_1=x_2 \]

Hence \(f\) is one-one.

---

🔹 Step 2: Show that \(f\) is onto

Let:

\[ y\in[-9,\infty) \]

Take:

\[ x=\frac{\sqrt{54+5y}-3}{5} \]

Since:

\[ y\ge-9 \Rightarrow 54+5y\ge9 \]

So:

\[ \sqrt{54+5y}\ge3 \]

Hence:

\[ x\ge0 \]

Thus:

\[ x\in\mathbb{R}_+ \]

Now:

\[ 5x+3=\sqrt{54+5y} \]

Square:

\[ 25x^2+30x+9=54+5y \]

So:

\[ 25x^2+30x-45=5y \]

Divide by 5:

\[ 5x^2+6x-9=y \]

Thus:

\[ f(x)=y \]

Hence \(f\) is onto.

---

🔹 Step 3: Find inverse

Let:

\[ y=5x^2+6x-9 \]

Multiply by 5:

\[ 5y=25x^2+30x-45 \]

Add 54:

\[ 54+5y=25x^2+30x+9 \]

\[ 54+5y=(5x+3)^2 \]

Take square root:

\[ 5x+3=\sqrt{54+5y} \]

Since \(x\ge0\), positive root is taken:

\[ x=\frac{\sqrt{54+5y}-3}{5} \]

Therefore:

\[ \boxed{f^{-1}(y)=\frac{\sqrt{54+5y}-3}{5}} \]

---

🎯 Final Answer

\[ \boxed{f^{-1}(y)=\frac{\sqrt{54+5y}-3}{5}} \]

Hence \(f\) is invertible.

---

🚀 Exam Shortcut

• Factor injective proof
• Complete square for inverse
• Use positive root due to domain restriction