Limits At Infinity for MATH 139

Exam Relevance for MATH 139

Likelihood of appearing: High

Common for finding horizontal asymptotes. Compare degrees of numerator and denominator.

This skill appears on:

Practice Final #3

Lesson

What is a Limit at Infinity?

A limit at infinity describes what happens to a function as $x$ grows arbitrarily large (positive or negative).

Notation:

$\displaystyle\lim_{x \to \infty} f(x) = L$ means $f(x)$ approaches $L$ as $x$ gets larger and larger
$\displaystyle\lim_{x \to -\infty} f(x) = L$ means $f(x)$ approaches $L$ as $x$ gets more and more negative

🔑 Don't confuse these two concepts:

Infinite Limits (Skill 90): $x \to a$ but $f(x) \to \pm\infty$ — the output blows up

Limits at Infinity (this skill): $x \to \pm\infty$ but $f(x) \to L$ — the input goes to infinity

Horizontal Asymptotes

When $\displaystyle\lim_{x \to \infty} f(x) = L$ or $\displaystyle\lim_{x \to -\infty} f(x) = L$, the line $y = L$ is called a horizontal asymptote.

The graph approaches this horizontal line as $x$ goes far to the right or far to the left.

In this graph, we see $f(x) = \frac{1}{x}$. Notice how the function approaches the horizontal line $y = 0$ (the x-axis) as $x$ goes to $+\infty$ or $-\infty$. The function gets closer and closer to $0$ but never actually reaches it.

Key Principle: Powers of $x$ in the Denominator

The fundamental building block:

$$\lim_{x \to \infty} \frac{1}{x^n} = 0 \quad \text{for any } n > 0$$

As $x$ gets huge, $\frac{1}{x^n}$ gets tiny. This is the key fact for evaluating most limits at infinity.

Rational Functions: The Degree Comparison Method

For $\displaystyle\lim_{x \to \pm\infty} \frac{P(x)}{Q(x)}$ where $P$ and $Q$ are polynomials:

Compare the degrees:

Condition	Result
deg(P) < deg(Q)	Limit = $0$
deg(P) = deg(Q)	Limit = $\dfrac{\text{leading coefficient of } P}{\text{leading coefficient of } Q}$
deg(P) > deg(Q)	Limit = $\pm\infty$ (DNE as a finite number)

The "Divide by Highest Power" Technique

Strategy: Divide both numerator and denominator by the highest power of $x$ in the denominator.

This converts the problem into something with $\frac{1}{x^n}$ terms that go to $0$.

Example 1: Degree of Denominator is Higher

Problem: Find $\displaystyle\lim_{x \to \infty} \frac{3x + 1}{x^2 + 5}$

Step 1: Identify degrees. Numerator: degree 1. Denominator: degree 2.

Since deg(numerator) < deg(denominator), we expect the limit to be $0$.

Step 2: Divide everything by $x^2$ (highest power in denominator):

$$\lim_{x \to \infty} \frac{3x + 1}{x^2 + 5} = \lim_{x \to \infty} \frac{\frac{3x}{x^2} + \frac{1}{x^2}}{\frac{x^2}{x^2} + \frac{5}{x^2}} = \lim_{x \to \infty} \frac{\frac{3}{x} + \frac{1}{x^2}}{1 + \frac{5}{x^2}}$$

Step 3: As $x \to \infty$: $\frac{3}{x} \to 0$, $\frac{1}{x^2} \to 0$, $\frac{5}{x^2} \to 0$

$$= \frac{0 + 0}{1 + 0} = \boxed{0}$$

Example 2: Same Degree (Most Common on Exams!)

Problem: Find $\displaystyle\lim_{x \to \infty} \frac{4x^2 - x + 3}{2x^2 + 7x}$

Step 1: Both numerator and denominator have degree 2.

Step 2: Divide everything by $x^2$:

$$\lim_{x \to \infty} \frac{4x^2 - x + 3}{2x^2 + 7x} = \lim_{x \to \infty} \frac{4 - \frac{1}{x} + \frac{3}{x^2}}{2 + \frac{7}{x}}$$

Step 3: As $x \to \infty$, all the $\frac{1}{x}$ and $\frac{1}{x^2}$ terms vanish:

$$= \frac{4 - 0 + 0}{2 + 0} = \boxed{2}$$

Shortcut: When degrees are equal, just take the ratio of leading coefficients: $\frac{4}{2} = 2$

Example 3: Degree of Numerator is Higher

Problem: Find $\displaystyle\lim_{x \to \infty} \frac{x^3 + 2x}{5x^2 - 1}$

Step 1: Numerator degree 3 > Denominator degree 2.

Step 2: Divide by $x^2$:

$$\lim_{x \to \infty} \frac{x^3 + 2x}{5x^2 - 1} = \lim_{x \to \infty} \frac{x + \frac{2}{x}}{5 - \frac{1}{x^2}}$$

Step 3: As $x \to \infty$:

$$= \frac{\infty + 0}{5 - 0} = \boxed{+\infty}$$

The limit does not exist as a finite number—the function grows without bound.

Example 4: Negative Infinity

Problem: Find $\displaystyle\lim_{x \to -\infty} \frac{2x - 5}{x + 3}$

Step 1: Same degree (both degree 1).

Step 2: Divide by $x$:

$$\lim_{x \to -\infty} \frac{2x - 5}{x + 3} = \lim_{x \to -\infty} \frac{2 - \frac{5}{x}}{1 + \frac{3}{x}}$$

Step 3: As $x \to -\infty$: $\frac{5}{x} \to 0$ and $\frac{3}{x} \to 0$

$$= \frac{2 - 0}{1 + 0} = \boxed{2}$$

Note: For rational functions, limits at $+\infty$ and $-\infty$ are usually the same!

Example 5: Square Roots at Infinity

Problem: Find $\displaystyle\lim_{x \to \infty} \frac{\sqrt{4x^2 + 1}}{3x - 2}$

Step 1: The square root contains $x^2$, so $\sqrt{4x^2 + 1} \approx \sqrt{4x^2} = 2|x| = 2x$ for large positive $x$.

Step 2: Divide numerator and denominator by $x$:

$$\lim_{x \to \infty} \frac{\sqrt{4x^2 + 1}}{3x - 2} = \lim_{x \to \infty} \frac{\frac{\sqrt{4x^2 + 1}}{x}}{\frac{3x - 2}{x}} = \lim_{x \to \infty} \frac{\sqrt{\frac{4x^2 + 1}{x^2}}}{3 - \frac{2}{x}}$$

Step 3: Simplify inside the square root:

$$= \lim_{x \to \infty} \frac{\sqrt{4 + \frac{1}{x^2}}}{3 - \frac{2}{x}} = \frac{\sqrt{4 + 0}}{3 - 0} = \frac{2}{3}$$

$$\boxed{\frac{2}{3}}$$

⚠️ Warning for $x \to -\infty$: When $x < 0$, we have $\sqrt{x^2} = |x| = -x$. This can change the sign of the answer!

Common Mistakes and Misunderstandings

❌ Mistake: Forgetting that $\frac{1}{x} \to 0$ as $x \to \infty$

Wrong: Treating $\frac{1}{x}$ as if it stays significant when $x$ is huge.

Why it's wrong: Any constant divided by an ever-growing quantity shrinks toward zero.

Correct: $\displaystyle\lim_{x \to \infty} \frac{1}{x} = 0$, and similarly $\frac{5}{x} \to 0$, $\frac{1}{x^2} \to 0$, etc.

❌ Mistake: Treating $\frac{\infty}{\infty}$ as $1$

Wrong: $\displaystyle\lim_{x \to \infty} \frac{x^2}{x^2 + 1} = \frac{\infty}{\infty} = 1$

Why it's wrong: $\frac{\infty}{\infty}$ is an indeterminate form—it tells you nothing! You must simplify first.

Correct: Divide by $x^2$: $\displaystyle\lim_{x \to \infty} \frac{1}{1 + \frac{1}{x^2}} = \frac{1}{1 + 0} = 1$ (This one happens to be $1$, but that's not always true!)

❌ Mistake: Forgetting that $\sqrt{x^2} = |x|$, not just $x$

Wrong: For $\displaystyle\lim_{x \to -\infty} \frac{\sqrt{x^2}}{x}$, writing $\frac{x}{x} = 1$.

Why it's wrong: When $x < 0$, we have $\sqrt{x^2} = |x| = -x$, not $x$.

Correct: $\displaystyle\lim_{x \to -\infty} \frac{\sqrt{x^2}}{x} = \frac{-x}{x} = -1$

Quick Reference Summary

Situation	Strategy	Result
$\frac{\text{lower degree}}{\text{higher degree}}$	Divide by highest power	$0$
$\frac{\text{same degree}}{\text{same degree}}$	Ratio of leading coefficients	$\frac{a_n}{b_n}$
$\frac{\text{higher degree}}{\text{lower degree}}$	Divide by highest power	$\pm\infty$
Contains $\sqrt{x^2 + \ldots}$	Factor out $x^2$ from under radical	Watch sign of $x$!

Formulas & Reference

Basic Limit at Infinity

\lim_{x \to \infty} \frac{1}{x^n} = 0

For any positive power n, 1 divided by x^n approaches 0 as x grows without bound.

Variables:

$n$:: any positive exponent

Degree Comparison: Numerator < Denominator

\lim_{x \to \pm\infty} \frac{P(x)}{Q(x)} = 0 \quad \text{if } \deg(P) < \deg(Q)

When the numerator polynomial has lower degree than the denominator, the limit is 0.

Variables:

$P(x)$:: numerator polynomial
$Q(x)$:: denominator polynomial

Degree Comparison: Equal Degrees

\lim_{x \to \pm\infty} \frac{a_n x^n + \ldots}{b_n x^n + \ldots} = \frac{a_n}{b_n}

When numerator and denominator have the same degree, the limit equals the ratio of leading coefficients.

Variables:

$a_n$:: leading coefficient of numerator
$b_n$:: leading coefficient of denominator

Degree Comparison: Numerator > Denominator

\lim_{x \to \pm\infty} \frac{P(x)}{Q(x)} = \pm\infty \quad \text{if } \deg(P) > \deg(Q)

When the numerator polynomial has higher degree than the denominator, the limit is infinite (DNE as a finite number).

Variables:

$P(x)$:: numerator polynomial
$Q(x)$:: denominator polynomial

Square Root at Infinity

\sqrt{x^2} = |x| = \begin{cases} x & \text{if } x > 0 \\ -x & \text{if } x < 0 \end{cases}

When simplifying square roots for limits at infinity, remember that √(x²) = |x|, which equals x for x→+∞ but equals -x for x→-∞.

Variables:

$x$:: the variable approaching infinity

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