Positive derivative implies increasing

Statement

On an open interval

Suppose ${\displaystyle f}$ is a function on an open interval ${\displaystyle I}$ that may be infinite in one or both directions (i..e, ${\displaystyle I}$ is of the form ${\displaystyle \!(a,b)}$, ${\displaystyle (a,\infty )}$, ${\displaystyle (-\infty ,b)}$, or ${\displaystyle (-\infty ,\infty )}$). Suppose the derivative of ${\displaystyle f}$ exists and is positive everywhere on ${\displaystyle I}$, i.e., ${\displaystyle \!f'(x)>0}$ for all ${\displaystyle x\in I}$. Then, ${\displaystyle f}$ is an increasing function on ${\displaystyle I}$, i.e.:

${\displaystyle x_{1},x_{2}\in I,x_{1}<x_{2}\implies f(x_{1})<f(x_{2})}$

On a general interval

Suppose ${\displaystyle f}$ is a function on an interval ${\displaystyle I}$ that may be infinite in one or both directions and may be open or closed at either end. Suppose ${\displaystyle f}$ is a continuous function on all of ${\displaystyle I}$ and that the derivative of ${\displaystyle f}$ exists and is positive everywhere on the interior of ${\displaystyle I}$, i.e., ${\displaystyle f'(x)>0}$ for all ${\displaystyle x\in I}$ other than the endpoints of ${\displaystyle I}$ (if they exist). Then, ${\displaystyle f}$ is an increasing function on ${\displaystyle I}$, i.e.:

${\displaystyle x_{1},x_{2}\in I,x_{1}<x_{2}\implies f(x_{1})<f(x_{2})}$

Related facts

Similar facts

• Zero derivative implies locally constant
• Negative derivative implies decreasing
• Nonnegative derivative that is zero only at isolated points implies increasing
• Increasing and differentiable implies nonnegative derivative

Opposite facts

• Positive derivative at a point not implies increasing around the point

Facts used

1. Lagrange mean value theorem

Proof

General version

Given: A function ${\displaystyle f}$ on interval ${\displaystyle I}$ such that ${\displaystyle f'(x)>0}$ for all ${\displaystyle x}$ in the interior of ${\displaystyle I}$ and ${\displaystyle f}$ is continuous on ${\displaystyle I}$. Numbers ${\displaystyle x_{1}<x_{2}}$ with ${\displaystyle x_{1},x_{2}\in I}$.

To prove: ${\displaystyle \!f(x_{1})<f(x_{2})}$

Proof:

Step no.	Assertion/construction	Facts used	Given data used	Previous steps used	Explanation
1	Consider the difference quotient ${\displaystyle \!{\frac {f(x_{2})-f(x_{1})}{x_{2}-x_{1}}}}$. There exists ${\displaystyle x_{3}}$ such that ${\displaystyle x_{1}<x_{3}<x_{2}}$ and ${\displaystyle \!f'(x_{3})}$ equals this difference quotient.	Fact (1)	${\displaystyle x_{1}<x_{2}}$, ${\displaystyle f}$ is defined and continuous on an interval ${\displaystyle I}$ containing ${\displaystyle x_{1},x_{2}}$, differentiable on the interior of the interval.		[SHOW MORE] Since ${\displaystyle f}$ is defined and continuous on an interval containing both ${\displaystyle x_{1}}$ and ${\displaystyle x_{2}}$, it is in particular defined and on ${\displaystyle [x_{1},x_{2}]}$, which lies inside the open interval. Further, ${\displaystyle f}$ is differentiable on the interior of ${\displaystyle I}$, and hence on the open interval ${\displaystyle (x_{1},x_{2})}$, which is contained in the interior of ${\displaystyle I}$. Thus, the conditions needed to apply Fact (1) are available. Using Fact (1) gives the existence of ${\displaystyle x_{3}}$ such that ${\displaystyle f'(x_{3})}$ equals the difference quotient.
2	The difference quotient ${\displaystyle \!{\frac {f(x_{2})-f(x_{1})}{x_{2}-x_{1}}}}$ is positive.		${\displaystyle f'(x)}$ is positive for all ${\displaystyle x}$ in the interior of ${\displaystyle I}$.	Step (1)	[SHOW MORE] By Step (1), there exists ${\displaystyle x_{3}}$ such that ${\displaystyle f'(x_{3})}$ equals the difference quotient. From the given data, ${\displaystyle f'(x_{3})}$ is positive. Combining, we obtain that the difference quotient itself is positive.
3	${\displaystyle f(x_{1})<f(x_{2})}$		${\displaystyle x_{1}<x_{2}}$	Step (2)	[SHOW MORE] In Step (2), we obtained that the difference quotient is positive. The denominator of the expression is positive because ${\displaystyle x_{1}<x_{2}}$. Thus, the numerator must also be positive, giving ${\displaystyle f(x_{1})<f(x_{2})}$ upon rearrangement.