How To Tell If A Function Is Even Or Odd: 8 Steps (with Pictures)

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Terms of Use wikiHow is where trusted research and expert knowledge come together. Learn why people trust wikiHow How to Determine if a Function is Even or Odd PDF download Download Article A guide to testing a function algebraically & graphically Co-authored by Jake Adams

Last Updated: January 26, 2025

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This article was co-authored by Jake Adams. Jake Adams is an academic tutor and the owner of Simplifi EDU, a Santa Monica, California based online tutoring business offering learning resources and online tutors for academic subjects K-College, SAT & ACT prep, and college admissions applications. With over 14 years of professional tutoring experience, Jake is dedicated to providing his clients the very best online tutoring experience and access to a network of excellent undergraduate and graduate-level tutors from top colleges all over the nation. Jake holds a BS in International Business and Marketing from Pepperdine University. This article has been viewed 202,598 times.

One way to classify functions is as either “even,” “odd,” or neither. These terms refer to the repetition or symmetry of the function. The best way to tell is to manipulate the function algebraically. You can also view the function’s graph and look for symmetry. Once you know how to classify functions, you can then predict the appearance of certain combinations of functions.

Determining Whether a Function is Even or Odd

Swap each variable in the function with its opposite (x to -x; -x to x). If the opposite function is the same as the original, or f(x)=f(-x), then the function is even. If the opposite function is the reverse of the original function, or f(x)=-f(-x), then the function is odd.

Steps

Method 1 Method 1 of 2:

Testing the Function Algebraically

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  1. Step 1 Review opposite variables. 1 Review opposite variables. In algebra, the opposite of a variable is written as a negative. This is true whether the variable in the function is x {\displaystyle x} or anything else. If the variable in the original function already appears as a negative (or a subtraction), then its opposite will be a positive (or addition). The following are examples of some variables and their opposites:[1]
    • the opposite of x {\displaystyle x} is − x {\displaystyle -x}
    • the opposite of q {\displaystyle q} is − q {\displaystyle -q}
    • the opposite of − w {\displaystyle -w} is w {\displaystyle w} .
  2. Step 2 Replace each variable in the function with its opposite. 2 Replace each variable in the function with its opposite. Do not alter the original function other than the sign of the variable. For example:[2]
    • f ( x ) = 4 x 2 − 7 {\displaystyle f(x)=4x^{2}-7} becomes f ( − x ) = 4 ( − x ) 2 − 7 {\displaystyle f(-x)=4(-x)^{2}-7}
    • g ( x ) = 5 x 5 − 2 x {\displaystyle g(x)=5x^{5}-2x} becomes g ( − x ) = 5 ( − x ) 5 − 2 ( − x ) {\displaystyle g(-x)=5(-x)^{5}-2(-x)}
    • h ( x ) = 7 x 2 + 5 x + 3 {\displaystyle h(x)=7x^{2}+5x+3} becomes h ( − x ) = 7 ( − x ) 2 + 5 ( − x ) + 3 {\displaystyle h(-x)=7(-x)^{2}+5(-x)+3} .
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  3. Step 3 Simplify the new function. 3 Simplify the new function. At this stage, you are not concerned with solving the function for any particular numerical value. You simply want to simplify the variables to compare the new function, f(-x), with the original function, f(x). Remember the basic rules of exponents which say that a negative base raised to an even power will be positive, while a negative base raised to an odd power will be negative.[3]
    • f ( − x ) = 4 ( − x ) 2 − 7 {\displaystyle f(-x)=4(-x)^{2}-7}
      • f ( − x ) = 4 x 2 − 7 {\displaystyle f(-x)=4x^{2}-7}
    • g ( − x ) = 5 ( − x ) 5 − 2 ( − x ) {\displaystyle g(-x)=5(-x)^{5}-2(-x)}
      • g ( − x ) = 5 ( − x 5 ) + 2 x {\displaystyle g(-x)=5(-x^{5})+2x}
      • g ( − x ) = − 5 x 5 + 2 x {\displaystyle g(-x)=-5x^{5}+2x}
    • h ( − x ) = 7 ( − x ) 2 + 5 ( − x ) + 3 {\displaystyle h(-x)=7(-x)^{2}+5(-x)+3}
      • h ( − x ) = 7 x 2 − 5 x + 3 {\displaystyle h(-x)=7x^{2}-5x+3}
  4. Step 4 Compare the two functions. 4 Compare the two functions. For each example that you are testing, compare the simplified version of f(-x) with the original f(x). Line up the terms with each other for easy comparison, and compare the signs of all terms.[4]
    • If the two results are the same, then f(x)=f(-x), and the original function is even. An example is:
      • f ( x ) = 4 x 2 − 7 {\displaystyle f(x)=4x^{2}-7} and f ( − x ) = 4 x 2 − 7 {\displaystyle f(-x)=4x^{2}-7} .
      • These two are the same, so the function is even.
    • If each term in the new version of the function is the opposite of the corresponding term of the original, then f(x)=-f(-x), and the function is odd. For example:
      • g ( x ) = 5 x 5 − 2 x {\displaystyle g(x)=5x^{5}-2x} but g ( − x ) = − 5 x 5 + 2 x {\displaystyle g(-x)=-5x^{5}+2x} .
      • Notice that if you multiply each term of the first function by -1, you will create the second function. Thus, the original function g(x) is odd.
    • If the new function does not meet either of these two examples, then it is neither even nor odd. For example:
      • h ( x ) = 7 x 2 + 5 x + 3 {\displaystyle h(x)=7x^{2}+5x+3} but h ( − x ) = 7 x 2 − 5 x + 3 {\displaystyle h(-x)=7x^{2}-5x+3} . The first term is the same in each function, but the second term is an opposite. Therefore, this function is neither even nor odd.
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Method 2 Method 2 of 2:

Testing the Function Graphically

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  1. Step 1 Graph the function... 1 Graph the function. Using graph paper or a graphing calculator, draw the graph of the function. Choose several numerical values for x {\displaystyle x} and insert them into the function to calculate the resulting y {\displaystyle y} value. Plot these points on the graph and, after you have plotted several points, connect them to see the graph of the function.[5]
    • When plotting points, check positive and corresponding negative values for x {\displaystyle x} . For example, if working with the function f ( x ) = 2 x 2 + 1 {\displaystyle f(x)=2x^{2}+1} , plot the following values:
      • f ( 1 ) = 2 ( 1 ) 2 + 1 = 2 + 1 = 3 {\displaystyle f(1)=2(1)^{2}+1=2+1=3} . This gives the point ( 1 , 3 ) {\displaystyle (1,3)} .
      • f ( 2 ) = 2 ( 2 ) 2 + 1 = 2 ( 4 ) + 1 = 8 + 1 = 9 {\displaystyle f(2)=2(2)^{2}+1=2(4)+1=8+1=9} . This gives the point ( 2 , 9 ) {\displaystyle (2,9)} .
      • f ( − 1 ) = 2 ( − 1 ) 2 + 1 = 2 + 1 = 3 {\displaystyle f(-1)=2(-1)^{2}+1=2+1=3} . This gives the point ( − 1 , 3 ) {\displaystyle (-1,3)} .
      • f ( − 2 ) = 2 ( − 2 ) 2 + 1 = 2 ( 4 ) + 1 = 8 + 1 = 9 {\displaystyle f(-2)=2(-2)^{2}+1=2(4)+1=8+1=9} . This gives the point ( − 2 , 9 ) {\displaystyle (-2,9)} .
  2. Step 2 Test for symmetry across the y-axis. 2 Test for symmetry across the y-axis. When looking at a function, symmetry suggests a mirror image. If you see that the part of the graph on the right (positive) side of the y-axis matches the part of the graph on the left (negative) side of the y-axis, then the graph is symmetrical across the y-axis. If a function is symmetrical across the y-axis, then the function is even.[6]
    • You can test symmetry by selecting individual points. If the y-value for any selected x is the same as the y-value for -x, then the function is even. The points that were chosen above for plotting f ( x ) = 2 x 2 + 1 {\displaystyle f(x)=2x^{2}+1} gave the following results:
      • (1,3) and (-1,3)
      • (2,9) and (-2,9).
    • The matching y-values for x=1 and x=-1 and for x=2 and x=-2 indicate that this is an even function. For a true test, selecting two points is not enough proof, but it is a good indication.
  3. Step 3 Test for origin symmetry. 3 Test for origin symmetry. The origin is the central point (0,0). Origin symmetry means that a positive result for a chosen x-value will correspond to a negative result for -x, and vice versa. Odd functions display origin symmetry.[7]
    • If you select some sample values for x and their opposite corresponding -x values, you should get opposite results. Consider the function f ( x ) = x 3 + x {\displaystyle f(x)=x^{3}+x} . This function would provide the following points:
      • f ( 1 ) = 1 3 + 1 = 1 + 1 = 2 {\displaystyle f(1)=1^{3}+1=1+1=2} . The point is (1,2).
      • f ( − 1 ) = ( − 1 ) 3 + ( − 1 ) = − 1 − 1 = − 2 {\displaystyle f(-1)=(-1)^{3}+(-1)=-1-1=-2} . The point is (-1,-2).
      • f ( 2 ) = 2 3 + 2 = 8 + 2 = 10 {\displaystyle f(2)=2^{3}+2=8+2=10} . The point is (2,10).
      • f ( − 2 ) = ( − 2 ) 3 + ( − 2 ) = − 8 − 2 = − 10 {\displaystyle f(-2)=(-2)^{3}+(-2)=-8-2=-10} . The point is (-2,-10).
    • Thus, f(x)=-f(-x), and you can conclude that the function is odd.
  4. Step 4 Look for no symmetry. 4 Look for no symmetry. The final example is a function that has no symmetry from side to side. If you look at the graph, it will not be a mirror image either across the y-axis or around the origin. Consider the function f ( x ) = x 2 + 2 x + 1 {\displaystyle f(x)=x^{2}+2x+1} .[8]
    • Select some values for x and -x, as follows:
      • f ( 1 ) = 1 2 + 2 ( 1 ) + 1 = 1 + 2 + 1 = 4 {\displaystyle f(1)=1^{2}+2(1)+1=1+2+1=4} . The point to plot is (1,4).
      • f ( − 1 ) = ( − 1 ) 2 + 2 ( − 1 ) + ( − 1 ) = 1 − 2 − 1 = − 2 {\displaystyle f(-1)=(-1)^{2}+2(-1)+(-1)=1-2-1=-2} . The point to plot is (-1,-2).
      • f ( 2 ) = 2 2 + 2 ( 2 ) + 2 = 4 + 4 + 2 = 10 {\displaystyle f(2)=2^{2}+2(2)+2=4+4+2=10} . The point to plot is (2,10).
      • f ( − 2 ) = ( − 2 ) 2 + 2 ( − 2 ) + ( − 2 ) = 4 − 4 − 2 = − 2 {\displaystyle f(-2)=(-2)^{2}+2(-2)+(-2)=4-4-2=-2} . The point to plot is (2,-2).
    • These should give you enough points already to note that there is no symmetry. The y-values for opposing pairs of x-values are neither the same nor are they opposites. This function is neither even nor odd.
    • You may recognize that this function, f ( x ) = x 2 + 2 x + 1 {\displaystyle f(x)=x^{2}+2x+1} , can be rewritten as f ( x ) = ( x + 1 ) 2 {\displaystyle f(x)=(x+1)^{2}} . Written in this form, it appears to be an even function because there is only one exponent, and that is an even number. However, this sample illustrates that you cannot determine whether a function is even or odd when it is written in a parenthetical form. You must expand the function into individual terms and then examine the exponents.
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Expert Q&A

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  • Question How can I tell if a piecewise function is continuous? Jake Adams Jake Adams Math Tutor Jake Adams is an academic tutor and the owner of Simplifi EDU, a Santa Monica, California based online tutoring business offering learning resources and online tutors for academic subjects K-College, SAT & ACT prep, and college admissions applications. With over 14 years of professional tutoring experience, Jake is dedicated to providing his clients the very best online tutoring experience and access to a network of excellent undergraduate and graduate-level tutors from top colleges all over the nation. Jake holds a BS in International Business and Marketing from Pepperdine University. Jake Adams Jake Adams Math Tutor Expert Answer In the context of a piecewise function, continuity is achieved when, from both the right and left approaches, the function values (f of X or Y) coincide at a specific X value. In simpler terms, the functions smoothly connect, and there is mutual agreement that a particular X value yields the same result for both functions. However, the differentiability of the piecewise function is contingent on whether the derivatives concur in terms of the values approached from both sides. Thanks! We're glad this was helpful. Thank you for your feedback. If wikiHow has helped you, please consider a small contribution to support us in helping more readers like you. We’re committed to providing the world with free how-to resources, and even $1 helps us in our mission. Support wikiHow Yes No Not Helpful 1 Helpful 1
  • Question How can I tell if a function is even or odd? Jake Adams Jake Adams Math Tutor Jake Adams is an academic tutor and the owner of Simplifi EDU, a Santa Monica, California based online tutoring business offering learning resources and online tutors for academic subjects K-College, SAT & ACT prep, and college admissions applications. With over 14 years of professional tutoring experience, Jake is dedicated to providing his clients the very best online tutoring experience and access to a network of excellent undergraduate and graduate-level tutors from top colleges all over the nation. Jake holds a BS in International Business and Marketing from Pepperdine University. Jake Adams Jake Adams Math Tutor Expert Answer Typically, functions are classified as even or odd according to how they behave on the X-axis and how their polynomial values are parsed. However, if a function represents a constant, it might not be regarded as even or odd. For instance, when Y equals 4, the graph forms a horizontal line at that point, passing the vertical line test and producing a different Y result for every X input. A constant function such as Y = 4 is neither even nor odd because it does not intersect the X-axis, even though it has no repeated Y values for any X input. This difference results from the function not exhibiting symmetry either about the origin (odd) or about the Y-axis (even). Thanks! We're glad this was helpful. Thank you for your feedback. If wikiHow has helped you, please consider a small contribution to support us in helping more readers like you. We’re committed to providing the world with free how-to resources, and even $1 helps us in our mission. Support wikiHow Yes No Not Helpful 1 Helpful 0
  • Question Determine if the function is even, odd, or neither. G(x)=x^10+x^3 Orangejews Orangejews Community Answer It is neither. A quick way to verify that is to evaluate G (1) = 2 and G (-1)= 0. Thanks! We're glad this was helpful. Thank you for your feedback. If wikiHow has helped you, please consider a small contribution to support us in helping more readers like you. We’re committed to providing the world with free how-to resources, and even $1 helps us in our mission. Support wikiHow Yes No Not Helpful 12 Helpful 9
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  • If all the appearance of a variable in the function have even exponents, then the function will be even. If all the exponents are odd, then the overall function will be odd. Thanks Helpful 2 Not Helpful 0
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Warning

  • This article applies only to functions with two variables, which can be graphed on a two-dimensional coordinate grid.

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References

  1. http://www.purplemath.com/modules/fcnnot3.htm
  2. http://www.purplemath.com/modules/fcnnot3.htm
  3. http://www.purplemath.com/modules/fcnnot3.htm
  4. http://www.purplemath.com/modules/fcnnot3.htm
  5. https://www.mathsisfun.com/algebra/functions-odd-even.html
  6. https://www.mathsisfun.com/algebra/functions-odd-even.html
  7. https://www.mathsisfun.com/algebra/functions-odd-even.html
  8. https://www.mathsisfun.com/algebra/functions-odd-even.html

About This Article

Jake Adams Co-authored by: Jake Adams Math Tutor This article was co-authored by Jake Adams. Jake Adams is an academic tutor and the owner of Simplifi EDU, a Santa Monica, California based online tutoring business offering learning resources and online tutors for academic subjects K-College, SAT & ACT prep, and college admissions applications. With over 14 years of professional tutoring experience, Jake is dedicated to providing his clients the very best online tutoring experience and access to a network of excellent undergraduate and graduate-level tutors from top colleges all over the nation. Jake holds a BS in International Business and Marketing from Pepperdine University. This article has been viewed 202,598 times. 21 votes - 60% Co-authors: 4 Updated: January 26, 2025 Views: 202,598 Categories: Mathematics Article SummaryX

In order to tell if a function is even or odd, replace all of the variables in the equation with its opposite. For example, if the variable in the function is x, replace it with -x instead. Simplify the new function as much as possible, then compare that to the original function. If each term in the new version is the opposite of the corresponding term of the original, the function is odd. If they’re the same, then it’s even. If neither of these is true, the function is neither even nor odd. Keep reading to learn how to test the function on a graph! Did this summary help you?YesNo

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Yes No Advertisement Cookies make wikiHow better. By continuing to use our site, you agree to our cookie policy. Jake Adams Co-authored by: Jake Adams Math Tutor 21 votes - 60% Click a star to vote Co-authors: 4 Updated: January 26, 2025 Views: 202,598 Anna Jones

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"It literally shows you the difference between even and odd with clear examples." Rated this article: Anonymous

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