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Solve Logarithmic Equations Solving an equation means determining the value of the unknown variable for a given function value. To solve a logarithmic equation, use the following strategy: 1. Isolate the logarithm if the logarithm is not alone on one side 2. Change the logarithm to exponential form 3a. Write both sides of the equation with the same base 4a. Set the exponents equal to each other and solve OR 3b. Simplify the exponential term 4b. Use algebra to solve for the variable Example 1: Solve: log2 64 = x 2x = 64 2x = 26 x=6 Change the logarithm to exponential form Rewrite with the same base, 64 = 26 Set the exponents equal to each other Example 2: Solve: log125 5 = x 125x = 5 (53)x = 51 53x = 51 3x = 1 x= 1 3 Change the logarithm to exponential form Rewrite with the same base, 125 = 53 and 5 = 51 Use the Power Rule for exponents Set the exponents equal to each other Divide by 3 Modified from Beginning and Intermediate Algebra, by Tyler Wallace, CC-BY 2010; and Intermediate Algebra, by Andrew Gloag, Anne Gloag, and Mara Landers, CK-12 Foundation, CC-BY 2013. Licensed under a Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/ by/3.0). Example 3: Solve: log3 3x = 1 27 =x 1 27 3x = 3-3 x = -3 Change the logarithm to exponential form Rewrite with the same base, 1 27 = 1 33 = 3-3 Set the exponents equal to each other Example 4: Solve: log5 x = 2 52 = x 25 = x Change the logarithm to exponential form Simplify the exponential term Example 5: Solve: log2 (3x + 5) = 4 24 = 3x + 5 16 = 3x + 5 11 = 3x 11 =x 3 Change the logarithm to exponential form Simplify the exponential term Subtract 5 from both sides Divide by 3 Example 6: Solve: 1 + 2 log3 (x – 5) = 7 1 + 2 log3 (x – 5) = 7 Isolate the logarithm 2 log3 (x – 5) = 6 Subtract 6 from both sides log3 (x – 5) = 3 Divide by 2 33 = x – 5 27 = x – 5 32 = x Change the logarithm to exponential form Simplify the exponential term Add 5 to both sides Modified from Beginning and Intermediate Algebra, by Tyler Wallace, CC-BY 2010; and Intermediate Algebra, by Andrew Gloag, Anne Gloag, and Mara Landers, CK-12 Foundation, CC-BY 2013. Licensed under a Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/ by/3.0). We can also solve equations in which both sides of the equation contain logs. If the logarithms have the same base, the arguments of the logarithm must be equal. Example 7: Solve: log2 (3x – 1) = log2 (5x – 7) 3x – 1 = 5x – 7 -2x – 1 = -7 -2x = -6 x=3 Bases are the same so the arguments are equal Subtract 5x from both sides Add 1 to both sides Divide by -2 Example 8: Solve: log5 (9x) = log5 (3x + 8) 9x = 3x + 8 6x = 8 x= x= 8 6 4 3 Bases are the same so the arguments are equal Subtract 3x from both sides Divide by 6 Reduce the fraction Modified from Beginning and Intermediate Algebra, by Tyler Wallace, CC-BY 2010; and Intermediate Algebra, by Andrew Gloag, Anne Gloag, and Mara Landers, CK-12 Foundation, CC-BY 2013. Licensed under a Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/ by/3.0).
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