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1.
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Select the graph of the function.
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2.
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Use a graphing utility to construct a table of values for the function. Round
your answer to two decimal places.
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3.
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Sketch the graph of the function.
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4.
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Write the exponential equation in logarithmic form.
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5.
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Write the exponential equation in logarithmic form.
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6.
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Use the One-to-One Property to solve the equation for x.
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7.
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Use the One-to-One Property to solve the equation for x.
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8.
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Rewrite the logarithm as a ratio of natural logarithms.
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9.
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Rewrite the logarithm as a ratio of natural logarithms.
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10.
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Rewrite the logarithm as a ratio of common logarithms.
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11.
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Use the change-of-base formula to rewrite the logarithm as a ratio of
logarithms. Then use a graphing utility to graph the ratio.
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12.
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Find the exact value of without using a
calculator.
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13.
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Determine whether the given x-value is a solution (or an approximate
solution) of the equation.
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14.
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Determine whether the given x-value is a solution (or an approximate
solution) of the equation.
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15.
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Solve for .
a. | 2 | b. | | c. | 6 | d. | 4 | e. | |
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16.
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Solve for . Approximate the result to three decimal
places.
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17.
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Solve the exponential equation algebraically. Approximate the result to three
decimal places.
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18.
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$6500 is invested in an account at interest rate r, compounded
continuously. Find the time required for the amount to triple. (Approximate the result to two decimal
places.)
a. | 15.50 yr | b. | 14.50 yr | c. | 26.16
yr | d. | 18.50 yr | e. | 17.50 yr |
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19.
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Solve for x: . Round to 3 decimal places.
a. | –12.715 | b. | 9.574 | c. | 12.715 | d. | –4.787 | e. | 10.518 |
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20.
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Complete the table for the radioactive isotope. Round your answer to two decimal
places. Isotope | Half-life (years) | Initial Quantity | Amount after 1000 years | | 5715 | | ---- | | | | |
a. | Amount after 1000 years: | b. | Amount after 1000
years: | c. | Amount after 1000
years: | d. | Amount after 1000
years: | e. | Amount after 1000
years: |
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