Difference between revisions of "1961 AHSME Problems/Problem 28"
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* <math>Lemma</math> (<math>Fermat's</math> <math>Theorem</math>): If <math>p</math> is a prime and <math>a</math> is an integer prime to <math>p</math> then we have <math>a^{p-1} \equiv 1\ (\textrm{mod}\ p)</math>. | * <math>Lemma</math> (<math>Fermat's</math> <math>Theorem</math>): If <math>p</math> is a prime and <math>a</math> is an integer prime to <math>p</math> then we have <math>a^{p-1} \equiv 1\ (\textrm{mod}\ p)</math>. | ||
+ | |||
*Let's define <math>U</math>(<math>x</math>) as units digit funtion of <math>x</math>. | *Let's define <math>U</math>(<math>x</math>) as units digit funtion of <math>x</math>. | ||
Line 26: | Line 27: | ||
We can clearly observe that, | We can clearly observe that, | ||
− | U<math>(< | + | <math>U</math>(<math>7^1</math>)= <math>7</math> |
− | + | . . | |
− | + | . . | |
− | + | . . | |
− | U</math>(<math>7^4)= </math>1<math> | + | <math>U</math>(<math>7^4)= </math>1<math> |
and we can see by Fermat's Theorem that this cycle repeats with the cyclicity of </math>4<math>. Now </math>753<math> = </math>4k<math> + </math>1<math> \Rightarrow | and we can see by Fermat's Theorem that this cycle repeats with the cyclicity of </math>4<math>. Now </math>753<math> = </math>4k<math> + </math>1<math> \Rightarrow |
Revision as of 07:56, 31 December 2023
Contents
Problem 28
If is multiplied out, the units' digit in the final product is:
Solution
has a unit digit of . has a unit digit of . has a unit digit of . has a unit digit of . has a unit digit of .
Notice that the unit digit eventually cycles to itself when the exponent is increased by . It also does not matter what the other digits are in the base because the units digit is found by multiplying by only the units digit. Since leaves a remainder of after being divided by , the units digit of is , which is answer choice .
SOLUTION 2
- ( ): If is a prime and is an integer prime to then we have .
- Let's define () as units digit funtion of .
We can clearly observe that,
()= . . . . . . (147534k1U()7 ~GEOMETRY-WIZARD $
See Also
1961 AHSC (Problems • Answer Key • Resources) | ||
Preceded by Problem 27 |
Followed by Problem 29 | |
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All AHSME Problems and Solutions |
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