QuestionCalculate the following operations in the given bases: a. $31_{\text {five }} \cdot 3_{\text {five }}$ b. $31_{\text {five }} + 3_{\text {five }}$ c. $51_{\text {six }} \cdot 23_{\text {six }}$ d. $242_{\text {five }} \div 4$ e. $10110_{\text {two }} + 10_{\text {two }}$ f. $10011_{\text {two }} \cdot 100_{\text {two }}$

Studdy Solution

STEP 1

Assumptions1. The operations are performed in the given base. . The base of a number is the number of unique digits, including zero, used to represent numbers in a positional numeral system.
3. The base of a number can be changed to another base using appropriate conversion methods.

STEP 2

Let's start with the first operation $31_{\text {five }} \cdot_{\text {five }}$ . First, we need to convert these numbers from base five to base ten to perform the multiplication.
$31_{\text {five }} = \cdot5^1 +1 \cdot5^0 =15 +1 =16_{\text {ten }}$ $_{\text {five }} = \cdot5^0 =_{\text {ten }}$

STEP 3

Now, perform the multiplication in base ten.
$16_{\text {ten }} \cdot3_{\text {ten }} =48_{\text {ten }}$

STEP 4

Finally, convert the result back to base five.
$48_{\text {ten }} =3 \cdot^2 +2 \cdot^1 +3 \cdot^0 =323_{\text {five }}$ So, $31_{\text {five }} \cdot3_{\text {five }} =323_{\text {five }}$ .

STEP 5

Next, let's perform the operation $242_{\text {five }} \div4_{\text {five }}$ . First, convert these numbers from base five to base ten.
$242_{\text {five }} =2 \cdot5^2 +4 \cdot5^1 +2 \cdot5^0 =50 +20 +2 =72_{\text {ten }}$ $4_{\text {five }} =4 \cdot5^0 =4_{\text {ten }}$

STEP 6

Now, perform the division in base ten.
$72_{\text {ten }} \div4_{\text {ten }} =18_{\text {ten }}$

STEP 7

Finally, convert the result back to base five.
$18_{\text {ten }} =3 \cdot5^1 +3 \cdot5^0 =33_{\text {five }}$ So, $242_{\text {five }} \div4_{\text {five }} =33_{\text {five }}$ .

STEP 8

Next, perform the operation $31_{\text {five }}+3_{\text {five }}$ . Convert these numbers from base five to base ten.
$31_{\text {five }} =3 \cdot5^1 +1 \cdot5^0 =15 +1 =16_{\text {ten }}$ $3_{\text {five }} =3 \cdot5^0 =3_{\text {ten }}$

STEP 9

Now, perform the addition in base ten.
$16_{\text {ten }} +3_{\text {ten }} =19_{\text {ten }}$

STEP 10

Finally, convert the result back to base five.
$19_{\text {ten }} =3 \cdot5^ +4 \cdot5^0 =34_{\text {five }}$ So, $31_{\text {five }}+3_{\text {five }} =34_{\text {five }}$ .

STEP 11

Next, perform the operation $10110_{\text {two }}+10_{\text {two }}$ . Convert these numbers from base two to base ten.
$10110_{\text {two }} = \cdot^4 +0 \cdot^3 + \cdot^ + \cdot^ +0 \cdot^0 =16 +4 + =22_{\text {ten }}$ $10_{\text {two }} = \cdot^ +0 \cdot^0 =_{\text {ten }}$

STEP 12

Now, perform the addition in base ten.
$22_{\text {ten }} +2_{\text {ten }} =24_{\text {ten }}$

STEP 13

Finally, convert the result back to base two.
$24_{\text {ten }} = \cdot2^ + \cdot2^3 +0 \cdot2^2 +0 \cdot2^ +0 \cdot2^0 =11000_{\text {two }}$ So, $10110_{\text {two }}+10_{\text {two }} =11000_{\text {two }}$ .

STEP 14

Next, perform the operation $51_{\text {six }} \cdot23_{\text {six }}$ . Convert these numbers from base six to base ten.
$51_{\text {six }} = \cdot6^ + \cdot6^0 =30 + =31_{\text {ten }}$ $23_{\text {six }} =2 \cdot6^ +3 \cdot6^0 =12 +3 =_{\text {ten }}$

STEP 15

Now, perform the multiplication in base ten.
$31_{\text {ten }} \cdot15_{\text {ten }} =465_{\text {ten }}$

STEP 16

Finally, convert the result back to base six.
$465_{\text {ten }} =2 \cdot6^3 +0 \cdot6^2 +3 \cdot6^ +3 \cdot6^0 =2033_{\text {six }}$ So, $51_{\text {six }} \cdot23_{\text {six }} =2033_{\text {six }}$ .

STEP 17

Finally, perform the operation $10011_{\text {two }} \cdot100_{\text {two }}$ . Convert these numbers from base two to base ten.
$10011_{\text {two }} = \cdot2^4 +0 \cdot2^3 +0 \cdot2^2 + \cdot2^ + \cdot2^0 =16 +2 + =19_{\text {ten }}$ $100_{\text {two }} = \cdot2^2 +0 \cdot2^ +0 \cdot2^0 =4_{\text {ten }}$

STEP 18

Now, perform the multiplication in base ten.
$_{\text {ten }} \cdot4_{\text {ten }} =76_{\text {ten }}$

STEP 19

Finally, convert the result back to base two.
$76_{\text {ten }} =1 \cdot^6 + \cdot^5 + \cdot^4 +1 \cdot^3 +1 \cdot^ + \cdot^1 + \cdot^ =100110_{\text {two }}$ So, $10011_{\text {two }} \cdot100_{\text {two }} =100110_{\text {two }}$ .

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Studdy Solution

STEP 1

Assumptions1. The operations are performed in the given base. . The base of a number is the number of unique digits, including zero, used to represent numbers in a positional numeral system.3. The base of a number can be changed to another base using appropriate conversion methods.

STEP 2

STEP 3

Now, perform the multiplication in base ten.16ten ⋅3ten =48ten 16_{\text {ten }} \cdot3_{\text {ten }} =48_{\text {ten }}16ten ​⋅3ten ​=48ten ​

STEP 4

STEP 5

STEP 6

Now, perform the division in base ten.72ten ÷4ten =18ten 72_{\text {ten }} \div4_{\text {ten }} =18_{\text {ten }}72ten ​÷4ten ​=18ten ​

STEP 7

Finally, convert the result back to base five.18ten =3⋅51+3⋅50=33five 18_{\text {ten }} =3 \cdot5^1 +3 \cdot5^0 =33_{\text {five }}18ten ​=3⋅51+3⋅50=33five ​So, 242five ÷4five =33five 242_{\text {five }} \div4_{\text {five }} =33_{\text {five }}242five ​÷4five ​=33five ​.

STEP 8

STEP 9

Now, perform the addition in base ten.16ten +3ten =19ten 16_{\text {ten }} +3_{\text {ten }} =19_{\text {ten }}16ten ​+3ten ​=19ten ​

STEP 10

Finally, convert the result back to base five.19ten =3⋅5+4⋅50=34five 19_{\text {ten }} =3 \cdot5^ +4 \cdot5^0 =34_{\text {five }}19ten ​=3⋅5+4⋅50=34five ​So, 31five +3five =34five 31_{\text {five }}+3_{\text {five }} =34_{\text {five }}31five ​+3five ​=34five ​.

STEP 11

STEP 12

Now, perform the addition in base ten.22ten +2ten =24ten 22_{\text {ten }} +2_{\text {ten }} =24_{\text {ten }}22ten ​+2ten ​=24ten ​

STEP 13

STEP 14

STEP 15

Now, perform the multiplication in base ten.31ten ⋅15ten =465ten 31_{\text {ten }} \cdot15_{\text {ten }} =465_{\text {ten }}31ten ​⋅15ten ​=465ten ​

STEP 16

STEP 17

STEP 18

Now, perform the multiplication in base ten.ten ⋅4ten =76ten _{\text {ten }} \cdot4_{\text {ten }} =76_{\text {ten }}ten ​⋅4ten ​=76ten ​

STEP 19

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Assumptions1. The operations are performed in the given base. . The base of a number is the number of unique digits, including zero, used to represent numbers in a positional numeral system.
3. The base of a number can be changed to another base using appropriate conversion methods.

Now, perform the multiplication in base ten.
$16_{\text {ten }} \cdot3_{\text {ten }} =48_{\text {ten }}$

Now, perform the division in base ten.
$72_{\text {ten }} \div4_{\text {ten }} =18_{\text {ten }}$

Finally, convert the result back to base five.
$18_{\text {ten }} =3 \cdot5^1 +3 \cdot5^0 =33_{\text {five }}$ So, $242_{\text {five }} \div4_{\text {five }} =33_{\text {five }}$ .

Now, perform the addition in base ten.
$16_{\text {ten }} +3_{\text {ten }} =19_{\text {ten }}$

Finally, convert the result back to base five.
$19_{\text {ten }} =3 \cdot5^ +4 \cdot5^0 =34_{\text {five }}$ So, $31_{\text {five }}+3_{\text {five }} =34_{\text {five }}$ .

Now, perform the addition in base ten.
$22_{\text {ten }} +2_{\text {ten }} =24_{\text {ten }}$

Now, perform the multiplication in base ten.
$31_{\text {ten }} \cdot15_{\text {ten }} =465_{\text {ten }}$

Now, perform the multiplication in base ten.
$_{\text {ten }} \cdot4_{\text {ten }} =76_{\text {ten }}$