54 = 00110110
111
17 = 10001
To write binary numbers in scientific notation, you express the number in the form of ( m \times 2^n ), where ( m ) is a binary number between 1.0 and 1.111... (which is the binary equivalent of 1), and ( n ) is an integer representing the exponent. For example, the binary number 101100 can be written as 1.01100 × 2^5. You shift the binary point to the right of the leading 1 and adjust the exponent accordingly.
The number 68 in binary is 1000100
11001100 in binary is 204 in decimal notation.
111
4294967294 written in binary would be 11111111111111111111111111111110
It is 1.11101111*26
17 = 10001
5.4 x 104
To write binary numbers in scientific notation, you express the number in the form of ( m \times 2^n ), where ( m ) is a binary number between 1.0 and 1.111... (which is the binary equivalent of 1), and ( n ) is an integer representing the exponent. For example, the binary number 101100 can be written as 1.01100 × 2^5. You shift the binary point to the right of the leading 1 and adjust the exponent accordingly.
It is: 6.0*10^4 in scientific notation and as a product of its prime factors in exponents it is 25*3*54 = 60,000
The number 68 in binary is 1000100
11001100 in binary is 204 in decimal notation.
101011In other words . . .2^0 + 2^1 + 2^3 + 2^5
43869 converted to binary notation is 1010101101011101
The binary number 1101 equals 13