0.974 053 5 Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard

Convert decimal 0.974 053 5₍₁₀₎ to 64 bit double precision IEEE 754 binary floating point representation standard (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

binary-system

Convert decimal numbers to 64 bit double precision IEEE 754 binary floating point representation standard

What are the steps to convert decimal number
0.974 053 5₍₁₀₎ to 64 bit double precision IEEE 754 binary floating point representation (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

1. First, convert to binary (in base 2) the integer part: 0.
Divide the number repeatedly by 2.

Keep track of each remainder.

We stop when we get a quotient that is equal to zero.

division = quotient + remainder;
0 ÷ 2 = 0 + 0;

2. Construct the base 2 representation of the integer part of the number.

Take all the remainders starting from the bottom of the list constructed above.

0₍₁₀₎ =

0₍₂₎

3. Convert to binary (base 2) the fractional part: 0.974 053 5.

Multiply it repeatedly by 2.

Keep track of each integer part of the results.

Stop when we get a fractional part that is equal to zero.

#) multiplying = integer + fractional part;
1) 0.974 053 5 × 2 = 1 + 0.948 107;
2) 0.948 107 × 2 = 1 + 0.896 214;
3) 0.896 214 × 2 = 1 + 0.792 428;
4) 0.792 428 × 2 = 1 + 0.584 856;
5) 0.584 856 × 2 = 1 + 0.169 712;
6) 0.169 712 × 2 = 0 + 0.339 424;
7) 0.339 424 × 2 = 0 + 0.678 848;
8) 0.678 848 × 2 = 1 + 0.357 696;
9) 0.357 696 × 2 = 0 + 0.715 392;
10) 0.715 392 × 2 = 1 + 0.430 784;
11) 0.430 784 × 2 = 0 + 0.861 568;
12) 0.861 568 × 2 = 1 + 0.723 136;
13) 0.723 136 × 2 = 1 + 0.446 272;
14) 0.446 272 × 2 = 0 + 0.892 544;
15) 0.892 544 × 2 = 1 + 0.785 088;
16) 0.785 088 × 2 = 1 + 0.570 176;
17) 0.570 176 × 2 = 1 + 0.140 352;
18) 0.140 352 × 2 = 0 + 0.280 704;
19) 0.280 704 × 2 = 0 + 0.561 408;
20) 0.561 408 × 2 = 1 + 0.122 816;
21) 0.122 816 × 2 = 0 + 0.245 632;
22) 0.245 632 × 2 = 0 + 0.491 264;
23) 0.491 264 × 2 = 0 + 0.982 528;
24) 0.982 528 × 2 = 1 + 0.965 056;
25) 0.965 056 × 2 = 1 + 0.930 112;
26) 0.930 112 × 2 = 1 + 0.860 224;
27) 0.860 224 × 2 = 1 + 0.720 448;
28) 0.720 448 × 2 = 1 + 0.440 896;
29) 0.440 896 × 2 = 0 + 0.881 792;
30) 0.881 792 × 2 = 1 + 0.763 584;
31) 0.763 584 × 2 = 1 + 0.527 168;
32) 0.527 168 × 2 = 1 + 0.054 336;
33) 0.054 336 × 2 = 0 + 0.108 672;
34) 0.108 672 × 2 = 0 + 0.217 344;
35) 0.217 344 × 2 = 0 + 0.434 688;
36) 0.434 688 × 2 = 0 + 0.869 376;
37) 0.869 376 × 2 = 1 + 0.738 752;
38) 0.738 752 × 2 = 1 + 0.477 504;
39) 0.477 504 × 2 = 0 + 0.955 008;
40) 0.955 008 × 2 = 1 + 0.910 016;
41) 0.910 016 × 2 = 1 + 0.820 032;
42) 0.820 032 × 2 = 1 + 0.640 064;
43) 0.640 064 × 2 = 1 + 0.280 128;
44) 0.280 128 × 2 = 0 + 0.560 256;
45) 0.560 256 × 2 = 1 + 0.120 512;
46) 0.120 512 × 2 = 0 + 0.241 024;
47) 0.241 024 × 2 = 0 + 0.482 048;
48) 0.482 048 × 2 = 0 + 0.964 096;
49) 0.964 096 × 2 = 1 + 0.928 192;
50) 0.928 192 × 2 = 1 + 0.856 384;
51) 0.856 384 × 2 = 1 + 0.712 768;
52) 0.712 768 × 2 = 1 + 0.425 536;
53) 0.425 536 × 2 = 0 + 0.851 072;

We didn't get any fractional part that was equal to zero. But we had enough iterations (over Mantissa limit) and at least one integer that was different from zero => FULL STOP (Losing precision - the converted number we get in the end will be just a very good approximation of the initial one).

4. Construct the base 2 representation of the fractional part of the number.

Take all the integer parts of the multiplying operations, starting from the top of the constructed list above:

0.974 053 5₍₁₀₎ =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎

5. Positive number before normalization:

0.974 053 5₍₁₀₎ =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎

6. Normalize the binary representation of the number.

Shift the decimal mark 1 positions to the right, so that only one non zero digit remains to the left of it:

0.974 053 5₍₁₀₎=

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎=

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎ × 2⁰=

1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110₍₂₎ × 2^-1

7. Up to this moment, there are the following elements that would feed into the 64 bit double precision IEEE 754 binary floating point representation:

Sign 0 (a positive number)

Exponent (unadjusted): -1

Mantissa (not normalized):
1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

8. Adjust the exponent.

Use the 11 bit excess/bias notation:

Exponent (adjusted) =

Exponent (unadjusted) + 2^(11-1) - 1 =

-1 + 2^(11-1) - 1 =

(-1 + 1 023)₍₁₀₎ =

1 022₍₁₀₎

9. Convert the adjusted exponent from the decimal (base 10) to 11 bit binary.

Use the same technique of repeatedly dividing by 2:

division = quotient + remainder;
1 022 ÷ 2 = 511 + 0;
511 ÷ 2 = 255 + 1;
255 ÷ 2 = 127 + 1;
127 ÷ 2 = 63 + 1;
63 ÷ 2 = 31 + 1;
31 ÷ 2 = 15 + 1;
15 ÷ 2 = 7 + 1;
7 ÷ 2 = 3 + 1;
3 ÷ 2 = 1 + 1;
1 ÷ 2 = 0 + 1;

10. Construct the base 2 representation of the adjusted exponent.

Take all the remainders starting from the bottom of the list constructed above.

Exponent (adjusted) =

1022₍₁₀₎ =

011 1111 1110₍₂₎

11. Normalize the mantissa.

a) Remove the leading (the leftmost) bit, since it's allways 1, and the decimal point, if the case.

b) Adjust its length to 52 bits, only if necessary (not the case here).

Mantissa (normalized) =

1. 1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110 =

1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

12. The three elements that make up the number's 64 bit double precision IEEE 754 binary floating point representation:

Sign (1 bit) =
0 (a positive number)

Exponent (11 bits) =
011 1111 1110

Mantissa (52 bits) =
1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

Decimal number 0.974 053 5 converted to 64 bit double precision IEEE 754 binary floating point representation:

0 - 011 1111 1110 - 1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

» Convert decimal 0.974 057 3 to 64 bit double precision IEEE 754 binary floating point representation standard

» Calculations Performed by Our Visitors: Decimal Numbers Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard. Data organized on a Monthly Basis

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How to convert numbers from the decimal system (base ten) to 64 bit double precision IEEE 754 binary floating point standard

Follow the steps below to convert a base 10 decimal number to 64 bit double precision IEEE 754 binary floating point:

1. If the number to be converted is negative, start with its the positive version.
2. First convert the integer part. Divide repeatedly by 2 the positive representation of the integer number that is to be converted to binary, until we get a quotient that is equal to zero, keeping track of each remainder.
3. Construct the base 2 representation of the positive integer part of the number, by taking all the remainders from the previous operations, starting from the bottom of the list constructed above. Thus, the last remainder of the divisions becomes the first symbol (the leftmost) of the base two number, while the first remainder becomes the last symbol (the rightmost).
4. Then convert the fractional part. Multiply the number repeatedly by 2, until we get a fractional part that is equal to zero, keeping track of each integer part of the results.
5. Construct the base 2 representation of the fractional part of the number, by taking all the integer parts of the multiplying operations, starting from the top of the list constructed above (they should appear in the binary representation, from left to right, in the order they have been calculated).
6. Normalize the binary representation of the number, shifting the decimal mark (the decimal point) "n" positions either to the left, or to the right, so that only one non zero digit remains to the left of the decimal mark.
7. Adjust the exponent in 11 bit excess/bias notation and then convert it from decimal (base 10) to 11 bit binary, by using the same technique of repeatedly dividing by 2, as shown above:
Exponent (adjusted) = Exponent (unadjusted) + 2^(11-1) - 1
8. Normalize mantissa, remove the leading (leftmost) bit, since it's allways '1' (and the decimal mark, if the case) and adjust its length to 52 bits, either by removing the excess bits from the right (losing precision...) or by adding extra bits set on '0' to the right.
9. Sign (it takes 1 bit) is either 1 for a negative or 0 for a positive number.

Example: convert the negative number -31.640 215 from the decimal system (base ten) to 64 bit double precision IEEE 754 binary floating point:

1. Start with the positive version of the number:
|-31.640 215| = 31.640 215
2. First convert the integer part, 31. Divide it repeatedly by 2, keeping track of each remainder, until we get a quotient that is equal to zero:
- division = quotient + remainder;
- 31 ÷ 2 = 15 + 1;
- 15 ÷ 2 = 7 + 1;
- 7 ÷ 2 = 3 + 1;
- 3 ÷ 2 = 1 + 1;
- 1 ÷ 2 = 0 + 1;
- We have encountered a quotient that is ZERO => FULL STOP
3. Construct the base 2 representation of the integer part of the number by taking all the remainders of the previous dividing operations, starting from the bottom of the list constructed above:
31₍₁₀₎ = 1 1111₍₂₎
4. Then, convert the fractional part, 0.640 215. Multiply repeatedly by 2, keeping track of each integer part of the results, until we get a fractional part that is equal to zero:
- #) multiplying = integer + fractional part;
- 1) 0.640 215 × 2 = 1 + 0.280 43;
- 2) 0.280 43 × 2 = 0 + 0.560 86;
- 3) 0.560 86 × 2 = 1 + 0.121 72;
- 4) 0.121 72 × 2 = 0 + 0.243 44;
- 5) 0.243 44 × 2 = 0 + 0.486 88;
- 6) 0.486 88 × 2 = 0 + 0.973 76;
- 7) 0.973 76 × 2 = 1 + 0.947 52;
- 8) 0.947 52 × 2 = 1 + 0.895 04;
- 9) 0.895 04 × 2 = 1 + 0.790 08;
- 10) 0.790 08 × 2 = 1 + 0.580 16;
- 11) 0.580 16 × 2 = 1 + 0.160 32;
- 12) 0.160 32 × 2 = 0 + 0.320 64;
- 13) 0.320 64 × 2 = 0 + 0.641 28;
- 14) 0.641 28 × 2 = 1 + 0.282 56;
- 15) 0.282 56 × 2 = 0 + 0.565 12;
- 16) 0.565 12 × 2 = 1 + 0.130 24;
- 17) 0.130 24 × 2 = 0 + 0.260 48;
- 18) 0.260 48 × 2 = 0 + 0.520 96;
- 19) 0.520 96 × 2 = 1 + 0.041 92;
- 20) 0.041 92 × 2 = 0 + 0.083 84;
- 21) 0.083 84 × 2 = 0 + 0.167 68;
- 22) 0.167 68 × 2 = 0 + 0.335 36;
- 23) 0.335 36 × 2 = 0 + 0.670 72;
- 24) 0.670 72 × 2 = 1 + 0.341 44;
- 25) 0.341 44 × 2 = 0 + 0.682 88;
- 26) 0.682 88 × 2 = 1 + 0.365 76;
- 27) 0.365 76 × 2 = 0 + 0.731 52;
- 28) 0.731 52 × 2 = 1 + 0.463 04;
- 29) 0.463 04 × 2 = 0 + 0.926 08;
- 30) 0.926 08 × 2 = 1 + 0.852 16;
- 31) 0.852 16 × 2 = 1 + 0.704 32;
- 32) 0.704 32 × 2 = 1 + 0.408 64;
- 33) 0.408 64 × 2 = 0 + 0.817 28;
- 34) 0.817 28 × 2 = 1 + 0.634 56;
- 35) 0.634 56 × 2 = 1 + 0.269 12;
- 36) 0.269 12 × 2 = 0 + 0.538 24;
- 37) 0.538 24 × 2 = 1 + 0.076 48;
- 38) 0.076 48 × 2 = 0 + 0.152 96;
- 39) 0.152 96 × 2 = 0 + 0.305 92;
- 40) 0.305 92 × 2 = 0 + 0.611 84;
- 41) 0.611 84 × 2 = 1 + 0.223 68;
- 42) 0.223 68 × 2 = 0 + 0.447 36;
- 43) 0.447 36 × 2 = 0 + 0.894 72;
- 44) 0.894 72 × 2 = 1 + 0.789 44;
- 45) 0.789 44 × 2 = 1 + 0.578 88;
- 46) 0.578 88 × 2 = 1 + 0.157 76;
- 47) 0.157 76 × 2 = 0 + 0.315 52;
- 48) 0.315 52 × 2 = 0 + 0.631 04;
- 49) 0.631 04 × 2 = 1 + 0.262 08;
- 50) 0.262 08 × 2 = 0 + 0.524 16;
- 51) 0.524 16 × 2 = 1 + 0.048 32;
- 52) 0.048 32 × 2 = 0 + 0.096 64;
- 53) 0.096 64 × 2 = 0 + 0.193 28;
- We didn't get any fractional part that was equal to zero. But we had enough iterations (over Mantissa limit = 52) and at least one integer part that was different from zero => FULL STOP (losing precision...).
5. Construct the base 2 representation of the fractional part of the number, by taking all the integer parts of the previous multiplying operations, starting from the top of the constructed list above:
0.640 215₍₁₀₎ = 0.1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0₍₂₎
6. Summarizing - the positive number before normalization:
31.640 215₍₁₀₎ = 1 1111.1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0₍₂₎
7. Normalize the binary representation of the number, shifting the decimal mark 4 positions to the left so that only one non-zero digit stays to the left of the decimal mark:
31.640 215₍₁₀₎ =
1 1111.1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0₍₂₎ =
1 1111.1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0₍₂₎ × 2⁰ =
1.1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0₍₂₎ × 2⁴
8. Up to this moment, there are the following elements that would feed into the 64 bit double precision IEEE 754 binary floating point representation:
Sign: 1 (a negative number)
Exponent (unadjusted): 4
Mantissa (not-normalized): 1.1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0
9. Adjust the exponent in 11 bit excess/bias notation and then convert it from decimal (base 10) to 11 bit binary (base 2), by using the same technique of repeatedly dividing it by 2, as shown above:
Exponent (adjusted) = Exponent (unadjusted) + 2^(11-1) - 1 = (4 + 1023)₍₁₀₎ = 1027₍₁₀₎ =
100 0000 0011₍₂₎
10. Normalize mantissa, remove the leading (leftmost) bit, since it's allways '1' (and the decimal sign) and adjust its length to 52 bits, by removing the excess bits, from the right (losing precision...):
Mantissa (not-normalized): 1.1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100 1010 0
Mantissa (normalized): 1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100
Conclusion:
Sign (1 bit) = 1 (a negative number)
Exponent (8 bits) = 100 0000 0011
Mantissa (52 bits) = 1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100
Number -31.640 215, converted from decimal system (base 10) to 64 bit double precision IEEE 754 binary floating point =
1 - 100 0000 0011 - 1111 1010 0011 1110 0101 0010 0001 0101 0111 0110 1000 1001 1100

0.974 053 5 Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard

Convert decimal 0.974 053 5(10) to 64 bit double precision IEEE 754 binary floating point representation standard (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

What are the steps to convert decimal number 0.974 053 5(10) to 64 bit double precision IEEE 754 binary floating point representation (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

1. First, convert to binary (in base 2) the integer part: 0. Divide the number repeatedly by 2.

Keep track of each remainder.

We stop when we get a quotient that is equal to zero.

2. Construct the base 2 representation of the integer part of the number.

Take all the remainders starting from the bottom of the list constructed above.

0(10) =

0(2)

3. Convert to binary (base 2) the fractional part: 0.974 053 5.

Multiply it repeatedly by 2.

Keep track of each integer part of the results.

Stop when we get a fractional part that is equal to zero.

We didn't get any fractional part that was equal to zero. But we had enough iterations (over Mantissa limit) and at least one integer that was different from zero => FULL STOP (Losing precision - the converted number we get in the end will be just a very good approximation of the initial one).

4. Construct the base 2 representation of the fractional part of the number.

Take all the integer parts of the multiplying operations, starting from the top of the constructed list above:

0.974 053 5(10) =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0(2)

5. Positive number before normalization:

0.974 053 5(10) =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0(2)

6. Normalize the binary representation of the number.

Shift the decimal mark 1 positions to the right, so that only one non zero digit remains to the left of it:

0.974 053 5(10) =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0(2) =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0(2) × 20 =

1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110(2) × 2-1

7. Up to this moment, there are the following elements that would feed into the 64 bit double precision IEEE 754 binary floating point representation:

Sign 0 (a positive number)

Exponent (unadjusted): -1

Mantissa (not normalized): 1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

8. Adjust the exponent.

Use the 11 bit excess/bias notation:

Exponent (adjusted) =

Exponent (unadjusted) + 2(11-1) - 1 =

-1 + 2(11-1) - 1 =

(-1 + 1 023)(10) =

1 022(10)

9. Convert the adjusted exponent from the decimal (base 10) to 11 bit binary.

Use the same technique of repeatedly dividing by 2:

10. Construct the base 2 representation of the adjusted exponent.

Take all the remainders starting from the bottom of the list constructed above.

Exponent (adjusted) =

1022(10) =

011 1111 1110(2)

11. Normalize the mantissa.

a) Remove the leading (the leftmost) bit, since it's allways 1, and the decimal point, if the case.

b) Adjust its length to 52 bits, only if necessary (not the case here).

Mantissa (normalized) =

1. 1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110 =

1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

12. The three elements that make up the number's 64 bit double precision IEEE 754 binary floating point representation:

Sign (1 bit) = 0 (a positive number)

Exponent (11 bits) = 011 1111 1110

Mantissa (52 bits) = 1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

Decimal number 0.974 053 5 converted to 64 bit double precision IEEE 754 binary floating point representation:

0 - 011 1111 1110 - 1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

» Convert decimal 0.974 057 3 to 64 bit double precision IEEE 754 binary floating point representation standard

» Calculations Performed by Our Visitors: Decimal Numbers Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard. Data organized on a Monthly Basis

» Month 05, 2026 [May]: Decimal Numbers Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard. Calculations performed during the month of: May - by our visitors

» Improve your social skills: Are you using communication by design, or by default? NotebookLM YouTube Video of 6.33 minutes

How to convert numbers from the decimal system (base ten) to 64 bit double precision IEEE 754 binary floating point standard

Follow the steps below to convert a base 10 decimal number to 64 bit double precision IEEE 754 binary floating point:

Example: convert the negative number -31.640 215 from the decimal system (base ten) to 64 bit double precision IEEE 754 binary floating point:

Convert decimal 0.974 053 5₍₁₀₎ to 64 bit double precision IEEE 754 binary floating point representation standard (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

What are the steps to convert decimal number
0.974 053 5₍₁₀₎ to 64 bit double precision IEEE 754 binary floating point representation (1 bit for sign, 11 bits for exponent, 52 bits for mantissa)

1. First, convert to binary (in base 2) the integer part: 0.
Divide the number repeatedly by 2.

0₍₁₀₎ =

0₍₂₎

0.974 053 5₍₁₀₎ =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎

0.974 053 5₍₁₀₎ =

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎

0.974 053 5₍₁₀₎=

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎=

0.1111 1001 0101 1011 1001 0001 1111 0111 0000 1101 1110 1000 1111 0₍₂₎ × 2⁰=

1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110₍₂₎ × 2^-1

Mantissa (not normalized):
1.1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110

Exponent (unadjusted) + 2^(11-1) - 1 =

-1 + 2^(11-1) - 1 =

(-1 + 1 023)₍₁₀₎ =

1 022₍₁₀₎

1022₍₁₀₎ =

011 1111 1110₍₂₎

Sign (1 bit) =
0 (a positive number)

Exponent (11 bits) =
011 1111 1110

Mantissa (52 bits) =
1111 0010 1011 0111 0010 0011 1110 1110 0001 1011 1101 0001 1110