2 312 555.999 719 Converted to 64 Bit Double Precision IEEE 754 Binary Floating Point Representation Standard

Convert decimal 2 312 555.999 719(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
2 312 555.999 719(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: 2 312 555.
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;
  • 2 312 555 ÷ 2 = 1 156 277 + 1;
  • 1 156 277 ÷ 2 = 578 138 + 1;
  • 578 138 ÷ 2 = 289 069 + 0;
  • 289 069 ÷ 2 = 144 534 + 1;
  • 144 534 ÷ 2 = 72 267 + 0;
  • 72 267 ÷ 2 = 36 133 + 1;
  • 36 133 ÷ 2 = 18 066 + 1;
  • 18 066 ÷ 2 = 9 033 + 0;
  • 9 033 ÷ 2 = 4 516 + 1;
  • 4 516 ÷ 2 = 2 258 + 0;
  • 2 258 ÷ 2 = 1 129 + 0;
  • 1 129 ÷ 2 = 564 + 1;
  • 564 ÷ 2 = 282 + 0;
  • 282 ÷ 2 = 141 + 0;
  • 141 ÷ 2 = 70 + 1;
  • 70 ÷ 2 = 35 + 0;
  • 35 ÷ 2 = 17 + 1;
  • 17 ÷ 2 = 8 + 1;
  • 8 ÷ 2 = 4 + 0;
  • 4 ÷ 2 = 2 + 0;
  • 2 ÷ 2 = 1 + 0;
  • 1 ÷ 2 = 0 + 1;

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.

2 312 555(10) =


10 0011 0100 1001 0110 1011(2)


3. Convert to binary (base 2) the fractional part: 0.999 719.

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) 0.999 719 × 2 = 1 + 0.999 438;
  • 2) 0.999 438 × 2 = 1 + 0.998 876;
  • 3) 0.998 876 × 2 = 1 + 0.997 752;
  • 4) 0.997 752 × 2 = 1 + 0.995 504;
  • 5) 0.995 504 × 2 = 1 + 0.991 008;
  • 6) 0.991 008 × 2 = 1 + 0.982 016;
  • 7) 0.982 016 × 2 = 1 + 0.964 032;
  • 8) 0.964 032 × 2 = 1 + 0.928 064;
  • 9) 0.928 064 × 2 = 1 + 0.856 128;
  • 10) 0.856 128 × 2 = 1 + 0.712 256;
  • 11) 0.712 256 × 2 = 1 + 0.424 512;
  • 12) 0.424 512 × 2 = 0 + 0.849 024;
  • 13) 0.849 024 × 2 = 1 + 0.698 048;
  • 14) 0.698 048 × 2 = 1 + 0.396 096;
  • 15) 0.396 096 × 2 = 0 + 0.792 192;
  • 16) 0.792 192 × 2 = 1 + 0.584 384;
  • 17) 0.584 384 × 2 = 1 + 0.168 768;
  • 18) 0.168 768 × 2 = 0 + 0.337 536;
  • 19) 0.337 536 × 2 = 0 + 0.675 072;
  • 20) 0.675 072 × 2 = 1 + 0.350 144;
  • 21) 0.350 144 × 2 = 0 + 0.700 288;
  • 22) 0.700 288 × 2 = 1 + 0.400 576;
  • 23) 0.400 576 × 2 = 0 + 0.801 152;
  • 24) 0.801 152 × 2 = 1 + 0.602 304;
  • 25) 0.602 304 × 2 = 1 + 0.204 608;
  • 26) 0.204 608 × 2 = 0 + 0.409 216;
  • 27) 0.409 216 × 2 = 0 + 0.818 432;
  • 28) 0.818 432 × 2 = 1 + 0.636 864;
  • 29) 0.636 864 × 2 = 1 + 0.273 728;
  • 30) 0.273 728 × 2 = 0 + 0.547 456;
  • 31) 0.547 456 × 2 = 1 + 0.094 912;
  • 32) 0.094 912 × 2 = 0 + 0.189 824;
  • 33) 0.189 824 × 2 = 0 + 0.379 648;
  • 34) 0.379 648 × 2 = 0 + 0.759 296;
  • 35) 0.759 296 × 2 = 1 + 0.518 592;
  • 36) 0.518 592 × 2 = 1 + 0.037 184;
  • 37) 0.037 184 × 2 = 0 + 0.074 368;
  • 38) 0.074 368 × 2 = 0 + 0.148 736;
  • 39) 0.148 736 × 2 = 0 + 0.297 472;
  • 40) 0.297 472 × 2 = 0 + 0.594 944;
  • 41) 0.594 944 × 2 = 1 + 0.189 888;
  • 42) 0.189 888 × 2 = 0 + 0.379 776;
  • 43) 0.379 776 × 2 = 0 + 0.759 552;
  • 44) 0.759 552 × 2 = 1 + 0.519 104;
  • 45) 0.519 104 × 2 = 1 + 0.038 208;
  • 46) 0.038 208 × 2 = 0 + 0.076 416;
  • 47) 0.076 416 × 2 = 0 + 0.152 832;
  • 48) 0.152 832 × 2 = 0 + 0.305 664;
  • 49) 0.305 664 × 2 = 0 + 0.611 328;
  • 50) 0.611 328 × 2 = 1 + 0.222 656;
  • 51) 0.222 656 × 2 = 0 + 0.445 312;
  • 52) 0.445 312 × 2 = 0 + 0.890 624;
  • 53) 0.890 624 × 2 = 1 + 0.781 248;

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:


0.999 719(10) =


0.1111 1111 1110 1101 1001 0101 1001 1010 0011 0000 1001 1000 0100 1(2)

5. Positive number before normalization:

2 312 555.999 719(10) =


10 0011 0100 1001 0110 1011.1111 1111 1110 1101 1001 0101 1001 1010 0011 0000 1001 1000 0100 1(2)

6. Normalize the binary representation of the number.

Shift the decimal mark 21 positions to the left, so that only one non zero digit remains to the left of it:


2 312 555.999 719(10) =


10 0011 0100 1001 0110 1011.1111 1111 1110 1101 1001 0101 1001 1010 0011 0000 1001 1000 0100 1(2) =


10 0011 0100 1001 0110 1011.1111 1111 1110 1101 1001 0101 1001 1010 0011 0000 1001 1000 0100 1(2) × 20 =


1.0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101 0001 1000 0100 1100 0010 01(2) × 221


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): 21


Mantissa (not normalized):
1.0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101 0001 1000 0100 1100 0010 01


8. Adjust the exponent.

Use the 11 bit excess/bias notation:


Exponent (adjusted) =


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


21 + 2(11-1) - 1 =


(21 + 1 023)(10) =


1 044(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;
  • 1 044 ÷ 2 = 522 + 0;
  • 522 ÷ 2 = 261 + 0;
  • 261 ÷ 2 = 130 + 1;
  • 130 ÷ 2 = 65 + 0;
  • 65 ÷ 2 = 32 + 1;
  • 32 ÷ 2 = 16 + 0;
  • 16 ÷ 2 = 8 + 0;
  • 8 ÷ 2 = 4 + 0;
  • 4 ÷ 2 = 2 + 0;
  • 2 ÷ 2 = 1 + 0;
  • 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) =


1044(10) =


100 0001 0100(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, by removing the excess bits, from the right (if any of the excess bits is set on 1, we are losing precision...).


Mantissa (normalized) =


1. 0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101 00 0110 0001 0011 0000 1001 =


0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101


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) =
100 0001 0100


Mantissa (52 bits) =
0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101


Decimal number 2 312 555.999 719 converted to 64 bit double precision IEEE 754 binary floating point representation:

0 - 100 0001 0100 - 0001 1010 0100 1011 0101 1111 1111 1111 0110 1100 1010 1100 1101


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