summaryrefslogtreecommitdiffstats
path: root/Doc/tutorial/floatingpoint.rst
blob: e1cd7f9ece75d0e730ae6e303aa650c416644034 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
.. testsetup::

    import math

.. _tut-fp-issues:

**************************************************
Floating Point Arithmetic:  Issues and Limitations
**************************************************

.. sectionauthor:: Tim Peters <tim_one@users.sourceforge.net>


Floating-point numbers are represented in computer hardware as base 2 (binary)
fractions.  For example, the **decimal** fraction ``0.125``
has value 1/10 + 2/100 + 5/1000, and in the same way the **binary** fraction ``0.001``
has value 0/2 + 0/4 + 1/8. These two fractions have identical values, the only
real difference being that the first is written in base 10 fractional notation,
and the second in base 2.

Unfortunately, most decimal fractions cannot be represented exactly as binary
fractions.  A consequence is that, in general, the decimal floating-point
numbers you enter are only approximated by the binary floating-point numbers
actually stored in the machine.

The problem is easier to understand at first in base 10.  Consider the fraction
1/3.  You can approximate that as a base 10 fraction::

   0.3

or, better, ::

   0.33

or, better, ::

   0.333

and so on.  No matter how many digits you're willing to write down, the result
will never be exactly 1/3, but will be an increasingly better approximation of
1/3.

In the same way, no matter how many base 2 digits you're willing to use, the
decimal value 0.1 cannot be represented exactly as a base 2 fraction.  In base
2, 1/10 is the infinitely repeating fraction ::

   0.0001100110011001100110011001100110011001100110011...

Stop at any finite number of bits, and you get an approximation.  On most
machines today, floats are approximated using a binary fraction with
the numerator using the first 53 bits starting with the most significant bit and
with the denominator as a power of two.  In the case of 1/10, the binary fraction
is ``3602879701896397 / 2 ** 55`` which is close to but not exactly
equal to the true value of 1/10.

Many users are not aware of the approximation because of the way values are
displayed.  Python only prints a decimal approximation to the true decimal
value of the binary approximation stored by the machine.  On most machines, if
Python were to print the true decimal value of the binary approximation stored
for 0.1, it would have to display ::

   >>> 0.1
   0.1000000000000000055511151231257827021181583404541015625

That is more digits than most people find useful, so Python keeps the number
of digits manageable by displaying a rounded value instead ::

   >>> 1 / 10
   0.1

Just remember, even though the printed result looks like the exact value
of 1/10, the actual stored value is the nearest representable binary fraction.

Interestingly, there are many different decimal numbers that share the same
nearest approximate binary fraction.  For example, the numbers ``0.1`` and
``0.10000000000000001`` and
``0.1000000000000000055511151231257827021181583404541015625`` are all
approximated by ``3602879701896397 / 2 ** 55``.  Since all of these decimal
values share the same approximation, any one of them could be displayed
while still preserving the invariant ``eval(repr(x)) == x``.

Historically, the Python prompt and built-in :func:`repr` function would choose
the one with 17 significant digits, ``0.10000000000000001``.   Starting with
Python 3.1, Python (on most systems) is now able to choose the shortest of
these and simply display ``0.1``.

Note that this is in the very nature of binary floating-point: this is not a bug
in Python, and it is not a bug in your code either.  You'll see the same kind of
thing in all languages that support your hardware's floating-point arithmetic
(although some languages may not *display* the difference by default, or in all
output modes).

For more pleasant output, you may wish to use string formatting to produce a limited number of significant digits::

   >>> format(math.pi, '.12g')  # give 12 significant digits
   '3.14159265359'

   >>> format(math.pi, '.2f')   # give 2 digits after the point
   '3.14'

   >>> repr(math.pi)
   '3.141592653589793'


It's important to realize that this is, in a real sense, an illusion: you're
simply rounding the *display* of the true machine value.

One illusion may beget another.  For example, since 0.1 is not exactly 1/10,
summing three values of 0.1 may not yield exactly 0.3, either::

   >>> .1 + .1 + .1 == .3
   False

Also, since the 0.1 cannot get any closer to the exact value of 1/10 and
0.3 cannot get any closer to the exact value of 3/10, then pre-rounding with
:func:`round` function cannot help::

   >>> round(.1, 1) + round(.1, 1) + round(.1, 1) == round(.3, 1)
   False

Though the numbers cannot be made closer to their intended exact values,
the :func:`round` function can be useful for post-rounding so that results
with inexact values become comparable to one another::

    >>> round(.1 + .1 + .1, 10) == round(.3, 10)
    True

Binary floating-point arithmetic holds many surprises like this.  The problem
with "0.1" is explained in precise detail below, in the "Representation Error"
section.  See `The Perils of Floating Point <https://www.lahey.com/float.htm>`_
for a more complete account of other common surprises.

As that says near the end, "there are no easy answers."  Still, don't be unduly
wary of floating-point!  The errors in Python float operations are inherited
from the floating-point hardware, and on most machines are on the order of no
more than 1 part in 2\*\*53 per operation.  That's more than adequate for most
tasks, but you do need to keep in mind that it's not decimal arithmetic and
that every float operation can suffer a new rounding error.

While pathological cases do exist, for most casual use of floating-point
arithmetic you'll see the result you expect in the end if you simply round the
display of your final results to the number of decimal digits you expect.
:func:`str` usually suffices, and for finer control see the :meth:`str.format`
method's format specifiers in :ref:`formatstrings`.

For use cases which require exact decimal representation, try using the
:mod:`decimal` module which implements decimal arithmetic suitable for
accounting applications and high-precision applications.

Another form of exact arithmetic is supported by the :mod:`fractions` module
which implements arithmetic based on rational numbers (so the numbers like
1/3 can be represented exactly).

If you are a heavy user of floating point operations you should take a look
at the NumPy package and many other packages for mathematical and
statistical operations supplied by the SciPy project. See <https://scipy.org>.

Python provides tools that may help on those rare occasions when you really
*do* want to know the exact value of a float.  The
:meth:`float.as_integer_ratio` method expresses the value of a float as a
fraction::

   >>> x = 3.14159
   >>> x.as_integer_ratio()
   (3537115888337719, 1125899906842624)

Since the ratio is exact, it can be used to losslessly recreate the
original value::

    >>> x == 3537115888337719 / 1125899906842624
    True

The :meth:`float.hex` method expresses a float in hexadecimal (base
16), again giving the exact value stored by your computer::

   >>> x.hex()
   '0x1.921f9f01b866ep+1'

This precise hexadecimal representation can be used to reconstruct
the float value exactly::

    >>> x == float.fromhex('0x1.921f9f01b866ep+1')
    True

Since the representation is exact, it is useful for reliably porting values
across different versions of Python (platform independence) and exchanging
data with other languages that support the same format (such as Java and C99).

Another helpful tool is the :func:`math.fsum` function which helps mitigate
loss-of-precision during summation.  It tracks "lost digits" as values are
added onto a running total.  That can make a difference in overall accuracy
so that the errors do not accumulate to the point where they affect the
final total:

   >>> sum([0.1] * 10) == 1.0
   False
   >>> math.fsum([0.1] * 10) == 1.0
   True

.. _tut-fp-error:

Representation Error
====================

This section explains the "0.1" example in detail, and shows how you can perform
an exact analysis of cases like this yourself.  Basic familiarity with binary
floating-point representation is assumed.

:dfn:`Representation error` refers to the fact that some (most, actually)
decimal fractions cannot be represented exactly as binary (base 2) fractions.
This is the chief reason why Python (or Perl, C, C++, Java, Fortran, and many
others) often won't display the exact decimal number you expect.

Why is that?  1/10 is not exactly representable as a binary fraction. Almost all
machines today (November 2000) use IEEE-754 floating point arithmetic, and
almost all platforms map Python floats to IEEE-754 "double precision".  754
doubles contain 53 bits of precision, so on input the computer strives to
convert 0.1 to the closest fraction it can of the form *J*/2**\ *N* where *J* is
an integer containing exactly 53 bits.  Rewriting ::

   1 / 10 ~= J / (2**N)

as ::

   J ~= 2**N / 10

and recalling that *J* has exactly 53 bits (is ``>= 2**52`` but ``< 2**53``),
the best value for *N* is 56::

    >>> 2**52 <=  2**56 // 10  < 2**53
    True

That is, 56 is the only value for *N* that leaves *J* with exactly 53 bits.  The
best possible value for *J* is then that quotient rounded::

   >>> q, r = divmod(2**56, 10)
   >>> r
   6

Since the remainder is more than half of 10, the best approximation is obtained
by rounding up::

   >>> q+1
   7205759403792794

Therefore the best possible approximation to 1/10 in 754 double precision is::

   7205759403792794 / 2 ** 56

Dividing both the numerator and denominator by two reduces the fraction to::

   3602879701896397 / 2 ** 55

Note that since we rounded up, this is actually a little bit larger than 1/10;
if we had not rounded up, the quotient would have been a little bit smaller than
1/10.  But in no case can it be *exactly* 1/10!

So the computer never "sees" 1/10:  what it sees is the exact fraction given
above, the best 754 double approximation it can get::

   >>> 0.1 * 2 ** 55
   3602879701896397.0

If we multiply that fraction by 10\*\*55, we can see the value out to
55 decimal digits::

   >>> 3602879701896397 * 10 ** 55 // 2 ** 55
   1000000000000000055511151231257827021181583404541015625

meaning that the exact number stored in the computer is equal to
the decimal value 0.1000000000000000055511151231257827021181583404541015625.
Instead of displaying the full decimal value, many languages (including
older versions of Python), round the result to 17 significant digits::

   >>> format(0.1, '.17f')
   '0.10000000000000001'

The :mod:`fractions` and :mod:`decimal` modules make these calculations
easy::

   >>> from decimal import Decimal
   >>> from fractions import Fraction

   >>> Fraction.from_float(0.1)
   Fraction(3602879701896397, 36028797018963968)

   >>> (0.1).as_integer_ratio()
   (3602879701896397, 36028797018963968)

   >>> Decimal.from_float(0.1)
   Decimal('0.1000000000000000055511151231257827021181583404541015625')

   >>> format(Decimal.from_float(0.1), '.17')
   '0.10000000000000001'