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Questions about PHP floating point precision

怪我咯
怪我咯Original
2017-07-11 13:56:103292browse

C language and C# language, the data of floating point type is stored using single precision type (float) and double precision type (double). Float data occupies 32 bits. Double data occupies 64 bits. When we declare a variable float f= 2.25f, how do we allocate memory? If it is allocated randomly, wouldn't the world be in chaos? In fact, both float and double comply with IEEE specifications in terms of storage methods. Float complies with IEEE R32.24, while double complies with R64.53.

Whether it is single precision or double precision, storage is divided into three parts:

Sign bit (Sign): 0 represents positive, 1 represents negative

Exponent Bit (Exponent): used to store exponent data in scientific notation, and uses shift storage

Mantissa part (Mantissa): mantissa part

This article mainly introduces PHP floating point numbers Summary of precision issues. This article focuses on the problem of PHP floating point precision loss. It uses three paragraphs to explain the causes and solutions to this problem in different ways. Friends in need can refer to the following

1. PHP The problem of floating point precision loss

First look at the following code:

The code is as follows:

$f = 0.57;
echo intval($f * 100);  //56

The result may be a bit surprising to you, PHP Follow IEEE 754 double precision:

Floating point number, with 64-bit double precision, is represented by 1 sign bit (E), 11 exponent bits (Q), and 52 mantissa (M) (64 bits in total) .
Sign bit: The highest bit indicates the sign of the data, 0 indicates a positive number, and 1 indicates a negative number.
Exponent bit: represents the power of the data with base 2, and the exponent is represented by an offset code.
Mantissa: represents the valid digits after the decimal point of the data.

Let’s take a look at how decimals are represented in binary:

Multiply by 2 and round up, arrange in order, that is, multiply the decimal part by 2, then take the integer part, continue to multiply the remaining decimal part by 2, then take the integer part, and the remaining decimal part The part is multiplied by 2 again until the decimal part is taken. However, if a decimal like 0.57 is multiplied like this, the decimal part cannot be 0. The decimal representation of significant digits is infinite in binary.

The binary representation of 0.57 is basically (52 bits): 0010001111010111000010100011110101110000101000111101

If there are only 52 bits, 0.57 => 0.56999999999999995

No It’s hard to see the unexpected result above. .

2. Precision problem of PHP floating point numbers

Let’s look at the problem first:

The code is as follows:

$f = 0.58;
var_dump(intval($f * 100)); //为啥输出57

I believe that many students have had such questions.

For the specific principle, you can read an article by "Brother Bird", where there is a detailed explanation: A FAQanswer to PHP floating point numbers

So how to avoid this What kind of problem?
There are many ways, here are two:
1. sprintf

The code is as follows:

substr(sprintf("%.10f", ($a/ $b)), 0, -7);

2. round (note that it will be Rounding)

The code is as follows:

round($a/$b, 3);

Or if you have a better way, please leave a message and tell me.

3. Answer to a common question about PHP floating point numbers

Regarding PHP floating point numbers, I have written an article before: What you should know about PHP floating point numbers (All 'bogus' about the float in PHP)

However, I missed one thing at the time, which is the answer to the following common question:

The code is as follows:

<?php
    $f = 0.58;
    var_dump(intval($f * 100)); //为啥输出57
?>

Why is the output 57? Is it a PHP bug?

I believe that many students have had such questions, because there are many people asking me similar questions, not to mention People often ask on bugs.php.net...

To understand this reason, first we need to know the representation of floating point numbers (IEEE 754):

Floating point numbers, with a length of 64 bits ( Double precision) as an example, it will be represented by 1 sign bit (E), 11 exponent bits (Q), and 52 mantissas (M) (a total of 64 bits).

Sign bit: The highest bit represents the data Positive or negative, 0 represents a positive number, 1 represents a negative number.

Exponent bit: represents the power of the data with base 2, and the exponent is represented by an offset code

Mantissa: represents the valid digits after the decimal point of the data.

The key points here It lies in the representation of decimals in binary. Regarding how to represent decimals in binary, you can search on Baidu. I will not go into details here. The key thing we need to understand is that for binary representation, 0.58 is an infinitely long value (the numbers below Omitting the implicit 1).. The binary representation of

0.58 is basically (52 bits): 0010100011110101110000101000111101011100001010001111 The binary representation of
0.57 (52 bits) is basically: 0010001111010111 000010100011110101110000101000111101
And two Or binary, if calculated only through these 52 bits, they are:

Copy code The code is as follows:

0.58 -> 0.57999999999999996
0.57 -> 0.56999999999999995


As for 0.58 * 100 We won’t consider the specific floating-point number multiplication in detail. Those who are interested can look at (Floating point). We will look at it vaguely with mental arithmetic... 0.58 * 100 = 57.999999999

Then if you intval it, it will naturally be 57 Got….

It can be seen that the key point of this problem is: "Your seemingly finite decimal is actually infinite in the binary representation of the computer"

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