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Can someone explain to me, why this happens?

var float:Number = 1.40;
var bytes:ByteArray = new ByteArray();

trace('float: ' + float);
bytes.writeFloat( float );
bytes.position = 0;
trace('bytes.readFloat: ' + bytes.readFloat() );

Output from trace:

>> float: 1.4
>> bytes.readFloat: 1.399999976158142

this driving me crazy in the last hours. Thanks

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2 Answers 2

up vote 1 down vote accepted

ByteArray.writeFloat() writes only 4 bytes, meaning a single precision flosting-point value gets stored. You have to call writeDouble() to write your float, and even then you might lose precision, although that loss won't be as drastical. This is the core limitation of floating point types.

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That works, but what I cant understand is why/how a float value 1.40 cant be stored in 4 bytes. –  Arthur Barros Nov 5 '12 at 13:31
    
This is easy to explain. Here is the detailed explanation. 1.40 is a binary fraction of infinite length, therefore the computer has to truncate it at some point. When your float gets displayed, it first is converted to double, and the unstored binary digits of the fraction are set to 0, so the actual value of the converted float is different. –  Vesper Nov 6 '12 at 6:40

Will that suit you to use double here?

This should work fine:

var double:Number = 1.40;
var bytes:ByteArray = new ByteArray();

trace('double: ' + double);
bytes.writeDouble( double );
bytes.position = 0;
trace('bytes.readDouble: ' + bytes.readDouble() );
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It works too, thanks –  Arthur Barros Nov 5 '12 at 13:32

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