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Hello all,
I'm using dlmread to import datas and when the datas contains integers and float numbers, dlmread sometimes makes an error on the last digit of the output precision.
I'm not sure I am clear, so here is an example :
If my text file ('test.rpt') contains only the row :
1 10.8000 31. 10.5001
the command
A = dlmread('test.rpt')
gives back :
A =
1.000000000000000 10.800000000000001 31.000000000000000 10.500100000000000
I don't understand why this 10e-15 is added on the second number. Ok, it's not a big error, but it prevent me from easly comparing two values...
Does anyone know how to prevent this behaviour ?

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dpb
dpb le 27 Août 2019
In short, you can't. It's fact of life with floating point numbers. See <Why-is-0-3-0-2-0-1-not-equal-to-zero?> for more explanation.
For comparison of floating point values with rounding error, see ismembertol
Adam Danz
Adam Danz le 27 Août 2019
Modifié(e) : Adam Danz le 27 Août 2019
I wonder if you read it in as text and then convert it to numeric values, whether the problem would persist.
Arnaud WILHELM
Arnaud WILHELM le 27 Août 2019
Ok, I understand the problem of floating point numbers. But I don't remember seeing this when using fscanf and specifing a number format.
@ Adam : I am not sure I understand what you mean in "read it in as text" ?
Adam Danz
Adam Danz le 27 Août 2019
I know 0 about rpt files so I can't recommend alternative methods to read in the data. You're currently reading in the data usling dlmread (which has been replaced by readmatrix() starting in r2019a).
Some methods allow you to read in data as text in which case 10.8000 would be read as a string (or char array) '10.8000'. Then you could convert that to numeric by using str2double() or num2str() (the prior is better).
dpb
dpb le 27 Août 2019
> x=10.8
x =
10.8000
>> fprintf('%.15f\n',x)
10.800000000000001
>>
so it doesn't matter how you enter it, 10.8 is not exactly representable.
"I don't remember seeing this when using fscanf and specifing a number format."
Probably because you just didn't notice until you did try to do an exact comparison on floating point values.
>> fprintf('%.15f\n',round(x,1))
10.800000000000001
>>
It's doing the best it can within the constraints of IEEE floating point representation.
Adam Danz
Adam Danz le 27 Août 2019
Modifié(e) : Adam Danz le 27 Août 2019
Ah, ok then. Thanks dpb & James Tursa .

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 Réponse acceptée

James Tursa
James Tursa le 27 Août 2019
Modifié(e) : James Tursa le 27 Août 2019

1 vote

Any function (dlmread, fscanf, etc) in any language (MATLAB, C, etc.) reading text numbers into floating point will have this issue. You may not have noticed it before, but it has always been there. With some exceptions (integers, etc), in general you simply can't represent many decimal numbers exactly in IEEE binary floating point format. For your numbers, here are the exact conversions:
>> sprintf('%.50f',1)
ans =
'1.00000000000000000000000000000000000000000000000000'
>> sprintf('%.50f',10.8)
ans =
'10.80000000000000071054273576010018587112426757812500'
>> sprintf('%.50f',31)
ans =
'31.00000000000000000000000000000000000000000000000000'
>> sprintf('%.50f',10.5001)
ans =
'10.50009999999999976694198267068713903427124023437500'
Integers (that are not too big) it does fine with, but your other decimal numbers cannot be represented internally exactly. Read the links that dpb has provided.

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Arnaud WILHELM
Arnaud WILHELM le 28 Août 2019
All right, I understand now.
Thanks everyone for these anwsers !

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