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I have a program which prints out a matrix with very small values. An example of my matrix is

0.00000000000000004  0.12300000000000000

0.00000000011111114  0.00000000000038544

What I would like to do is compare each value with zero and accept it to be zero with specific accuracy, which is 9 decimal places. In other words, if a number has 9 zeros as its first decimal values, I want to consider it as a zero, otherwise not.

I have searched a lot but really found nothing about it. Any ideas?

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    Compare -1e-9 <= f <= 1e-9?
    – MicroVirus
    Commented Apr 24, 2016 at 10:48
  • @MicroVirus yes that worked, thanks so much!! I used the right part of your condition, f <= 1e-9. Could you explain what the left part, ` -1e-9 <= f`, checks?
    – Marievi
    Commented Apr 24, 2016 at 10:53
  • @Marievi: -1e-9 has 9 zeros as its first decimal values!!! Commented Apr 24, 2016 at 10:54
  • @barakmanos I am sorry if asking stupid questions, but then what is the difference between the left and the right part of the condition? I mean, why do I need them both?
    – Marievi
    Commented Apr 24, 2016 at 10:56
  • @Marievi: What will you get for f == -1 if you don't use the left part of the condition? Commented Apr 24, 2016 at 10:57

2 Answers 2

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As I noted in my comment, you can simply compare the float f via -1e-9 < f < 1e-9.

The you need both the positive and negative boundary to ensure it works properly for positive and negative numbers. You use 1e-9 and not 1e-10 because if a number is smaller than 1e-9, a number with 8 decimals 0, then it has 9 decimals or more zero.

Do note that due to float rounding of 1e-9 when going from decimal to binary, you might see some rounding error.

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    Thanks so much @MicroVirus!!
    – Marievi
    Commented Apr 24, 2016 at 11:17
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My idea is similar to what @MicroVirus has mentioned in his comment. You can simply compare it to a specific number:

if(num < 1E-9 && num > -1E-9)
    num = 0;

or

if(num * 1E9 < 1 && num * 1E9 > -1)
    num = 0;
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    Seems appropriate to give at least some credit to @MicroVirus's comment. Commented Apr 24, 2016 at 11:00
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    @barakmanos We happened to have the same idea. Edited anyway.
    – nalzok
    Commented Apr 24, 2016 at 12:18

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