how to round the decimal point?
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Hai,
I need to round the decimal number to 2 decimal places. What is the function in matlab, to the above rounding off. Looking for your reply.
BSD
回答 (3 件)
Jan
2011 年 9 月 27 日
4 件のコメント
bsd
2011 年 9 月 27 日
Jan
2011 年 9 月 27 日
In you original question you ask for "rounding off". If you want to round to the nearest: round(0.1698 * 100) / 100 replies 0.17
Walter Roberson
2011 年 9 月 27 日
>> sprintf('%.99g\n',round(0.1698 * 100) / 100)
ans =
0.1700000000000000122124532708767219446599483489990234375
>> num2hex(round(0.1698 * 100) / 100 )
ans =
3fc5c28f5c28f5c3
>> num2hex(round(0.1698 * 100) / 100 - 8*eps(.01))
ans =
3fc5c28f5c28f5c2
If you compare the hex of the two floating point values, you will note that this second value is the first representable value smaller than the original value
>> sprintf('%.99g\n',round(0.1698 * 100) / 100 - 8*eps(0.01))
ans =
0.169999999999999984456877655247808434069156646728515625
and you can see from the extended printout that it is below 0.17 whereas the other value was above 0.17. We have thus experimentally demonstrated that there is no exact representation in binary floating point arithmetic for 0.17 exactly.
Jan
2011 年 9 月 28 日
@BSD: Does Walter's correct argument concern your work? Or is 0.1700000000000000xyz... accurate enough for your demands?
Walter Roberson
2011 年 9 月 27 日
0 投票
This is not possible in binary floating point arithmetic, unless the rounded fraction happens to end up being 0.0, 0.25, 0.5, or 0.75
Binary floating point arithmetic cannot exactly represent the fraction 1/100 in any finite amount of storage, for the same reason that decimal arithmetic cannot exactly represent the fraction 1/7 in any finite amount of storage.
Jigar Gada
2012 年 8 月 28 日
0 投票
Thanks a lot.. It was so simple.
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