sprintf('%d',x) prints out exponential notation instead of decimal notation
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I am using version '8.3.0.532 (R2014a)'. The sprintf command seems to print out exponential notation when decimal notation is requested (second and third example):
sprintf('%d',1.05*100)
sprintf('%d',1.10*100)
sprintf('%.0d',1.10*100)
ans = 105
ans = 1.100000e+02
ans = 1e+02
Is there any reason why the last two calls are not printing '110'?
댓글 수: 4
Andrew Reibold
2014년 8월 26일
Well for one, they don't equal 115 because those equal 105 and 110, haha.
I know what you mean though
Azzi Abdelmalek
2014년 8월 26일
Why 115 ?
Jeffrey Wildman
2014년 8월 26일
편집: Jeffrey Wildman
2014년 8월 26일
summyia qamar
2016년 12월 16일
what if we want to change 10.3?what will be the format?%g is not working.
채택된 답변
per isakson
2014년 8월 26일
편집: per isakson
2014년 8월 26일
1 개 추천
What you see is a consequence of how floating point arithmetic works.
See:
- http://matlab.wikia.com/wiki/FAQ#Why_is_0.3_-_0.2_-_0.1_.28or_similar.29_not_equal_to_zero.3F and read
- Cleve's piece
1.05*100 evaluates to a whole number (flint). The other two don't.
댓글 수: 2
Jeffrey Wildman
2014년 8월 26일
per isakson
2014년 8월 26일
편집: per isakson
2014년 8월 30일
If you specify a conversion that does not fit the data, such as
a string conversion for a numeric value, MATLAB overrides the
specified conversion, and uses %e.
To me this was "expected behavior", but I had to look it up now. One cannot read and remember everything. Thus, when in doubt make a test
>> sprintf( '%d', 1/3 )
ans =
3.333333e-01
추가 답변 (2개)
Andrew Reibold
2014년 8월 26일
편집: Andrew Reibold
2014년 8월 26일
Use f instead of d for floating point notation will stop the scientific I believe.
sprintf('%f',1.05*100)
sprintf('%f',1.10*100)
sprintf('%.0f',1.10*100)
ans = 105.000000
ans = 110.000000
ans = 110
Notice I can stop the decimals by using .0f like I did in the last example.
For additional reference:
댓글 수: 3
Jeffrey Wildman
2014년 8월 26일
per isakson
2014년 8월 26일
"Still kinda curious"   Don't you trust my answer?
James Tursa
2016년 12월 17일
편집: James Tursa
2016년 12월 17일
This is what is happening "under the hood" with the floating point numbers (neither 1.05 nor 1.10 can be represented exactly in IEEE double):
>> num2strexact(1.05)
ans =
1.0500000000000000444089209850062616169452667236328125
>> num2strexact(1.05*100)
ans =
1.05e2
>> num2strexact(1.10)
ans =
1.100000000000000088817841970012523233890533447265625
>> num2strexact(1.10*100)
ans =
1.100000000000000142108547152020037174224853515625e2
You got lucky on the 1.05*100 that it resulted in 105 exactly, but you didn't get lucky in the 1.10*100 case.
Sebastian Mader
2018년 7월 27일
0 개 추천
So why did Mathworks introduce %d and %i at all? It would be safer to use %.0f in any case.
댓글 수: 2
They are not the same thing at all! For integer types, %u, %d and %i formats give the full precision, whereas what you propose does not:
>> sprintf('%.0f',intmax('uint64')) % rounded
ans =
18446744073709552000
>> sprintf('%u',intmax('uint64')) % full precision
ans =
18446744073709551615
>> sprintf('%.0f',intmax('int64')) % rounded
ans =
9223372036854775800
>> sprintf('%i',intmax('int64')) % full precision
ans =
9223372036854775807
It is obvious from the number of output digits that the '%f' format performs rounding operations using double class.
Sebastian Mader
2018년 7월 27일
I see your Point, thanks for being very clary on this, much appreciated. I am far from the Limits, where rounding becomes an issue with '%.0f', so I can savely use this approach.
Nonetheless, I believe that the comments on "Notable Behavior of Conversions with Formatting Operators" should be moved up in the documentation and the special case of using %d with double precison numbers mentioned. It is at least to me not obvious at all, that an implicit type conversion is not performed by fprintf despite my desire to print an integer.
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