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Is there a format in MATLAB to display numbers such that commas are automatically inserted into the display?

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MathWorks Support Team
MathWorks Support Team el 12 de Mzo. de 2012
Editada: MathWorks Support Team el 29 de Feb. de 2024
I would like to display large numbers with commas separating the digits for readability purposes. For example, I would like MATLAB to display one billion as 1,000,000,000 rather than 1000000000. How can I do this?

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MathWorks Support Team
MathWorks Support Team el 26 de Feb. de 2024
Editada: MathWorks Support Team el 29 de Feb. de 2024
You can enhance the readability of large numbers by formatting them with commas to separate digits using the "java.text.DecimalFormat" class. See the below code for an example of this:
function numOut = addComma(numIn)
import java.text.*
jf=java.text.DecimalFormat; % comma for thousands, three decimal places
numOut= char(jf.format(numIn)); % omit "char" if you want a string out
end
Then, calling the function will result in a comma separated number.
addComma(10000.12)
% 10,000.12

Más respuestas (2)

Ted Shultz
Ted Shultz el 13 de Jun. de 2018
A simple way is to add this two line function:
function numOut = addComma(numIn)
jf=java.text.DecimalFormat; % comma for thousands, three decimal places
numOut= char(jf.format(numIn)); % omit "char" if you want a string out
end
Hope that helps! --ted
Toshiaki Takeuchi
Toshiaki Takeuchi el 14 de Nov. de 2023
Ran in:
Using pattern
vec = 123456789;
txt = string(vec);
pat1 = lookBehindBoundary(digitsPattern); % (?<=\d)
pat2 = asManyOfPattern(digitsPattern(3),1); % (\d{3})+
pat3 = lookAheadBoundary(pat2+lineBoundary("end")); % (?=(\d{3})+$)
pat4 = pat1+pat3; % (?<=\d)(?=(\d{3})+$)
replace(txt,pat4,",")
ans = "123,456,789"
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Toshiaki Takeuchi
Toshiaki Takeuchi el 30 de En. de 2024
Ran in:
How about this?
str = arrayfun(@(x) string(num2str(x)), (0:500:2000)');
str2 = [str;str + ".12345"]
str2 = 10×1 string array
"0" "500" "1000" "1500" "2000" "0.12345" "500.12345" "1000.12345" "1500.12345" "2000.12345"
pat1 = lookBehindBoundary(digitsPattern); % (?<=\d)
pat2 = asManyOfPattern(digitsPattern(3),1); % (\d{3})+
pat3 = lookAheadBoundary(pat2+lineBoundary("end")); % (?=(\d{3})+$)
pat4 = pat1+pat3; % (?<=\d)(?=(\d{3})+$)
isDecimal = contains(str2,".");
str3 = split(str2(isDecimal),".");
str2(isDecimal) = str3(:,1);
str4 = replace(str2,pat4,",");
str4(isDecimal) = str4(isDecimal) + "." + str3(:,2)
str4 = 10×1 string array
"0" "500" "1,000" "1,500" "2,000" "0.12345" "500.12345" "1,000.12345" "1,500.12345" "2,000.12345"
Stephen23
Stephen23 el 10 de Feb. de 2024
Editada: Stephen23 el 10 de Feb. de 2024
Ran in:
That seems to work much better. Note that this
str0 = arrayfun(@(x) string(num2str(x)), (0:500:2000)');
can be replaced with the much simpler and more efficient:
str1 = string(0:500:2000).';
isequal(str0,str1)
ans = logical
1

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