I am adding two values together and it is rounding up but I don't need it to round up.

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Belle Dionido
Belle Dionido 2022년 2월 16일
댓글: DGM 2022년 2월 16일
material_cost = total * 3.67;
shipping_cost = total * 0.73;
total_cost = material_cost + shipping_cost;
fprintf('The material cost is $%0.2f. \n', material_cost);
fprintf('The shipping cost is $%0.2f. \n', shipping_cost);
fprintf('The total cost is $%0.2f. \n', total_cost);
so it prints out:
The material cost is $19.76.
The shipping cost is $3.93.
The total cost is $23.70.
the values are actually 19.7641, 3.9313, 23.6954 in the workspace.
How do I stop it from rounding the hidden numbers?

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Image Analyst
Image Analyst 2022년 2월 16일
Use more decimal places of precision if you want. Instead of 2 with $%0.2f you can use 6 with $%0.6f.
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Image Analyst
Image Analyst 2022년 2월 16일
OK, great, but could you click the "Accept this answer" link? Thanks in advance. 🙂
DGM
DGM 2022년 2월 16일
Since it's not really clear which behavior you want, note that the behavior of floor() and fix() differ and may matter if you process negative inputs.

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DGM
DGM 2022년 2월 16일
편집: DGM 2022년 2월 16일
Ran in:
If you simply want to truncate the values to integer cents, consider the example:
A = [19.7641, 3.9313, 23.6954]
A = 1×3
19.7641 3.9313 23.6954
B = truncatecents(A)
B = 1×3
19.7600 3.9300 23.6900
fprintf('before truncation: %.2f\n',A(3))
before truncation: 23.70
fprintf('after truncation: %.2f\n',B(3))
after truncation: 23.69
function out = truncatecents(in)
out = fix(in*100)/100; % truncate toward zero
end

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