MATLAB HELP STANDARD DEVIATION, MEAN, HISTOGRAMS
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PLEASE LEAVE NOTES SO I M
AY UNDERSTAND THE STEPS ON HOW TO FIND THE STANDARD DEVIATION AND MEAN
AY UNDERSTAND THE STEPS ON HOW TO FIND THE STANDARD DEVIATION AND MEANAntworten (2)
Walter Roberson
am 31 Okt. 2020
0 Stimmen
mean is mean()
Standard deviation is std()
Try this:
force_lbs = [243,236,389,628,143,417,205,404,464,605,137,123,372,439,...
497,500,535,577,441,231,675,132,196,217,660,569,865,725,547,347];
mean_lbs = mean(force_lbs);
std_lbs = std(force_lbs);
fprintf(1,'Mean force = %f [lbs]\nStandard Deviation force=%f [lbs]\n' ,...
mean_lbs,std_lbs);
edges_lbs = linspace(-3*std_lbs+mean_lbs,3*std_lbs+mean_lbs,13);
histogram(force_lbs,edges_lbs);
% 68% of the population is approx within 1 standard deviation of the mean
x = norminv([(1-0.68)/2 (1-0.68)/2+0.68]);
upper_limit_68 = mean_lbs + x(2)*std_lbs;
lower_limit_68 = mean_lbs + x(1)*std_lbs;
percentage_in_limit_68 = 100* ...
sum(lower_limit_68 <= force_lbs & force_lbs <= upper_limit_68)/numel(force_lbs);
fprintf(1,'%.4f%s are within the normal 68%s limits [%.4f,%.4f] lbs\n', ...
percentage_in_limit_68, ...
'%','%',lower_limit_68,upper_limit_68);
% 96% of the population is approx within 2.1 standard deviation of the mean
x = norminv([(1-0.96)/2 (1-0.96)/2+0.96]);
upper_limit_96 = mean_lbs + x(2)*std_lbs;
lower_limit_96 = mean_lbs + x(1)*std_lbs;
percentage_in_limit_96 = 100* ...
sum(lower_limit_96 <= force_lbs & force_lbs <= upper_limit_96)/numel(force_lbs);
fprintf(1,'%.4f%s are within the normal 96%s limits [%.4f,%.4f] lbs\n', ...
percentage_in_limit_96, ...
'%','%',lower_limit_96,upper_limit_96);
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am 31 Okt. 2020
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