For loop error: unable to perform assignment because left and right sides have a different number of elements

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matlabuser le 26 Déc 2020

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Commenté : matlabuser le 30 Déc 2020

Réponse acceptée : Gaurav Garg

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I am struggling to create a forloop which reduces the following task into a few lines of code:

             resp1 = squeeze(resp(:,1,:));
             resp2 = squeeze(resp(:,2,:));
             resp3 = squeeze(resp(:,3,:));
             resp4 = squeeze(resp(:,4,:));
             resp5 = squeeze(resp(:,5,:));
             resp6 = squeeze(resp(:,6,:));
             resp7 = squeeze(resp(:,7,:));
             
             imp_level(iter_rep-num_draw_discard,:,:) = resp1;
             imp_slope(iter_rep-num_draw_discard,:,:) = resp2;
             imp_curv(iter_rep-num_draw_discard,:,:) = resp3;
             imp_unrate(iter_rep-num_draw_discard,:,:) = resp4;
             imp_pce_ch(iter_rep-num_draw_discard,:,:) = resp5;
             imp_tcu_ch(iter_rep-num_draw_discard,:,:) = resp6;
             imp_effr(iter_rep-num_draw_discard,:,:) = resp7;
                    

I've tried the following but got an error

variables = {'level', 'slope', 'curv', 'unrate', 'pce_ch','tcu_ch', 'effr' };
            
range = linspace(1,size(variables,2),7);
  
% betas_exog is a (324 x 7) dimension matrix
for i = 1:size(betas_exog, 2)
    
    resp_range(i) = squeeze(resp(:,i,:));
    imp_variables{i}(iter_rep-num_draw_discard,:,:) = resp(i)
                
end          

I would appreciate your help in fixing the error and creating a workable for loop.

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J. Alex Lee le 28 Déc 2020

Are you just trying to re-order the dimensions? Or would doing that first let you index more easily for whatever you are trying to do?

matlabuser le 30 Déc 2020

i was trying to just create a set of variables as defined above. To clarify, num_draw_discard is a scaler = 3000, iter_rep = 15,000.

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Réponse acceptée

Gaurav Garg le 29 Déc 2020

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Hi,

You can plan to use either Structure array, or a Cell array. You could have also constructed variable name from string, however, the potential risks for it have already been pointed out, about which you can also look here.

The error which you are getting is usually caused when the dimensions of the assigner and the assignee variables are not the same/equal.

As the last option, you can look at Map Containers. They are the objects with keys that index to values, and at the same time, the keys need not be integers

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matlabuser le 30 Déc 2020

thanks. that was helpful.

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