221 lines
7.5 KiB
Matlab
Executable File
221 lines
7.5 KiB
Matlab
Executable File
% Funzione che converte i dati grezzi in dati di accelerazione usando i
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% valori delle calibrazioni per i Tilt Link
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% accTL raccoglie le accelerazioni
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% magTL raccoglie i dati di campo magnetico
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function [accIPL,magIPL,ris_acc_IPL,ris_mag_IPL,tempIPL,ErrInPlaceLink] = conv_grezziIPL(IDcentralina,rIPL,...
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accIPL,magIPL,tempIPL,DCalIPLTot,tolleranzaAcc,ErrInPlaceLink,NodoInPlaceLink,MEMS,FileName)
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text = 'conv_grezziIPL function started';
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fileID = fopen(FileName,'a');
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fmt = '%s \r';
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fprintf(fileID,fmt,text);
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if MEMS == 1 || MEMS == 2
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caX = DCalIPLTot(:,1);
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caY = DCalIPLTot(:,4);
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caZ = DCalIPLTot(:,7);
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pIntX = DCalIPLTot(:,2);
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pIntY = DCalIPLTot(:,5);
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pIntZ = DCalIPLTot(:,8);
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iIntX = DCalIPLTot(:,3);
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iIntY = DCalIPLTot(:,6);
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iIntZ = DCalIPLTot(:,9);
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caT = DCalIPLTot(:,10);
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intT = DCalIPLTot(:,11);
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MagX = DCalIPLTot(:,12);
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MagY = DCalIPLTot(:,13);
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MagZ = DCalIPLTot(:,14);
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%% Magnetometri
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% controllo dei dati di campo magnetico per anomalie modello Baveno
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[num,~] = size(magIPL);
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mR = 1;
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t = 1;
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Err = 1;
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while mR <= 3*rIPL
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for mC = 1:num
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if mC == 1
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if magIPL(mC,mR)==0 && magIPL(mC,mR+1)==0 && magIPL(mC,mR+2)==0
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primo = 0;
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letMag = 2;
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while primo == 0
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if letMag > num
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break
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end
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if magIPL(letMag,mR)==0 && magIPL(letMag,mR+1)==0 && magIPL(letMag,mR+2)==0
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letMag = letMag+1;
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else
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magIPL(mC,mR:mR+2) = magIPL(letMag,mR:mR+2);
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accIPL(mC,mR:mR+2) = accIPL(letMag,mR:mR+2);
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tempIPL(mC,t) = tempIPL(letMag,t);
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ErrInPlaceLink(mC,Err:Err+6) = 1;
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primo = 1;
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end
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end
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end
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else
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if magIPL(mC,mR) == 0 && magIPL(mC,mR+1) == 0 && magIPL(mC,mR+2) == 0
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magIPL(mC,mR:mR+2) = magIPL(mC-1,mR:mR+2);
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accIPL(mC,mR:mR+2) = accIPL(mC-1,mR:mR+2);
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tempIPL(mC,t) = tempIPL(mC-1,t);
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ErrInPlaceLink(mC,Err:Err+6) = 1;
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end
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end
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end
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mR = mR+3;
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t = t+1;
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Err = Err+7;
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end
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elseif MEMS == 0 && strcmp(NodoInPlaceLink(1,4),'0-10 V') == 1
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ax = DCalIPLTot(:,1);
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bx = DCalIPLTot(:,2);
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cx = DCalIPLTot(:,3);
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ay = DCalIPLTot(:,4);
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by = DCalIPLTot(:,5);
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cy = DCalIPLTot(:,6);
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az = DCalIPLTot(:,7);
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bz = DCalIPLTot(:,8);
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cz = DCalIPLTot(:,9);
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end
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if strcmp(NodoInPlaceLink(1,4),'ADC') || strcmp(NodoInPlaceLink{1,4},'null') || ...
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isempty(NodoInPlaceLink{1,4}) == 1 || strcmp(NodoInPlaceLink(1,4),'g') == 1
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check = isnan(MagX);
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if check == 0 % Applico gli offset
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cont = 1;
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cn = 1;
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for ii = 1:3*rIPL
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if cont==1
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magIPL(:,ii) = ((magIPL(:,ii) - MagX(cn))*100)/100000;
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cont = cont+1;
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elseif cont==2
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magIPL(:,ii) = ((magIPL(:,ii) - MagY(cn))*100)/100000;
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cont = cont+1;
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elseif cont==3
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magIPL(:,ii) = ((magIPL(:,ii) - MagZ(cn))*100)/100000;
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cont = 1;
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cn = cn+1;
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end
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end
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else
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magIPL = magIPL/1000; % 1000 Gauss
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end
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clear ii
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elseif strcmp(NodoInPlaceLink(1,4),'Gradi') || strcmp(NodoInPlaceLink(1,4),'digit')
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magIPL = [];
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end
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if MEMS == 1 || MEMS == 2
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%% Accelerometri
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cont = 1;
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cn = 1;
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% Contatore dei nodi, corregge le accelerazioni con le calibrazioni
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for ii=1:3*rIPL
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if cont==1
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accIPL(:,ii) = accIPL(:,ii)*caX(cn)+(tempIPL(:,cn)*pIntX(cn)+iIntX(cn));
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cont = cont+1;
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elseif cont==2
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accIPL(:,ii) = accIPL(:,ii)*caY(cn)+(tempIPL(:,cn)*pIntY(cn)+iIntY(cn));
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cont = cont+1;
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else
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accIPL(:,ii) = accIPL(:,ii)*caZ(cn)+(tempIPL(:,cn)*pIntZ(cn)+iIntZ(cn));
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cont = 1;
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cn = cn+1;
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end
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end
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%% Conversione delle temperature
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for t = 1:rIPL
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tempIPL(:,t) = tempIPL(:,t)*caT(t,1) + intT(t,1);
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end
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elseif MEMS == 0 && strcmp(NodoInPlaceLink(1,4),'0-10 V') == 1
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%% Accelerometri
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cont = 1;
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cn = 1;
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% Contatore dei nodi, corregge le accelerazioni con le calibrazioni
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for ii=1:3*rIPL
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if cont==1
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accIPL(:,ii) = ax(cn)*(accIPL(:,ii).^2)+bx(cn)*accIPL(:,ii)+cx(cn);
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cont = cont+1;
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elseif cont==2
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accIPL(:,ii) = ay(cn)*(accIPL(:,ii).^2)+by(cn)*accIPL(:,ii)+cy(cn);
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cont = cont+1;
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else
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accIPL(:,ii) = az(cn)*(accIPL(:,ii).^2)+bz(cn)*accIPL(:,ii)+cz(cn);
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cont = 1;
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cn = cn+1;
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end
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end
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end
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%% Risultanti
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[rAcc,cAcc] = size(accIPL);
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[rMag,cMag] = size(magIPL);
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ris_acc_IPL = zeros(rAcc,cAcc/3); % matrice risultante accelerazioni
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ris_mag_IPL = zeros(rMag,cMag/3); % matrice risultante campi magnetici
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clear i
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clear ii
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clear cont
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clear cn
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cont = 1; % contatore
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cn = 0;
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if strcmp(NodoInPlaceLink(1,4),'ADC') || strcmp(NodoInPlaceLink{1,4},'null') || ...
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isempty(NodoInPlaceLink{1,4}) == 1 || strcmp(NodoInPlaceLink(1,4),'g') == 1
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%% Calcolo della risultante
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for ii = 1:(cAcc/3) % colonne
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for i = 1:rAcc % righe
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ris_acc_IPL(i,cont) = (accIPL(i,cn*3+1)^2+accIPL(i,cn*3+2)^2+accIPL(i,cn*3+3)^2)^0.5;
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ris_mag_IPL(i,cont) = (magIPL(i,cn*3+1)^2+magIPL(i,cn*3+2)^2+magIPL(i,cn*3+3)^2)^0.5;
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end
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cn = cn+1;
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cont = cont+1;
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end
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[r,c] = size(ris_acc_IPL);
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mmm = 1;
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Err = 1;
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for j = 1:c % Nodi
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for i = 2:r % Letture
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% se il valore assoluto della differenza č maggiore della
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% tolleranza, pongo gli spostamenti giornalieri pari a 0
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if abs(ris_acc_IPL(i,j)-ris_acc_IPL(i-1,j)) > tolleranzaAcc
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accIPL(i,mmm) = accIPL(i-1,mmm);
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accIPL(i,mmm+1) = accIPL(i-1,mmm+1);
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accIPL(i,mmm+2) = accIPL(i-1,mmm+2);
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tempIPL(i,j) = tempIPL(i-1,j);
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ErrInPlaceLink(i,Err:Err+6) = 1;
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end
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if strcmp(IDcentralina,'ID0115') == 1
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if ris_acc_IPL(i,j) < 0.9 || ris_acc_IPL(i,j) > 1.17 % Il nodo č fuori taratura!
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accIPL(i,mmm) = accIPL(i-1,mmm);
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accIPL(i,mmm+1) = accIPL(i-1,mmm+1);
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accIPL(i,mmm+2) = accIPL(i-1,mmm+2);
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tempIPL(i,j) = tempIPL(i-1,j);
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ErrInPlaceLink(i,Err:Err+6) = 1;
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end
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else
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if ris_acc_IPL(i,j) < 0.9 || ris_acc_IPL(i,j) > 1.12 % Il nodo č fuori taratura!
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accIPL(i,mmm) = accIPL(i-1,mmm);
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accIPL(i,mmm+1) = accIPL(i-1,mmm+1);
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accIPL(i,mmm+2) = accIPL(i-1,mmm+2);
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tempIPL(i,j) = tempIPL(i-1,j);
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ErrInPlaceLink(i,Err:Err+6) = 1;
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end
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end
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end
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mmm = mmm+3;
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Err = Err+7;
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end
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end
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text = 'Raw Data of In Place Link converted into physical units correctly. conv_grezziTLH function started';
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fprintf(fileID,fmt,text);
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fclose(fileID);
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end |