446 lines
16 KiB
C
446 lines
16 KiB
C
/**** BSIM3v3.3.0, Released by Xuemei Xi 07/29/2005 ****/
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/**********
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* Copyright 2004 Regents of the University of California. All rights reserved.
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* File: b3check.c of BSIM3v3.3.0
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* Author: 1995 Min-Chie Jeng
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* Author: 1997-1999 Weidong Liu.
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* Author: 2001 Xuemei Xi.
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* Modified by Xuemei Xi, 10/05, 12/14, 2001.
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* Modified by Xuemei Xi, 07/29/2005.
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**********/
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#include <ngspice/ngspice.h>
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#include <ngspice/cktdefs.h>
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#include "bsim3def.h"
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#include <ngspice/trandefs.h>
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#include <ngspice/const.h>
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#include <ngspice/sperror.h>
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#include <ngspice/devdefs.h>
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#include <ngspice/suffix.h>
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int
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BSIM3checkModel(
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BSIM3model *model,
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BSIM3instance *here,
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CKTcircuit *ckt)
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{
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struct bsim3SizeDependParam *pParam;
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int Fatal_Flag = 0;
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FILE *fplog;
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NG_IGNORE(ckt);
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if ((fplog = fopen("b3v3check.log", "w")) != NULL)
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{ pParam = here->pParam;
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fprintf(fplog, "BSIM3v3.3.0 Parameter Checking.\n");
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if ((strcmp(model->BSIM3version, "3.3.0")) && (strcmp(model->BSIM3version, "3.30")) && (strcmp(model->BSIM3version, "3.3")))
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{ fprintf(fplog, "Warning: This model is BSIM3v3.3.0; you specified a wrong version number.\n");
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printf("Warning: This model is BSIM3v3.3.0; you specified a wrong version number.\n");
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}
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fprintf(fplog, "Model = %s\n", model->BSIM3modName);
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if (pParam->BSIM3nlx < -pParam->BSIM3leff)
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{ fprintf(fplog, "Fatal: Nlx = %g is less than -Leff.\n",
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pParam->BSIM3nlx);
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printf("Fatal: Nlx = %g is less than -Leff.\n",
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pParam->BSIM3nlx);
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Fatal_Flag = 1;
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}
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if (model->BSIM3tox <= 0.0)
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{ fprintf(fplog, "Fatal: Tox = %g is not positive.\n",
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model->BSIM3tox);
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printf("Fatal: Tox = %g is not positive.\n", model->BSIM3tox);
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Fatal_Flag = 1;
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}
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if (model->BSIM3toxm <= 0.0)
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{ fprintf(fplog, "Fatal: Toxm = %g is not positive.\n",
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model->BSIM3toxm);
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printf("Fatal: Toxm = %g is not positive.\n", model->BSIM3toxm);
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Fatal_Flag = 1;
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}
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if (model->BSIM3lintnoi > pParam->BSIM3leff/2)
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{ fprintf(fplog, "Fatal: Lintnoi = %g is too large - Leff for noise is negative.\n",
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model->BSIM3lintnoi);
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printf("Fatal: Lintnoi = %g is too large - Leff for noise is negative.\n",
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model->BSIM3lintnoi);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3npeak <= 0.0)
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{ fprintf(fplog, "Fatal: Nch = %g is not positive.\n",
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pParam->BSIM3npeak);
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printf("Fatal: Nch = %g is not positive.\n",
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pParam->BSIM3npeak);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3nsub <= 0.0)
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{ fprintf(fplog, "Fatal: Nsub = %g is not positive.\n",
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pParam->BSIM3nsub);
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printf("Fatal: Nsub = %g is not positive.\n",
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pParam->BSIM3nsub);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3ngate < 0.0)
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{ fprintf(fplog, "Fatal: Ngate = %g is not positive.\n",
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pParam->BSIM3ngate);
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printf("Fatal: Ngate = %g Ngate is not positive.\n",
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pParam->BSIM3ngate);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3ngate > 1.e25)
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{ fprintf(fplog, "Fatal: Ngate = %g is too high.\n",
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pParam->BSIM3ngate);
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printf("Fatal: Ngate = %g Ngate is too high\n",
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pParam->BSIM3ngate);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3xj <= 0.0)
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{ fprintf(fplog, "Fatal: Xj = %g is not positive.\n",
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pParam->BSIM3xj);
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printf("Fatal: Xj = %g is not positive.\n", pParam->BSIM3xj);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3dvt1 < 0.0)
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{ fprintf(fplog, "Fatal: Dvt1 = %g is negative.\n",
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pParam->BSIM3dvt1);
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printf("Fatal: Dvt1 = %g is negative.\n", pParam->BSIM3dvt1);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3dvt1w < 0.0)
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{ fprintf(fplog, "Fatal: Dvt1w = %g is negative.\n",
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pParam->BSIM3dvt1w);
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printf("Fatal: Dvt1w = %g is negative.\n", pParam->BSIM3dvt1w);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3w0 == -pParam->BSIM3weff)
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{ fprintf(fplog, "Fatal: (W0 + Weff) = 0 causing divided-by-zero.\n");
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printf("Fatal: (W0 + Weff) = 0 causing divided-by-zero.\n");
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3dsub < 0.0)
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{ fprintf(fplog, "Fatal: Dsub = %g is negative.\n", pParam->BSIM3dsub);
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printf("Fatal: Dsub = %g is negative.\n", pParam->BSIM3dsub);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3b1 == -pParam->BSIM3weff)
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{ fprintf(fplog, "Fatal: (B1 + Weff) = 0 causing divided-by-zero.\n");
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printf("Fatal: (B1 + Weff) = 0 causing divided-by-zero.\n");
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3u0temp <= 0.0)
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{ fprintf(fplog, "Fatal: u0 at current temperature = %g is not positive.\n", pParam->BSIM3u0temp);
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printf("Fatal: u0 at current temperature = %g is not positive.\n",
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pParam->BSIM3u0temp);
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Fatal_Flag = 1;
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}
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/* Check delta parameter */
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if (pParam->BSIM3delta < 0.0)
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{ fprintf(fplog, "Fatal: Delta = %g is less than zero.\n",
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pParam->BSIM3delta);
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printf("Fatal: Delta = %g is less than zero.\n", pParam->BSIM3delta);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3vsattemp <= 0.0)
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{ fprintf(fplog, "Fatal: Vsat at current temperature = %g is not positive.\n", pParam->BSIM3vsattemp);
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printf("Fatal: Vsat at current temperature = %g is not positive.\n",
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pParam->BSIM3vsattemp);
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Fatal_Flag = 1;
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}
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/* Check Rout parameters */
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if (pParam->BSIM3pclm <= 0.0)
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{ fprintf(fplog, "Fatal: Pclm = %g is not positive.\n", pParam->BSIM3pclm);
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printf("Fatal: Pclm = %g is not positive.\n", pParam->BSIM3pclm);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3drout < 0.0)
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{ fprintf(fplog, "Fatal: Drout = %g is negative.\n", pParam->BSIM3drout);
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printf("Fatal: Drout = %g is negative.\n", pParam->BSIM3drout);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3pscbe2 <= 0.0)
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{ fprintf(fplog, "Warning: Pscbe2 = %g is not positive.\n",
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pParam->BSIM3pscbe2);
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printf("Warning: Pscbe2 = %g is not positive.\n", pParam->BSIM3pscbe2);
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}
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if (model->BSIM3unitLengthSidewallJctCap > 0.0 ||
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model->BSIM3unitLengthGateSidewallJctCap > 0.0)
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{
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if (here->BSIM3drainPerimeter < pParam->BSIM3weff)
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{ fprintf(fplog, "Warning: Pd = %g is less than W.\n",
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here->BSIM3drainPerimeter);
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printf("Warning: Pd = %g is less than W.\n",
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here->BSIM3drainPerimeter);
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}
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if (here->BSIM3sourcePerimeter < pParam->BSIM3weff)
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{ fprintf(fplog, "Warning: Ps = %g is less than W.\n",
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here->BSIM3sourcePerimeter);
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printf("Warning: Ps = %g is less than W.\n",
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here->BSIM3sourcePerimeter);
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}
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}
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if (pParam->BSIM3noff < 0.1)
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{ fprintf(fplog, "Warning: Noff = %g is too small.\n",
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pParam->BSIM3noff);
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printf("Warning: Noff = %g is too small.\n", pParam->BSIM3noff);
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}
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if (pParam->BSIM3noff > 4.0)
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{ fprintf(fplog, "Warning: Noff = %g is too large.\n",
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pParam->BSIM3noff);
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printf("Warning: Noff = %g is too large.\n", pParam->BSIM3noff);
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}
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if (pParam->BSIM3voffcv < -0.5)
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{ fprintf(fplog, "Warning: Voffcv = %g is too small.\n",
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pParam->BSIM3voffcv);
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printf("Warning: Voffcv = %g is too small.\n", pParam->BSIM3voffcv);
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}
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if (pParam->BSIM3voffcv > 0.5)
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{ fprintf(fplog, "Warning: Voffcv = %g is too large.\n",
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pParam->BSIM3voffcv);
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printf("Warning: Voffcv = %g is too large.\n", pParam->BSIM3voffcv);
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}
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if (model->BSIM3ijth < 0.0)
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{ fprintf(fplog, "Fatal: Ijth = %g cannot be negative.\n",
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model->BSIM3ijth);
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printf("Fatal: Ijth = %g cannot be negative.\n", model->BSIM3ijth);
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Fatal_Flag = 1;
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}
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/* Check capacitance parameters */
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if (pParam->BSIM3clc < 0.0)
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{ fprintf(fplog, "Fatal: Clc = %g is negative.\n", pParam->BSIM3clc);
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printf("Fatal: Clc = %g is negative.\n", pParam->BSIM3clc);
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Fatal_Flag = 1;
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}
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if (pParam->BSIM3moin < 5.0)
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{ fprintf(fplog, "Warning: Moin = %g is too small.\n",
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pParam->BSIM3moin);
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printf("Warning: Moin = %g is too small.\n", pParam->BSIM3moin);
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}
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if (pParam->BSIM3moin > 25.0)
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{ fprintf(fplog, "Warning: Moin = %g is too large.\n",
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pParam->BSIM3moin);
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printf("Warning: Moin = %g is too large.\n", pParam->BSIM3moin);
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}
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if(model->BSIM3capMod ==3) {
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if (pParam->BSIM3acde < 0.4)
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{ fprintf(fplog, "Warning: Acde = %g is too small.\n",
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pParam->BSIM3acde);
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printf("Warning: Acde = %g is too small.\n", pParam->BSIM3acde);
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}
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if (pParam->BSIM3acde > 1.6)
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{ fprintf(fplog, "Warning: Acde = %g is too large.\n",
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pParam->BSIM3acde);
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printf("Warning: Acde = %g is too large.\n", pParam->BSIM3acde);
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}
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}
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if (model->BSIM3paramChk ==1)
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{
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/* Check L and W parameters */
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if (pParam->BSIM3leff <= 5.0e-8)
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{ fprintf(fplog, "Warning: Leff = %g may be too small.\n",
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pParam->BSIM3leff);
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printf("Warning: Leff = %g may be too small.\n",
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pParam->BSIM3leff);
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}
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if (pParam->BSIM3leffCV <= 5.0e-8)
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{ fprintf(fplog, "Warning: Leff for CV = %g may be too small.\n",
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pParam->BSIM3leffCV);
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printf("Warning: Leff for CV = %g may be too small.\n",
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pParam->BSIM3leffCV);
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}
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if (pParam->BSIM3weff <= 1.0e-7)
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{ fprintf(fplog, "Warning: Weff = %g may be too small.\n",
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pParam->BSIM3weff);
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printf("Warning: Weff = %g may be too small.\n",
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pParam->BSIM3weff);
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}
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if (pParam->BSIM3weffCV <= 1.0e-7)
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{ fprintf(fplog, "Warning: Weff for CV = %g may be too small.\n",
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pParam->BSIM3weffCV);
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printf("Warning: Weff for CV = %g may be too small.\n",
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pParam->BSIM3weffCV);
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}
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/* Check threshold voltage parameters */
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if (pParam->BSIM3nlx < 0.0)
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{ fprintf(fplog, "Warning: Nlx = %g is negative.\n", pParam->BSIM3nlx);
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printf("Warning: Nlx = %g is negative.\n", pParam->BSIM3nlx);
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}
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if (model->BSIM3tox < 1.0e-9)
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{ fprintf(fplog, "Warning: Tox = %g is less than 10A.\n",
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model->BSIM3tox);
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printf("Warning: Tox = %g is less than 10A.\n", model->BSIM3tox);
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}
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if (pParam->BSIM3npeak <= 1.0e15)
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{ fprintf(fplog, "Warning: Nch = %g may be too small.\n",
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pParam->BSIM3npeak);
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printf("Warning: Nch = %g may be too small.\n",
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pParam->BSIM3npeak);
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}
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else if (pParam->BSIM3npeak >= 1.0e21)
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{ fprintf(fplog, "Warning: Nch = %g may be too large.\n",
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pParam->BSIM3npeak);
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printf("Warning: Nch = %g may be too large.\n",
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pParam->BSIM3npeak);
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}
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if (pParam->BSIM3nsub <= 1.0e14)
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{ fprintf(fplog, "Warning: Nsub = %g may be too small.\n",
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pParam->BSIM3nsub);
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printf("Warning: Nsub = %g may be too small.\n",
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pParam->BSIM3nsub);
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}
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else if (pParam->BSIM3nsub >= 1.0e21)
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{ fprintf(fplog, "Warning: Nsub = %g may be too large.\n",
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pParam->BSIM3nsub);
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printf("Warning: Nsub = %g may be too large.\n",
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pParam->BSIM3nsub);
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}
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if ((pParam->BSIM3ngate > 0.0) &&
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(pParam->BSIM3ngate <= 1.e18))
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{ fprintf(fplog, "Warning: Ngate = %g is less than 1.E18cm^-3.\n",
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pParam->BSIM3ngate);
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printf("Warning: Ngate = %g is less than 1.E18cm^-3.\n",
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pParam->BSIM3ngate);
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}
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if (pParam->BSIM3dvt0 < 0.0)
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{ fprintf(fplog, "Warning: Dvt0 = %g is negative.\n",
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pParam->BSIM3dvt0);
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printf("Warning: Dvt0 = %g is negative.\n", pParam->BSIM3dvt0);
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}
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if (fabs(1.0e-6 / (pParam->BSIM3w0 + pParam->BSIM3weff)) > 10.0)
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{ fprintf(fplog, "Warning: (W0 + Weff) may be too small.\n");
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printf("Warning: (W0 + Weff) may be too small.\n");
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}
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/* Check subthreshold parameters */
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if (pParam->BSIM3nfactor < 0.0)
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{ fprintf(fplog, "Warning: Nfactor = %g is negative.\n",
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pParam->BSIM3nfactor);
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printf("Warning: Nfactor = %g is negative.\n", pParam->BSIM3nfactor);
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}
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if (pParam->BSIM3cdsc < 0.0)
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{ fprintf(fplog, "Warning: Cdsc = %g is negative.\n",
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pParam->BSIM3cdsc);
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printf("Warning: Cdsc = %g is negative.\n", pParam->BSIM3cdsc);
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}
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if (pParam->BSIM3cdscd < 0.0)
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{ fprintf(fplog, "Warning: Cdscd = %g is negative.\n",
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pParam->BSIM3cdscd);
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printf("Warning: Cdscd = %g is negative.\n", pParam->BSIM3cdscd);
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}
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/* Check DIBL parameters */
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if (pParam->BSIM3eta0 < 0.0)
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{ fprintf(fplog, "Warning: Eta0 = %g is negative.\n",
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pParam->BSIM3eta0);
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printf("Warning: Eta0 = %g is negative.\n", pParam->BSIM3eta0);
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}
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/* Check Abulk parameters */
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if (fabs(1.0e-6 / (pParam->BSIM3b1 + pParam->BSIM3weff)) > 10.0)
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{ fprintf(fplog, "Warning: (B1 + Weff) may be too small.\n");
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printf("Warning: (B1 + Weff) may be too small.\n");
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}
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/* Check Saturation parameters */
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if (pParam->BSIM3a2 < 0.01)
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{ fprintf(fplog, "Warning: A2 = %g is too small. Set to 0.01.\n", pParam->BSIM3a2);
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printf("Warning: A2 = %g is too small. Set to 0.01.\n",
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pParam->BSIM3a2);
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pParam->BSIM3a2 = 0.01;
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}
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else if (pParam->BSIM3a2 > 1.0)
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{ fprintf(fplog, "Warning: A2 = %g is larger than 1. A2 is set to 1 and A1 is set to 0.\n",
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pParam->BSIM3a2);
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printf("Warning: A2 = %g is larger than 1. A2 is set to 1 and A1 is set to 0.\n",
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pParam->BSIM3a2);
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pParam->BSIM3a2 = 1.0;
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pParam->BSIM3a1 = 0.0;
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}
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if (pParam->BSIM3rdsw < 0.0)
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{ fprintf(fplog, "Warning: Rdsw = %g is negative. Set to zero.\n",
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pParam->BSIM3rdsw);
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printf("Warning: Rdsw = %g is negative. Set to zero.\n",
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pParam->BSIM3rdsw);
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pParam->BSIM3rdsw = 0.0;
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pParam->BSIM3rds0 = 0.0;
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}
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if (pParam->BSIM3rds0 < 0.0)
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{ fprintf(fplog, "Warning: Rds at current temperature = %g is negative. Set to zero.\n",
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pParam->BSIM3rds0);
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printf("Warning: Rds at current temperature = %g is negative. Set to zero.\n",
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pParam->BSIM3rds0);
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pParam->BSIM3rds0 = 0.0;
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}
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if (pParam->BSIM3vsattemp < 1.0e3)
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{ fprintf(fplog, "Warning: Vsat at current temperature = %g may be too small.\n", pParam->BSIM3vsattemp);
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printf("Warning: Vsat at current temperature = %g may be too small.\n", pParam->BSIM3vsattemp);
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}
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if (pParam->BSIM3pdibl1 < 0.0)
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{ fprintf(fplog, "Warning: Pdibl1 = %g is negative.\n",
|
|
pParam->BSIM3pdibl1);
|
|
printf("Warning: Pdibl1 = %g is negative.\n", pParam->BSIM3pdibl1);
|
|
}
|
|
if (pParam->BSIM3pdibl2 < 0.0)
|
|
{ fprintf(fplog, "Warning: Pdibl2 = %g is negative.\n",
|
|
pParam->BSIM3pdibl2);
|
|
printf("Warning: Pdibl2 = %g is negative.\n", pParam->BSIM3pdibl2);
|
|
}
|
|
/* Check overlap capacitance parameters */
|
|
if (model->BSIM3cgdo < 0.0)
|
|
{ fprintf(fplog, "Warning: cgdo = %g is negative. Set to zero.\n", model->BSIM3cgdo);
|
|
printf("Warning: cgdo = %g is negative. Set to zero.\n", model->BSIM3cgdo);
|
|
model->BSIM3cgdo = 0.0;
|
|
}
|
|
if (model->BSIM3cgso < 0.0)
|
|
{ fprintf(fplog, "Warning: cgso = %g is negative. Set to zero.\n", model->BSIM3cgso);
|
|
printf("Warning: cgso = %g is negative. Set to zero.\n", model->BSIM3cgso);
|
|
model->BSIM3cgso = 0.0;
|
|
}
|
|
if (model->BSIM3cgbo < 0.0)
|
|
{ fprintf(fplog, "Warning: cgbo = %g is negative. Set to zero.\n", model->BSIM3cgbo);
|
|
printf("Warning: cgbo = %g is negative. Set to zero.\n", model->BSIM3cgbo);
|
|
model->BSIM3cgbo = 0.0;
|
|
}
|
|
|
|
}/* loop for the parameter check for warning messages */
|
|
fclose(fplog);
|
|
}
|
|
else
|
|
{ fprintf(stderr, "Warning: Can't open log file. Parameter checking skipped.\n");
|
|
}
|
|
|
|
return(Fatal_Flag);
|
|
}
|
|
|