230 lines
6.0 KiB
C
230 lines
6.0 KiB
C
/*
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* Copyright (c) 2002-2024 Michael Ruff (mruff at chiaro.com)
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*
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* This source code is free software; you can redistribute it
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* and/or modify it in source code form under the terms of the GNU
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* General Public License as published by the Free Software
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* Foundation; either version 2 of the License, or (at your option)
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* any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
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*/
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#include <veriuser.h>
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#include <vpi_user.h>
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#include <stdlib.h>
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#include <math.h>
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#include "config.h"
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#include "priv.h"
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#include <assert.h>
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/*
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* some TF time routines implemented using VPI interface
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*/
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// On some platforms (e.g. MinGW), pow() may not always generate an
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// exact integer result when supplied with integer operands. Converting
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// the result to an integer before we use it seems to be enough to work
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// round this issue.
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static ivl_u64_t pow10u(PLI_INT32 val)
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{
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return (ivl_u64_t)pow(10, val);
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}
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static ivl_u64_t
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scale(int high, int low, void*obj)
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{
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ivl_u64_t scaled;
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vpiHandle use_obj = obj;
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if (use_obj == 0) {
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/* If object is not passed in, then use current scope. */
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vpiHandle hand = vpi_handle(vpiScope, cur_instance);
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use_obj = hand;
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} else {
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/* If object IS passed in, make sure it is a scope. If
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it is not, then get the scope of the object. We need
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a scope handle to go on. */
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switch (vpi_get(vpiType,use_obj)) {
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case vpiModule:
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case vpiGenScope:
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case vpiFunction:
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case vpiTask:
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case vpiNamedBegin:
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case vpiNamedFork:
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break;
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default:
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use_obj = vpi_handle(vpiScope, use_obj);
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break;
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}
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}
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scaled = high;
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scaled = (scaled << 32) | low;
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scaled /= pow10u(vpi_get(vpiTimeUnit, use_obj) - vpi_get(vpiTimePrecision,0));
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return scaled;
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}
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PLI_INT32 tf_gettime(void)
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{
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s_vpi_time timerec;
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timerec.type = vpiSimTime;
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vpi_get_time (0, &timerec);
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return scale(timerec.high, timerec.low, 0) & 0xffffffff;
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}
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char *tf_strgettime(void)
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{
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static char buf[32];
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s_vpi_time timerec;
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timerec.type = vpiSimTime;
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vpi_get_time (0, &timerec);
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if (timerec.high)
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snprintf(buf, sizeof(buf)-1, "%u%08u", (unsigned int)timerec.high,
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(unsigned int)timerec.low);
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else
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snprintf(buf, sizeof(buf)-1, "%u", (unsigned int)timerec.low);
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return buf;
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}
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PLI_INT32 tf_igetlongtime(PLI_INT32 *high, void*obj)
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{
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s_vpi_time timerec;
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ivl_u64_t scaled;
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timerec.type = vpiSimTime;
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vpi_get_time ((vpiHandle)obj, &timerec);
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scaled = scale(timerec.high, timerec.low, obj);
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*high = (scaled >> 32) & 0xffffffff;
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return scaled & 0xffffffff;
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}
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PLI_INT32 tf_getlongtime(PLI_INT32 *high)
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{
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return tf_igetlongtime(high, 0);
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}
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/*
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* This function is not defined in the IEEE standard, but is provided for
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* compatibility with other simulators. On platforms that support this,
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* make it a weak symbol just in case the user has defined their own
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* function for this.
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*/
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#if !defined(__CYGWIN__) && !defined(__MINGW32__)
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PLI_INT32 tf_getlongsimtime(PLI_INT32 *high) __attribute__ ((weak));
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#endif
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PLI_INT32 tf_getlongsimtime(PLI_INT32 *high)
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{
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s_vpi_time timerec;
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timerec.type = vpiSimTime;
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vpi_get_time (0, &timerec);
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*high = timerec.high;
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return timerec.low;
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}
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void tf_scale_longdelay(void*obj, PLI_INT32 low, PLI_INT32 high,
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PLI_INT32 *alow, PLI_INT32 *ahigh)
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{
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ivl_u64_t scaled = scale(high, low, obj);
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*ahigh = (scaled >> 32) & 0xffffffff;
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*alow = scaled & 0xffffffff;
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}
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void tf_unscale_longdelay(void*obj, PLI_INT32 low, PLI_INT32 high,
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PLI_INT32 *alow, PLI_INT32 *ahigh)
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{
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ivl_u64_t unscaled;
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vpiHandle hand = vpi_handle(vpiScope, cur_instance);
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(void)obj; /* Parameter is not used. */
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unscaled = high;
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unscaled = (unscaled << 32) | low;
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unscaled *= pow(10, vpi_get(vpiTimeUnit, hand) -
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vpi_get(vpiTimePrecision, 0));
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*ahigh = (unscaled >> 32) & 0xffffffff;
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*alow = unscaled & 0xffffffff;
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}
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void tf_scale_realdelay(void*obj, double real, double *areal)
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{
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vpiHandle hand = vpi_handle(vpiScope, cur_instance);
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(void)obj; /* Parameter is not used. */
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*areal = real / pow(10, vpi_get(vpiTimeUnit, hand) -
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vpi_get(vpiTimePrecision, 0));
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}
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void tf_unscale_realdelay(void*obj, double real, double *areal)
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{
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vpiHandle hand = vpi_handle(vpiScope, cur_instance);
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(void)obj; /* Parameter is not used. */
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*areal = real * pow(10, vpi_get(vpiTimeUnit, hand) -
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vpi_get(vpiTimePrecision, 0));
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}
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PLI_INT32 tf_gettimeprecision(void)
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{
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PLI_INT32 rc;
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vpiHandle hand;
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hand = vpi_handle(vpiScope, cur_instance);
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rc = vpi_get(vpiTimePrecision, hand);
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if (pli_trace)
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fprintf(pli_trace, "tf_gettimeprecision(<%s>) --> %d\n",
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vpi_get_str(vpiName, cur_instance), (int)rc);
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return rc;
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}
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PLI_INT32 tf_igettimeprecision(void*obj)
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{
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PLI_INT32 rc;
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if (obj == 0) {
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/* If the obj pointer is null, then get the simulation
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time precision. */
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rc = vpi_get(vpiTimePrecision, 0);
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} else {
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vpiHandle scope = vpi_handle(vpiScope, (vpiHandle)obj);
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assert(scope);
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rc = vpi_get(vpiTimePrecision, scope);
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}
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if (pli_trace)
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fprintf(pli_trace, "tf_igettimeprecision(<%s>) --> %d\n",
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obj? vpi_get_str(vpiName, obj) : ".", (int)rc);
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return rc;
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}
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PLI_INT32 tf_gettimeunit(void)
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{
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vpiHandle hand = vpi_handle(vpiScope, cur_instance);
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return vpi_get(vpiTimeUnit, hand);
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}
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PLI_INT32 tf_igettimeunit(void*obj)
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{
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return vpi_get(!obj ? vpiTimePrecision : vpiTimeUnit, (vpiHandle)obj);
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}
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