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// license:CC0-1.0
// copyright-holders:Couriersud
/*
* This example illustrates how to use netlist to derive RGB output
* levels from complex output circuits.
*
* Create x.cpp:
#include <cstdio>
int main()
{
// Change IC86 output every micro second starting at 1ms
for (std::size_t i=0;i<256;i++)
printf("%.9f,IC86.D.IN,%d\n", (double) i / 1.0e6 + 1.0e-3, (int)i);
}
* Run these commands:
*
* c++ x.cpp
* ./a.out > src/lib/netlist/examples/turkey_shoot.csv
* ./nltool -c run -t 0.0013 -f src/lib/netlist/examples/turkey_shoot.cpp -i src/lib/netlist/examples/turkey_shoot.csv -l BLUE
* ./nlwav -f tab -o x.tab -s 0.0010005 -i 0.000001 -n 256 log_BLUE.log
*
* x.tab now contains 256 values representing the different output levels:
* low 4 bits: color value
* high 4 bits: attenuation value
*
*/
#include "netlist/devices/net_lib.h"
/* ----------------------------------------------------------------------------
* Define
* ---------------------------------------------------------------------------*/
/* set to 1 to use optimizations increasing performance significantly */
#ifndef USE_OPTIMIZATIONS
#define USE_OPTIMIZATIONS 0
#endif
/* ----------------------------------------------------------------------------
* Library section header START
* ---------------------------------------------------------------------------*/
#ifndef __PLIB_PREPROCESSOR__
#define SHIM74LS374_DIP(_name) \
NET_REGISTER_DEV_X(SHIM74LS374_DIP, _name)
#endif
/* ----------------------------------------------------------------------------
* Library section header END
* ---------------------------------------------------------------------------*/
NETLIST_START(turkey_shoot_vga)
{
// EESCHEMA NETLIST VERSION 1.1 (SPICE FORMAT) CREATION DATE: WED 01 JUL 2015 11:09:25 PM CEST
// TO EXCLUDE A COMPONENT FROM THE SPICE NETLIST ADD [SPICE_NETLIST_ENABLED] USER FIELD SET TO: N
// TO REORDER THE COMPONENT SPICE NODE SEQUENCE ADD [SPICE_NODE_SEQUENCE] USER FIELD AND DEFINE SEQUENCE: 2,1,0
// SHEET NAME:/
// IGNORED O_AUDIO0: O_AUDIO0 64 0
// .END
PARAM(Solver.RELTOL, 1e-2)
PARAM(Solver.VNTOL, 1e-6)
PARAM(Solver.NR_LOOPS, 30)
PARAM(Solver.GS_LOOPS, 99)
PARAM(Solver.METHOD, "MAT_CR")
PARAM(Solver.PARALLEL, 0)
//PARAM(Solver.METHOD, "GMRES")
//PARAM(Solver.ACCURACY, 1e-5)
//PARAM(Solver.METHOD, "SOR")
#if USE_OPTIMIZATIONS
SOLVER(Solver, 48000)
#else
SOLVER(Solver, 48000)
PARAM(Solver.DYNAMIC_TS, 1)
PARAM(Solver.PARALLEL, 0)
PARAM(Solver.DYNAMIC_MIN_TIMESTEP, 2e-8)
PARAM(Solver.DYNAMIC_LTE, 1e-4)
#endif
NET_MODEL("2N3904 NPN(IS=1E-14 VAF=100 Bf=300 IKF=0.4 XTB=1.5 BR=4 CJC=4E-12 CJE=8E-12 RB=20 RC=0.1 RE=0.1 TR=250E-9 TF=350E-12 ITF=1 VTF=2 XTF=3 Vceo=40 Icrating=200m mfg=Philips)")
LOCAL_SOURCE(SHIM74LS374_DIP)
LOCAL_LIB_ENTRY(SHIM74LS374_DIP)
INCLUDE(turkey_shoot_schematics)
}
NETLIST_START(turkey_shoot_schematics)
{
ANALOG_INPUT(I_V12, 12)
ANALOG_INPUT(I_V5, 5)
TTL_INPUT(BLANK, 0)
IND(L1, 0.0000047)
CAP(C60, CAP_U(0.1))
CAP(C54, CAP_P(47))
CAP(C57, CAP_P(47))
RES(R32, RES_K(1))
RES(R33, RES_K(1))
RES(R34, 390)
RES(R6, RES_K(8.2))
RES(R7, RES_K(3.9))
RES(R8, RES_K(2))
RES(R9, RES_K(1))
RES(R10, RES_K(8.2))
RES(R11, RES_K(3.9))
RES(R12, RES_K(2))
RES(R13, RES_K(1))
RES(R35, RES_K(2.2))
RES(R36, RES_K(2.7))
RES(R31, 270)
RES(R30, RES_K(2))
RES(R29, RES_K(2))
RES(R28, RES_K(2))
RES(R22, 470)
RES(R23, 47)
DIODE(D1, "1N4148")
DIODE(D2, "1N4148")
DIODE(D3, "1N4148")
DIODE(D4, "1N4148")
DIODE(D5, "1N4148")
DIODE(D6, "1N4148")
DIODE(D7, "1N4148")
DIODE(D8, "1N4148")
DIODE(D17, "1N4148")
QBJT_EB(Q3, "2N3904")
QBJT_EB(Q4, "2N3904")
QBJT_EB(Q5, "2N3904")
SHIM74LS374_DIP(IC86)
NET_C(D8.K, IC86.19)
NET_C(D7.K, IC86.16)
NET_C(D6.K, IC86.15)
NET_C(D5.K, IC86.12)
NET_C(D4.K, IC86.9)
NET_C(D3.K, IC86.6)
NET_C(D2.K, IC86.5)
NET_C(D1.K, IC86.2)
NET_C(D8.A, R13.1)
NET_C(D7.A, R12.1)
NET_C(D6.A, R11.1)
NET_C(D5.A, R10.1)
NET_C(D4.A, R9.1)
NET_C(D3.A, R8.1)
NET_C(D2.A, R7.1)
NET_C(D1.A, R6.1)
NET_C(BLANK, C57.1, R32.1)
NET_C(C57.2, R32.2, R33.1, Q5.B)
NET_C(GND, R33.2, Q5.E, R36.2, C60.2)
NET_C(Q5.C, R34.1)
NET_C(R34.2, R13.2, R12.2, R11.2, R10.2, R35.2, R36.1, Q4.B)
NET_C(R35.1, Q4.C, C60.1, L1.2)
NET_C(I_V12, L1.1)
NET_C(Q4.E, R30.1, R29.1, R28.1, R31.1)
NET_C(GND, R31.2, R29.2, R28.2)
NET_C(R6.2, R7.2, R8.2, R9.2, R30.2, Q3.B)
NET_C(I_V5, Q3.C)
NET_C(GND, C54.2, R22.2)
NET_C(Q3.E, D17.A)
NET_C(D17.K, R22.1, R23.1)
NET_C(R23.2, C54.1)
NET_C(I_V5, IC86.20, BLANK.VCC)
NET_C(GND, IC86.10, BLANK.GND)
ALIAS(BLUE, C54.1)
}
NETLIST_START(SHIM74LS374_DIP)
{
NET_MODEL("SPECIAL FAMILY(IVL=0.16 IVH=0.4 OVL=0.1 OVH=0.05 ORL=10.0 ORH=1.0e10)")
//LOGIC_INPUT8(D, 0, "74XX")
//LOGIC_INPUT8(D, 0, "74XXOC")
LOGIC_INPUT8(D, 0, "SPECIAL")
ALIAS(20, D.VCC)
ALIAS(10, D.GND)
ALIAS( 2, D.Q0)
ALIAS( 5, D.Q1)
ALIAS( 6, D.Q2)
ALIAS( 9, D.Q3)
ALIAS(12, D.Q4)
ALIAS(15, D.Q5)
ALIAS(16, D.Q6)
ALIAS(19, D.Q7)
}
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