RESTRICTION: The PDP-15 FPP is only partially debugged. Do NOT enable this feature for normal operations. WARNING: The core simulator files (scp.c, sim_*.c) have been reorganized. Unzip V3.2-0 to an empty directory before attempting to compile the source. IMPORTANT: If you are compiling for UNIX, please read the notes for Ethernet very carefully. You may need to download a new version of the pcap library, or make changes to the makefile, to get Ethernet support to work. 1. New Features in 3.2-0 1.1 SCP and libraries - Added SHOW <device> RADIX command. - Added SHOW <device> MODIFIERS command. - Added SHOW <device> NAMES command. - Added SET/SHOW <device> DEBUG command. - Added sim_vm_parse_addr and sim_vm_fprint_addr optional interfaces. - Added REG_VMAD flag. - Split SCP into separate libraries for easier modification. - Added more room to the device and unit flag fields. - Changed terminal multiplexor library to support unlimited. number of async lines. 1.2 All DECtapes - Added STOP_EOR flag to enable end-of-reel error stop - Added device debug support. 1.3 Nova and Eclipse - Added QTY and ALM multiplexors (Bruce Ray). 1.4 LGP-30 - Added LGP-30/LGP-21 simulator. 1.5 PDP-11 - Added format, address increment inhibit, transfer overrun detection to RK. - Added device debug support to HK, RP, TM, TQ, TS. - Added DEUNA/DELUA (XU) support (Dave Hittner). - Add DZ per-line logging. 1.6 18b PDP's - Added support for 1-4 (PDP-9)/1-16 (PDP-15) additional terminals. 1.7 PDP-10 - Added DEUNA/DELUA (XU) support (Dave Hittner). 1.8 VAX - Added extended memory to 512MB (Mark Pizzolato). - Added RXV21 support. 2. Bugs Fixed in 3.2-0 2.1 SCP - Fixed double logging of SHOW BREAK (found by Mark Pizzolato). - Fixed implementation of REG_VMIO. 2.2 Nova and Eclipse - Fixed device enable/disable support (found by Bruce Ray). 2.3 PDP-1 - Fixed bug in LOAD (found by Mark Crispin). 2.4 PDP-10 - Fixed bug in floating point unpack. - Fixed bug in FIXR (found by Phil Stone, fixed by Chris Smith). 2.6 PDP-11 - Fixed bug in RQ interrupt control (found by Tom Evans). 2.6 PDP-18B - Fixed bug in PDP-15 XVM g_mode implementation. - Fixed bug in PDP-15 indexed address calculation. - Fixed bug in PDP-15 autoindexed address calculation. - Fixed bugs in FPP-15 instruction decode. - Fixed clock response to CAF. - Fixed bug in hardware read-in mode bootstrap. - Fixed PDP-15 XVM instruction decoding errors. 2.7 VAX - Fixed PC read fault in EXTxV. - Fixed PC write fault in INSV.
520 lines
17 KiB
C
520 lines
17 KiB
C
/* h316_mt.c: H316/516 magnetic tape simulator
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Copyright (c) 2003-2004, Robert M. Supnik
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Permission is hereby granted, free of charge, to any person obtaining a
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copy of this software and associated documentation files (the "Software"),
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to deal in the Software without restriction, including without limitation
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the rights to use, copy, modify, merge, publish, distribute, sublicense,
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and/or sell copies of the Software, and to permit persons to whom the
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Software is furnished to do so, subject to the following conditions:
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The above copyright notice and this permission notice shall be included in
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all copies or substantial portions of the Software.
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THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
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ROBERT M SUPNIK BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER
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IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
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CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
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Except as contained in this notice, the name of Robert M Supnik shall not
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be used in advertising or otherwise to promote the sale, use or other dealings
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in this Software without prior written authorization from Robert M Supnik.
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mt 516-4100 seven track magnetic tape
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Magnetic tapes are represented as a series of variable records
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of the form:
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32b byte count
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byte 0
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byte 1
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:
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byte n-2
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byte n-1
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32b byte count
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If the byte count is odd, the record is padded with an extra byte
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of junk. File marks are represented by a byte count of 0.
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*/
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#include "h316_defs.h"
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#include "sim_tape.h"
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#define MT_NUMDR 4 /* number of drives */
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#define DB_N_SIZE 16 /* max data buf */
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#define DBSIZE (1 << DB_N_SIZE) /* max data cmd */
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#define FNC u3 /* function */
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#define UST u4 /* unit status */
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#define UNIT_WPRT (MTUF_WLK | UNIT_RO) /* write prot */
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/* Function codes */
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#define FNC_RBCD2 000
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#define FNC_RBIN2 001
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#define FNC_RBIN3 002
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#define FNC_DMANM 003
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#define FNC_WBCD2 004
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#define FNC_WBIN2 005
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#define FNC_WEOF 006
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#define FNC_IOBUS 007
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#define FNC_WBIN3 010
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#define FNC_FSR 011
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#define FNC_FSF 012
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#define FNC_DMAAU 013
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#define FNC_REW 014
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#define FNC_BSR 015
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#define FNC_BSF 016
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#define FNC_STOPW 017
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#define FNC_2ND 020 /* second state */
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#define FNC_NOP (FNC_STOPW|FNC_2ND)
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#define FNC_EOM 040 /* end of motion */
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/* Status - unit.UST */
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#define STA_BOT 0000002 /* beg of tape */
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#define STA_EOT 0000001 /* end of tape */
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extern int32 dev_int, dev_enb, chan_req;
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extern int32 stop_inst;
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uint32 mt_buf = 0; /* data buffer */
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uint32 mt_usel = 0; /* unit select */
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uint32 mt_busy = 0; /* ctlr busy */
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uint32 mt_mdirq = 0; /* motion done int req */
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uint32 mt_rdy = 0; /* transfer ready (int) */
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uint32 mt_err = 0; /* error */
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uint32 mt_eof = 0; /* end of file */
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uint32 mt_eor = 0; /* transfer done */
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uint32 mt_dma = 0; /* DMA/DMC */
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uint32 mt_xtime = 16; /* transfer time */
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uint32 mt_ctime = 3000; /* start/stop time */
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uint32 mt_stopioe = 1; /* stop on I/O error */
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uint8 mtxb[DBSIZE] = { 0 }; /* data buffer */
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t_mtrlnt mt_ptr = 0, mt_max = 0; /* buffer ptrs */
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int32 mtio (int32 inst, int32 fnc, int32 dat, int32 dev);
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void mt_updint (uint32 rdy, uint32 mdone);
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t_stat mt_svc (UNIT *uptr);
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t_stat mt_reset (DEVICE *dptr);
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t_stat mt_attach (UNIT *uptr, char *cptr);
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t_stat mt_detach (UNIT *uptr);
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t_stat mt_map_err (UNIT *uptr, t_stat st);
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void mt_wrwd (UNIT *uptr, uint32 dat);
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/* MT data structures
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mt_dev MT device descriptor
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mt_unit MT unit list
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mt_reg MT register list
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mt_mod MT modifier list
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*/
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DIB mt_dib = { MT, IOBUS, MT_NUMDR, &mtio };
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UNIT mt_unit[] = {
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{ UDATA (&mt_svc, UNIT_ATTABLE + UNIT_ROABLE + UNIT_DISABLE, 0) },
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{ UDATA (&mt_svc, UNIT_ATTABLE + UNIT_ROABLE + UNIT_DISABLE, 0) },
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{ UDATA (&mt_svc, UNIT_ATTABLE + UNIT_ROABLE + UNIT_DISABLE, 0) },
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{ UDATA (&mt_svc, UNIT_ATTABLE + UNIT_ROABLE + UNIT_DISABLE, 0) } };
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REG mt_reg[] = {
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{ ORDATA (BUF, mt_buf, 16) },
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{ ORDATA (USEL, mt_usel, 2) },
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{ FLDATA (BUSY, mt_busy, 0) },
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{ FLDATA (RDY, mt_rdy, 0) },
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{ FLDATA (ERR, mt_err, 0) },
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{ FLDATA (EOF, mt_eof, 0) },
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{ FLDATA (EOR, mt_eor, 0) },
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{ FLDATA (MDIRQ, mt_mdirq, 0) },
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{ FLDATA (DMA, mt_dma, 0) },
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{ FLDATA (INTREQ, dev_int, INT_V_MT) },
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{ FLDATA (ENABLE, dev_enb, INT_V_MT) },
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{ BRDATA (DBUF, mtxb, 8, 8, DBSIZE) },
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{ DRDATA (BPTR, mt_ptr, DB_N_SIZE + 1) },
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{ DRDATA (BMAX, mt_max, DB_N_SIZE + 1) },
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{ DRDATA (CTIME, mt_ctime, 24), REG_NZ + PV_LEFT },
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{ DRDATA (XTIME, mt_xtime, 24), REG_NZ + PV_LEFT },
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{ URDATA (POS, mt_unit[0].pos, 10, T_ADDR_W, 0, MT_NUMDR, PV_LEFT) },
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{ URDATA (FNC, mt_unit[0].FNC, 8, 8, 0, MT_NUMDR, REG_HRO) },
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{ URDATA (UST, mt_unit[0].UST, 8, 2, 0, MT_NUMDR, REG_HRO) },
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{ ORDATA (CHAN, mt_dib.chan, 5), REG_HRO },
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{ FLDATA (STOP_IOE, mt_stopioe, 0) },
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{ NULL } };
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MTAB mt_mod[] = {
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{ MTUF_WLK, 0, "write enabled", "WRITEENABLED", NULL },
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{ MTUF_WLK, MTUF_WLK, "write locked", "LOCKED", NULL },
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{ MTAB_XTD|MTAB_VUN, 0, "FORMAT", "FORMAT",
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&sim_tape_set_fmt, &sim_tape_show_fmt, NULL },
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{ MTAB_XTD|MTAB_VDV, 0, NULL, "IOBUS",
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&io_set_iobus, NULL, NULL },
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{ MTAB_XTD|MTAB_VDV, 0, NULL, "DMC",
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&io_set_dmc, NULL, NULL },
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{ MTAB_XTD|MTAB_VDV, 0, NULL, "DMA",
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&io_set_dma, NULL, NULL },
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{ MTAB_XTD|MTAB_VDV, 0, "CHANNEL", NULL,
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NULL, &io_show_chan, NULL },
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{ 0 } };
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DEVICE mt_dev = {
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"MT", mt_unit, mt_reg, mt_mod,
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MT_NUMDR, 10, 31, 1, 8, 8,
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NULL, NULL, &mt_reset,
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NULL, &mt_attach, &mt_detach,
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&mt_dib, DEV_DISABLE };
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/* IO routine */
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int32 mtio (int32 inst, int32 fnc, int32 dat, int32 dev)
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{
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uint32 u = dev & 03;
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UNIT *uptr = mt_dev.units + u;
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static uint8 wrt_fnc[16] = { /* >0 = wr, 1 = chan op */
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0, 0, 0, 0, 1, 1, 2, 0, 1, 0, 0, 0, 0, 0, 0, 0 };
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switch (inst) { /* case on opcode */
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case ioOCP:
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mt_updint (mt_rdy, 0); /* clear motion intr */
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mt_eof = 0; /* clear eof */
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switch (fnc) { /* case on function */
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case FNC_DMANM: /* set DMA/DMC */
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case FNC_DMAAU:
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mt_usel = u; /* save unit select */
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if (mt_dib.chan) mt_dma = 1; /* if configured */
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break;
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case FNC_IOBUS: /* set IOBUS */
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mt_usel = u; /* save unit select */
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mt_dma = 0;
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break;
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case FNC_STOPW: /* stop write */
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mt_usel = u; /* save unit select */
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mt_updint (0, mt_mdirq); /* clear ready */
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if (wrt_fnc[uptr->FNC & 017] == 1) /* writing? */
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mt_eor = 1; /* set transfer done */
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break;
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default: /* motion command */
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if (mt_busy) return dat; /* nop if ctlr busy */
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mt_eor = 0; /* clr transfer done */
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mt_err = 0; /* clr error */
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mt_usel = u; /* save unit select */
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if (((uptr->flags & UNIT_ATT) == 0) || /* nop if not att */
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sim_is_active (uptr)) /* or busy */
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(IORETURN (mt_stopioe, SCPE_UNATT) | dat);
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if (wrt_fnc[fnc] && (uptr->flags & UNIT_WPRT))
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return (STOP_MTWRP << IOT_V_REASON);
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uptr->FNC = fnc;
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uptr->UST = 0;
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mt_busy = 1;
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sim_activate (uptr, mt_ctime); /* schedule */
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break; }
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break;
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case ioINA: /* INA */
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if (fnc) return IOBADFNC (dat); /* fnc 0 only */
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if (mt_rdy) { /* ready? */
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mt_rdy = 0; /* clear ready */
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return IOSKIP (dat | mt_buf); } /* ret buf, skip */
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break;
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case ioOTA: /* OTA */
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if (fnc) return IOBADFNC (dat); /* fnc 0 only */
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if (mt_rdy) { /* ready? */
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mt_rdy = 0; /* clear ready */
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mt_buf = dat; /* store buf */
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return IOSKIP (dat); } /* skip */
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break;
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case ioSKS:
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uptr = mt_dev.units + mt_usel; /* use saved unit sel */
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switch (fnc) {
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case 000: /* ready */
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if (mt_rdy) return IOSKIP (dat);
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break;
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case 001: /* !busy */
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if (!mt_busy) return IOSKIP (dat);
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break;
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case 002: /* !error */
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if (!mt_err) return IOSKIP (dat);
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break;
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case 003: /* !BOT */
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if (!(uptr->UST & STA_BOT)) return IOSKIP (dat);
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break;
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case 004: /* !interrupting */
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if (!TST_INTREQ (INT_MT)) return IOSKIP (dat);
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break;
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case 005: /* !EOT */
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if (!(uptr->UST & STA_EOT)) return IOSKIP (dat);
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break;
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case 006: /* !EOF */
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if (!mt_eof) return IOSKIP (dat);
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break;
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case 007: /* !write prot */
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if (!(uptr->flags & UNIT_WPRT)) return IOSKIP (dat);
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break;
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case 011: /* operational */
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if ((uptr->flags & UNIT_ATT) &&
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((uptr->FNC & 017) != FNC_REW)) return IOSKIP (dat);
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break;
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case 012: /* skip if !chan 2 */
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return IOSKIP (dat);
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case 013: /* skip if !auto */
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return IOSKIP (dat);
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case 014: /* !rewinding */
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uptr = mt_dev.units + (dev & 03); /* use specified unit */
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if ((uptr->FNC & 017) != FNC_REW) return IOSKIP (dat);
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break; }
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break;
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case ioEND: /* end of range */
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mt_eor = 1; /* transfer done */
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break; }
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return dat;
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}
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/* Unit service
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If rewind done, reposition to start of tape, set status
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else, do operation, set done, interrupt
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Can't be write locked, can only write lock detached unit
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*/
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t_stat mt_svc (UNIT *uptr)
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{
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int32 ch = mt_dib.chan - 1; /* DMA/DMC ch */
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uint32 i, c1, c2, c3;
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t_mtrlnt tbc;
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t_stat st, r = SCPE_OK;
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if ((uptr->flags & UNIT_ATT) == 0) { /* offline? */
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mt_err = 1;
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mt_busy = 0;
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mt_updint (0, 1); /* cmd done */
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return IORETURN (mt_stopioe, SCPE_UNATT); }
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switch (uptr->FNC) { /* case on function */
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case FNC_REW: /* rewind (initial) */
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mt_busy = 0; /* ctlr not busy */
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uptr->FNC = uptr->FNC | FNC_2ND;
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sim_activate (uptr, mt_ctime);
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return SCPE_OK; /* continue */
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case FNC_REW | FNC_2ND: /* rewind done */
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uptr->pos = 0; /* reposition file */
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uptr->UST = STA_BOT; /* set BOT */
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uptr->FNC = FNC_NOP; /* nop function */
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for (i = 0; i < MT_NUMDR; i++) { /* last rewind? */
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if ((mt_unit[i].FNC & 017) == FNC_REW) return SCPE_OK; }
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mt_updint (mt_rdy, 1); /* yes, motion done */
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return SCPE_OK;
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case FNC_WEOF: /* write file mark */
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if (st = sim_tape_wrtmk (uptr)) /* write tmk, err? */
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r = mt_map_err (uptr, st); /* map error */
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break; /* sched end motion */
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case FNC_FSR: /* space fwd rec */
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if (st = sim_tape_sprecf (uptr, &tbc)) /* space fwd, err? */
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r = mt_map_err (uptr, st); /* map error */
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break; /* sched end motion */
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case FNC_BSR: /* space rev rec */
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if (st = sim_tape_sprecr (uptr, &tbc)) /* space rev, err? */
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r = mt_map_err (uptr, st); /* map error */
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break; /* sched end motion */
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case FNC_FSF: /* space fwd file */
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while ((st = sim_tape_sprecf (uptr, &tbc)) == MTSE_OK) ;
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r = mt_map_err (uptr, st); /* map error */
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break; /* sched end motion */
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case FNC_BSF: /* space rev file */
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while ((st = sim_tape_sprecr (uptr, &tbc)) == MTSE_OK) ;
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r = mt_map_err (uptr, st); /* map error */
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break; /* sched end motion */
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case FNC_EOM: /* end of motion */
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uptr->FNC = FNC_NOP; /* nop function */
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mt_busy = 0; /* not busy */
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mt_updint (mt_rdy, 1); /* end of motion */
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return SCPE_OK; /* done! */
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/* Unit service, continued */
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case FNC_RBCD2: case FNC_RBIN2: case FNC_RBIN3: /* read first */
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mt_ptr = 0; /* clr buf ptr */
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st = sim_tape_rdrecf (uptr, mtxb, &mt_max, DBSIZE); /* read rec */
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if (st != MTSE_OK) { /* error? */
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r = mt_map_err (uptr, st); /* map error */
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break; } /* sched end motion */
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uptr->FNC = uptr->FNC | FNC_2ND; /* next state */
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sim_activate (uptr, mt_xtime); /* sched xfer */
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return SCPE_OK;
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case FNC_RBCD2 | FNC_2ND: /* read, word */
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case FNC_RBIN2 | FNC_2ND:
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case FNC_RBIN3 | FNC_2ND:
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if (mt_ptr >= mt_max) break; /* record done? */
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c1 = mtxb[mt_ptr++] & 077; /* get 2 chars */
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c2 = mtxb[mt_ptr++] & 077;
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if (uptr->FNC == (FNC_RBCD2 | FNC_2ND)) { /* BCD? */
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if (c1 == 012) c1 = 0; /* change 12 to 0 */
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if (c2 == 012) c2 = 0; }
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if (uptr->FNC == (FNC_RBIN3 | FNC_2ND)) { /* read 3? */
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if (mt_ptr >= mt_max) break; /* lose wd if not enuf */
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c3 = mtxb[mt_ptr++] & 017; } /* get 3rd char */
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else c3 = 0;
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sim_activate (uptr, mt_xtime); /* no, sched word */
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if (mt_eor) return SCPE_OK; /* xfer done? */
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mt_buf = (c1 << 10) | (c2 << 4) | c3; /* pack chars */
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if (mt_rdy) mt_err = 1; /* buf full? err */
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mt_updint (1, mt_mdirq); /* set ready */
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if (mt_dma) SET_CH_REQ (ch); /* DMC/DMA? req chan */
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return SCPE_OK; /* continue */
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case FNC_WBCD2: case FNC_WBIN2: case FNC_WBIN3: /* write first */
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mt_ptr = 0; /* clear buf ptr */
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mt_updint (1, mt_mdirq); /* set ready */
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if (mt_dma) SET_CH_REQ (ch); /* DMC/DMA? req chan */
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uptr->FNC = uptr->FNC | FNC_2ND; /* next state */
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sim_activate (uptr, mt_xtime); /* sched xfer */
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return SCPE_OK; /* continue */
|
||
|
||
case FNC_WBCD2 | FNC_2ND: /* write, word */
|
||
case FNC_WBIN2 | FNC_2ND:
|
||
case FNC_WBIN3 | FNC_2ND:
|
||
if (mt_eor || mt_rdy) { /* done or no data? */
|
||
if (!mt_rdy) mt_wrwd (uptr, mt_buf); /* write last word */
|
||
if (mt_ptr) { /* any data? */
|
||
if (st = sim_tape_wrrecf (uptr, mtxb, mt_ptr)) /* write, err? */
|
||
r = mt_map_err (uptr, st); } /* map error */
|
||
break; } /* sched end motion */
|
||
mt_wrwd (uptr, mt_buf); /* write word */
|
||
sim_activate (uptr, mt_xtime); /* no, sched word */
|
||
mt_updint (1, mt_mdirq); /* set ready */
|
||
if (mt_dma) SET_CH_REQ (ch); /* DMC/DMA? req chan */
|
||
return SCPE_OK; /* continue */
|
||
|
||
default: /* unknown */
|
||
break; }
|
||
|
||
/* End of command, process error or schedule end of motion */
|
||
|
||
if (r != SCPE_OK) {
|
||
uptr->FNC = FNC_NOP; /* nop function */
|
||
mt_busy = 0; /* not busy */
|
||
mt_updint (mt_rdy, 1); /* end of motion */
|
||
return r; }
|
||
uptr->FNC = FNC_EOM; /* sched end motion */
|
||
sim_activate (uptr, mt_ctime);
|
||
return SCPE_OK;
|
||
}
|
||
|
||
/* Write word to buffer */
|
||
|
||
void mt_wrwd (UNIT *uptr, uint32 dat)
|
||
{
|
||
uint32 c1, c2;
|
||
|
||
c1 = (dat >> 10) & 077; /* get 2 chars */
|
||
c2 = (dat >> 4) & 077;
|
||
if (uptr->FNC == (FNC_WBCD2 | FNC_2ND)) { /* BCD? */
|
||
if (c1 == 0) c1 = 012; /* change 0 to 12 */
|
||
if (c2 == 0) c2 = 012; }
|
||
if (mt_ptr < DBSIZE) mtxb[mt_ptr++] = c1; /* store 2 char */
|
||
if (mt_ptr < DBSIZE) mtxb[mt_ptr++] = c2;
|
||
if ((uptr->FNC == (FNC_WBIN3 | FNC_2ND)) && /* write 3? */
|
||
(mt_ptr < DBSIZE)) mtxb[mt_ptr++] = mt_buf & 017;
|
||
return;
|
||
}
|
||
|
||
/* Map tape error status */
|
||
|
||
t_stat mt_map_err (UNIT *uptr, t_stat st)
|
||
{
|
||
switch (st) {
|
||
case MTSE_FMT: /* illegal fmt */
|
||
case MTSE_UNATT: /* unattached */
|
||
mt_err = 1; /* reject */
|
||
case MTSE_OK: /* no error */
|
||
return SCPE_IERR; /* never get here! */
|
||
case MTSE_TMK: /* end of file */
|
||
mt_eof = 1; /* eof */
|
||
break;
|
||
case MTSE_INVRL: /* invalid rec lnt */
|
||
mt_err = 1;
|
||
return SCPE_MTRLNT;
|
||
case MTSE_IOERR: /* IO error */
|
||
mt_err = 1; /* error */
|
||
if (mt_stopioe) return SCPE_IOERR;
|
||
break;
|
||
case MTSE_RECE: /* record in error */
|
||
case MTSE_EOM: /* end of medium */
|
||
mt_err = 1; /* error */
|
||
break;
|
||
case MTSE_BOT: /* reverse into BOT */
|
||
uptr->UST = STA_BOT; /* set status */
|
||
break;
|
||
case MTSE_WRP: /* write protect */
|
||
mt_err = 1; /* error */
|
||
return STOP_MTWRP; }
|
||
return SCPE_OK;
|
||
}
|
||
|
||
/* Update interrupts */
|
||
|
||
void mt_updint (uint32 rdy, uint32 mdirq)
|
||
{
|
||
mt_rdy = rdy; /* store new ready */
|
||
mt_mdirq = mdirq; /* store new motion irq */
|
||
if ((mt_rdy && !mt_dma) || mt_mdirq) SET_INT (INT_MT); /* update int request */
|
||
else CLR_INT (INT_MT);
|
||
return;
|
||
}
|
||
|
||
/* Reset routine */
|
||
|
||
t_stat mt_reset (DEVICE *dptr)
|
||
{
|
||
int32 i;
|
||
UNIT *uptr;
|
||
|
||
mt_buf = 0; /* clear state */
|
||
mt_usel = 0;
|
||
mt_mdirq = 0;
|
||
mt_eor = 0;
|
||
mt_busy = 0;
|
||
mt_rdy = 0;
|
||
mt_eof = 0;
|
||
mt_err = 0;
|
||
mt_dma = 0;
|
||
CLR_INT (INT_MT); /* clear int, enb */
|
||
CLR_ENB (INT_MT);
|
||
for (i = 0; i < MT_NUMDR; i++) { /* loop thru units */
|
||
uptr = mt_dev.units + i;
|
||
sim_tape_reset (uptr); /* reset tape */
|
||
sim_cancel (uptr); /* cancel op */
|
||
uptr->UST = uptr->pos? 0: STA_BOT; /* update status */
|
||
uptr->FNC = FNC_NOP; }
|
||
return SCPE_OK;
|
||
}
|
||
|
||
/* Attach routine */
|
||
|
||
t_stat mt_attach (UNIT *uptr, char *cptr)
|
||
{
|
||
t_stat r;
|
||
|
||
r = sim_tape_attach (uptr, cptr); /* attach unit */
|
||
if (r != SCPE_OK) return r; /* update status */
|
||
uptr->UST = STA_BOT;
|
||
return r;
|
||
}
|
||
|
||
/* Detach routine */
|
||
|
||
t_stat mt_detach (UNIT* uptr)
|
||
{
|
||
uptr->UST = 0; /* update status */
|
||
uptr->FNC = FNC_NOP; /* nop function */
|
||
return sim_tape_detach (uptr); /* detach unit */
|
||
}
|