1*286Sbill /* 10/14/12 3.13 06/22/80 */ 2264Sbill 3276Sbill #define spl5 spl6 4264Sbill /* 5264Sbill * Emulex UNIBUS disk driver with overlapped seeks and ECC recovery. 6264Sbill * 7266Sbill * NB: This device is very sensitive: be aware that the code is the way 8266Sbill * it is for good reason and that there are delay loops here which may 9266Sbill * have to be lengthened if your processor is faster and which should 10266Sbill * probably be shortened if your processor is slower. 11266Sbill * 12264Sbill * This driver has been tested on a SC-11B Controller, configured 13264Sbill * with the following internal switch settings: 14264Sbill * SW1-1 5/19 surfaces (off, 19 surfaces on Ampex 9300) 15264Sbill * SW1-2 chksum enable (off, checksum disabled) 16264Sbill * SW1-3 volume select (off, 815 cylinders) 17264Sbill * SW1-4 sector select (on, 32 sectors) 18264Sbill * SW1-5 unused (off) 19264Sbill * SW1-6 port select (on, single port) 20264Sbill * SW1-7 npr delay (off, disable) 21264Sbill * SW1-8 ecc test mode (off, disable) 22264Sbill * and top mounted switches: 23264Sbill * SW2-1 extend opcodes (off=open, disable) 24264Sbill * SW2-2 extend diag (off=open, disable) 25264Sbill * SW2-3 4 wd dma burst (off=open, disable) 26264Sbill * SW2-4 unused (off=open) 27264Sbill * 28264Sbill * The controller transfers data much more rapidly with SW2-3 set, 29264Sbill * but we have previously experienced problems with it set this way. 30264Sbill * We intend to try this again in the near future. 31264Sbill * 32264Sbill * wnj June 14, 1980 33264Sbill */ 34264Sbill 35264Sbill #include "../h/param.h" 36264Sbill #include "../h/systm.h" 37264Sbill #include "../h/buf.h" 38264Sbill #include "../h/conf.h" 39264Sbill #include "../h/dir.h" 40264Sbill #include "../h/user.h" 41264Sbill #include "../h/map.h" 42264Sbill #include "../h/mba.h" 43264Sbill #include "../h/mtpr.h" 44264Sbill #include "../h/pte.h" 45264Sbill #include "../h/uba.h" 46264Sbill #include "../h/vm.h" 47264Sbill 48264Sbill /* 49264Sbill * Define number of drives, and range of sampling information to be used. 50264Sbill * 51264Sbill * Normally, DK_N .. DK_N+NUP-1 gather individual drive stats, 52264Sbill * and DK_N+NUP gathers controller transferring stats. 53264Sbill * 54264Sbill * If DK_N+NUP > DK_NMAX, then transfer stats are divided per drive. 55264Sbill * If DK_NMAX is yet smaller, some drives are not monitored. 56264Sbill */ 57264Sbill #define DK_N 1 58264Sbill #define DK_NMAX 2 59264Sbill 60264Sbill #define ushort unsigned short 61264Sbill 62264Sbill struct device 63264Sbill { 64264Sbill ushort upcs1; /* control and status register 1 */ 65264Sbill short upwc; /* word count register */ 66264Sbill ushort upba; /* UNIBUS address register */ 67264Sbill ushort upda; /* desired address register */ 68264Sbill ushort upcs2; /* control and status register 2 */ 69264Sbill ushort upds; /* drive Status */ 70264Sbill ushort uper1; /* error register 1 */ 71264Sbill ushort upas; /* attention summary */ 72264Sbill ushort upla; /* look ahead */ 73264Sbill ushort updb; /* data buffer */ 74264Sbill ushort upmr; /* maintenance */ 75264Sbill ushort updt; /* drive type */ 76264Sbill ushort upsn; /* serial number */ 77264Sbill ushort upof; /* offset register */ 78264Sbill ushort updc; /* desired cylinder address register */ 79264Sbill ushort upcc; /* current cylinder */ 80264Sbill ushort uper2; /* error register 2 */ 81264Sbill ushort uper3; /* error register 3 */ 82264Sbill ushort upec1; /* burst error bit position */ 83264Sbill ushort upec2; /* burst error bit pattern */ 84264Sbill }; 85264Sbill 86275Sbill /* 87275Sbill * Software extension to the upas register, so we can 88275Sbill * postpone starting SEARCH commands until the controller 89275Sbill * is not transferring. 90275Sbill */ 91275Sbill int softas; 92275Sbill 93275Sbill /* 94275Sbill * If upseek then we don't issue SEARCH commands but rather just 95275Sbill * settle for a SEEK to the correct cylinder. 96275Sbill */ 97275Sbill int upseek; 98275Sbill 99264Sbill #define UPADDR ((struct device *)(UBA0_DEV + 0176700)) 100264Sbill 101264Sbill #define NUP 2 /* Number of drives this installation */ 102264Sbill 103264Sbill #define NSECT 32 104264Sbill #define NTRAC 19 105264Sbill 106264Sbill /* 107264Sbill * Constants controlling on-cylinder SEARCH usage. 108264Sbill * 109275Sbill * SDIST/2 msec time needed to start transfer 110275Sbill * IDIST/2 msec slop for interrupt latency 111275Sbill * RDIST/2 msec tolerable rotational latency when on-cylinder 112275Sbill * 113275Sbill * If we are no closer than SDIST sectors and no further than SDIST+RDIST 114275Sbill * and in the driver then we take it as it is. Otherwise we do a SEARCH 115275Sbill * requesting an interrupt SDIST+IDIST sectors in advance. 116264Sbill */ 117275Sbill #define _SDIST 6 /* 3.0 msec */ 118275Sbill #define _RDIST 6 /* 2.5 msec */ 119275Sbill #define _IDIST 1 /* 0.5 msec */ 120264Sbill 121275Sbill int SDIST = _SDIST; 122275Sbill int RDIST = _RDIST; 123275Sbill int IDIST = _IDIST; 124275Sbill 125264Sbill /* 126264Sbill * To fill a 300M drive: 127264Sbill * A is designed to be used as a root. 128264Sbill * B is suitable for a swap area. 129264Sbill * H is the primary storage area. 130264Sbill * On systems with RP06'es, we normally use only 291346 blocks of the H 131264Sbill * area, and use DEF or G to cover the rest of the drive. The C system 132264Sbill * covers the whole drive and can be used for pack-pack copying. 133264Sbill */ 134264Sbill struct size 135264Sbill { 136264Sbill daddr_t nblocks; 137264Sbill int cyloff; 138264Sbill } up_sizes[8] = { 139264Sbill 15884, 0, /* A=cyl 0 thru 26 */ 140264Sbill 33440, 27, /* B=cyl 27 thru 81 */ 141264Sbill 494912, 0, /* C=cyl 0 thru 814 */ 142264Sbill 15884, 562, /* D=cyl 562 thru 588 */ 143264Sbill 55936, 589, /* E=cyl 589 thru 680 */ 144264Sbill 81472, 681, /* F=cyl 681 thru 814 */ 145264Sbill 153824, 562, /* G=cyl 562 thru 814 */ 146264Sbill 445664, 82, /* H=cyl 82 thru 814 */ 147264Sbill /* Later, and more safely for H area... 148264Sbill 291346, 82, /* H=cyl 82 thru 561 */ 149264Sbill }; 150264Sbill 151264Sbill /* 152264Sbill * The following defines are used in offset positioning 153264Sbill * when trying to recover disk errors, with the constants being 154264Sbill * +/- microinches. Note that header compare inhibit (HCI) is not 155264Sbill * tried (this makes sense only during read, in any case.) 156264Sbill * 157264Sbill * ARE ALL THESE IMPLEMENTED ON 9300? 158264Sbill */ 159264Sbill #define P400 020 160264Sbill #define M400 0220 161264Sbill #define P800 040 162264Sbill #define M800 0240 163264Sbill #define P1200 060 164264Sbill #define M1200 0260 165264Sbill #define HCI 020000 166264Sbill 167264Sbill int up_offset[16] = 168264Sbill { 169264Sbill P400, M400, P400, M400, 170264Sbill P800, M800, P800, M800, 171264Sbill P1200, M1200, P1200, M1200, 172264Sbill 0, 0, 0, 0, 173264Sbill }; 174264Sbill 175264Sbill /* 176264Sbill * Each drive has a table uputab[i]. On this table are sorted the 177264Sbill * pending requests implementing an elevator algorithm (see dsort.c.) 178264Sbill * In the upustart() routine, each drive is independently advanced 179264Sbill * until it is on the desired cylinder for the next transfer and near 180264Sbill * the desired sector. The drive is then chained onto the uptab 181264Sbill * table, and the transfer is initiated by the upstart() routine. 182264Sbill * When the transfer is completed the driver reinvokes the upustart() 183264Sbill * routine to set up the next transfer. 184264Sbill */ 185264Sbill struct buf uptab; 186264Sbill struct buf uputab[NUP]; 187264Sbill 188264Sbill struct buf rupbuf; /* Buffer for raw i/o */ 189264Sbill 190264Sbill /* Drive commands, placed in upcs1 */ 191264Sbill #define GO 01 /* Go bit, set in all commands */ 192264Sbill #define PRESET 020 /* Preset drive at init or after errors */ 193264Sbill #define OFFSET 014 /* Offset heads to try to recover error */ 194264Sbill #define RTC 016 /* Return to center-line after OFFSET */ 195264Sbill #define SEARCH 030 /* Search for cylinder+sector */ 196275Sbill #define SEEK 04 /* Seek to cylinder */ 197264Sbill #define RECAL 06 /* Recalibrate, needed after seek error */ 198264Sbill #define DCLR 010 /* Drive clear, after error */ 199264Sbill #define WCOM 060 /* Write */ 200264Sbill #define RCOM 070 /* Read */ 201264Sbill 202264Sbill /* Other bits of upcs1 */ 203264Sbill #define IE 0100 /* Controller wide interrupt enable */ 204264Sbill #define TRE 040000 /* Transfer error */ 205266Sbill #define RDY 020 /* Transfer terminated */ 206264Sbill 207264Sbill /* Drive status bits of upds */ 208264Sbill #define PIP 020000 /* Positioning in progress */ 209264Sbill #define ERR 040000 /* Error has occurred, DCLR necessary */ 210264Sbill #define VV 0100 /* Volume is valid, set by PRESET */ 211264Sbill #define DPR 0400 /* Drive has been preset */ 212264Sbill #define MOL 010000 /* Drive is online, heads loaded, etc */ 213264Sbill #define DRY 0200 /* Drive ready */ 214264Sbill 215264Sbill /* Bits of uper1 */ 216264Sbill #define DCK 0100000 /* Ecc error occurred */ 217264Sbill #define ECH 0100 /* Ecc error was unrecoverable */ 218264Sbill #define WLE 04000 /* Attempt to write read-only drive */ 219264Sbill 220264Sbill /* Bits of upof; the offset bits above are also in this register */ 221264Sbill #define FMT22 010000 /* 16 bits/word, must be always set */ 222264Sbill 223264Sbill #define b_cylin b_resid 224264Sbill 225264Sbill int up_ubinfo; /* Information about UBA usage saved here */ 226264Sbill /* 227264Sbill * The EMULEX controller balks if accessed quickly after 228264Sbill * certain operations. The exact timing has not yet been 229264Sbill * determined, but delays are known to be needed when changing 230264Sbill * the selected drive (by writing in upcs2), and thought to be 231264Sbill * needed after operations like PRESET and DCLR. The following 232264Sbill * variables control the delay, DELAY(n) is approximately n usec. 233264Sbill */ 234264Sbill int idelay = 500; /* Delay after PRESET or DCLR */ 235268Sbill int sdelay = 150; /* Delay after selecting drive in upcs2 */ 236275Sbill int rdelay = 100; /* Delay after SEARCH */ 237275Sbill int asdel = 100; /* Delay after clearing bit in upas */ 238264Sbill 239275Sbill int csdel2 = 0; /* ??? Delay in upstart ??? */ 240275Sbill 241264Sbill #define DELAY(N) { register int d; d = N; while (--d > 0); } 242264Sbill 243264Sbill int nwaitcs2; /* How many sdelay loops ? */ 244264Sbill int neasycs2; /* How many sdelay loops not needed ? */ 245264Sbill 246264Sbill #ifdef INTRLVE 247264Sbill daddr_t dkblock(); 248264Sbill #endif 249264Sbill 250264Sbill /* 251264Sbill * Queue an i/o request for a drive, checking first that it is in range. 252264Sbill * 253264Sbill * A unit start is issued if the drive is inactive, causing 254264Sbill * a SEARCH for the correct cylinder/sector. If the drive is 255264Sbill * already nearly on the money and the controller is not transferring 256264Sbill * we kick it to start the transfer. 257264Sbill */ 258264Sbill upstrategy(bp) 259264Sbill register struct buf *bp; 260264Sbill { 261264Sbill register struct buf *dp; 262264Sbill register unit, xunit; 263264Sbill long sz, bn; 264264Sbill 265264Sbill xunit = minor(bp->b_dev) & 077; 266264Sbill sz = bp->b_bcount; 267264Sbill sz = (sz+511) >> 9; /* transfer size in 512 byte sectors */ 268264Sbill unit = dkunit(bp); 269264Sbill if (unit >= NUP || 270264Sbill bp->b_blkno < 0 || 271264Sbill (bn = dkblock(bp))+sz > up_sizes[xunit&07].nblocks) { 272264Sbill bp->b_flags |= B_ERROR; 273264Sbill iodone(bp); 274264Sbill return; 275264Sbill } 276264Sbill bp->b_cylin = bn/(NSECT*NTRAC) + up_sizes[xunit&07].cyloff; 277264Sbill dp = &uputab[unit]; 278264Sbill (void) spl5(); 279264Sbill disksort(dp, bp); 280264Sbill if (dp->b_active == 0) { 281268Sbill (void) upustart(unit); 282264Sbill if (uptab.b_actf && uptab.b_active == 0) 283268Sbill (void) upstart(); 284264Sbill } 285264Sbill (void) spl0(); 286264Sbill } 287264Sbill 288264Sbill /* 289264Sbill * Start activity on specified drive; called when drive is inactive 290264Sbill * and new transfer request arrives and also when upas indicates that 291264Sbill * a SEARCH command is complete. 292264Sbill */ 293264Sbill upustart(unit) 294264Sbill register unit; 295264Sbill { 296264Sbill register struct buf *bp, *dp; 297264Sbill register struct device *upaddr = UPADDR; 298264Sbill daddr_t bn; 299264Sbill int sn, cn, csn; 300268Sbill int didie = 0; 301264Sbill 302275Sbill /* 303275Sbill * Other drivers tend to say something like 304275Sbill * upaddr->upcs1 = IE; 305275Sbill * upaddr->upas = 1<<unit; 306275Sbill * here, but the SC-11B will cancel a command which 307275Sbill * happens to be sitting in the cs1 if you clear the go 308275Sbill * bit by storing there (so the first is not safe), 309275Sbill * and it also does not like being bothered with operations 310275Sbill * such as clearing upas when a transfer is active (as 311275Sbill * it may well be.) 312275Sbill * 313275Sbill * Thus we keep careful track of when we re-enable IE 314275Sbill * after an interrupt and do it only if we didn't issue 315275Sbill * a command which re-enabled it as a matter of course. 316275Sbill * We clear bits in upas in the interrupt routine, when 317275Sbill * no transfers are active. 318275Sbill */ 319266Sbill if (unit >= NUP) 320268Sbill goto out; 321264Sbill if (unit+DK_N <= DK_NMAX) 322264Sbill dk_busy &= ~(1<<(unit+DK_N)); 323264Sbill dp = &uputab[unit]; 324266Sbill if ((bp = dp->b_actf) == NULL) 325268Sbill goto out; 326275Sbill /* 327275Sbill * The SC-11B doesn't start SEARCH commands when transfers are 328275Sbill * in progress. In fact, it tends to get confused when given 329275Sbill * SEARCH'es during transfers, generating interrupts with neither 330275Sbill * RDY nor a bit in the upas register. Thus we defer 331275Sbill * until an interrupt when a transfer is pending. 332275Sbill */ 333275Sbill if (uptab.b_active) { 334275Sbill softas |= 1<<unit; 335275Sbill return (0); 336275Sbill } 337276Sbill if (dp->b_active) 338276Sbill goto done; 339276Sbill dp->b_active = 1; 340264Sbill if ((upaddr->upcs2 & 07) != unit) { 341264Sbill upaddr->upcs2 = unit; 342264Sbill DELAY(sdelay); 343264Sbill nwaitcs2++; 344264Sbill } else 345264Sbill neasycs2++; 346266Sbill /* 347266Sbill * If we have changed packs or just initialized, 348275Sbill * then the volume will not be valid; if so, clear 349266Sbill * the drive, preset it and put in 16bit/word mode. 350266Sbill */ 351266Sbill if ((upaddr->upds & VV) == 0) { 352266Sbill upaddr->upcs1 = IE|DCLR|GO; 353266Sbill DELAY(idelay); 354264Sbill upaddr->upcs1 = IE|PRESET|GO; 355264Sbill DELAY(idelay); 356264Sbill upaddr->upof = FMT22; 357275Sbill printf("VV done ds %o, er? %o %o %o\n", upaddr->upds, upaddr->uper1, upaddr->uper2, upaddr->uper3); 358268Sbill didie = 1; 359264Sbill } 360264Sbill if ((upaddr->upds & (DPR|MOL)) != (DPR|MOL)) 361275Sbill goto done; 362266Sbill /* 363266Sbill * Do enough of the disk address decoding to determine 364266Sbill * which cylinder and sector the request is on. 365266Sbill * If we are on the correct cylinder and the desired sector 366266Sbill * lies between SDIST and SDIST+RDIST sectors ahead of us, then 367266Sbill * we don't bother to SEARCH but just begin the transfer asap. 368275Sbill * Otherwise ask for a interrupt SDIST+IDIST sectors ahead. 369266Sbill */ 370264Sbill bn = dkblock(bp); 371264Sbill cn = bp->b_cylin; 372264Sbill sn = bn%(NSECT*NTRAC); 373264Sbill sn = (sn+NSECT-SDIST)%NSECT; 374264Sbill 375266Sbill if (cn - upaddr->updc) 376266Sbill goto search; /* Not on-cylinder */ 377275Sbill else if (upseek) 378275Sbill goto done; /* Ok just to be on-cylinder */ 379264Sbill csn = (upaddr->upla>>6) - sn - 1; 380266Sbill if (csn < 0) 381264Sbill csn += NSECT; 382266Sbill if (csn > NSECT-RDIST) 383264Sbill goto done; 384264Sbill 385264Sbill search: 386264Sbill upaddr->updc = cn; 387275Sbill if (upseek) 388275Sbill upaddr->upcs1 = IE|SEEK|GO; 389275Sbill else { 390275Sbill upaddr->upda = sn; 391275Sbill upaddr->upcs1 = IE|SEARCH|GO; 392275Sbill } 393268Sbill didie = 1; 394266Sbill /* 395266Sbill * Mark this unit busy. 396266Sbill */ 397264Sbill unit += DK_N; 398264Sbill if (unit <= DK_NMAX) { 399264Sbill dk_busy |= 1<<unit; 400264Sbill dk_numb[unit]++; 401264Sbill } 402275Sbill DELAY(rdelay); 403268Sbill goto out; 404264Sbill 405264Sbill done: 406266Sbill /* 407275Sbill * This unit is ready to go so 408275Sbill * link it onto the chain of ready disks. 409266Sbill */ 410264Sbill dp->b_forw = NULL; 411266Sbill if (uptab.b_actf == NULL) 412264Sbill uptab.b_actf = dp; 413264Sbill else 414264Sbill uptab.b_actl->b_forw = dp; 415264Sbill uptab.b_actl = dp; 416268Sbill 417268Sbill out: 418268Sbill return (didie); 419264Sbill } 420264Sbill 421264Sbill /* 422264Sbill * Start a transfer; call from top level at spl5() or on interrupt. 423264Sbill */ 424264Sbill upstart() 425264Sbill { 426264Sbill register struct buf *bp, *dp; 427264Sbill register unit; 428264Sbill register struct device *upaddr; 429264Sbill daddr_t bn; 430266Sbill int dn, sn, tn, cn, cmd; 431264Sbill 432264Sbill loop: 433272Sbill if (csdel2) DELAY(csdel2); 434266Sbill /* 435266Sbill * Pick a drive off the queue of ready drives, and 436266Sbill * perform the first transfer on its queue. 437266Sbill * 438266Sbill * Looping here is completely for the sake of drives which 439266Sbill * are not present and on-line, for which we completely clear the 440266Sbill * request queue. 441266Sbill */ 442273Sbill if ((dp = uptab.b_actf) == NULL) 443268Sbill return (0); 444264Sbill if ((bp = dp->b_actf) == NULL) { 445264Sbill uptab.b_actf = dp->b_forw; 446264Sbill goto loop; 447264Sbill } 448266Sbill /* 449266Sbill * Mark the controller busy, and multi-part disk address. 450266Sbill * Select the unit on which the i/o is to take place. 451266Sbill */ 452264Sbill uptab.b_active++; 453264Sbill unit = minor(bp->b_dev) & 077; 454264Sbill dn = dkunit(bp); 455264Sbill bn = dkblock(bp); 456264Sbill cn = up_sizes[unit&07].cyloff; 457264Sbill cn += bn/(NSECT*NTRAC); 458264Sbill sn = bn%(NSECT*NTRAC); 459264Sbill tn = sn/NSECT; 460266Sbill sn %= NSECT; 461264Sbill upaddr = UPADDR; 462264Sbill if ((upaddr->upcs2 & 07) != dn) { 463264Sbill upaddr->upcs2 = dn; 464275Sbill /* DELAY(sdelay); Provided by ubasetup() */ 465264Sbill nwaitcs2++; 466264Sbill } else 467264Sbill neasycs2++; 468275Sbill up_ubinfo = ubasetup(bp, 1); /* Providing delay */ 469266Sbill /* 470266Sbill * If drive is not present and on-line, then 471266Sbill * get rid of this with an error and loop to get 472266Sbill * rid of the rest of its queued requests. 473266Sbill * (Then on to any other ready drives.) 474266Sbill */ 475264Sbill if ((upaddr->upds & (DPR|MOL)) != (DPR|MOL)) { 476275Sbill printf("!DPR || !MOL, unit %d, ds %o\n", dn, upaddr->upds); 477264Sbill uptab.b_active = 0; 478264Sbill uptab.b_errcnt = 0; 479264Sbill dp->b_actf = bp->av_forw; 480266Sbill dp->b_active = 0; 481264Sbill bp->b_flags |= B_ERROR; 482264Sbill iodone(bp); 483266Sbill ubafree(up_ubinfo), up_ubinfo = 0; /* A funny place ... */ 484264Sbill goto loop; 485264Sbill } 486266Sbill /* 487266Sbill * If this is a retry, then with the 16'th retry we 488266Sbill * begin to try offsetting the heads to recover the data. 489266Sbill */ 490266Sbill if (uptab.b_errcnt >= 16) { 491264Sbill upaddr->upof = up_offset[uptab.b_errcnt & 017] | FMT22; 492266Sbill upaddr->upcs1 = IE|OFFSET|GO; 493264Sbill DELAY(idelay); 494266Sbill while (upaddr->upds & PIP) 495264Sbill DELAY(25); 496264Sbill } 497266Sbill /* 498266Sbill * Now set up the transfer, retrieving the high 499266Sbill * 2 bits of the UNIBUS address from the information 500266Sbill * returned by ubasetup() for the cs1 register bits 8 and 9. 501266Sbill */ 502264Sbill upaddr->updc = cn; 503264Sbill upaddr->upda = (tn << 8) + sn; 504264Sbill upaddr->upba = up_ubinfo; 505264Sbill upaddr->upwc = -bp->b_bcount / sizeof (short); 506266Sbill cmd = (up_ubinfo >> 8) & 0x300; 507264Sbill if (bp->b_flags & B_READ) 508266Sbill cmd |= IE|RCOM|GO; 509264Sbill else 510266Sbill cmd |= IE|WCOM|GO; 511266Sbill upaddr->upcs1 = cmd; 512266Sbill /* 513266Sbill * This is a controller busy situation. 514266Sbill * Record in dk slot NUP+DK_N (after last drive) 515266Sbill * unless there aren't that many slots reserved for 516266Sbill * us in which case we record this as a drive busy 517266Sbill * (if there is room for that). 518266Sbill */ 519264Sbill unit = dn+DK_N; 520264Sbill if (NUP+DK_N == DK_NMAX) 521264Sbill unit = NUP+DK_N; 522264Sbill if (unit <= DK_NMAX) { 523264Sbill dk_busy |= 1<<unit; 524264Sbill dk_numb[unit]++; 525264Sbill dk_wds[unit] += bp->b_bcount>>6; 526264Sbill } 527268Sbill return (1); 528264Sbill } 529264Sbill 530264Sbill /* 531264Sbill * Handle a device interrupt. 532264Sbill * 533264Sbill * If the transferring drive needs attention, service it 534264Sbill * retrying on error or beginning next transfer. 535264Sbill * Service all other ready drives, calling ustart to transfer 536264Sbill * their blocks to the ready queue in uptab, and then restart 537264Sbill * the controller if there is anything to do. 538264Sbill */ 539264Sbill upintr() 540264Sbill { 541264Sbill register struct buf *bp, *dp; 542264Sbill register unit; 543264Sbill register struct device *upaddr = UPADDR; 544264Sbill int as = upaddr->upas & 0377; 545272Sbill int osoftas; 546268Sbill int needie = 1; 547264Sbill 548276Sbill (void) spl6(); 549266Sbill if (uptab.b_active) { 550266Sbill /* 551266Sbill * The drive is transferring, thus the hardware 552266Sbill * (say the designers) will only interrupt when the transfer 553266Sbill * completes; check for it anyways. 554266Sbill */ 555266Sbill if ((upaddr->upcs1 & RDY) == 0) { 556272Sbill printf("!RDY: cs1 %o, ds %o, wc %d\n", upaddr->upcs1, 557272Sbill upaddr->upds, upaddr->upwc); 558267Sbill printf("as=%d act %d %d %d\n", as, uptab.b_active, uputab[0].b_active, uputab[1].b_active); 559269Sbill } 560266Sbill /* 561266Sbill * Mark controller or drive not busy, and check for an 562266Sbill * error condition which may have resulted from the transfer. 563266Sbill */ 564264Sbill dp = uptab.b_actf; 565264Sbill bp = dp->b_actf; 566264Sbill unit = dkunit(bp); 567264Sbill if (DK_N+NUP == DK_NMAX) 568264Sbill dk_busy &= ~(1<<(DK_N+NUP)); 569264Sbill else if (DK_N+unit <= DK_NMAX) 570264Sbill dk_busy &= ~(1<<(DK_N+unit)); 571275Sbill if ((upaddr->upcs2 & 07) != unit) { 572275Sbill upaddr->upcs2 = unit; 573275Sbill DELAY(sdelay); 574275Sbill nwaitcs2++; 575275Sbill } else 576275Sbill neasycs2++; 577275Sbill if (upaddr->upds & ERR) { 578266Sbill /* 579266Sbill * An error occurred, indeed. Select this unit 580266Sbill * to get at the drive status (a SEARCH may have 581266Sbill * intervened to change the selected unit), and 582266Sbill * wait for the command which caused the interrupt 583266Sbill * to complete (DRY). 584266Sbill */ 585266Sbill while ((upaddr->upds & DRY) == 0) 586264Sbill DELAY(25); 587266Sbill /* 588266Sbill * After 28 retries (16 w/o servo offsets, and then 589266Sbill * 12 with servo offsets), or if we encountered 590266Sbill * an error because the drive is write-protected, 591266Sbill * give up. Print an error message on the last 2 592266Sbill * retries before a hard failure. 593266Sbill */ 594266Sbill if (++uptab.b_errcnt > 28 || upaddr->uper1&WLE) 595264Sbill bp->b_flags |= B_ERROR; 596264Sbill else 597266Sbill uptab.b_active = 0; /* To force retry */ 598266Sbill if (uptab.b_errcnt > 27) 599264Sbill deverror(bp, upaddr->upcs2, upaddr->uper1); 600266Sbill /* 601266Sbill * If this was a correctible ECC error, let upecc 602266Sbill * do the dirty work to correct it. If upecc 603266Sbill * starts another READ for the rest of the data 604266Sbill * then it returns 1 (having set uptab.b_active). 605266Sbill * Otherwise we are done and fall through to 606266Sbill * finish up. 607266Sbill */ 608266Sbill if ((upaddr->uper1&(DCK|ECH))==DCK && upecc(upaddr, bp)) 609266Sbill return; 610266Sbill /* 611266Sbill * Clear the drive and, every 4 retries, recalibrate 612266Sbill * to hopefully help clear up seek positioning problems. 613266Sbill */ 614264Sbill upaddr->upcs1 = TRE|IE|DCLR|GO; 615264Sbill DELAY(idelay); 616268Sbill needie = 0; 617266Sbill if ((uptab.b_errcnt&07) == 4) { 618264Sbill upaddr->upcs1 = RECAL|GO|IE; 619264Sbill DELAY(idelay); 620264Sbill while(upaddr->upds & PIP) 621264Sbill DELAY(25); 622264Sbill } 623264Sbill } 624266Sbill /* 625266Sbill * If we are still noted as active, then no 626266Sbill * (further) retries are necessary. 627266Sbill * 628266Sbill * Make sure the correct unit is selected, 629266Sbill * return it to centerline if necessary, and mark 630266Sbill * this i/o complete, starting the next transfer 631266Sbill * on this drive with the upustart routine (if any). 632266Sbill */ 633266Sbill if (uptab.b_active) { 634266Sbill if (uptab.b_errcnt >= 16) { 635266Sbill upaddr->upcs1 = RTC|GO|IE; 636264Sbill DELAY(idelay); 637266Sbill while (upaddr->upds & PIP) 638264Sbill DELAY(25); 639268Sbill needie = 0; 640264Sbill } 641264Sbill uptab.b_active = 0; 642264Sbill uptab.b_errcnt = 0; 643264Sbill uptab.b_actf = dp->b_forw; 644264Sbill dp->b_active = 0; 645264Sbill dp->b_errcnt = 0; 646264Sbill dp->b_actf = bp->av_forw; 647266Sbill bp->b_resid = (-upaddr->upwc * sizeof(short)); 648275Sbill if (bp->b_resid) 649275Sbill printf("resid %d ds %o er? %o %o %o\n", bp->b_resid, upaddr->upds, 650275Sbill upaddr->uper1, upaddr->uper2, upaddr->uper3); 651264Sbill iodone(bp); 652264Sbill if(dp->b_actf) 653268Sbill if (upustart(unit)) 654268Sbill needie = 0; 655264Sbill } 656264Sbill as &= ~(1<<unit); 657272Sbill softas &= ~(1<<unit); 658264Sbill ubafree(up_ubinfo), up_ubinfo = 0; 659273Sbill } else { 660264Sbill if (upaddr->upcs1 & TRE) { 661264Sbill upaddr->upcs1 = TRE; 662264Sbill DELAY(idelay); 663264Sbill } 664264Sbill } 665266Sbill /* 666266Sbill * If we have a unit with an outstanding SEARCH, 667266Sbill * and the hardware indicates the unit requires attention, 668266Sbill * the bring the drive to the ready queue. 669266Sbill * Finally, if the controller is not transferring 670266Sbill * start it if any drives are now ready to transfer. 671266Sbill */ 672272Sbill as |= softas; 673272Sbill osoftas = softas; 674272Sbill softas = 0; 675266Sbill for (unit = 0; unit < NUP; unit++) 676273Sbill if ((as|osoftas) & (1<<unit)) { 677273Sbill if (as & (1<<unit)) { 678267Sbill upaddr->upas = 1<<unit; 679268Sbill if (asdel) DELAY(asdel); 680272Sbill } 681273Sbill if (upustart(unit)) 682273Sbill needie = 0; 683273Sbill } 684266Sbill if (uptab.b_actf && uptab.b_active == 0) 685268Sbill if (upstart()) 686268Sbill needie = 0; 687266Sbill out: 688275Sbill if (needie) 689266Sbill upaddr->upcs1 = IE; 690264Sbill } 691264Sbill 692264Sbill upread(dev) 693264Sbill { 694264Sbill 695264Sbill physio(upstrategy, &rupbuf, dev, B_READ, minphys); 696264Sbill } 697264Sbill 698264Sbill upwrite(dev) 699264Sbill { 700264Sbill 701264Sbill physio(upstrategy, &rupbuf, dev, B_WRITE, minphys); 702264Sbill } 703264Sbill 704266Sbill /* 705266Sbill * Correct an ECC error, and restart the i/o to complete 706266Sbill * the transfer if necessary. This is quite complicated because 707266Sbill * the transfer may be going to an odd memory address base and/or 708266Sbill * across a page boundary. 709266Sbill */ 710264Sbill upecc(up, bp) 711264Sbill register struct device *up; 712264Sbill register struct buf *bp; 713264Sbill { 714264Sbill struct uba_regs *ubp = (struct uba_regs *)UBA0; 715266Sbill register int i; 716264Sbill caddr_t addr; 717266Sbill int reg, bit, byte, npf, mask, o, cmd, ubaddr; 718264Sbill int bn, cn, tn, sn; 719264Sbill 720264Sbill /* 721266Sbill * Npf is the number of sectors transferred before the sector 722266Sbill * containing the ECC error, and reg is the UBA register 723266Sbill * mapping (the first part of) the transfer. 724266Sbill * O is offset within a memory page of the first byte transferred. 725264Sbill */ 726266Sbill npf = btop((up->upwc * sizeof(short)) + bp->b_bcount) - 1; 727266Sbill reg = btop(up_ubinfo&0x3ffff) + npf; 728264Sbill o = (int)bp->b_un.b_addr & PGOFSET; 729264Sbill printf("%D ", bp->b_blkno+npf); 730264Sbill prdev("ECC", bp->b_dev); 731264Sbill mask = up->upec2; 732264Sbill if (mask == 0) { 733266Sbill up->upof = FMT22; /* == RTC ???? */ 734264Sbill DELAY(idelay); 735264Sbill return (0); 736264Sbill } 737266Sbill /* 738266Sbill * Flush the buffered data path, and compute the 739266Sbill * byte and bit position of the error. The variable i 740266Sbill * is the byte offset in the transfer, the variable byte 741266Sbill * is the offset from a page boundary in main memory. 742266Sbill */ 743266Sbill ubp->uba_dpr[(up_ubinfo>>28)&0x0f] |= BNE; 744266Sbill i = up->upec1 - 1; /* -1 makes 0 origin */ 745266Sbill bit = i&07; 746266Sbill i = (i&~07)>>3; 747264Sbill byte = i + o; 748266Sbill /* 749266Sbill * Correct while possible bits remain of mask. Since mask 750266Sbill * contains 11 bits, we continue while the bit offset is > -11. 751266Sbill * Also watch out for end of this block and the end of the whole 752266Sbill * transfer. 753266Sbill */ 754266Sbill while (i < 512 && (int)ptob(npf)+i < bp->b_bcount && bit > -11) { 755266Sbill addr = ptob(ubp->uba_map[reg+btop(byte)].pg_pfnum)+ 756266Sbill (byte & PGOFSET); 757266Sbill putmemc(addr, getmemc(addr)^(mask<<bit)); 758266Sbill byte++; 759266Sbill i++; 760266Sbill bit -= 8; 761264Sbill } 762266Sbill uptab.b_active++; /* Either complete or continuing... */ 763264Sbill if (up->upwc == 0) 764264Sbill return (0); 765266Sbill /* 766266Sbill * Have to continue the transfer... clear the drive, 767266Sbill * and compute the position where the transfer is to continue. 768266Sbill * We have completed npf+1 sectors of the transfer already; 769266Sbill * restart at offset o of next sector (i.e. in UBA register reg+1). 770266Sbill */ 771266Sbill up->upcs1 = TRE|IE|DCLR|GO; 772264Sbill DELAY(idelay); 773264Sbill bn = dkblock(bp); 774264Sbill cn = bp->b_cylin; 775266Sbill sn = bn%(NSECT*NTRAC) + npf + 1; 776264Sbill tn = sn/NSECT; 777264Sbill sn %= NSECT; 778266Sbill cn += tn/NTRAC; 779266Sbill tn %= NTRAC; 780264Sbill up->updc = cn; 781266Sbill up->upda = (tn << 8) | sn; 782266Sbill ubaddr = (int)ptob(reg+1) + o; 783266Sbill up->upba = ubaddr; 784266Sbill cmd = (ubaddr >> 8) & 0x300; 785266Sbill cmd |= IE|GO|RCOM; 786266Sbill up->upcs1 = cmd; 787264Sbill return (1); 788264Sbill } 789*286Sbill 790*286Sbill /* 791*286Sbill * Reset driver after UBA init. 792*286Sbill * Cancel software state of all pending transfers 793*286Sbill * and restart all units and the controller. 794*286Sbill */ 795*286Sbill upreset() 796*286Sbill { 797*286Sbill int unit; 798*286Sbill 799*286Sbill printf(" up"); 800*286Sbill uptab.b_active = 0; 801*286Sbill uptab.b_actf = uptab.b_actl = 0; 802*286Sbill if (DK_N+NUP == DK_NMAX) 803*286Sbill dk_busy &= ~(1<<(DK_N+NUP)); 804*286Sbill if (up_ubinfo) { 805*286Sbill printf("<%d>", (up_ubinfo>>28)&0xf); 806*286Sbill ubafree(up_ubinfo), up_ubinfo = 0; 807*286Sbill } 808*286Sbill for (unit = 0; unit < NUP; unit++) { 809*286Sbill uputab[unit].b_active = 0; 810*286Sbill (void) upustart(unit); 811*286Sbill } 812*286Sbill (void) upstart(); 813*286Sbill } 814