1b7e3f244SSam Leffler /*- 2b7e3f244SSam Leffler * Copyright (c) 2003 Sam Leffler, Errno Consulting 3b7e3f244SSam Leffler * Copyright (c) 2003 Global Technology Associates, Inc. 4b7e3f244SSam Leffler * All rights reserved. 5b7e3f244SSam Leffler * 6b7e3f244SSam Leffler * Redistribution and use in source and binary forms, with or without 7b7e3f244SSam Leffler * modification, are permitted provided that the following conditions 8b7e3f244SSam Leffler * are met: 9b7e3f244SSam Leffler * 1. Redistributions of source code must retain the above copyright 10b7e3f244SSam Leffler * notice, this list of conditions and the following disclaimer. 11b7e3f244SSam Leffler * 2. Redistributions in binary form must reproduce the above copyright 12b7e3f244SSam Leffler * notice, this list of conditions and the following disclaimer in the 13b7e3f244SSam Leffler * documentation and/or other materials provided with the distribution. 14b7e3f244SSam Leffler * 15b7e3f244SSam Leffler * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 16b7e3f244SSam Leffler * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 17b7e3f244SSam Leffler * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 18b7e3f244SSam Leffler * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 19b7e3f244SSam Leffler * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 20b7e3f244SSam Leffler * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 21b7e3f244SSam Leffler * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 22b7e3f244SSam Leffler * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 23b7e3f244SSam Leffler * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 24b7e3f244SSam Leffler * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 25b7e3f244SSam Leffler * SUCH DAMAGE. 26b7e3f244SSam Leffler */ 27b7e3f244SSam Leffler 28b7e3f244SSam Leffler #include <sys/cdefs.h> 29b7e3f244SSam Leffler __FBSDID("$FreeBSD$"); 30b7e3f244SSam Leffler 31b7e3f244SSam Leffler /* 32b7e3f244SSam Leffler * SafeNet SafeXcel-1141 hardware crypto accelerator 33b7e3f244SSam Leffler */ 34b7e3f244SSam Leffler #include "opt_safe.h" 35b7e3f244SSam Leffler 36b7e3f244SSam Leffler #include <sys/param.h> 37b7e3f244SSam Leffler #include <sys/systm.h> 38b7e3f244SSam Leffler #include <sys/proc.h> 39b7e3f244SSam Leffler #include <sys/errno.h> 40b7e3f244SSam Leffler #include <sys/malloc.h> 41b7e3f244SSam Leffler #include <sys/kernel.h> 42b7e3f244SSam Leffler #include <sys/mbuf.h> 43fe12f24bSPoul-Henning Kamp #include <sys/module.h> 44b7e3f244SSam Leffler #include <sys/lock.h> 45b7e3f244SSam Leffler #include <sys/mutex.h> 46b7e3f244SSam Leffler #include <sys/sysctl.h> 47b7e3f244SSam Leffler #include <sys/endian.h> 48b7e3f244SSam Leffler 49b7e3f244SSam Leffler #include <vm/vm.h> 50b7e3f244SSam Leffler #include <vm/pmap.h> 51b7e3f244SSam Leffler 52b7e3f244SSam Leffler #include <machine/bus.h> 53b7e3f244SSam Leffler #include <machine/resource.h> 54b7e3f244SSam Leffler #include <sys/bus.h> 55b7e3f244SSam Leffler #include <sys/rman.h> 56b7e3f244SSam Leffler 57b7e3f244SSam Leffler #include <crypto/sha1.h> 58b7e3f244SSam Leffler #include <opencrypto/cryptodev.h> 59b7e3f244SSam Leffler #include <opencrypto/cryptosoft.h> 60b7e3f244SSam Leffler #include <sys/md5.h> 61b7e3f244SSam Leffler #include <sys/random.h> 626810ad6fSSam Leffler #include <sys/kobj.h> 636810ad6fSSam Leffler 646810ad6fSSam Leffler #include "cryptodev_if.h" 65b7e3f244SSam Leffler 6690cf0136SWarner Losh #include <dev/pci/pcivar.h> 6790cf0136SWarner Losh #include <dev/pci/pcireg.h> 68b7e3f244SSam Leffler 69b7e3f244SSam Leffler #ifdef SAFE_RNDTEST 70b7e3f244SSam Leffler #include <dev/rndtest/rndtest.h> 71b7e3f244SSam Leffler #endif 72b7e3f244SSam Leffler #include <dev/safe/safereg.h> 73b7e3f244SSam Leffler #include <dev/safe/safevar.h> 74b7e3f244SSam Leffler 75b7e3f244SSam Leffler #ifndef bswap32 76b7e3f244SSam Leffler #define bswap32 NTOHL 77b7e3f244SSam Leffler #endif 78b7e3f244SSam Leffler 79b7e3f244SSam Leffler /* 80b7e3f244SSam Leffler * Prototypes and count for the pci_device structure 81b7e3f244SSam Leffler */ 82b7e3f244SSam Leffler static int safe_probe(device_t); 83b7e3f244SSam Leffler static int safe_attach(device_t); 84b7e3f244SSam Leffler static int safe_detach(device_t); 85b7e3f244SSam Leffler static int safe_suspend(device_t); 86b7e3f244SSam Leffler static int safe_resume(device_t); 87a6340ec8SWarner Losh static int safe_shutdown(device_t); 88b7e3f244SSam Leffler 896810ad6fSSam Leffler static int safe_newsession(device_t, u_int32_t *, struct cryptoini *); 906810ad6fSSam Leffler static int safe_freesession(device_t, u_int64_t); 916810ad6fSSam Leffler static int safe_process(device_t, struct cryptop *, int); 926810ad6fSSam Leffler 93b7e3f244SSam Leffler static device_method_t safe_methods[] = { 94b7e3f244SSam Leffler /* Device interface */ 95b7e3f244SSam Leffler DEVMETHOD(device_probe, safe_probe), 96b7e3f244SSam Leffler DEVMETHOD(device_attach, safe_attach), 97b7e3f244SSam Leffler DEVMETHOD(device_detach, safe_detach), 98b7e3f244SSam Leffler DEVMETHOD(device_suspend, safe_suspend), 99b7e3f244SSam Leffler DEVMETHOD(device_resume, safe_resume), 100b7e3f244SSam Leffler DEVMETHOD(device_shutdown, safe_shutdown), 101b7e3f244SSam Leffler 1026810ad6fSSam Leffler /* crypto device methods */ 1036810ad6fSSam Leffler DEVMETHOD(cryptodev_newsession, safe_newsession), 1046810ad6fSSam Leffler DEVMETHOD(cryptodev_freesession,safe_freesession), 1056810ad6fSSam Leffler DEVMETHOD(cryptodev_process, safe_process), 1066810ad6fSSam Leffler 1074b7ec270SMarius Strobl DEVMETHOD_END 108b7e3f244SSam Leffler }; 109b7e3f244SSam Leffler static driver_t safe_driver = { 110b7e3f244SSam Leffler "safe", 111b7e3f244SSam Leffler safe_methods, 112b7e3f244SSam Leffler sizeof (struct safe_softc) 113b7e3f244SSam Leffler }; 114b7e3f244SSam Leffler static devclass_t safe_devclass; 115b7e3f244SSam Leffler 116b7e3f244SSam Leffler DRIVER_MODULE(safe, pci, safe_driver, safe_devclass, 0, 0); 117b7e3f244SSam Leffler MODULE_DEPEND(safe, crypto, 1, 1, 1); 118b7e3f244SSam Leffler #ifdef SAFE_RNDTEST 119b7e3f244SSam Leffler MODULE_DEPEND(safe, rndtest, 1, 1, 1); 120b7e3f244SSam Leffler #endif 121b7e3f244SSam Leffler 122b7e3f244SSam Leffler static void safe_intr(void *); 123b7e3f244SSam Leffler static void safe_callback(struct safe_softc *, struct safe_ringentry *); 124b7e3f244SSam Leffler static void safe_feed(struct safe_softc *, struct safe_ringentry *); 125b7e3f244SSam Leffler static void safe_mcopy(struct mbuf *, struct mbuf *, u_int); 126b7e3f244SSam Leffler #ifndef SAFE_NO_RNG 127b7e3f244SSam Leffler static void safe_rng_init(struct safe_softc *); 128b7e3f244SSam Leffler static void safe_rng(void *); 129b7e3f244SSam Leffler #endif /* SAFE_NO_RNG */ 130b7e3f244SSam Leffler static int safe_dma_malloc(struct safe_softc *, bus_size_t, 131b7e3f244SSam Leffler struct safe_dma_alloc *, int); 132b7e3f244SSam Leffler #define safe_dma_sync(_dma, _flags) \ 133b7e3f244SSam Leffler bus_dmamap_sync((_dma)->dma_tag, (_dma)->dma_map, (_flags)) 134b7e3f244SSam Leffler static void safe_dma_free(struct safe_softc *, struct safe_dma_alloc *); 135b7e3f244SSam Leffler static int safe_dmamap_aligned(const struct safe_operand *); 136b7e3f244SSam Leffler static int safe_dmamap_uniform(const struct safe_operand *); 137b7e3f244SSam Leffler 138b7e3f244SSam Leffler static void safe_reset_board(struct safe_softc *); 139b7e3f244SSam Leffler static void safe_init_board(struct safe_softc *); 140b7e3f244SSam Leffler static void safe_init_pciregs(device_t dev); 141b7e3f244SSam Leffler static void safe_cleanchip(struct safe_softc *); 142b7e3f244SSam Leffler static void safe_totalreset(struct safe_softc *); 143b7e3f244SSam Leffler 144b7e3f244SSam Leffler static int safe_free_entry(struct safe_softc *, struct safe_ringentry *); 145b7e3f244SSam Leffler 1466472ac3dSEd Schouten static SYSCTL_NODE(_hw, OID_AUTO, safe, CTLFLAG_RD, 0, 1476472ac3dSEd Schouten "SafeNet driver parameters"); 148b7e3f244SSam Leffler 149b7e3f244SSam Leffler #ifdef SAFE_DEBUG 150b7e3f244SSam Leffler static void safe_dump_dmastatus(struct safe_softc *, const char *); 151b7e3f244SSam Leffler static void safe_dump_ringstate(struct safe_softc *, const char *); 152b7e3f244SSam Leffler static void safe_dump_intrstate(struct safe_softc *, const char *); 153b7e3f244SSam Leffler static void safe_dump_request(struct safe_softc *, const char *, 154b7e3f244SSam Leffler struct safe_ringentry *); 155b7e3f244SSam Leffler 156b7e3f244SSam Leffler static struct safe_softc *safec; /* for use by hw.safe.dump */ 157b7e3f244SSam Leffler 158b7e3f244SSam Leffler static int safe_debug = 0; 159b7e3f244SSam Leffler SYSCTL_INT(_hw_safe, OID_AUTO, debug, CTLFLAG_RW, &safe_debug, 160b7e3f244SSam Leffler 0, "control debugging msgs"); 161b7e3f244SSam Leffler #define DPRINTF(_x) if (safe_debug) printf _x 162b7e3f244SSam Leffler #else 163b7e3f244SSam Leffler #define DPRINTF(_x) 164b7e3f244SSam Leffler #endif 165b7e3f244SSam Leffler 166b7e3f244SSam Leffler #define READ_REG(sc,r) \ 167b7e3f244SSam Leffler bus_space_read_4((sc)->sc_st, (sc)->sc_sh, (r)) 168b7e3f244SSam Leffler 169b7e3f244SSam Leffler #define WRITE_REG(sc,reg,val) \ 170b7e3f244SSam Leffler bus_space_write_4((sc)->sc_st, (sc)->sc_sh, reg, val) 171b7e3f244SSam Leffler 172b7e3f244SSam Leffler struct safe_stats safestats; 173b7e3f244SSam Leffler SYSCTL_STRUCT(_hw_safe, OID_AUTO, stats, CTLFLAG_RD, &safestats, 174b7e3f244SSam Leffler safe_stats, "driver statistics"); 175b7e3f244SSam Leffler #ifndef SAFE_NO_RNG 176b7e3f244SSam Leffler static int safe_rnginterval = 1; /* poll once a second */ 177b7e3f244SSam Leffler SYSCTL_INT(_hw_safe, OID_AUTO, rnginterval, CTLFLAG_RW, &safe_rnginterval, 178b7e3f244SSam Leffler 0, "RNG polling interval (secs)"); 179b7e3f244SSam Leffler static int safe_rngbufsize = 16; /* 64 bytes each poll */ 180b7e3f244SSam Leffler SYSCTL_INT(_hw_safe, OID_AUTO, rngbufsize, CTLFLAG_RW, &safe_rngbufsize, 181b7e3f244SSam Leffler 0, "RNG polling buffer size (32-bit words)"); 182b7e3f244SSam Leffler static int safe_rngmaxalarm = 8; /* max alarms before reset */ 183b7e3f244SSam Leffler SYSCTL_INT(_hw_safe, OID_AUTO, rngmaxalarm, CTLFLAG_RW, &safe_rngmaxalarm, 184b7e3f244SSam Leffler 0, "RNG max alarms before reset"); 185b7e3f244SSam Leffler #endif /* SAFE_NO_RNG */ 186b7e3f244SSam Leffler 187b7e3f244SSam Leffler static int 188b7e3f244SSam Leffler safe_probe(device_t dev) 189b7e3f244SSam Leffler { 190b7e3f244SSam Leffler if (pci_get_vendor(dev) == PCI_VENDOR_SAFENET && 191b7e3f244SSam Leffler pci_get_device(dev) == PCI_PRODUCT_SAFEXCEL) 192d2b677bbSWarner Losh return (BUS_PROBE_DEFAULT); 193b7e3f244SSam Leffler return (ENXIO); 194b7e3f244SSam Leffler } 195b7e3f244SSam Leffler 196b7e3f244SSam Leffler static const char* 197b7e3f244SSam Leffler safe_partname(struct safe_softc *sc) 198b7e3f244SSam Leffler { 199b7e3f244SSam Leffler /* XXX sprintf numbers when not decoded */ 200b7e3f244SSam Leffler switch (pci_get_vendor(sc->sc_dev)) { 201b7e3f244SSam Leffler case PCI_VENDOR_SAFENET: 202b7e3f244SSam Leffler switch (pci_get_device(sc->sc_dev)) { 203b7e3f244SSam Leffler case PCI_PRODUCT_SAFEXCEL: return "SafeNet SafeXcel-1141"; 204b7e3f244SSam Leffler } 205b7e3f244SSam Leffler return "SafeNet unknown-part"; 206b7e3f244SSam Leffler } 207b7e3f244SSam Leffler return "Unknown-vendor unknown-part"; 208b7e3f244SSam Leffler } 209b7e3f244SSam Leffler 210b7e3f244SSam Leffler #ifndef SAFE_NO_RNG 211b7e3f244SSam Leffler static void 212b7e3f244SSam Leffler default_harvest(struct rndtest_state *rsp, void *buf, u_int count) 213b7e3f244SSam Leffler { 214f02e47dcSMark Murray random_harvest(buf, count, count*NBBY/2, RANDOM_PURE_SAFE); 215b7e3f244SSam Leffler } 216b7e3f244SSam Leffler #endif /* SAFE_NO_RNG */ 217b7e3f244SSam Leffler 218b7e3f244SSam Leffler static int 219b7e3f244SSam Leffler safe_attach(device_t dev) 220b7e3f244SSam Leffler { 221b7e3f244SSam Leffler struct safe_softc *sc = device_get_softc(dev); 222b7e3f244SSam Leffler u_int32_t raddr; 223c68534f1SScott Long u_int32_t i, devinfo; 224b7e3f244SSam Leffler int rid; 225b7e3f244SSam Leffler 226b7e3f244SSam Leffler bzero(sc, sizeof (*sc)); 227b7e3f244SSam Leffler sc->sc_dev = dev; 228b7e3f244SSam Leffler 229b7e3f244SSam Leffler /* XXX handle power management */ 230b7e3f244SSam Leffler 231c68534f1SScott Long pci_enable_busmaster(dev); 232b7e3f244SSam Leffler 233b7e3f244SSam Leffler /* 234b7e3f244SSam Leffler * Setup memory-mapping of PCI registers. 235b7e3f244SSam Leffler */ 236b7e3f244SSam Leffler rid = BS_BAR; 2375f96beb9SNate Lawson sc->sc_sr = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, 2385f96beb9SNate Lawson RF_ACTIVE); 239b7e3f244SSam Leffler if (sc->sc_sr == NULL) { 240b7e3f244SSam Leffler device_printf(dev, "cannot map register space\n"); 241b7e3f244SSam Leffler goto bad; 242b7e3f244SSam Leffler } 243b7e3f244SSam Leffler sc->sc_st = rman_get_bustag(sc->sc_sr); 244b7e3f244SSam Leffler sc->sc_sh = rman_get_bushandle(sc->sc_sr); 245b7e3f244SSam Leffler 246b7e3f244SSam Leffler /* 247b7e3f244SSam Leffler * Arrange interrupt line. 248b7e3f244SSam Leffler */ 249b7e3f244SSam Leffler rid = 0; 2505f96beb9SNate Lawson sc->sc_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid, 2515f96beb9SNate Lawson RF_SHAREABLE|RF_ACTIVE); 252b7e3f244SSam Leffler if (sc->sc_irq == NULL) { 253b7e3f244SSam Leffler device_printf(dev, "could not map interrupt\n"); 254b7e3f244SSam Leffler goto bad1; 255b7e3f244SSam Leffler } 256b7e3f244SSam Leffler /* 257b7e3f244SSam Leffler * NB: Network code assumes we are blocked with splimp() 258b7e3f244SSam Leffler * so make sure the IRQ is mapped appropriately. 259b7e3f244SSam Leffler */ 260b7e3f244SSam Leffler if (bus_setup_intr(dev, sc->sc_irq, INTR_TYPE_NET | INTR_MPSAFE, 261ef544f63SPaolo Pisati NULL, safe_intr, sc, &sc->sc_ih)) { 262b7e3f244SSam Leffler device_printf(dev, "could not establish interrupt\n"); 263b7e3f244SSam Leffler goto bad2; 264b7e3f244SSam Leffler } 265b7e3f244SSam Leffler 2666810ad6fSSam Leffler sc->sc_cid = crypto_get_driverid(dev, CRYPTOCAP_F_HARDWARE); 267b7e3f244SSam Leffler if (sc->sc_cid < 0) { 268b7e3f244SSam Leffler device_printf(dev, "could not get crypto driver id\n"); 269b7e3f244SSam Leffler goto bad3; 270b7e3f244SSam Leffler } 271b7e3f244SSam Leffler 272b7e3f244SSam Leffler sc->sc_chiprev = READ_REG(sc, SAFE_DEVINFO) & 273b7e3f244SSam Leffler (SAFE_DEVINFO_REV_MAJ | SAFE_DEVINFO_REV_MIN); 274b7e3f244SSam Leffler 275b7e3f244SSam Leffler /* 276b7e3f244SSam Leffler * Setup DMA descriptor area. 277b7e3f244SSam Leffler */ 27862ce43ccSScott Long if (bus_dma_tag_create(bus_get_dma_tag(dev), /* parent */ 279b7e3f244SSam Leffler 1, /* alignment */ 280b7e3f244SSam Leffler SAFE_DMA_BOUNDARY, /* boundary */ 281b7e3f244SSam Leffler BUS_SPACE_MAXADDR_32BIT, /* lowaddr */ 282b7e3f244SSam Leffler BUS_SPACE_MAXADDR, /* highaddr */ 283b7e3f244SSam Leffler NULL, NULL, /* filter, filterarg */ 284b7e3f244SSam Leffler SAFE_MAX_DMA, /* maxsize */ 285b7e3f244SSam Leffler SAFE_MAX_PART, /* nsegments */ 286b7e3f244SSam Leffler SAFE_MAX_SSIZE, /* maxsegsize */ 287b7e3f244SSam Leffler BUS_DMA_ALLOCNOW, /* flags */ 288b7e3f244SSam Leffler NULL, NULL, /* locking */ 289b7e3f244SSam Leffler &sc->sc_srcdmat)) { 290b7e3f244SSam Leffler device_printf(dev, "cannot allocate DMA tag\n"); 291b7e3f244SSam Leffler goto bad4; 292b7e3f244SSam Leffler } 29362ce43ccSScott Long if (bus_dma_tag_create(bus_get_dma_tag(dev), /* parent */ 29488bba874SSam Leffler 1, /* alignment */ 295b7e3f244SSam Leffler SAFE_MAX_DSIZE, /* boundary */ 296b7e3f244SSam Leffler BUS_SPACE_MAXADDR_32BIT, /* lowaddr */ 297b7e3f244SSam Leffler BUS_SPACE_MAXADDR, /* highaddr */ 298b7e3f244SSam Leffler NULL, NULL, /* filter, filterarg */ 299b7e3f244SSam Leffler SAFE_MAX_DMA, /* maxsize */ 300b7e3f244SSam Leffler SAFE_MAX_PART, /* nsegments */ 301b7e3f244SSam Leffler SAFE_MAX_DSIZE, /* maxsegsize */ 302b7e3f244SSam Leffler BUS_DMA_ALLOCNOW, /* flags */ 303b7e3f244SSam Leffler NULL, NULL, /* locking */ 304b7e3f244SSam Leffler &sc->sc_dstdmat)) { 305b7e3f244SSam Leffler device_printf(dev, "cannot allocate DMA tag\n"); 306b7e3f244SSam Leffler goto bad4; 307b7e3f244SSam Leffler } 308b7e3f244SSam Leffler 309b7e3f244SSam Leffler /* 310b7e3f244SSam Leffler * Allocate packet engine descriptors. 311b7e3f244SSam Leffler */ 312b7e3f244SSam Leffler if (safe_dma_malloc(sc, 313b7e3f244SSam Leffler SAFE_MAX_NQUEUE * sizeof (struct safe_ringentry), 314b7e3f244SSam Leffler &sc->sc_ringalloc, 0)) { 315b7e3f244SSam Leffler device_printf(dev, "cannot allocate PE descriptor ring\n"); 316b7e3f244SSam Leffler bus_dma_tag_destroy(sc->sc_srcdmat); 317b7e3f244SSam Leffler goto bad4; 318b7e3f244SSam Leffler } 319b7e3f244SSam Leffler /* 320b7e3f244SSam Leffler * Hookup the static portion of all our data structures. 321b7e3f244SSam Leffler */ 322b7e3f244SSam Leffler sc->sc_ring = (struct safe_ringentry *) sc->sc_ringalloc.dma_vaddr; 323b7e3f244SSam Leffler sc->sc_ringtop = sc->sc_ring + SAFE_MAX_NQUEUE; 324b7e3f244SSam Leffler sc->sc_front = sc->sc_ring; 325b7e3f244SSam Leffler sc->sc_back = sc->sc_ring; 326b7e3f244SSam Leffler raddr = sc->sc_ringalloc.dma_paddr; 327b7e3f244SSam Leffler bzero(sc->sc_ring, SAFE_MAX_NQUEUE * sizeof(struct safe_ringentry)); 328b7e3f244SSam Leffler for (i = 0; i < SAFE_MAX_NQUEUE; i++) { 329b7e3f244SSam Leffler struct safe_ringentry *re = &sc->sc_ring[i]; 330b7e3f244SSam Leffler 331b7e3f244SSam Leffler re->re_desc.d_sa = raddr + 332b7e3f244SSam Leffler offsetof(struct safe_ringentry, re_sa); 333b7e3f244SSam Leffler re->re_sa.sa_staterec = raddr + 334b7e3f244SSam Leffler offsetof(struct safe_ringentry, re_sastate); 335b7e3f244SSam Leffler 336b7e3f244SSam Leffler raddr += sizeof (struct safe_ringentry); 337b7e3f244SSam Leffler } 338b7e3f244SSam Leffler mtx_init(&sc->sc_ringmtx, device_get_nameunit(dev), 339b7e3f244SSam Leffler "packet engine ring", MTX_DEF); 340b7e3f244SSam Leffler 341b7e3f244SSam Leffler /* 342b7e3f244SSam Leffler * Allocate scatter and gather particle descriptors. 343b7e3f244SSam Leffler */ 344b7e3f244SSam Leffler if (safe_dma_malloc(sc, SAFE_TOTAL_SPART * sizeof (struct safe_pdesc), 345b7e3f244SSam Leffler &sc->sc_spalloc, 0)) { 346b7e3f244SSam Leffler device_printf(dev, "cannot allocate source particle " 347b7e3f244SSam Leffler "descriptor ring\n"); 348b7e3f244SSam Leffler mtx_destroy(&sc->sc_ringmtx); 349b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_ringalloc); 350b7e3f244SSam Leffler bus_dma_tag_destroy(sc->sc_srcdmat); 351b7e3f244SSam Leffler goto bad4; 352b7e3f244SSam Leffler } 353b7e3f244SSam Leffler sc->sc_spring = (struct safe_pdesc *) sc->sc_spalloc.dma_vaddr; 354b7e3f244SSam Leffler sc->sc_springtop = sc->sc_spring + SAFE_TOTAL_SPART; 355b7e3f244SSam Leffler sc->sc_spfree = sc->sc_spring; 356b7e3f244SSam Leffler bzero(sc->sc_spring, SAFE_TOTAL_SPART * sizeof(struct safe_pdesc)); 357b7e3f244SSam Leffler 358b7e3f244SSam Leffler if (safe_dma_malloc(sc, SAFE_TOTAL_DPART * sizeof (struct safe_pdesc), 359b7e3f244SSam Leffler &sc->sc_dpalloc, 0)) { 360b7e3f244SSam Leffler device_printf(dev, "cannot allocate destination particle " 361b7e3f244SSam Leffler "descriptor ring\n"); 362b7e3f244SSam Leffler mtx_destroy(&sc->sc_ringmtx); 363b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_spalloc); 364b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_ringalloc); 365b7e3f244SSam Leffler bus_dma_tag_destroy(sc->sc_dstdmat); 366b7e3f244SSam Leffler goto bad4; 367b7e3f244SSam Leffler } 368b7e3f244SSam Leffler sc->sc_dpring = (struct safe_pdesc *) sc->sc_dpalloc.dma_vaddr; 369b7e3f244SSam Leffler sc->sc_dpringtop = sc->sc_dpring + SAFE_TOTAL_DPART; 370b7e3f244SSam Leffler sc->sc_dpfree = sc->sc_dpring; 371b7e3f244SSam Leffler bzero(sc->sc_dpring, SAFE_TOTAL_DPART * sizeof(struct safe_pdesc)); 372b7e3f244SSam Leffler 373b7e3f244SSam Leffler device_printf(sc->sc_dev, "%s", safe_partname(sc)); 374b7e3f244SSam Leffler 375b7e3f244SSam Leffler devinfo = READ_REG(sc, SAFE_DEVINFO); 376b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_RNG) { 377b7e3f244SSam Leffler sc->sc_flags |= SAFE_FLAGS_RNG; 378b7e3f244SSam Leffler printf(" rng"); 379b7e3f244SSam Leffler } 380b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_PKEY) { 381b7e3f244SSam Leffler #if 0 382b7e3f244SSam Leffler printf(" key"); 383b7e3f244SSam Leffler sc->sc_flags |= SAFE_FLAGS_KEY; 3846810ad6fSSam Leffler crypto_kregister(sc->sc_cid, CRK_MOD_EXP, 0); 3856810ad6fSSam Leffler crypto_kregister(sc->sc_cid, CRK_MOD_EXP_CRT, 0); 386b7e3f244SSam Leffler #endif 387b7e3f244SSam Leffler } 388b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_DES) { 389b7e3f244SSam Leffler printf(" des/3des"); 3906810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_3DES_CBC, 0, 0); 3916810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_DES_CBC, 0, 0); 392b7e3f244SSam Leffler } 393b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_AES) { 394b7e3f244SSam Leffler printf(" aes"); 3956810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_AES_CBC, 0, 0); 396b7e3f244SSam Leffler } 397b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_MD5) { 398b7e3f244SSam Leffler printf(" md5"); 3996810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_MD5_HMAC, 0, 0); 400b7e3f244SSam Leffler } 401b7e3f244SSam Leffler if (devinfo & SAFE_DEVINFO_SHA1) { 402b7e3f244SSam Leffler printf(" sha1"); 4036810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_SHA1_HMAC, 0, 0); 404b7e3f244SSam Leffler } 405b7e3f244SSam Leffler printf(" null"); 4066810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_NULL_CBC, 0, 0); 4076810ad6fSSam Leffler crypto_register(sc->sc_cid, CRYPTO_NULL_HMAC, 0, 0); 408b7e3f244SSam Leffler /* XXX other supported algorithms */ 409b7e3f244SSam Leffler printf("\n"); 410b7e3f244SSam Leffler 411b7e3f244SSam Leffler safe_reset_board(sc); /* reset h/w */ 412b7e3f244SSam Leffler safe_init_pciregs(dev); /* init pci settings */ 413b7e3f244SSam Leffler safe_init_board(sc); /* init h/w */ 414b7e3f244SSam Leffler 415b7e3f244SSam Leffler #ifndef SAFE_NO_RNG 416b7e3f244SSam Leffler if (sc->sc_flags & SAFE_FLAGS_RNG) { 417b7e3f244SSam Leffler #ifdef SAFE_RNDTEST 418b7e3f244SSam Leffler sc->sc_rndtest = rndtest_attach(dev); 419b7e3f244SSam Leffler if (sc->sc_rndtest) 420b7e3f244SSam Leffler sc->sc_harvest = rndtest_harvest; 421b7e3f244SSam Leffler else 422b7e3f244SSam Leffler sc->sc_harvest = default_harvest; 423b7e3f244SSam Leffler #else 424b7e3f244SSam Leffler sc->sc_harvest = default_harvest; 425b7e3f244SSam Leffler #endif 426b7e3f244SSam Leffler safe_rng_init(sc); 427b7e3f244SSam Leffler 428c06eb4e2SSam Leffler callout_init(&sc->sc_rngto, CALLOUT_MPSAFE); 429b7e3f244SSam Leffler callout_reset(&sc->sc_rngto, hz*safe_rnginterval, safe_rng, sc); 430b7e3f244SSam Leffler } 431b7e3f244SSam Leffler #endif /* SAFE_NO_RNG */ 432b7e3f244SSam Leffler #ifdef SAFE_DEBUG 433b7e3f244SSam Leffler safec = sc; /* for use by hw.safe.dump */ 434b7e3f244SSam Leffler #endif 435b7e3f244SSam Leffler return (0); 436b7e3f244SSam Leffler bad4: 437b7e3f244SSam Leffler crypto_unregister_all(sc->sc_cid); 438b7e3f244SSam Leffler bad3: 439b7e3f244SSam Leffler bus_teardown_intr(dev, sc->sc_irq, sc->sc_ih); 440b7e3f244SSam Leffler bad2: 441b7e3f244SSam Leffler bus_release_resource(dev, SYS_RES_IRQ, 0, sc->sc_irq); 442b7e3f244SSam Leffler bad1: 443b7e3f244SSam Leffler bus_release_resource(dev, SYS_RES_MEMORY, BS_BAR, sc->sc_sr); 444b7e3f244SSam Leffler bad: 445b7e3f244SSam Leffler return (ENXIO); 446b7e3f244SSam Leffler } 447b7e3f244SSam Leffler 448b7e3f244SSam Leffler /* 449b7e3f244SSam Leffler * Detach a device that successfully probed. 450b7e3f244SSam Leffler */ 451b7e3f244SSam Leffler static int 452b7e3f244SSam Leffler safe_detach(device_t dev) 453b7e3f244SSam Leffler { 454b7e3f244SSam Leffler struct safe_softc *sc = device_get_softc(dev); 455b7e3f244SSam Leffler 456b7e3f244SSam Leffler /* XXX wait/abort active ops */ 457b7e3f244SSam Leffler 458b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_MASK, 0); /* disable interrupts */ 459b7e3f244SSam Leffler 460b7e3f244SSam Leffler callout_stop(&sc->sc_rngto); 461b7e3f244SSam Leffler 462b7e3f244SSam Leffler crypto_unregister_all(sc->sc_cid); 463b7e3f244SSam Leffler 464b7e3f244SSam Leffler #ifdef SAFE_RNDTEST 465b7e3f244SSam Leffler if (sc->sc_rndtest) 466b7e3f244SSam Leffler rndtest_detach(sc->sc_rndtest); 467b7e3f244SSam Leffler #endif 468b7e3f244SSam Leffler 469b7e3f244SSam Leffler safe_cleanchip(sc); 470b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_dpalloc); 471b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_spalloc); 472b7e3f244SSam Leffler mtx_destroy(&sc->sc_ringmtx); 473b7e3f244SSam Leffler safe_dma_free(sc, &sc->sc_ringalloc); 474b7e3f244SSam Leffler 475b7e3f244SSam Leffler bus_generic_detach(dev); 476b7e3f244SSam Leffler bus_teardown_intr(dev, sc->sc_irq, sc->sc_ih); 477b7e3f244SSam Leffler bus_release_resource(dev, SYS_RES_IRQ, 0, sc->sc_irq); 478b7e3f244SSam Leffler 479b7e3f244SSam Leffler bus_dma_tag_destroy(sc->sc_srcdmat); 480b7e3f244SSam Leffler bus_dma_tag_destroy(sc->sc_dstdmat); 481b7e3f244SSam Leffler bus_release_resource(dev, SYS_RES_MEMORY, BS_BAR, sc->sc_sr); 482b7e3f244SSam Leffler 483b7e3f244SSam Leffler return (0); 484b7e3f244SSam Leffler } 485b7e3f244SSam Leffler 486b7e3f244SSam Leffler /* 487b7e3f244SSam Leffler * Stop all chip i/o so that the kernel's probe routines don't 488b7e3f244SSam Leffler * get confused by errant DMAs when rebooting. 489b7e3f244SSam Leffler */ 490a6340ec8SWarner Losh static int 491b7e3f244SSam Leffler safe_shutdown(device_t dev) 492b7e3f244SSam Leffler { 493b7e3f244SSam Leffler #ifdef notyet 494b7e3f244SSam Leffler safe_stop(device_get_softc(dev)); 495b7e3f244SSam Leffler #endif 496a6340ec8SWarner Losh return (0); 497b7e3f244SSam Leffler } 498b7e3f244SSam Leffler 499b7e3f244SSam Leffler /* 500b7e3f244SSam Leffler * Device suspend routine. 501b7e3f244SSam Leffler */ 502b7e3f244SSam Leffler static int 503b7e3f244SSam Leffler safe_suspend(device_t dev) 504b7e3f244SSam Leffler { 505b7e3f244SSam Leffler struct safe_softc *sc = device_get_softc(dev); 506b7e3f244SSam Leffler 507b7e3f244SSam Leffler #ifdef notyet 508b7e3f244SSam Leffler /* XXX stop the device and save PCI settings */ 509b7e3f244SSam Leffler #endif 510b7e3f244SSam Leffler sc->sc_suspended = 1; 511b7e3f244SSam Leffler 512b7e3f244SSam Leffler return (0); 513b7e3f244SSam Leffler } 514b7e3f244SSam Leffler 515b7e3f244SSam Leffler static int 516b7e3f244SSam Leffler safe_resume(device_t dev) 517b7e3f244SSam Leffler { 518b7e3f244SSam Leffler struct safe_softc *sc = device_get_softc(dev); 519b7e3f244SSam Leffler 520b7e3f244SSam Leffler #ifdef notyet 521b7e3f244SSam Leffler /* XXX retore PCI settings and start the device */ 522b7e3f244SSam Leffler #endif 523b7e3f244SSam Leffler sc->sc_suspended = 0; 524b7e3f244SSam Leffler return (0); 525b7e3f244SSam Leffler } 526b7e3f244SSam Leffler 527b7e3f244SSam Leffler /* 528b7e3f244SSam Leffler * SafeXcel Interrupt routine 529b7e3f244SSam Leffler */ 530b7e3f244SSam Leffler static void 531b7e3f244SSam Leffler safe_intr(void *arg) 532b7e3f244SSam Leffler { 533b7e3f244SSam Leffler struct safe_softc *sc = arg; 534b7e3f244SSam Leffler volatile u_int32_t stat; 535b7e3f244SSam Leffler 536b7e3f244SSam Leffler stat = READ_REG(sc, SAFE_HM_STAT); 537b7e3f244SSam Leffler if (stat == 0) /* shared irq, not for us */ 538b7e3f244SSam Leffler return; 539b7e3f244SSam Leffler 540b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_CLR, stat); /* IACK */ 541b7e3f244SSam Leffler 542b7e3f244SSam Leffler if ((stat & SAFE_INT_PE_DDONE)) { 543b7e3f244SSam Leffler /* 544b7e3f244SSam Leffler * Descriptor(s) done; scan the ring and 545b7e3f244SSam Leffler * process completed operations. 546b7e3f244SSam Leffler */ 547b7e3f244SSam Leffler mtx_lock(&sc->sc_ringmtx); 548b7e3f244SSam Leffler while (sc->sc_back != sc->sc_front) { 549b7e3f244SSam Leffler struct safe_ringentry *re = sc->sc_back; 550b7e3f244SSam Leffler #ifdef SAFE_DEBUG 551b7e3f244SSam Leffler if (safe_debug) { 552b7e3f244SSam Leffler safe_dump_ringstate(sc, __func__); 553b7e3f244SSam Leffler safe_dump_request(sc, __func__, re); 554b7e3f244SSam Leffler } 555b7e3f244SSam Leffler #endif 556b7e3f244SSam Leffler /* 557b7e3f244SSam Leffler * safe_process marks ring entries that were allocated 558b7e3f244SSam Leffler * but not used with a csr of zero. This insures the 559b7e3f244SSam Leffler * ring front pointer never needs to be set backwards 560b7e3f244SSam Leffler * in the event that an entry is allocated but not used 561b7e3f244SSam Leffler * because of a setup error. 562b7e3f244SSam Leffler */ 563b7e3f244SSam Leffler if (re->re_desc.d_csr != 0) { 564b7e3f244SSam Leffler if (!SAFE_PE_CSR_IS_DONE(re->re_desc.d_csr)) 565b7e3f244SSam Leffler break; 566b7e3f244SSam Leffler if (!SAFE_PE_LEN_IS_DONE(re->re_desc.d_len)) 567b7e3f244SSam Leffler break; 568b7e3f244SSam Leffler sc->sc_nqchip--; 569b7e3f244SSam Leffler safe_callback(sc, re); 570b7e3f244SSam Leffler } 571b7e3f244SSam Leffler if (++(sc->sc_back) == sc->sc_ringtop) 572b7e3f244SSam Leffler sc->sc_back = sc->sc_ring; 573b7e3f244SSam Leffler } 574b7e3f244SSam Leffler mtx_unlock(&sc->sc_ringmtx); 575b7e3f244SSam Leffler } 576b7e3f244SSam Leffler 577b7e3f244SSam Leffler /* 578b7e3f244SSam Leffler * Check to see if we got any DMA Error 579b7e3f244SSam Leffler */ 580b7e3f244SSam Leffler if (stat & SAFE_INT_PE_ERROR) { 581b7e3f244SSam Leffler DPRINTF(("dmaerr dmastat %08x\n", 582b7e3f244SSam Leffler READ_REG(sc, SAFE_PE_DMASTAT))); 583b7e3f244SSam Leffler safestats.st_dmaerr++; 584b7e3f244SSam Leffler safe_totalreset(sc); 585b7e3f244SSam Leffler #if 0 586b7e3f244SSam Leffler safe_feed(sc); 587b7e3f244SSam Leffler #endif 588b7e3f244SSam Leffler } 589b7e3f244SSam Leffler 590b7e3f244SSam Leffler if (sc->sc_needwakeup) { /* XXX check high watermark */ 591b7e3f244SSam Leffler int wakeup = sc->sc_needwakeup & (CRYPTO_SYMQ|CRYPTO_ASYMQ); 592b7e3f244SSam Leffler DPRINTF(("%s: wakeup crypto %x\n", __func__, 593b7e3f244SSam Leffler sc->sc_needwakeup)); 594b7e3f244SSam Leffler sc->sc_needwakeup &= ~wakeup; 595b7e3f244SSam Leffler crypto_unblock(sc->sc_cid, wakeup); 596b7e3f244SSam Leffler } 597b7e3f244SSam Leffler } 598b7e3f244SSam Leffler 599b7e3f244SSam Leffler /* 600b7e3f244SSam Leffler * safe_feed() - post a request to chip 601b7e3f244SSam Leffler */ 602b7e3f244SSam Leffler static void 603b7e3f244SSam Leffler safe_feed(struct safe_softc *sc, struct safe_ringentry *re) 604b7e3f244SSam Leffler { 605b7e3f244SSam Leffler bus_dmamap_sync(sc->sc_srcdmat, re->re_src_map, BUS_DMASYNC_PREWRITE); 606b7e3f244SSam Leffler if (re->re_dst_map != NULL) 607b7e3f244SSam Leffler bus_dmamap_sync(sc->sc_dstdmat, re->re_dst_map, 608b7e3f244SSam Leffler BUS_DMASYNC_PREREAD); 609b7e3f244SSam Leffler /* XXX have no smaller granularity */ 610b7e3f244SSam Leffler safe_dma_sync(&sc->sc_ringalloc, 611b7e3f244SSam Leffler BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); 612b7e3f244SSam Leffler safe_dma_sync(&sc->sc_spalloc, BUS_DMASYNC_PREWRITE); 613b7e3f244SSam Leffler safe_dma_sync(&sc->sc_dpalloc, BUS_DMASYNC_PREWRITE); 614b7e3f244SSam Leffler 615b7e3f244SSam Leffler #ifdef SAFE_DEBUG 616b7e3f244SSam Leffler if (safe_debug) { 617b7e3f244SSam Leffler safe_dump_ringstate(sc, __func__); 618b7e3f244SSam Leffler safe_dump_request(sc, __func__, re); 619b7e3f244SSam Leffler } 620b7e3f244SSam Leffler #endif 621b7e3f244SSam Leffler sc->sc_nqchip++; 622b7e3f244SSam Leffler if (sc->sc_nqchip > safestats.st_maxqchip) 623b7e3f244SSam Leffler safestats.st_maxqchip = sc->sc_nqchip; 624b7e3f244SSam Leffler /* poke h/w to check descriptor ring, any value can be written */ 625b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_RD_DESCR, 0); 626b7e3f244SSam Leffler } 627b7e3f244SSam Leffler 6289a2f6061SPawel Jakub Dawidek #define N(a) (sizeof(a) / sizeof (a[0])) 6299a2f6061SPawel Jakub Dawidek static void 6309a2f6061SPawel Jakub Dawidek safe_setup_enckey(struct safe_session *ses, caddr_t key) 6319a2f6061SPawel Jakub Dawidek { 6329a2f6061SPawel Jakub Dawidek int i; 6339a2f6061SPawel Jakub Dawidek 6349a2f6061SPawel Jakub Dawidek bcopy(key, ses->ses_key, ses->ses_klen / 8); 6359a2f6061SPawel Jakub Dawidek 6369a2f6061SPawel Jakub Dawidek /* PE is little-endian, insure proper byte order */ 6379a2f6061SPawel Jakub Dawidek for (i = 0; i < N(ses->ses_key); i++) 6389a2f6061SPawel Jakub Dawidek ses->ses_key[i] = htole32(ses->ses_key[i]); 6399a2f6061SPawel Jakub Dawidek } 6409a2f6061SPawel Jakub Dawidek 6419a2f6061SPawel Jakub Dawidek static void 6429a2f6061SPawel Jakub Dawidek safe_setup_mackey(struct safe_session *ses, int algo, caddr_t key, int klen) 6439a2f6061SPawel Jakub Dawidek { 6449a2f6061SPawel Jakub Dawidek MD5_CTX md5ctx; 6459a2f6061SPawel Jakub Dawidek SHA1_CTX sha1ctx; 6469a2f6061SPawel Jakub Dawidek int i; 6479a2f6061SPawel Jakub Dawidek 6489a2f6061SPawel Jakub Dawidek 6499a2f6061SPawel Jakub Dawidek for (i = 0; i < klen; i++) 6509a2f6061SPawel Jakub Dawidek key[i] ^= HMAC_IPAD_VAL; 6519a2f6061SPawel Jakub Dawidek 6529a2f6061SPawel Jakub Dawidek if (algo == CRYPTO_MD5_HMAC) { 6539a2f6061SPawel Jakub Dawidek MD5Init(&md5ctx); 6549a2f6061SPawel Jakub Dawidek MD5Update(&md5ctx, key, klen); 655082a4babSPawel Jakub Dawidek MD5Update(&md5ctx, hmac_ipad_buffer, MD5_HMAC_BLOCK_LEN - klen); 6569a2f6061SPawel Jakub Dawidek bcopy(md5ctx.state, ses->ses_hminner, sizeof(md5ctx.state)); 6579a2f6061SPawel Jakub Dawidek } else { 6589a2f6061SPawel Jakub Dawidek SHA1Init(&sha1ctx); 6599a2f6061SPawel Jakub Dawidek SHA1Update(&sha1ctx, key, klen); 660082a4babSPawel Jakub Dawidek SHA1Update(&sha1ctx, hmac_ipad_buffer, 661082a4babSPawel Jakub Dawidek SHA1_HMAC_BLOCK_LEN - klen); 6629a2f6061SPawel Jakub Dawidek bcopy(sha1ctx.h.b32, ses->ses_hminner, sizeof(sha1ctx.h.b32)); 6639a2f6061SPawel Jakub Dawidek } 6649a2f6061SPawel Jakub Dawidek 6659a2f6061SPawel Jakub Dawidek for (i = 0; i < klen; i++) 6669a2f6061SPawel Jakub Dawidek key[i] ^= (HMAC_IPAD_VAL ^ HMAC_OPAD_VAL); 6679a2f6061SPawel Jakub Dawidek 6689a2f6061SPawel Jakub Dawidek if (algo == CRYPTO_MD5_HMAC) { 6699a2f6061SPawel Jakub Dawidek MD5Init(&md5ctx); 6709a2f6061SPawel Jakub Dawidek MD5Update(&md5ctx, key, klen); 671082a4babSPawel Jakub Dawidek MD5Update(&md5ctx, hmac_opad_buffer, MD5_HMAC_BLOCK_LEN - klen); 6729a2f6061SPawel Jakub Dawidek bcopy(md5ctx.state, ses->ses_hmouter, sizeof(md5ctx.state)); 6739a2f6061SPawel Jakub Dawidek } else { 6749a2f6061SPawel Jakub Dawidek SHA1Init(&sha1ctx); 6759a2f6061SPawel Jakub Dawidek SHA1Update(&sha1ctx, key, klen); 676082a4babSPawel Jakub Dawidek SHA1Update(&sha1ctx, hmac_opad_buffer, 677082a4babSPawel Jakub Dawidek SHA1_HMAC_BLOCK_LEN - klen); 6789a2f6061SPawel Jakub Dawidek bcopy(sha1ctx.h.b32, ses->ses_hmouter, sizeof(sha1ctx.h.b32)); 6799a2f6061SPawel Jakub Dawidek } 6809a2f6061SPawel Jakub Dawidek 6819a2f6061SPawel Jakub Dawidek for (i = 0; i < klen; i++) 6829a2f6061SPawel Jakub Dawidek key[i] ^= HMAC_OPAD_VAL; 6839a2f6061SPawel Jakub Dawidek 6849a2f6061SPawel Jakub Dawidek /* PE is little-endian, insure proper byte order */ 6859a2f6061SPawel Jakub Dawidek for (i = 0; i < N(ses->ses_hminner); i++) { 6869a2f6061SPawel Jakub Dawidek ses->ses_hminner[i] = htole32(ses->ses_hminner[i]); 6879a2f6061SPawel Jakub Dawidek ses->ses_hmouter[i] = htole32(ses->ses_hmouter[i]); 6889a2f6061SPawel Jakub Dawidek } 6899a2f6061SPawel Jakub Dawidek } 6909a2f6061SPawel Jakub Dawidek #undef N 6919a2f6061SPawel Jakub Dawidek 692b7e3f244SSam Leffler /* 693b7e3f244SSam Leffler * Allocate a new 'session' and return an encoded session id. 'sidp' 694b7e3f244SSam Leffler * contains our registration id, and should contain an encoded session 695b7e3f244SSam Leffler * id on successful allocation. 696b7e3f244SSam Leffler */ 697b7e3f244SSam Leffler static int 6986810ad6fSSam Leffler safe_newsession(device_t dev, u_int32_t *sidp, struct cryptoini *cri) 699b7e3f244SSam Leffler { 7006810ad6fSSam Leffler struct safe_softc *sc = device_get_softc(dev); 701b7e3f244SSam Leffler struct cryptoini *c, *encini = NULL, *macini = NULL; 702b7e3f244SSam Leffler struct safe_session *ses = NULL; 7039a2f6061SPawel Jakub Dawidek int sesn; 704b7e3f244SSam Leffler 705b7e3f244SSam Leffler if (sidp == NULL || cri == NULL || sc == NULL) 706b7e3f244SSam Leffler return (EINVAL); 707b7e3f244SSam Leffler 708b7e3f244SSam Leffler for (c = cri; c != NULL; c = c->cri_next) { 709b7e3f244SSam Leffler if (c->cri_alg == CRYPTO_MD5_HMAC || 710b7e3f244SSam Leffler c->cri_alg == CRYPTO_SHA1_HMAC || 711b7e3f244SSam Leffler c->cri_alg == CRYPTO_NULL_HMAC) { 712b7e3f244SSam Leffler if (macini) 713b7e3f244SSam Leffler return (EINVAL); 714b7e3f244SSam Leffler macini = c; 715b7e3f244SSam Leffler } else if (c->cri_alg == CRYPTO_DES_CBC || 716b7e3f244SSam Leffler c->cri_alg == CRYPTO_3DES_CBC || 717b7e3f244SSam Leffler c->cri_alg == CRYPTO_AES_CBC || 718b7e3f244SSam Leffler c->cri_alg == CRYPTO_NULL_CBC) { 719b7e3f244SSam Leffler if (encini) 720b7e3f244SSam Leffler return (EINVAL); 721b7e3f244SSam Leffler encini = c; 722b7e3f244SSam Leffler } else 723b7e3f244SSam Leffler return (EINVAL); 724b7e3f244SSam Leffler } 725b7e3f244SSam Leffler if (encini == NULL && macini == NULL) 726b7e3f244SSam Leffler return (EINVAL); 727b7e3f244SSam Leffler if (encini) { /* validate key length */ 728b7e3f244SSam Leffler switch (encini->cri_alg) { 729b7e3f244SSam Leffler case CRYPTO_DES_CBC: 730b7e3f244SSam Leffler if (encini->cri_klen != 64) 731b7e3f244SSam Leffler return (EINVAL); 732b7e3f244SSam Leffler break; 733b7e3f244SSam Leffler case CRYPTO_3DES_CBC: 734b7e3f244SSam Leffler if (encini->cri_klen != 192) 735b7e3f244SSam Leffler return (EINVAL); 736b7e3f244SSam Leffler break; 737b7e3f244SSam Leffler case CRYPTO_AES_CBC: 738b7e3f244SSam Leffler if (encini->cri_klen != 128 && 739b7e3f244SSam Leffler encini->cri_klen != 192 && 740b7e3f244SSam Leffler encini->cri_klen != 256) 741b7e3f244SSam Leffler return (EINVAL); 742b7e3f244SSam Leffler break; 743b7e3f244SSam Leffler } 744b7e3f244SSam Leffler } 745b7e3f244SSam Leffler 746b7e3f244SSam Leffler if (sc->sc_sessions == NULL) { 747b7e3f244SSam Leffler ses = sc->sc_sessions = (struct safe_session *)malloc( 748b7e3f244SSam Leffler sizeof(struct safe_session), M_DEVBUF, M_NOWAIT); 749b7e3f244SSam Leffler if (ses == NULL) 750b7e3f244SSam Leffler return (ENOMEM); 751b7e3f244SSam Leffler sesn = 0; 752b7e3f244SSam Leffler sc->sc_nsessions = 1; 753b7e3f244SSam Leffler } else { 754b7e3f244SSam Leffler for (sesn = 0; sesn < sc->sc_nsessions; sesn++) { 755b7e3f244SSam Leffler if (sc->sc_sessions[sesn].ses_used == 0) { 756b7e3f244SSam Leffler ses = &sc->sc_sessions[sesn]; 757b7e3f244SSam Leffler break; 758b7e3f244SSam Leffler } 759b7e3f244SSam Leffler } 760b7e3f244SSam Leffler 761b7e3f244SSam Leffler if (ses == NULL) { 762b7e3f244SSam Leffler sesn = sc->sc_nsessions; 763b7e3f244SSam Leffler ses = (struct safe_session *)malloc((sesn + 1) * 764b7e3f244SSam Leffler sizeof(struct safe_session), M_DEVBUF, M_NOWAIT); 765b7e3f244SSam Leffler if (ses == NULL) 766b7e3f244SSam Leffler return (ENOMEM); 767b7e3f244SSam Leffler bcopy(sc->sc_sessions, ses, sesn * 768b7e3f244SSam Leffler sizeof(struct safe_session)); 769b7e3f244SSam Leffler bzero(sc->sc_sessions, sesn * 770b7e3f244SSam Leffler sizeof(struct safe_session)); 771b7e3f244SSam Leffler free(sc->sc_sessions, M_DEVBUF); 772b7e3f244SSam Leffler sc->sc_sessions = ses; 773b7e3f244SSam Leffler ses = &sc->sc_sessions[sesn]; 774b7e3f244SSam Leffler sc->sc_nsessions++; 775b7e3f244SSam Leffler } 776b7e3f244SSam Leffler } 777b7e3f244SSam Leffler 778b7e3f244SSam Leffler bzero(ses, sizeof(struct safe_session)); 779b7e3f244SSam Leffler ses->ses_used = 1; 780b7e3f244SSam Leffler 781b7e3f244SSam Leffler if (encini) { 782b7e3f244SSam Leffler /* get an IV */ 783b7e3f244SSam Leffler /* XXX may read fewer than requested */ 784b7e3f244SSam Leffler read_random(ses->ses_iv, sizeof(ses->ses_iv)); 785b7e3f244SSam Leffler 786b7e3f244SSam Leffler ses->ses_klen = encini->cri_klen; 7879a2f6061SPawel Jakub Dawidek if (encini->cri_key != NULL) 7889a2f6061SPawel Jakub Dawidek safe_setup_enckey(ses, encini->cri_key); 789b7e3f244SSam Leffler } 790b7e3f244SSam Leffler 791b7e3f244SSam Leffler if (macini) { 792af65c53aSPawel Jakub Dawidek ses->ses_mlen = macini->cri_mlen; 793af65c53aSPawel Jakub Dawidek if (ses->ses_mlen == 0) { 794af65c53aSPawel Jakub Dawidek if (macini->cri_alg == CRYPTO_MD5_HMAC) 7951dc8d404SPawel Jakub Dawidek ses->ses_mlen = MD5_HASH_LEN; 796af65c53aSPawel Jakub Dawidek else 7971dc8d404SPawel Jakub Dawidek ses->ses_mlen = SHA1_HASH_LEN; 798af65c53aSPawel Jakub Dawidek } 799af65c53aSPawel Jakub Dawidek 8009a2f6061SPawel Jakub Dawidek if (macini->cri_key != NULL) { 8019a2f6061SPawel Jakub Dawidek safe_setup_mackey(ses, macini->cri_alg, macini->cri_key, 802b7e3f244SSam Leffler macini->cri_klen / 8); 803b7e3f244SSam Leffler } 804b7e3f244SSam Leffler } 805b7e3f244SSam Leffler 806b7e3f244SSam Leffler *sidp = SAFE_SID(device_get_unit(sc->sc_dev), sesn); 807b7e3f244SSam Leffler return (0); 808b7e3f244SSam Leffler } 809b7e3f244SSam Leffler 810b7e3f244SSam Leffler /* 811b7e3f244SSam Leffler * Deallocate a session. 812b7e3f244SSam Leffler */ 813b7e3f244SSam Leffler static int 8146810ad6fSSam Leffler safe_freesession(device_t dev, u_int64_t tid) 815b7e3f244SSam Leffler { 8166810ad6fSSam Leffler struct safe_softc *sc = device_get_softc(dev); 817b7e3f244SSam Leffler int session, ret; 818b7e3f244SSam Leffler u_int32_t sid = ((u_int32_t) tid) & 0xffffffff; 819b7e3f244SSam Leffler 820b7e3f244SSam Leffler if (sc == NULL) 821b7e3f244SSam Leffler return (EINVAL); 822b7e3f244SSam Leffler 823b7e3f244SSam Leffler session = SAFE_SESSION(sid); 824b7e3f244SSam Leffler if (session < sc->sc_nsessions) { 825b7e3f244SSam Leffler bzero(&sc->sc_sessions[session], sizeof(sc->sc_sessions[session])); 826b7e3f244SSam Leffler ret = 0; 827b7e3f244SSam Leffler } else 828b7e3f244SSam Leffler ret = EINVAL; 829b7e3f244SSam Leffler return (ret); 830b7e3f244SSam Leffler } 831b7e3f244SSam Leffler 832b7e3f244SSam Leffler static void 833b7e3f244SSam Leffler safe_op_cb(void *arg, bus_dma_segment_t *seg, int nsegs, bus_size_t mapsize, int error) 834b7e3f244SSam Leffler { 835b7e3f244SSam Leffler struct safe_operand *op = arg; 836b7e3f244SSam Leffler 837b7e3f244SSam Leffler DPRINTF(("%s: mapsize %u nsegs %d error %d\n", __func__, 838b7e3f244SSam Leffler (u_int) mapsize, nsegs, error)); 839b7e3f244SSam Leffler if (error != 0) 840b7e3f244SSam Leffler return; 841b7e3f244SSam Leffler op->mapsize = mapsize; 842b7e3f244SSam Leffler op->nsegs = nsegs; 843b7e3f244SSam Leffler bcopy(seg, op->segs, nsegs * sizeof (seg[0])); 844b7e3f244SSam Leffler } 845b7e3f244SSam Leffler 846b7e3f244SSam Leffler static int 8476810ad6fSSam Leffler safe_process(device_t dev, struct cryptop *crp, int hint) 848b7e3f244SSam Leffler { 8496810ad6fSSam Leffler struct safe_softc *sc = device_get_softc(dev); 850b7e3f244SSam Leffler int err = 0, i, nicealign, uniform; 851b7e3f244SSam Leffler struct cryptodesc *crd1, *crd2, *maccrd, *enccrd; 852b7e3f244SSam Leffler int bypass, oplen, ivsize; 853b7e3f244SSam Leffler caddr_t iv; 854b7e3f244SSam Leffler int16_t coffset; 855b7e3f244SSam Leffler struct safe_session *ses; 856b7e3f244SSam Leffler struct safe_ringentry *re; 857b7e3f244SSam Leffler struct safe_sarec *sa; 858b7e3f244SSam Leffler struct safe_pdesc *pd; 859b7e3f244SSam Leffler u_int32_t cmd0, cmd1, staterec; 860b7e3f244SSam Leffler 861b7e3f244SSam Leffler if (crp == NULL || crp->crp_callback == NULL || sc == NULL) { 862b7e3f244SSam Leffler safestats.st_invalid++; 863b7e3f244SSam Leffler return (EINVAL); 864b7e3f244SSam Leffler } 865b7e3f244SSam Leffler if (SAFE_SESSION(crp->crp_sid) >= sc->sc_nsessions) { 866b7e3f244SSam Leffler safestats.st_badsession++; 867b7e3f244SSam Leffler return (EINVAL); 868b7e3f244SSam Leffler } 869b7e3f244SSam Leffler 870b7e3f244SSam Leffler mtx_lock(&sc->sc_ringmtx); 871b7e3f244SSam Leffler if (sc->sc_front == sc->sc_back && sc->sc_nqchip != 0) { 872b7e3f244SSam Leffler safestats.st_ringfull++; 873b7e3f244SSam Leffler sc->sc_needwakeup |= CRYPTO_SYMQ; 874b7e3f244SSam Leffler mtx_unlock(&sc->sc_ringmtx); 875b7e3f244SSam Leffler return (ERESTART); 876b7e3f244SSam Leffler } 877b7e3f244SSam Leffler re = sc->sc_front; 878b7e3f244SSam Leffler 879b7e3f244SSam Leffler staterec = re->re_sa.sa_staterec; /* save */ 880b7e3f244SSam Leffler /* NB: zero everything but the PE descriptor */ 881b7e3f244SSam Leffler bzero(&re->re_sa, sizeof(struct safe_ringentry) - sizeof(re->re_desc)); 882b7e3f244SSam Leffler re->re_sa.sa_staterec = staterec; /* restore */ 883b7e3f244SSam Leffler 884b7e3f244SSam Leffler re->re_crp = crp; 885b7e3f244SSam Leffler re->re_sesn = SAFE_SESSION(crp->crp_sid); 886b7e3f244SSam Leffler 887b7e3f244SSam Leffler if (crp->crp_flags & CRYPTO_F_IMBUF) { 888b7e3f244SSam Leffler re->re_src_m = (struct mbuf *)crp->crp_buf; 889b7e3f244SSam Leffler re->re_dst_m = (struct mbuf *)crp->crp_buf; 890b7e3f244SSam Leffler } else if (crp->crp_flags & CRYPTO_F_IOV) { 891b7e3f244SSam Leffler re->re_src_io = (struct uio *)crp->crp_buf; 892b7e3f244SSam Leffler re->re_dst_io = (struct uio *)crp->crp_buf; 893b7e3f244SSam Leffler } else { 894b7e3f244SSam Leffler safestats.st_badflags++; 895b7e3f244SSam Leffler err = EINVAL; 896b7e3f244SSam Leffler goto errout; /* XXX we don't handle contiguous blocks! */ 897b7e3f244SSam Leffler } 898b7e3f244SSam Leffler 899b7e3f244SSam Leffler sa = &re->re_sa; 900b7e3f244SSam Leffler ses = &sc->sc_sessions[re->re_sesn]; 901b7e3f244SSam Leffler 902b7e3f244SSam Leffler crd1 = crp->crp_desc; 903b7e3f244SSam Leffler if (crd1 == NULL) { 904b7e3f244SSam Leffler safestats.st_nodesc++; 905b7e3f244SSam Leffler err = EINVAL; 906b7e3f244SSam Leffler goto errout; 907b7e3f244SSam Leffler } 908b7e3f244SSam Leffler crd2 = crd1->crd_next; 909b7e3f244SSam Leffler 910b7e3f244SSam Leffler cmd0 = SAFE_SA_CMD0_BASIC; /* basic group operation */ 911b7e3f244SSam Leffler cmd1 = 0; 912b7e3f244SSam Leffler if (crd2 == NULL) { 913b7e3f244SSam Leffler if (crd1->crd_alg == CRYPTO_MD5_HMAC || 914b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_SHA1_HMAC || 915b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_NULL_HMAC) { 916b7e3f244SSam Leffler maccrd = crd1; 917b7e3f244SSam Leffler enccrd = NULL; 918b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_OP_HASH; 919b7e3f244SSam Leffler } else if (crd1->crd_alg == CRYPTO_DES_CBC || 920b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_3DES_CBC || 921b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_AES_CBC || 922b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_NULL_CBC) { 923b7e3f244SSam Leffler maccrd = NULL; 924b7e3f244SSam Leffler enccrd = crd1; 925b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_OP_CRYPT; 926b7e3f244SSam Leffler } else { 927b7e3f244SSam Leffler safestats.st_badalg++; 928b7e3f244SSam Leffler err = EINVAL; 929b7e3f244SSam Leffler goto errout; 930b7e3f244SSam Leffler } 931b7e3f244SSam Leffler } else { 932b7e3f244SSam Leffler if ((crd1->crd_alg == CRYPTO_MD5_HMAC || 933b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_SHA1_HMAC || 934b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_NULL_HMAC) && 935b7e3f244SSam Leffler (crd2->crd_alg == CRYPTO_DES_CBC || 936b7e3f244SSam Leffler crd2->crd_alg == CRYPTO_3DES_CBC || 937b7e3f244SSam Leffler crd2->crd_alg == CRYPTO_AES_CBC || 938b7e3f244SSam Leffler crd2->crd_alg == CRYPTO_NULL_CBC) && 939b7e3f244SSam Leffler ((crd2->crd_flags & CRD_F_ENCRYPT) == 0)) { 940b7e3f244SSam Leffler maccrd = crd1; 941b7e3f244SSam Leffler enccrd = crd2; 942b7e3f244SSam Leffler } else if ((crd1->crd_alg == CRYPTO_DES_CBC || 943b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_3DES_CBC || 944b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_AES_CBC || 945b7e3f244SSam Leffler crd1->crd_alg == CRYPTO_NULL_CBC) && 946b7e3f244SSam Leffler (crd2->crd_alg == CRYPTO_MD5_HMAC || 947b7e3f244SSam Leffler crd2->crd_alg == CRYPTO_SHA1_HMAC || 948b7e3f244SSam Leffler crd2->crd_alg == CRYPTO_NULL_HMAC) && 949b7e3f244SSam Leffler (crd1->crd_flags & CRD_F_ENCRYPT)) { 950b7e3f244SSam Leffler enccrd = crd1; 951b7e3f244SSam Leffler maccrd = crd2; 952b7e3f244SSam Leffler } else { 953b7e3f244SSam Leffler safestats.st_badalg++; 954b7e3f244SSam Leffler err = EINVAL; 955b7e3f244SSam Leffler goto errout; 956b7e3f244SSam Leffler } 957b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_OP_BOTH; 958b7e3f244SSam Leffler } 959b7e3f244SSam Leffler 960b7e3f244SSam Leffler if (enccrd) { 9619a2f6061SPawel Jakub Dawidek if (enccrd->crd_flags & CRD_F_KEY_EXPLICIT) 9629a2f6061SPawel Jakub Dawidek safe_setup_enckey(ses, enccrd->crd_key); 9639a2f6061SPawel Jakub Dawidek 964b7e3f244SSam Leffler if (enccrd->crd_alg == CRYPTO_DES_CBC) { 965b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_DES; 966b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_CBC; 967b7e3f244SSam Leffler ivsize = 2*sizeof(u_int32_t); 968b7e3f244SSam Leffler } else if (enccrd->crd_alg == CRYPTO_3DES_CBC) { 969b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_3DES; 970b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_CBC; 971b7e3f244SSam Leffler ivsize = 2*sizeof(u_int32_t); 972b7e3f244SSam Leffler } else if (enccrd->crd_alg == CRYPTO_AES_CBC) { 973b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_AES; 974b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_CBC; 975b7e3f244SSam Leffler if (ses->ses_klen == 128) 976b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_AES128; 977b7e3f244SSam Leffler else if (ses->ses_klen == 192) 978b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_AES192; 979b7e3f244SSam Leffler else 980b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_AES256; 981b7e3f244SSam Leffler ivsize = 4*sizeof(u_int32_t); 982b7e3f244SSam Leffler } else { 983b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_CRYPT_NULL; 984b7e3f244SSam Leffler ivsize = 0; 985b7e3f244SSam Leffler } 986b7e3f244SSam Leffler 987b7e3f244SSam Leffler /* 988b7e3f244SSam Leffler * Setup encrypt/decrypt state. When using basic ops 989b7e3f244SSam Leffler * we can't use an inline IV because hash/crypt offset 990b7e3f244SSam Leffler * must be from the end of the IV to the start of the 991b7e3f244SSam Leffler * crypt data and this leaves out the preceding header 992b7e3f244SSam Leffler * from the hash calculation. Instead we place the IV 993b7e3f244SSam Leffler * in the state record and set the hash/crypt offset to 994b7e3f244SSam Leffler * copy both the header+IV. 995b7e3f244SSam Leffler */ 996b7e3f244SSam Leffler if (enccrd->crd_flags & CRD_F_ENCRYPT) { 997b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_OUTBOUND; 998b7e3f244SSam Leffler 999b7e3f244SSam Leffler if (enccrd->crd_flags & CRD_F_IV_EXPLICIT) 1000b7e3f244SSam Leffler iv = enccrd->crd_iv; 1001b7e3f244SSam Leffler else 1002b7e3f244SSam Leffler iv = (caddr_t) ses->ses_iv; 1003b7e3f244SSam Leffler if ((enccrd->crd_flags & CRD_F_IV_PRESENT) == 0) { 1004f34a967bSPawel Jakub Dawidek crypto_copyback(crp->crp_flags, crp->crp_buf, 1005b7e3f244SSam Leffler enccrd->crd_inject, ivsize, iv); 1006b7e3f244SSam Leffler } 1007b7e3f244SSam Leffler bcopy(iv, re->re_sastate.sa_saved_iv, ivsize); 1008b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_IVLD_STATE | SAFE_SA_CMD0_SAVEIV; 1009b7e3f244SSam Leffler re->re_flags |= SAFE_QFLAGS_COPYOUTIV; 1010b7e3f244SSam Leffler } else { 1011b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_INBOUND; 1012b7e3f244SSam Leffler 1013f34a967bSPawel Jakub Dawidek if (enccrd->crd_flags & CRD_F_IV_EXPLICIT) { 1014b7e3f244SSam Leffler bcopy(enccrd->crd_iv, 1015b7e3f244SSam Leffler re->re_sastate.sa_saved_iv, ivsize); 1016f34a967bSPawel Jakub Dawidek } else { 1017f34a967bSPawel Jakub Dawidek crypto_copydata(crp->crp_flags, crp->crp_buf, 1018f34a967bSPawel Jakub Dawidek enccrd->crd_inject, ivsize, 1019b7e3f244SSam Leffler (caddr_t)re->re_sastate.sa_saved_iv); 1020f34a967bSPawel Jakub Dawidek } 1021b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_IVLD_STATE; 1022b7e3f244SSam Leffler } 1023b7e3f244SSam Leffler /* 1024b7e3f244SSam Leffler * For basic encryption use the zero pad algorithm. 1025b7e3f244SSam Leffler * This pads results to an 8-byte boundary and 1026b7e3f244SSam Leffler * suppresses padding verification for inbound (i.e. 1027b7e3f244SSam Leffler * decrypt) operations. 1028b7e3f244SSam Leffler * 1029b7e3f244SSam Leffler * NB: Not sure if the 8-byte pad boundary is a problem. 1030b7e3f244SSam Leffler */ 1031b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_PAD_ZERO; 1032b7e3f244SSam Leffler 1033b7e3f244SSam Leffler /* XXX assert key bufs have the same size */ 1034b7e3f244SSam Leffler bcopy(ses->ses_key, sa->sa_key, sizeof(sa->sa_key)); 1035b7e3f244SSam Leffler } 1036b7e3f244SSam Leffler 1037b7e3f244SSam Leffler if (maccrd) { 10389a2f6061SPawel Jakub Dawidek if (maccrd->crd_flags & CRD_F_KEY_EXPLICIT) { 10399a2f6061SPawel Jakub Dawidek safe_setup_mackey(ses, maccrd->crd_alg, 10409a2f6061SPawel Jakub Dawidek maccrd->crd_key, maccrd->crd_klen / 8); 10419a2f6061SPawel Jakub Dawidek } 10429a2f6061SPawel Jakub Dawidek 1043b7e3f244SSam Leffler if (maccrd->crd_alg == CRYPTO_MD5_HMAC) { 1044b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_MD5; 1045b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_HMAC; /* NB: enable HMAC */ 1046b7e3f244SSam Leffler } else if (maccrd->crd_alg == CRYPTO_SHA1_HMAC) { 1047b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_SHA1; 1048b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_HMAC; /* NB: enable HMAC */ 1049b7e3f244SSam Leffler } else { 1050b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_HASH_NULL; 1051b7e3f244SSam Leffler } 1052b7e3f244SSam Leffler /* 1053b7e3f244SSam Leffler * Digest data is loaded from the SA and the hash 1054b7e3f244SSam Leffler * result is saved to the state block where we 1055b7e3f244SSam Leffler * retrieve it for return to the caller. 1056b7e3f244SSam Leffler */ 1057b7e3f244SSam Leffler /* XXX assert digest bufs have the same size */ 1058b7e3f244SSam Leffler bcopy(ses->ses_hminner, sa->sa_indigest, 1059b7e3f244SSam Leffler sizeof(sa->sa_indigest)); 1060b7e3f244SSam Leffler bcopy(ses->ses_hmouter, sa->sa_outdigest, 1061b7e3f244SSam Leffler sizeof(sa->sa_outdigest)); 1062b7e3f244SSam Leffler 1063b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_HSLD_SA | SAFE_SA_CMD0_SAVEHASH; 1064b7e3f244SSam Leffler re->re_flags |= SAFE_QFLAGS_COPYOUTICV; 1065b7e3f244SSam Leffler } 1066b7e3f244SSam Leffler 1067b7e3f244SSam Leffler if (enccrd && maccrd) { 1068b7e3f244SSam Leffler /* 1069b7e3f244SSam Leffler * The offset from hash data to the start of 1070b7e3f244SSam Leffler * crypt data is the difference in the skips. 1071b7e3f244SSam Leffler */ 1072b7e3f244SSam Leffler bypass = maccrd->crd_skip; 1073b7e3f244SSam Leffler coffset = enccrd->crd_skip - maccrd->crd_skip; 1074b7e3f244SSam Leffler if (coffset < 0) { 1075b7e3f244SSam Leffler DPRINTF(("%s: hash does not precede crypt; " 1076b7e3f244SSam Leffler "mac skip %u enc skip %u\n", 1077b7e3f244SSam Leffler __func__, maccrd->crd_skip, enccrd->crd_skip)); 1078b7e3f244SSam Leffler safestats.st_skipmismatch++; 1079b7e3f244SSam Leffler err = EINVAL; 1080b7e3f244SSam Leffler goto errout; 1081b7e3f244SSam Leffler } 1082b7e3f244SSam Leffler oplen = enccrd->crd_skip + enccrd->crd_len; 1083b7e3f244SSam Leffler if (maccrd->crd_skip + maccrd->crd_len != oplen) { 1084b7e3f244SSam Leffler DPRINTF(("%s: hash amount %u != crypt amount %u\n", 1085b7e3f244SSam Leffler __func__, maccrd->crd_skip + maccrd->crd_len, 1086b7e3f244SSam Leffler oplen)); 1087b7e3f244SSam Leffler safestats.st_lenmismatch++; 1088b7e3f244SSam Leffler err = EINVAL; 1089b7e3f244SSam Leffler goto errout; 1090b7e3f244SSam Leffler } 1091b7e3f244SSam Leffler #ifdef SAFE_DEBUG 1092b7e3f244SSam Leffler if (safe_debug) { 1093b7e3f244SSam Leffler printf("mac: skip %d, len %d, inject %d\n", 1094b7e3f244SSam Leffler maccrd->crd_skip, maccrd->crd_len, 1095b7e3f244SSam Leffler maccrd->crd_inject); 1096b7e3f244SSam Leffler printf("enc: skip %d, len %d, inject %d\n", 1097b7e3f244SSam Leffler enccrd->crd_skip, enccrd->crd_len, 1098b7e3f244SSam Leffler enccrd->crd_inject); 1099b7e3f244SSam Leffler printf("bypass %d coffset %d oplen %d\n", 1100b7e3f244SSam Leffler bypass, coffset, oplen); 1101b7e3f244SSam Leffler } 1102b7e3f244SSam Leffler #endif 1103b7e3f244SSam Leffler if (coffset & 3) { /* offset must be 32-bit aligned */ 1104b7e3f244SSam Leffler DPRINTF(("%s: coffset %u misaligned\n", 1105b7e3f244SSam Leffler __func__, coffset)); 1106b7e3f244SSam Leffler safestats.st_coffmisaligned++; 1107b7e3f244SSam Leffler err = EINVAL; 1108b7e3f244SSam Leffler goto errout; 1109b7e3f244SSam Leffler } 1110b7e3f244SSam Leffler coffset >>= 2; 1111b7e3f244SSam Leffler if (coffset > 255) { /* offset must be <256 dwords */ 1112b7e3f244SSam Leffler DPRINTF(("%s: coffset %u too big\n", 1113b7e3f244SSam Leffler __func__, coffset)); 1114b7e3f244SSam Leffler safestats.st_cofftoobig++; 1115b7e3f244SSam Leffler err = EINVAL; 1116b7e3f244SSam Leffler goto errout; 1117b7e3f244SSam Leffler } 1118b7e3f244SSam Leffler /* 1119b7e3f244SSam Leffler * Tell the hardware to copy the header to the output. 1120b7e3f244SSam Leffler * The header is defined as the data from the end of 1121b7e3f244SSam Leffler * the bypass to the start of data to be encrypted. 1122b7e3f244SSam Leffler * Typically this is the inline IV. Note that you need 1123b7e3f244SSam Leffler * to do this even if src+dst are the same; it appears 1124b7e3f244SSam Leffler * that w/o this bit the crypted data is written 1125b7e3f244SSam Leffler * immediately after the bypass data. 1126b7e3f244SSam Leffler */ 1127b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_HDRCOPY; 1128b7e3f244SSam Leffler /* 1129b7e3f244SSam Leffler * Disable IP header mutable bit handling. This is 1130b7e3f244SSam Leffler * needed to get correct HMAC calculations. 1131b7e3f244SSam Leffler */ 1132b7e3f244SSam Leffler cmd1 |= SAFE_SA_CMD1_MUTABLE; 1133b7e3f244SSam Leffler } else { 1134b7e3f244SSam Leffler if (enccrd) { 1135b7e3f244SSam Leffler bypass = enccrd->crd_skip; 1136b7e3f244SSam Leffler oplen = bypass + enccrd->crd_len; 1137b7e3f244SSam Leffler } else { 1138b7e3f244SSam Leffler bypass = maccrd->crd_skip; 1139b7e3f244SSam Leffler oplen = bypass + maccrd->crd_len; 1140b7e3f244SSam Leffler } 1141b7e3f244SSam Leffler coffset = 0; 1142b7e3f244SSam Leffler } 1143b7e3f244SSam Leffler /* XXX verify multiple of 4 when using s/g */ 1144b7e3f244SSam Leffler if (bypass > 96) { /* bypass offset must be <= 96 bytes */ 1145b7e3f244SSam Leffler DPRINTF(("%s: bypass %u too big\n", __func__, bypass)); 1146b7e3f244SSam Leffler safestats.st_bypasstoobig++; 1147b7e3f244SSam Leffler err = EINVAL; 1148b7e3f244SSam Leffler goto errout; 1149b7e3f244SSam Leffler } 1150b7e3f244SSam Leffler 1151b7e3f244SSam Leffler if (bus_dmamap_create(sc->sc_srcdmat, BUS_DMA_NOWAIT, &re->re_src_map)) { 1152b7e3f244SSam Leffler safestats.st_nomap++; 1153b7e3f244SSam Leffler err = ENOMEM; 1154b7e3f244SSam Leffler goto errout; 1155b7e3f244SSam Leffler } 1156b7e3f244SSam Leffler if (crp->crp_flags & CRYPTO_F_IMBUF) { 1157b7e3f244SSam Leffler if (bus_dmamap_load_mbuf(sc->sc_srcdmat, re->re_src_map, 1158b7e3f244SSam Leffler re->re_src_m, safe_op_cb, 1159b7e3f244SSam Leffler &re->re_src, BUS_DMA_NOWAIT) != 0) { 1160b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_srcdmat, re->re_src_map); 1161b7e3f244SSam Leffler re->re_src_map = NULL; 1162b7e3f244SSam Leffler safestats.st_noload++; 1163b7e3f244SSam Leffler err = ENOMEM; 1164b7e3f244SSam Leffler goto errout; 1165b7e3f244SSam Leffler } 1166b7e3f244SSam Leffler } else if (crp->crp_flags & CRYPTO_F_IOV) { 1167b7e3f244SSam Leffler if (bus_dmamap_load_uio(sc->sc_srcdmat, re->re_src_map, 1168b7e3f244SSam Leffler re->re_src_io, safe_op_cb, 1169b7e3f244SSam Leffler &re->re_src, BUS_DMA_NOWAIT) != 0) { 1170b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_srcdmat, re->re_src_map); 1171b7e3f244SSam Leffler re->re_src_map = NULL; 1172b7e3f244SSam Leffler safestats.st_noload++; 1173b7e3f244SSam Leffler err = ENOMEM; 1174b7e3f244SSam Leffler goto errout; 1175b7e3f244SSam Leffler } 1176b7e3f244SSam Leffler } 1177b7e3f244SSam Leffler nicealign = safe_dmamap_aligned(&re->re_src); 1178b7e3f244SSam Leffler uniform = safe_dmamap_uniform(&re->re_src); 1179b7e3f244SSam Leffler 1180b7e3f244SSam Leffler DPRINTF(("src nicealign %u uniform %u nsegs %u\n", 1181b7e3f244SSam Leffler nicealign, uniform, re->re_src.nsegs)); 1182b7e3f244SSam Leffler if (re->re_src.nsegs > 1) { 1183b7e3f244SSam Leffler re->re_desc.d_src = sc->sc_spalloc.dma_paddr + 1184b7e3f244SSam Leffler ((caddr_t) sc->sc_spfree - (caddr_t) sc->sc_spring); 1185b7e3f244SSam Leffler for (i = 0; i < re->re_src_nsegs; i++) { 1186b7e3f244SSam Leffler /* NB: no need to check if there's space */ 1187b7e3f244SSam Leffler pd = sc->sc_spfree; 1188b7e3f244SSam Leffler if (++(sc->sc_spfree) == sc->sc_springtop) 1189b7e3f244SSam Leffler sc->sc_spfree = sc->sc_spring; 1190b7e3f244SSam Leffler 1191b7e3f244SSam Leffler KASSERT((pd->pd_flags&3) == 0 || 1192b7e3f244SSam Leffler (pd->pd_flags&3) == SAFE_PD_DONE, 1193b7e3f244SSam Leffler ("bogus source particle descriptor; flags %x", 1194b7e3f244SSam Leffler pd->pd_flags)); 1195b7e3f244SSam Leffler pd->pd_addr = re->re_src_segs[i].ds_addr; 1196b7e3f244SSam Leffler pd->pd_size = re->re_src_segs[i].ds_len; 1197b7e3f244SSam Leffler pd->pd_flags = SAFE_PD_READY; 1198b7e3f244SSam Leffler } 1199b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_IGATHER; 1200b7e3f244SSam Leffler } else { 1201b7e3f244SSam Leffler /* 1202b7e3f244SSam Leffler * No need for gather, reference the operand directly. 1203b7e3f244SSam Leffler */ 1204b7e3f244SSam Leffler re->re_desc.d_src = re->re_src_segs[0].ds_addr; 1205b7e3f244SSam Leffler } 1206b7e3f244SSam Leffler 1207b7e3f244SSam Leffler if (enccrd == NULL && maccrd != NULL) { 1208b7e3f244SSam Leffler /* 1209b7e3f244SSam Leffler * Hash op; no destination needed. 1210b7e3f244SSam Leffler */ 1211b7e3f244SSam Leffler } else { 1212b7e3f244SSam Leffler if (crp->crp_flags & CRYPTO_F_IOV) { 1213b7e3f244SSam Leffler if (!nicealign) { 1214b7e3f244SSam Leffler safestats.st_iovmisaligned++; 1215b7e3f244SSam Leffler err = EINVAL; 1216b7e3f244SSam Leffler goto errout; 1217b7e3f244SSam Leffler } 1218b7e3f244SSam Leffler if (uniform != 1) { 1219b7e3f244SSam Leffler /* 1220b7e3f244SSam Leffler * Source is not suitable for direct use as 1221b7e3f244SSam Leffler * the destination. Create a new scatter/gather 1222b7e3f244SSam Leffler * list based on the destination requirements 1223b7e3f244SSam Leffler * and check if that's ok. 1224b7e3f244SSam Leffler */ 1225b7e3f244SSam Leffler if (bus_dmamap_create(sc->sc_dstdmat, 1226b7e3f244SSam Leffler BUS_DMA_NOWAIT, &re->re_dst_map)) { 1227b7e3f244SSam Leffler safestats.st_nomap++; 1228b7e3f244SSam Leffler err = ENOMEM; 1229b7e3f244SSam Leffler goto errout; 1230b7e3f244SSam Leffler } 1231b7e3f244SSam Leffler if (bus_dmamap_load_uio(sc->sc_dstdmat, 1232b7e3f244SSam Leffler re->re_dst_map, re->re_dst_io, 1233b7e3f244SSam Leffler safe_op_cb, &re->re_dst, 1234b7e3f244SSam Leffler BUS_DMA_NOWAIT) != 0) { 1235b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_dstdmat, 1236b7e3f244SSam Leffler re->re_dst_map); 1237b7e3f244SSam Leffler re->re_dst_map = NULL; 1238b7e3f244SSam Leffler safestats.st_noload++; 1239b7e3f244SSam Leffler err = ENOMEM; 1240b7e3f244SSam Leffler goto errout; 1241b7e3f244SSam Leffler } 1242b7e3f244SSam Leffler uniform = safe_dmamap_uniform(&re->re_dst); 1243b7e3f244SSam Leffler if (!uniform) { 1244b7e3f244SSam Leffler /* 1245b7e3f244SSam Leffler * There's no way to handle the DMA 1246b7e3f244SSam Leffler * requirements with this uio. We 1247b7e3f244SSam Leffler * could create a separate DMA area for 1248b7e3f244SSam Leffler * the result and then copy it back, 1249b7e3f244SSam Leffler * but for now we just bail and return 1250b7e3f244SSam Leffler * an error. Note that uio requests 1251b7e3f244SSam Leffler * > SAFE_MAX_DSIZE are handled because 1252b7e3f244SSam Leffler * the DMA map and segment list for the 1253b7e3f244SSam Leffler * destination wil result in a 1254b7e3f244SSam Leffler * destination particle list that does 1255b7e3f244SSam Leffler * the necessary scatter DMA. 1256b7e3f244SSam Leffler */ 1257b7e3f244SSam Leffler safestats.st_iovnotuniform++; 1258b7e3f244SSam Leffler err = EINVAL; 1259b7e3f244SSam Leffler goto errout; 1260b7e3f244SSam Leffler } 1261900017e8SSam Leffler } else 1262900017e8SSam Leffler re->re_dst = re->re_src; 1263b7e3f244SSam Leffler } else if (crp->crp_flags & CRYPTO_F_IMBUF) { 1264b7e3f244SSam Leffler if (nicealign && uniform == 1) { 1265b7e3f244SSam Leffler /* 1266b7e3f244SSam Leffler * Source layout is suitable for direct 1267b7e3f244SSam Leffler * sharing of the DMA map and segment list. 1268b7e3f244SSam Leffler */ 1269b7e3f244SSam Leffler re->re_dst = re->re_src; 1270b7e3f244SSam Leffler } else if (nicealign && uniform == 2) { 1271b7e3f244SSam Leffler /* 1272b7e3f244SSam Leffler * The source is properly aligned but requires a 1273b7e3f244SSam Leffler * different particle list to handle DMA of the 1274b7e3f244SSam Leffler * result. Create a new map and do the load to 1275b7e3f244SSam Leffler * create the segment list. The particle 1276b7e3f244SSam Leffler * descriptor setup code below will handle the 1277b7e3f244SSam Leffler * rest. 1278b7e3f244SSam Leffler */ 1279b7e3f244SSam Leffler if (bus_dmamap_create(sc->sc_dstdmat, 1280b7e3f244SSam Leffler BUS_DMA_NOWAIT, &re->re_dst_map)) { 1281b7e3f244SSam Leffler safestats.st_nomap++; 1282b7e3f244SSam Leffler err = ENOMEM; 1283b7e3f244SSam Leffler goto errout; 1284b7e3f244SSam Leffler } 1285b7e3f244SSam Leffler if (bus_dmamap_load_mbuf(sc->sc_dstdmat, 1286b7e3f244SSam Leffler re->re_dst_map, re->re_dst_m, 1287b7e3f244SSam Leffler safe_op_cb, &re->re_dst, 1288b7e3f244SSam Leffler BUS_DMA_NOWAIT) != 0) { 1289b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_dstdmat, 1290b7e3f244SSam Leffler re->re_dst_map); 1291b7e3f244SSam Leffler re->re_dst_map = NULL; 1292b7e3f244SSam Leffler safestats.st_noload++; 1293b7e3f244SSam Leffler err = ENOMEM; 1294b7e3f244SSam Leffler goto errout; 1295b7e3f244SSam Leffler } 1296b7e3f244SSam Leffler } else { /* !(aligned and/or uniform) */ 1297b7e3f244SSam Leffler int totlen, len; 1298b7e3f244SSam Leffler struct mbuf *m, *top, **mp; 1299b7e3f244SSam Leffler 1300b7e3f244SSam Leffler /* 1301b7e3f244SSam Leffler * DMA constraints require that we allocate a 1302b7e3f244SSam Leffler * new mbuf chain for the destination. We 1303b7e3f244SSam Leffler * allocate an entire new set of mbufs of 1304b7e3f244SSam Leffler * optimal/required size and then tell the 1305b7e3f244SSam Leffler * hardware to copy any bits that are not 1306b7e3f244SSam Leffler * created as a byproduct of the operation. 1307b7e3f244SSam Leffler */ 1308b7e3f244SSam Leffler if (!nicealign) 1309b7e3f244SSam Leffler safestats.st_unaligned++; 1310b7e3f244SSam Leffler if (!uniform) 1311b7e3f244SSam Leffler safestats.st_notuniform++; 1312b7e3f244SSam Leffler totlen = re->re_src_mapsize; 1313b7e3f244SSam Leffler if (re->re_src_m->m_flags & M_PKTHDR) { 1314b7e3f244SSam Leffler len = MHLEN; 1315c6499eccSGleb Smirnoff MGETHDR(m, M_NOWAIT, MT_DATA); 1316b7e3f244SSam Leffler if (m && !m_dup_pkthdr(m, re->re_src_m, 1317c6499eccSGleb Smirnoff M_NOWAIT)) { 1318b7e3f244SSam Leffler m_free(m); 1319b7e3f244SSam Leffler m = NULL; 1320b7e3f244SSam Leffler } 1321b7e3f244SSam Leffler } else { 1322b7e3f244SSam Leffler len = MLEN; 1323c6499eccSGleb Smirnoff MGET(m, M_NOWAIT, MT_DATA); 1324b7e3f244SSam Leffler } 1325b7e3f244SSam Leffler if (m == NULL) { 1326b7e3f244SSam Leffler safestats.st_nombuf++; 1327b7e3f244SSam Leffler err = sc->sc_nqchip ? ERESTART : ENOMEM; 1328b7e3f244SSam Leffler goto errout; 1329b7e3f244SSam Leffler } 1330b7e3f244SSam Leffler if (totlen >= MINCLSIZE) { 1331*2a8c860fSRobert Watson if (!(MCLGET(m, M_NOWAIT))) { 1332b7e3f244SSam Leffler m_free(m); 1333b7e3f244SSam Leffler safestats.st_nomcl++; 1334b7e3f244SSam Leffler err = sc->sc_nqchip ? 1335b7e3f244SSam Leffler ERESTART : ENOMEM; 1336b7e3f244SSam Leffler goto errout; 1337b7e3f244SSam Leffler } 1338b7e3f244SSam Leffler len = MCLBYTES; 1339b7e3f244SSam Leffler } 1340b7e3f244SSam Leffler m->m_len = len; 1341b7e3f244SSam Leffler top = NULL; 1342b7e3f244SSam Leffler mp = ⊤ 1343b7e3f244SSam Leffler 1344b7e3f244SSam Leffler while (totlen > 0) { 1345b7e3f244SSam Leffler if (top) { 1346c6499eccSGleb Smirnoff MGET(m, M_NOWAIT, MT_DATA); 1347b7e3f244SSam Leffler if (m == NULL) { 1348b7e3f244SSam Leffler m_freem(top); 1349b7e3f244SSam Leffler safestats.st_nombuf++; 1350b7e3f244SSam Leffler err = sc->sc_nqchip ? 1351b7e3f244SSam Leffler ERESTART : ENOMEM; 1352b7e3f244SSam Leffler goto errout; 1353b7e3f244SSam Leffler } 1354b7e3f244SSam Leffler len = MLEN; 1355b7e3f244SSam Leffler } 1356b7e3f244SSam Leffler if (top && totlen >= MINCLSIZE) { 1357*2a8c860fSRobert Watson if (!(MCLGET(m, M_NOWAIT))) { 1358b7e3f244SSam Leffler *mp = m; 1359b7e3f244SSam Leffler m_freem(top); 1360b7e3f244SSam Leffler safestats.st_nomcl++; 1361b7e3f244SSam Leffler err = sc->sc_nqchip ? 1362b7e3f244SSam Leffler ERESTART : ENOMEM; 1363b7e3f244SSam Leffler goto errout; 1364b7e3f244SSam Leffler } 1365b7e3f244SSam Leffler len = MCLBYTES; 1366b7e3f244SSam Leffler } 1367b7e3f244SSam Leffler m->m_len = len = min(totlen, len); 1368b7e3f244SSam Leffler totlen -= len; 1369b7e3f244SSam Leffler *mp = m; 1370b7e3f244SSam Leffler mp = &m->m_next; 1371b7e3f244SSam Leffler } 1372b7e3f244SSam Leffler re->re_dst_m = top; 1373b7e3f244SSam Leffler if (bus_dmamap_create(sc->sc_dstdmat, 1374b7e3f244SSam Leffler BUS_DMA_NOWAIT, &re->re_dst_map) != 0) { 1375b7e3f244SSam Leffler safestats.st_nomap++; 1376b7e3f244SSam Leffler err = ENOMEM; 1377b7e3f244SSam Leffler goto errout; 1378b7e3f244SSam Leffler } 1379b7e3f244SSam Leffler if (bus_dmamap_load_mbuf(sc->sc_dstdmat, 1380b7e3f244SSam Leffler re->re_dst_map, re->re_dst_m, 1381b7e3f244SSam Leffler safe_op_cb, &re->re_dst, 1382b7e3f244SSam Leffler BUS_DMA_NOWAIT) != 0) { 1383b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_dstdmat, 1384b7e3f244SSam Leffler re->re_dst_map); 1385b7e3f244SSam Leffler re->re_dst_map = NULL; 1386b7e3f244SSam Leffler safestats.st_noload++; 1387b7e3f244SSam Leffler err = ENOMEM; 1388b7e3f244SSam Leffler goto errout; 1389b7e3f244SSam Leffler } 1390b7e3f244SSam Leffler if (re->re_src.mapsize > oplen) { 1391b7e3f244SSam Leffler /* 1392b7e3f244SSam Leffler * There's data following what the 1393b7e3f244SSam Leffler * hardware will copy for us. If this 1394b7e3f244SSam Leffler * isn't just the ICV (that's going to 1395b7e3f244SSam Leffler * be written on completion), copy it 1396b7e3f244SSam Leffler * to the new mbufs 1397b7e3f244SSam Leffler */ 1398b7e3f244SSam Leffler if (!(maccrd && 1399b7e3f244SSam Leffler (re->re_src.mapsize-oplen) == 12 && 1400b7e3f244SSam Leffler maccrd->crd_inject == oplen)) 1401b7e3f244SSam Leffler safe_mcopy(re->re_src_m, 1402b7e3f244SSam Leffler re->re_dst_m, 1403b7e3f244SSam Leffler oplen); 1404b7e3f244SSam Leffler else 1405b7e3f244SSam Leffler safestats.st_noicvcopy++; 1406b7e3f244SSam Leffler } 1407b7e3f244SSam Leffler } 1408b7e3f244SSam Leffler } else { 1409b7e3f244SSam Leffler safestats.st_badflags++; 1410b7e3f244SSam Leffler err = EINVAL; 1411b7e3f244SSam Leffler goto errout; 1412b7e3f244SSam Leffler } 1413b7e3f244SSam Leffler 1414b7e3f244SSam Leffler if (re->re_dst.nsegs > 1) { 1415b7e3f244SSam Leffler re->re_desc.d_dst = sc->sc_dpalloc.dma_paddr + 1416b7e3f244SSam Leffler ((caddr_t) sc->sc_dpfree - (caddr_t) sc->sc_dpring); 1417b7e3f244SSam Leffler for (i = 0; i < re->re_dst_nsegs; i++) { 1418b7e3f244SSam Leffler pd = sc->sc_dpfree; 1419b7e3f244SSam Leffler KASSERT((pd->pd_flags&3) == 0 || 1420b7e3f244SSam Leffler (pd->pd_flags&3) == SAFE_PD_DONE, 1421b7e3f244SSam Leffler ("bogus dest particle descriptor; flags %x", 1422b7e3f244SSam Leffler pd->pd_flags)); 1423b7e3f244SSam Leffler if (++(sc->sc_dpfree) == sc->sc_dpringtop) 1424b7e3f244SSam Leffler sc->sc_dpfree = sc->sc_dpring; 1425b7e3f244SSam Leffler pd->pd_addr = re->re_dst_segs[i].ds_addr; 1426b7e3f244SSam Leffler pd->pd_flags = SAFE_PD_READY; 1427b7e3f244SSam Leffler } 1428b7e3f244SSam Leffler cmd0 |= SAFE_SA_CMD0_OSCATTER; 1429b7e3f244SSam Leffler } else { 1430b7e3f244SSam Leffler /* 1431b7e3f244SSam Leffler * No need for scatter, reference the operand directly. 1432b7e3f244SSam Leffler */ 1433b7e3f244SSam Leffler re->re_desc.d_dst = re->re_dst_segs[0].ds_addr; 1434b7e3f244SSam Leffler } 1435b7e3f244SSam Leffler } 1436b7e3f244SSam Leffler 1437b7e3f244SSam Leffler /* 1438b7e3f244SSam Leffler * All done with setup; fillin the SA command words 1439b7e3f244SSam Leffler * and the packet engine descriptor. The operation 1440b7e3f244SSam Leffler * is now ready for submission to the hardware. 1441b7e3f244SSam Leffler */ 1442b7e3f244SSam Leffler sa->sa_cmd0 = cmd0 | SAFE_SA_CMD0_IPCI | SAFE_SA_CMD0_OPCI; 1443b7e3f244SSam Leffler sa->sa_cmd1 = cmd1 1444b7e3f244SSam Leffler | (coffset << SAFE_SA_CMD1_OFFSET_S) 1445b7e3f244SSam Leffler | SAFE_SA_CMD1_SAREV1 /* Rev 1 SA data structure */ 1446b7e3f244SSam Leffler | SAFE_SA_CMD1_SRPCI 1447b7e3f244SSam Leffler ; 1448b7e3f244SSam Leffler /* 1449b7e3f244SSam Leffler * NB: the order of writes is important here. In case the 1450b7e3f244SSam Leffler * chip is scanning the ring because of an outstanding request 1451b7e3f244SSam Leffler * it might nab this one too. In that case we need to make 1452b7e3f244SSam Leffler * sure the setup is complete before we write the length 1453b7e3f244SSam Leffler * field of the descriptor as it signals the descriptor is 1454b7e3f244SSam Leffler * ready for processing. 1455b7e3f244SSam Leffler */ 1456b7e3f244SSam Leffler re->re_desc.d_csr = SAFE_PE_CSR_READY | SAFE_PE_CSR_SAPCI; 1457b7e3f244SSam Leffler if (maccrd) 1458b7e3f244SSam Leffler re->re_desc.d_csr |= SAFE_PE_CSR_LOADSA | SAFE_PE_CSR_HASHFINAL; 1459b7e3f244SSam Leffler re->re_desc.d_len = oplen 1460b7e3f244SSam Leffler | SAFE_PE_LEN_READY 1461b7e3f244SSam Leffler | (bypass << SAFE_PE_LEN_BYPASS_S) 1462b7e3f244SSam Leffler ; 1463b7e3f244SSam Leffler 1464b7e3f244SSam Leffler safestats.st_ipackets++; 1465b7e3f244SSam Leffler safestats.st_ibytes += oplen; 1466b7e3f244SSam Leffler 1467b7e3f244SSam Leffler if (++(sc->sc_front) == sc->sc_ringtop) 1468b7e3f244SSam Leffler sc->sc_front = sc->sc_ring; 1469b7e3f244SSam Leffler 1470b7e3f244SSam Leffler /* XXX honor batching */ 1471b7e3f244SSam Leffler safe_feed(sc, re); 1472b7e3f244SSam Leffler mtx_unlock(&sc->sc_ringmtx); 1473b7e3f244SSam Leffler return (0); 1474b7e3f244SSam Leffler 1475b7e3f244SSam Leffler errout: 1476b7e3f244SSam Leffler if ((re->re_dst_m != NULL) && (re->re_src_m != re->re_dst_m)) 1477b7e3f244SSam Leffler m_freem(re->re_dst_m); 1478b7e3f244SSam Leffler 1479b7e3f244SSam Leffler if (re->re_dst_map != NULL && re->re_dst_map != re->re_src_map) { 1480b7e3f244SSam Leffler bus_dmamap_unload(sc->sc_dstdmat, re->re_dst_map); 1481b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_dstdmat, re->re_dst_map); 1482b7e3f244SSam Leffler } 1483b7e3f244SSam Leffler if (re->re_src_map != NULL) { 1484b7e3f244SSam Leffler bus_dmamap_unload(sc->sc_srcdmat, re->re_src_map); 1485b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_srcdmat, re->re_src_map); 1486b7e3f244SSam Leffler } 1487b7e3f244SSam Leffler mtx_unlock(&sc->sc_ringmtx); 1488b7e3f244SSam Leffler if (err != ERESTART) { 1489b7e3f244SSam Leffler crp->crp_etype = err; 1490b7e3f244SSam Leffler crypto_done(crp); 1491b7e3f244SSam Leffler } else { 1492b7e3f244SSam Leffler sc->sc_needwakeup |= CRYPTO_SYMQ; 1493b7e3f244SSam Leffler } 1494b7e3f244SSam Leffler return (err); 1495b7e3f244SSam Leffler } 1496b7e3f244SSam Leffler 1497b7e3f244SSam Leffler static void 1498b7e3f244SSam Leffler safe_callback(struct safe_softc *sc, struct safe_ringentry *re) 1499b7e3f244SSam Leffler { 1500b7e3f244SSam Leffler struct cryptop *crp = (struct cryptop *)re->re_crp; 1501b7e3f244SSam Leffler struct cryptodesc *crd; 1502b7e3f244SSam Leffler 1503b7e3f244SSam Leffler safestats.st_opackets++; 1504b7e3f244SSam Leffler safestats.st_obytes += re->re_dst.mapsize; 1505b7e3f244SSam Leffler 1506b7e3f244SSam Leffler safe_dma_sync(&sc->sc_ringalloc, 1507b7e3f244SSam Leffler BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE); 1508b7e3f244SSam Leffler if (re->re_desc.d_csr & SAFE_PE_CSR_STATUS) { 1509b7e3f244SSam Leffler device_printf(sc->sc_dev, "csr 0x%x cmd0 0x%x cmd1 0x%x\n", 1510b7e3f244SSam Leffler re->re_desc.d_csr, 1511b7e3f244SSam Leffler re->re_sa.sa_cmd0, re->re_sa.sa_cmd1); 1512b7e3f244SSam Leffler safestats.st_peoperr++; 1513b7e3f244SSam Leffler crp->crp_etype = EIO; /* something more meaningful? */ 1514b7e3f244SSam Leffler } 1515b7e3f244SSam Leffler if (re->re_dst_map != NULL && re->re_dst_map != re->re_src_map) { 1516b7e3f244SSam Leffler bus_dmamap_sync(sc->sc_dstdmat, re->re_dst_map, 1517b7e3f244SSam Leffler BUS_DMASYNC_POSTREAD); 1518b7e3f244SSam Leffler bus_dmamap_unload(sc->sc_dstdmat, re->re_dst_map); 1519b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_dstdmat, re->re_dst_map); 1520b7e3f244SSam Leffler } 1521b7e3f244SSam Leffler bus_dmamap_sync(sc->sc_srcdmat, re->re_src_map, BUS_DMASYNC_POSTWRITE); 1522b7e3f244SSam Leffler bus_dmamap_unload(sc->sc_srcdmat, re->re_src_map); 1523b7e3f244SSam Leffler bus_dmamap_destroy(sc->sc_srcdmat, re->re_src_map); 1524b7e3f244SSam Leffler 1525b7e3f244SSam Leffler /* 1526b7e3f244SSam Leffler * If result was written to a differet mbuf chain, swap 1527b7e3f244SSam Leffler * it in as the return value and reclaim the original. 1528b7e3f244SSam Leffler */ 1529b7e3f244SSam Leffler if ((crp->crp_flags & CRYPTO_F_IMBUF) && re->re_src_m != re->re_dst_m) { 1530b7e3f244SSam Leffler m_freem(re->re_src_m); 1531b7e3f244SSam Leffler crp->crp_buf = (caddr_t)re->re_dst_m; 1532b7e3f244SSam Leffler } 1533b7e3f244SSam Leffler 1534b7e3f244SSam Leffler if (re->re_flags & SAFE_QFLAGS_COPYOUTIV) { 1535b7e3f244SSam Leffler /* copy out IV for future use */ 1536b7e3f244SSam Leffler for (crd = crp->crp_desc; crd; crd = crd->crd_next) { 1537b7e3f244SSam Leffler int ivsize; 1538b7e3f244SSam Leffler 1539b7e3f244SSam Leffler if (crd->crd_alg == CRYPTO_DES_CBC || 1540b7e3f244SSam Leffler crd->crd_alg == CRYPTO_3DES_CBC) { 1541b7e3f244SSam Leffler ivsize = 2*sizeof(u_int32_t); 1542b7e3f244SSam Leffler } else if (crd->crd_alg == CRYPTO_AES_CBC) { 1543b7e3f244SSam Leffler ivsize = 4*sizeof(u_int32_t); 1544b7e3f244SSam Leffler } else 1545b7e3f244SSam Leffler continue; 1546f34a967bSPawel Jakub Dawidek crypto_copydata(crp->crp_flags, crp->crp_buf, 1547f34a967bSPawel Jakub Dawidek crd->crd_skip + crd->crd_len - ivsize, ivsize, 1548b7e3f244SSam Leffler (caddr_t)sc->sc_sessions[re->re_sesn].ses_iv); 1549b7e3f244SSam Leffler break; 1550b7e3f244SSam Leffler } 1551b7e3f244SSam Leffler } 1552b7e3f244SSam Leffler 1553b7e3f244SSam Leffler if (re->re_flags & SAFE_QFLAGS_COPYOUTICV) { 1554b7e3f244SSam Leffler /* copy out ICV result */ 1555b7e3f244SSam Leffler for (crd = crp->crp_desc; crd; crd = crd->crd_next) { 1556b7e3f244SSam Leffler if (!(crd->crd_alg == CRYPTO_MD5_HMAC || 1557b7e3f244SSam Leffler crd->crd_alg == CRYPTO_SHA1_HMAC || 1558b7e3f244SSam Leffler crd->crd_alg == CRYPTO_NULL_HMAC)) 1559b7e3f244SSam Leffler continue; 1560b7e3f244SSam Leffler if (crd->crd_alg == CRYPTO_SHA1_HMAC) { 1561b7e3f244SSam Leffler /* 1562b7e3f244SSam Leffler * SHA-1 ICV's are byte-swapped; fix 'em up 1563b7e3f244SSam Leffler * before copy them to their destination. 1564b7e3f244SSam Leffler */ 1565357a26abSXin LI re->re_sastate.sa_saved_indigest[0] = 1566b7e3f244SSam Leffler bswap32(re->re_sastate.sa_saved_indigest[0]); 1567357a26abSXin LI re->re_sastate.sa_saved_indigest[1] = 1568b7e3f244SSam Leffler bswap32(re->re_sastate.sa_saved_indigest[1]); 1569357a26abSXin LI re->re_sastate.sa_saved_indigest[2] = 1570b7e3f244SSam Leffler bswap32(re->re_sastate.sa_saved_indigest[2]); 1571b7e3f244SSam Leffler } 1572f34a967bSPawel Jakub Dawidek crypto_copyback(crp->crp_flags, crp->crp_buf, 1573af65c53aSPawel Jakub Dawidek crd->crd_inject, 1574af65c53aSPawel Jakub Dawidek sc->sc_sessions[re->re_sesn].ses_mlen, 1575b7e3f244SSam Leffler (caddr_t)re->re_sastate.sa_saved_indigest); 1576b7e3f244SSam Leffler break; 1577b7e3f244SSam Leffler } 1578b7e3f244SSam Leffler } 1579b7e3f244SSam Leffler crypto_done(crp); 1580b7e3f244SSam Leffler } 1581b7e3f244SSam Leffler 1582b7e3f244SSam Leffler /* 1583b7e3f244SSam Leffler * Copy all data past offset from srcm to dstm. 1584b7e3f244SSam Leffler */ 1585b7e3f244SSam Leffler static void 1586b7e3f244SSam Leffler safe_mcopy(struct mbuf *srcm, struct mbuf *dstm, u_int offset) 1587b7e3f244SSam Leffler { 1588b7e3f244SSam Leffler u_int j, dlen, slen; 1589b7e3f244SSam Leffler caddr_t dptr, sptr; 1590b7e3f244SSam Leffler 1591b7e3f244SSam Leffler /* 1592b7e3f244SSam Leffler * Advance src and dst to offset. 1593b7e3f244SSam Leffler */ 1594b7e3f244SSam Leffler j = offset; 1595b7e3f244SSam Leffler while (j >= 0) { 1596b7e3f244SSam Leffler if (srcm->m_len > j) 1597b7e3f244SSam Leffler break; 1598b7e3f244SSam Leffler j -= srcm->m_len; 1599b7e3f244SSam Leffler srcm = srcm->m_next; 1600b7e3f244SSam Leffler if (srcm == NULL) 1601b7e3f244SSam Leffler return; 1602b7e3f244SSam Leffler } 1603b7e3f244SSam Leffler sptr = mtod(srcm, caddr_t) + j; 1604b7e3f244SSam Leffler slen = srcm->m_len - j; 1605b7e3f244SSam Leffler 1606b7e3f244SSam Leffler j = offset; 1607b7e3f244SSam Leffler while (j >= 0) { 1608b7e3f244SSam Leffler if (dstm->m_len > j) 1609b7e3f244SSam Leffler break; 1610b7e3f244SSam Leffler j -= dstm->m_len; 1611b7e3f244SSam Leffler dstm = dstm->m_next; 1612b7e3f244SSam Leffler if (dstm == NULL) 1613b7e3f244SSam Leffler return; 1614b7e3f244SSam Leffler } 1615b7e3f244SSam Leffler dptr = mtod(dstm, caddr_t) + j; 1616b7e3f244SSam Leffler dlen = dstm->m_len - j; 1617b7e3f244SSam Leffler 1618b7e3f244SSam Leffler /* 1619b7e3f244SSam Leffler * Copy everything that remains. 1620b7e3f244SSam Leffler */ 1621b7e3f244SSam Leffler for (;;) { 1622b7e3f244SSam Leffler j = min(slen, dlen); 1623b7e3f244SSam Leffler bcopy(sptr, dptr, j); 1624b7e3f244SSam Leffler if (slen == j) { 1625b7e3f244SSam Leffler srcm = srcm->m_next; 1626b7e3f244SSam Leffler if (srcm == NULL) 1627b7e3f244SSam Leffler return; 1628b7e3f244SSam Leffler sptr = srcm->m_data; 1629b7e3f244SSam Leffler slen = srcm->m_len; 1630b7e3f244SSam Leffler } else 1631b7e3f244SSam Leffler sptr += j, slen -= j; 1632b7e3f244SSam Leffler if (dlen == j) { 1633b7e3f244SSam Leffler dstm = dstm->m_next; 1634b7e3f244SSam Leffler if (dstm == NULL) 1635b7e3f244SSam Leffler return; 1636b7e3f244SSam Leffler dptr = dstm->m_data; 1637b7e3f244SSam Leffler dlen = dstm->m_len; 1638b7e3f244SSam Leffler } else 1639b7e3f244SSam Leffler dptr += j, dlen -= j; 1640b7e3f244SSam Leffler } 1641b7e3f244SSam Leffler } 1642b7e3f244SSam Leffler 1643b7e3f244SSam Leffler #ifndef SAFE_NO_RNG 1644b7e3f244SSam Leffler #define SAFE_RNG_MAXWAIT 1000 1645b7e3f244SSam Leffler 1646b7e3f244SSam Leffler static void 1647b7e3f244SSam Leffler safe_rng_init(struct safe_softc *sc) 1648b7e3f244SSam Leffler { 1649b7e3f244SSam Leffler u_int32_t w, v; 1650b7e3f244SSam Leffler int i; 1651b7e3f244SSam Leffler 1652b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_CTRL, 0); 1653b7e3f244SSam Leffler /* use default value according to the manual */ 1654b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_CNFG, 0x834); /* magic from SafeNet */ 1655b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_ALM_CNT, 0); 1656b7e3f244SSam Leffler 1657b7e3f244SSam Leffler /* 1658b7e3f244SSam Leffler * There is a bug in rev 1.0 of the 1140 that when the RNG 1659b7e3f244SSam Leffler * is brought out of reset the ready status flag does not 1660b7e3f244SSam Leffler * work until the RNG has finished its internal initialization. 1661b7e3f244SSam Leffler * 1662b7e3f244SSam Leffler * So in order to determine the device is through its 1663b7e3f244SSam Leffler * initialization we must read the data register, using the 1664b7e3f244SSam Leffler * status reg in the read in case it is initialized. Then read 1665b7e3f244SSam Leffler * the data register until it changes from the first read. 1666b7e3f244SSam Leffler * Once it changes read the data register until it changes 1667b7e3f244SSam Leffler * again. At this time the RNG is considered initialized. 1668b7e3f244SSam Leffler * This could take between 750ms - 1000ms in time. 1669b7e3f244SSam Leffler */ 1670b7e3f244SSam Leffler i = 0; 1671b7e3f244SSam Leffler w = READ_REG(sc, SAFE_RNG_OUT); 1672b7e3f244SSam Leffler do { 1673b7e3f244SSam Leffler v = READ_REG(sc, SAFE_RNG_OUT); 1674b7e3f244SSam Leffler if (v != w) { 1675b7e3f244SSam Leffler w = v; 1676b7e3f244SSam Leffler break; 1677b7e3f244SSam Leffler } 1678b7e3f244SSam Leffler DELAY(10); 1679b7e3f244SSam Leffler } while (++i < SAFE_RNG_MAXWAIT); 1680b7e3f244SSam Leffler 1681b7e3f244SSam Leffler /* Wait Until data changes again */ 1682b7e3f244SSam Leffler i = 0; 1683b7e3f244SSam Leffler do { 1684b7e3f244SSam Leffler v = READ_REG(sc, SAFE_RNG_OUT); 1685b7e3f244SSam Leffler if (v != w) 1686b7e3f244SSam Leffler break; 1687b7e3f244SSam Leffler DELAY(10); 1688b7e3f244SSam Leffler } while (++i < SAFE_RNG_MAXWAIT); 1689b7e3f244SSam Leffler } 1690b7e3f244SSam Leffler 1691b7e3f244SSam Leffler static __inline void 1692b7e3f244SSam Leffler safe_rng_disable_short_cycle(struct safe_softc *sc) 1693b7e3f244SSam Leffler { 1694b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_CTRL, 1695b7e3f244SSam Leffler READ_REG(sc, SAFE_RNG_CTRL) &~ SAFE_RNG_CTRL_SHORTEN); 1696b7e3f244SSam Leffler } 1697b7e3f244SSam Leffler 1698b7e3f244SSam Leffler static __inline void 1699b7e3f244SSam Leffler safe_rng_enable_short_cycle(struct safe_softc *sc) 1700b7e3f244SSam Leffler { 1701b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_CTRL, 1702b7e3f244SSam Leffler READ_REG(sc, SAFE_RNG_CTRL) | SAFE_RNG_CTRL_SHORTEN); 1703b7e3f244SSam Leffler } 1704b7e3f244SSam Leffler 1705b7e3f244SSam Leffler static __inline u_int32_t 1706b7e3f244SSam Leffler safe_rng_read(struct safe_softc *sc) 1707b7e3f244SSam Leffler { 1708b7e3f244SSam Leffler int i; 1709b7e3f244SSam Leffler 1710b7e3f244SSam Leffler i = 0; 1711b7e3f244SSam Leffler while (READ_REG(sc, SAFE_RNG_STAT) != 0 && ++i < SAFE_RNG_MAXWAIT) 1712b7e3f244SSam Leffler ; 1713b7e3f244SSam Leffler return READ_REG(sc, SAFE_RNG_OUT); 1714b7e3f244SSam Leffler } 1715b7e3f244SSam Leffler 1716b7e3f244SSam Leffler static void 1717b7e3f244SSam Leffler safe_rng(void *arg) 1718b7e3f244SSam Leffler { 1719b7e3f244SSam Leffler struct safe_softc *sc = arg; 1720b7e3f244SSam Leffler u_int32_t buf[SAFE_RNG_MAXBUFSIZ]; /* NB: maybe move to softc */ 1721b7e3f244SSam Leffler u_int maxwords; 1722b7e3f244SSam Leffler int i; 1723b7e3f244SSam Leffler 1724b7e3f244SSam Leffler safestats.st_rng++; 1725b7e3f244SSam Leffler /* 1726b7e3f244SSam Leffler * Fetch the next block of data. 1727b7e3f244SSam Leffler */ 1728b7e3f244SSam Leffler maxwords = safe_rngbufsize; 1729b7e3f244SSam Leffler if (maxwords > SAFE_RNG_MAXBUFSIZ) 1730b7e3f244SSam Leffler maxwords = SAFE_RNG_MAXBUFSIZ; 1731b7e3f244SSam Leffler retry: 1732b7e3f244SSam Leffler for (i = 0; i < maxwords; i++) 1733b7e3f244SSam Leffler buf[i] = safe_rng_read(sc); 1734b7e3f244SSam Leffler /* 1735b7e3f244SSam Leffler * Check the comparator alarm count and reset the h/w if 1736b7e3f244SSam Leffler * it exceeds our threshold. This guards against the 1737b7e3f244SSam Leffler * hardware oscillators resonating with external signals. 1738b7e3f244SSam Leffler */ 1739b7e3f244SSam Leffler if (READ_REG(sc, SAFE_RNG_ALM_CNT) > safe_rngmaxalarm) { 1740b7e3f244SSam Leffler u_int32_t freq_inc, w; 1741b7e3f244SSam Leffler 1742b7e3f244SSam Leffler DPRINTF(("%s: alarm count %u exceeds threshold %u\n", __func__, 1743b7e3f244SSam Leffler READ_REG(sc, SAFE_RNG_ALM_CNT), safe_rngmaxalarm)); 1744b7e3f244SSam Leffler safestats.st_rngalarm++; 1745b7e3f244SSam Leffler safe_rng_enable_short_cycle(sc); 1746b7e3f244SSam Leffler freq_inc = 18; 1747b7e3f244SSam Leffler for (i = 0; i < 64; i++) { 1748b7e3f244SSam Leffler w = READ_REG(sc, SAFE_RNG_CNFG); 1749b7e3f244SSam Leffler freq_inc = ((w + freq_inc) & 0x3fL); 1750b7e3f244SSam Leffler w = ((w & ~0x3fL) | freq_inc); 1751b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_CNFG, w); 1752b7e3f244SSam Leffler 1753b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_ALM_CNT, 0); 1754b7e3f244SSam Leffler 1755b7e3f244SSam Leffler (void) safe_rng_read(sc); 1756b7e3f244SSam Leffler DELAY(25); 1757b7e3f244SSam Leffler 1758b7e3f244SSam Leffler if (READ_REG(sc, SAFE_RNG_ALM_CNT) == 0) { 1759b7e3f244SSam Leffler safe_rng_disable_short_cycle(sc); 1760b7e3f244SSam Leffler goto retry; 1761b7e3f244SSam Leffler } 1762b7e3f244SSam Leffler freq_inc = 1; 1763b7e3f244SSam Leffler } 1764b7e3f244SSam Leffler safe_rng_disable_short_cycle(sc); 1765b7e3f244SSam Leffler } else 1766b7e3f244SSam Leffler WRITE_REG(sc, SAFE_RNG_ALM_CNT, 0); 1767b7e3f244SSam Leffler 1768b7e3f244SSam Leffler (*sc->sc_harvest)(sc->sc_rndtest, buf, maxwords*sizeof (u_int32_t)); 1769b7e3f244SSam Leffler callout_reset(&sc->sc_rngto, 1770b7e3f244SSam Leffler hz * (safe_rnginterval ? safe_rnginterval : 1), safe_rng, sc); 1771b7e3f244SSam Leffler } 1772b7e3f244SSam Leffler #endif /* SAFE_NO_RNG */ 1773b7e3f244SSam Leffler 1774b7e3f244SSam Leffler static void 1775b7e3f244SSam Leffler safe_dmamap_cb(void *arg, bus_dma_segment_t *segs, int nseg, int error) 1776b7e3f244SSam Leffler { 1777b7e3f244SSam Leffler bus_addr_t *paddr = (bus_addr_t*) arg; 1778b7e3f244SSam Leffler *paddr = segs->ds_addr; 1779b7e3f244SSam Leffler } 1780b7e3f244SSam Leffler 1781b7e3f244SSam Leffler static int 1782b7e3f244SSam Leffler safe_dma_malloc( 1783b7e3f244SSam Leffler struct safe_softc *sc, 1784b7e3f244SSam Leffler bus_size_t size, 1785b7e3f244SSam Leffler struct safe_dma_alloc *dma, 1786b7e3f244SSam Leffler int mapflags 1787b7e3f244SSam Leffler ) 1788b7e3f244SSam Leffler { 1789b7e3f244SSam Leffler int r; 1790b7e3f244SSam Leffler 179162ce43ccSScott Long r = bus_dma_tag_create(bus_get_dma_tag(sc->sc_dev), /* parent */ 1792b7e3f244SSam Leffler sizeof(u_int32_t), 0, /* alignment, bounds */ 1793b7e3f244SSam Leffler BUS_SPACE_MAXADDR_32BIT, /* lowaddr */ 1794b7e3f244SSam Leffler BUS_SPACE_MAXADDR, /* highaddr */ 1795b7e3f244SSam Leffler NULL, NULL, /* filter, filterarg */ 1796b7e3f244SSam Leffler size, /* maxsize */ 1797b7e3f244SSam Leffler 1, /* nsegments */ 1798b7e3f244SSam Leffler size, /* maxsegsize */ 1799b7e3f244SSam Leffler BUS_DMA_ALLOCNOW, /* flags */ 1800b7e3f244SSam Leffler NULL, NULL, /* locking */ 1801b7e3f244SSam Leffler &dma->dma_tag); 1802b7e3f244SSam Leffler if (r != 0) { 1803b7e3f244SSam Leffler device_printf(sc->sc_dev, "safe_dma_malloc: " 1804b7e3f244SSam Leffler "bus_dma_tag_create failed; error %u\n", r); 1805b7e3f244SSam Leffler goto fail_0; 1806b7e3f244SSam Leffler } 1807b7e3f244SSam Leffler 1808b7e3f244SSam Leffler r = bus_dmamem_alloc(dma->dma_tag, (void**) &dma->dma_vaddr, 1809b7e3f244SSam Leffler BUS_DMA_NOWAIT, &dma->dma_map); 1810b7e3f244SSam Leffler if (r != 0) { 1811b7e3f244SSam Leffler device_printf(sc->sc_dev, "safe_dma_malloc: " 1812d14c4346SJohn-Mark Gurney "bus_dmammem_alloc failed; size %ju, error %u\n", 1813d14c4346SJohn-Mark Gurney (uintmax_t)size, r); 1814f07894dbSJohn Baldwin goto fail_1; 1815b7e3f244SSam Leffler } 1816b7e3f244SSam Leffler 1817b7e3f244SSam Leffler r = bus_dmamap_load(dma->dma_tag, dma->dma_map, dma->dma_vaddr, 1818b7e3f244SSam Leffler size, 1819b7e3f244SSam Leffler safe_dmamap_cb, 1820b7e3f244SSam Leffler &dma->dma_paddr, 1821b7e3f244SSam Leffler mapflags | BUS_DMA_NOWAIT); 1822b7e3f244SSam Leffler if (r != 0) { 1823b7e3f244SSam Leffler device_printf(sc->sc_dev, "safe_dma_malloc: " 1824b7e3f244SSam Leffler "bus_dmamap_load failed; error %u\n", r); 1825f07894dbSJohn Baldwin goto fail_2; 1826b7e3f244SSam Leffler } 1827b7e3f244SSam Leffler 1828b7e3f244SSam Leffler dma->dma_size = size; 1829b7e3f244SSam Leffler return (0); 1830b7e3f244SSam Leffler 1831b7e3f244SSam Leffler bus_dmamap_unload(dma->dma_tag, dma->dma_map); 1832b7e3f244SSam Leffler fail_2: 1833b7e3f244SSam Leffler bus_dmamem_free(dma->dma_tag, dma->dma_vaddr, dma->dma_map); 1834b7e3f244SSam Leffler fail_1: 1835b7e3f244SSam Leffler bus_dma_tag_destroy(dma->dma_tag); 1836b7e3f244SSam Leffler fail_0: 1837b7e3f244SSam Leffler dma->dma_tag = NULL; 1838b7e3f244SSam Leffler return (r); 1839b7e3f244SSam Leffler } 1840b7e3f244SSam Leffler 1841b7e3f244SSam Leffler static void 1842b7e3f244SSam Leffler safe_dma_free(struct safe_softc *sc, struct safe_dma_alloc *dma) 1843b7e3f244SSam Leffler { 1844b7e3f244SSam Leffler bus_dmamap_unload(dma->dma_tag, dma->dma_map); 1845b7e3f244SSam Leffler bus_dmamem_free(dma->dma_tag, dma->dma_vaddr, dma->dma_map); 1846b7e3f244SSam Leffler bus_dma_tag_destroy(dma->dma_tag); 1847b7e3f244SSam Leffler } 1848b7e3f244SSam Leffler 1849b7e3f244SSam Leffler /* 1850b7e3f244SSam Leffler * Resets the board. Values in the regesters are left as is 1851b7e3f244SSam Leffler * from the reset (i.e. initial values are assigned elsewhere). 1852b7e3f244SSam Leffler */ 1853b7e3f244SSam Leffler static void 1854b7e3f244SSam Leffler safe_reset_board(struct safe_softc *sc) 1855b7e3f244SSam Leffler { 1856b7e3f244SSam Leffler u_int32_t v; 1857b7e3f244SSam Leffler /* 1858b7e3f244SSam Leffler * Reset the device. The manual says no delay 1859b7e3f244SSam Leffler * is needed between marking and clearing reset. 1860b7e3f244SSam Leffler */ 1861b7e3f244SSam Leffler v = READ_REG(sc, SAFE_PE_DMACFG) &~ 1862b7e3f244SSam Leffler (SAFE_PE_DMACFG_PERESET | SAFE_PE_DMACFG_PDRRESET | 1863b7e3f244SSam Leffler SAFE_PE_DMACFG_SGRESET); 1864b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_DMACFG, v 1865b7e3f244SSam Leffler | SAFE_PE_DMACFG_PERESET 1866b7e3f244SSam Leffler | SAFE_PE_DMACFG_PDRRESET 1867b7e3f244SSam Leffler | SAFE_PE_DMACFG_SGRESET); 1868b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_DMACFG, v); 1869b7e3f244SSam Leffler } 1870b7e3f244SSam Leffler 1871b7e3f244SSam Leffler /* 1872b7e3f244SSam Leffler * Initialize registers we need to touch only once. 1873b7e3f244SSam Leffler */ 1874b7e3f244SSam Leffler static void 1875b7e3f244SSam Leffler safe_init_board(struct safe_softc *sc) 1876b7e3f244SSam Leffler { 1877b7e3f244SSam Leffler u_int32_t v, dwords; 1878b7e3f244SSam Leffler 1879c2ede4b3SMartin Blapp v = READ_REG(sc, SAFE_PE_DMACFG); 1880b7e3f244SSam Leffler v &=~ SAFE_PE_DMACFG_PEMODE; 1881b7e3f244SSam Leffler v |= SAFE_PE_DMACFG_FSENA /* failsafe enable */ 1882b7e3f244SSam Leffler | SAFE_PE_DMACFG_GPRPCI /* gather ring on PCI */ 1883b7e3f244SSam Leffler | SAFE_PE_DMACFG_SPRPCI /* scatter ring on PCI */ 1884b7e3f244SSam Leffler | SAFE_PE_DMACFG_ESDESC /* endian-swap descriptors */ 1885b7e3f244SSam Leffler | SAFE_PE_DMACFG_ESSA /* endian-swap SA's */ 1886b7e3f244SSam Leffler | SAFE_PE_DMACFG_ESPDESC /* endian-swap part. desc's */ 1887b7e3f244SSam Leffler ; 1888b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_DMACFG, v); 1889b7e3f244SSam Leffler #if 0 1890b7e3f244SSam Leffler /* XXX select byte swap based on host byte order */ 1891b7e3f244SSam Leffler WRITE_REG(sc, SAFE_ENDIAN, 0x1b); 1892b7e3f244SSam Leffler #endif 1893b7e3f244SSam Leffler if (sc->sc_chiprev == SAFE_REV(1,0)) { 1894b7e3f244SSam Leffler /* 1895b7e3f244SSam Leffler * Avoid large PCI DMA transfers. Rev 1.0 has a bug where 1896b7e3f244SSam Leffler * "target mode transfers" done while the chip is DMA'ing 1897b7e3f244SSam Leffler * >1020 bytes cause the hardware to lockup. To avoid this 1898b7e3f244SSam Leffler * we reduce the max PCI transfer size and use small source 1899b7e3f244SSam Leffler * particle descriptors (<= 256 bytes). 1900b7e3f244SSam Leffler */ 1901b7e3f244SSam Leffler WRITE_REG(sc, SAFE_DMA_CFG, 256); 1902b7e3f244SSam Leffler device_printf(sc->sc_dev, 1903b7e3f244SSam Leffler "Reduce max DMA size to %u words for rev %u.%u WAR\n", 1904b7e3f244SSam Leffler (READ_REG(sc, SAFE_DMA_CFG)>>2) & 0xff, 1905b7e3f244SSam Leffler SAFE_REV_MAJ(sc->sc_chiprev), 1906b7e3f244SSam Leffler SAFE_REV_MIN(sc->sc_chiprev)); 1907b7e3f244SSam Leffler } 1908b7e3f244SSam Leffler 1909b7e3f244SSam Leffler /* NB: operands+results are overlaid */ 1910b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_PDRBASE, sc->sc_ringalloc.dma_paddr); 1911b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_RDRBASE, sc->sc_ringalloc.dma_paddr); 1912b7e3f244SSam Leffler /* 1913b7e3f244SSam Leffler * Configure ring entry size and number of items in the ring. 1914b7e3f244SSam Leffler */ 1915b7e3f244SSam Leffler KASSERT((sizeof(struct safe_ringentry) % sizeof(u_int32_t)) == 0, 1916b7e3f244SSam Leffler ("PE ring entry not 32-bit aligned!")); 1917b7e3f244SSam Leffler dwords = sizeof(struct safe_ringentry) / sizeof(u_int32_t); 1918b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_RINGCFG, 1919b7e3f244SSam Leffler (dwords << SAFE_PE_RINGCFG_OFFSET_S) | SAFE_MAX_NQUEUE); 1920b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_RINGPOLL, 0); /* disable polling */ 1921b7e3f244SSam Leffler 1922b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_GRNGBASE, sc->sc_spalloc.dma_paddr); 1923b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_SRNGBASE, sc->sc_dpalloc.dma_paddr); 1924b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_PARTSIZE, 1925b7e3f244SSam Leffler (SAFE_TOTAL_DPART<<16) | SAFE_TOTAL_SPART); 1926b7e3f244SSam Leffler /* 1927b7e3f244SSam Leffler * NB: destination particles are fixed size. We use 1928b7e3f244SSam Leffler * an mbuf cluster and require all results go to 1929b7e3f244SSam Leffler * clusters or smaller. 1930b7e3f244SSam Leffler */ 1931b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_PARTCFG, SAFE_MAX_DSIZE); 1932b7e3f244SSam Leffler 1933b7e3f244SSam Leffler /* it's now safe to enable PE mode, do it */ 1934b7e3f244SSam Leffler WRITE_REG(sc, SAFE_PE_DMACFG, v | SAFE_PE_DMACFG_PEMODE); 1935b7e3f244SSam Leffler 1936b7e3f244SSam Leffler /* 1937b7e3f244SSam Leffler * Configure hardware to use level-triggered interrupts and 1938b7e3f244SSam Leffler * to interrupt after each descriptor is processed. 1939b7e3f244SSam Leffler */ 1940b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_CFG, SAFE_HI_CFG_LEVEL); 1941b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_DESC_CNT, 1); 1942b7e3f244SSam Leffler WRITE_REG(sc, SAFE_HI_MASK, SAFE_INT_PE_DDONE | SAFE_INT_PE_ERROR); 1943b7e3f244SSam Leffler } 1944b7e3f244SSam Leffler 1945b7e3f244SSam Leffler /* 1946b7e3f244SSam Leffler * Init PCI registers 1947b7e3f244SSam Leffler */ 1948b7e3f244SSam Leffler static void 1949b7e3f244SSam Leffler safe_init_pciregs(device_t dev) 1950b7e3f244SSam Leffler { 1951b7e3f244SSam Leffler } 1952b7e3f244SSam Leffler 1953b7e3f244SSam Leffler /* 1954b7e3f244SSam Leffler * Clean up after a chip crash. 1955b7e3f244SSam Leffler * It is assumed that the caller in splimp() 1956b7e3f244SSam Leffler */ 1957b7e3f244SSam Leffler static void 1958b7e3f244SSam Leffler safe_cleanchip(struct safe_softc *sc) 1959b7e3f244SSam Leffler { 1960b7e3f244SSam Leffler 1961b7e3f244SSam Leffler if (sc->sc_nqchip != 0) { 1962b7e3f244SSam Leffler struct safe_ringentry *re = sc->sc_back; 1963b7e3f244SSam Leffler 1964b7e3f244SSam Leffler while (re != sc->sc_front) { 1965b7e3f244SSam Leffler if (re->re_desc.d_csr != 0) 1966b7e3f244SSam Leffler safe_free_entry(sc, re); 1967b7e3f244SSam Leffler if (++re == sc->sc_ringtop) 1968b7e3f244SSam Leffler re = sc->sc_ring; 1969b7e3f244SSam Leffler } 1970b7e3f244SSam Leffler sc->sc_back = re; 1971b7e3f244SSam Leffler sc->sc_nqchip = 0; 1972b7e3f244SSam Leffler } 1973b7e3f244SSam Leffler } 1974b7e3f244SSam Leffler 1975b7e3f244SSam Leffler /* 1976b7e3f244SSam Leffler * free a safe_q 1977b7e3f244SSam Leffler * It is assumed that the caller is within splimp(). 1978b7e3f244SSam Leffler */ 1979b7e3f244SSam Leffler static int 1980b7e3f244SSam Leffler safe_free_entry(struct safe_softc *sc, struct safe_ringentry *re) 1981b7e3f244SSam Leffler { 1982b7e3f244SSam Leffler struct cryptop *crp; 1983b7e3f244SSam Leffler 1984b7e3f244SSam Leffler /* 1985b7e3f244SSam Leffler * Free header MCR 1986b7e3f244SSam Leffler */ 1987b7e3f244SSam Leffler if ((re->re_dst_m != NULL) && (re->re_src_m != re->re_dst_m)) 1988b7e3f244SSam Leffler m_freem(re->re_dst_m); 1989b7e3f244SSam Leffler 1990b7e3f244SSam Leffler crp = (struct cryptop *)re->re_crp; 1991b7e3f244SSam Leffler 1992b7e3f244SSam Leffler re->re_desc.d_csr = 0; 1993b7e3f244SSam Leffler 1994b7e3f244SSam Leffler crp->crp_etype = EFAULT; 1995b7e3f244SSam Leffler crypto_done(crp); 1996b7e3f244SSam Leffler return(0); 1997b7e3f244SSam Leffler } 1998b7e3f244SSam Leffler 1999b7e3f244SSam Leffler /* 2000b7e3f244SSam Leffler * Routine to reset the chip and clean up. 2001b7e3f244SSam Leffler * It is assumed that the caller is in splimp() 2002b7e3f244SSam Leffler */ 2003b7e3f244SSam Leffler static void 2004b7e3f244SSam Leffler safe_totalreset(struct safe_softc *sc) 2005b7e3f244SSam Leffler { 2006b7e3f244SSam Leffler safe_reset_board(sc); 2007b7e3f244SSam Leffler safe_init_board(sc); 2008b7e3f244SSam Leffler safe_cleanchip(sc); 2009b7e3f244SSam Leffler } 2010b7e3f244SSam Leffler 2011b7e3f244SSam Leffler /* 2012b7e3f244SSam Leffler * Is the operand suitable aligned for direct DMA. Each 2013b7e3f244SSam Leffler * segment must be aligned on a 32-bit boundary and all 2014b7e3f244SSam Leffler * but the last segment must be a multiple of 4 bytes. 2015b7e3f244SSam Leffler */ 2016b7e3f244SSam Leffler static int 2017b7e3f244SSam Leffler safe_dmamap_aligned(const struct safe_operand *op) 2018b7e3f244SSam Leffler { 2019b7e3f244SSam Leffler int i; 2020b7e3f244SSam Leffler 2021b7e3f244SSam Leffler for (i = 0; i < op->nsegs; i++) { 2022b7e3f244SSam Leffler if (op->segs[i].ds_addr & 3) 2023b7e3f244SSam Leffler return (0); 2024b7e3f244SSam Leffler if (i != (op->nsegs - 1) && (op->segs[i].ds_len & 3)) 2025b7e3f244SSam Leffler return (0); 2026b7e3f244SSam Leffler } 2027b7e3f244SSam Leffler return (1); 2028b7e3f244SSam Leffler } 2029b7e3f244SSam Leffler 2030b7e3f244SSam Leffler /* 2031b7e3f244SSam Leffler * Is the operand suitable for direct DMA as the destination 2032b7e3f244SSam Leffler * of an operation. The hardware requires that each ``particle'' 2033b7e3f244SSam Leffler * but the last in an operation result have the same size. We 2034b7e3f244SSam Leffler * fix that size at SAFE_MAX_DSIZE bytes. This routine returns 2035b7e3f244SSam Leffler * 0 if some segment is not a multiple of of this size, 1 if all 2036b7e3f244SSam Leffler * segments are exactly this size, or 2 if segments are at worst 2037b7e3f244SSam Leffler * a multple of this size. 2038b7e3f244SSam Leffler */ 2039b7e3f244SSam Leffler static int 2040b7e3f244SSam Leffler safe_dmamap_uniform(const struct safe_operand *op) 2041b7e3f244SSam Leffler { 2042b7e3f244SSam Leffler int result = 1; 2043b7e3f244SSam Leffler 2044b7e3f244SSam Leffler if (op->nsegs > 0) { 2045b7e3f244SSam Leffler int i; 2046b7e3f244SSam Leffler 2047900017e8SSam Leffler for (i = 0; i < op->nsegs-1; i++) { 2048b7e3f244SSam Leffler if (op->segs[i].ds_len % SAFE_MAX_DSIZE) 2049b7e3f244SSam Leffler return (0); 2050b7e3f244SSam Leffler if (op->segs[i].ds_len != SAFE_MAX_DSIZE) 2051b7e3f244SSam Leffler result = 2; 2052b7e3f244SSam Leffler } 2053900017e8SSam Leffler } 2054b7e3f244SSam Leffler return (result); 2055b7e3f244SSam Leffler } 2056b7e3f244SSam Leffler 2057b7e3f244SSam Leffler #ifdef SAFE_DEBUG 2058b7e3f244SSam Leffler static void 2059b7e3f244SSam Leffler safe_dump_dmastatus(struct safe_softc *sc, const char *tag) 2060b7e3f244SSam Leffler { 2061b7e3f244SSam Leffler printf("%s: ENDIAN 0x%x SRC 0x%x DST 0x%x STAT 0x%x\n" 2062b7e3f244SSam Leffler , tag 2063b7e3f244SSam Leffler , READ_REG(sc, SAFE_DMA_ENDIAN) 2064b7e3f244SSam Leffler , READ_REG(sc, SAFE_DMA_SRCADDR) 2065b7e3f244SSam Leffler , READ_REG(sc, SAFE_DMA_DSTADDR) 2066b7e3f244SSam Leffler , READ_REG(sc, SAFE_DMA_STAT) 2067b7e3f244SSam Leffler ); 2068b7e3f244SSam Leffler } 2069b7e3f244SSam Leffler 2070b7e3f244SSam Leffler static void 2071b7e3f244SSam Leffler safe_dump_intrstate(struct safe_softc *sc, const char *tag) 2072b7e3f244SSam Leffler { 2073b7e3f244SSam Leffler printf("%s: HI_CFG 0x%x HI_MASK 0x%x HI_DESC_CNT 0x%x HU_STAT 0x%x HM_STAT 0x%x\n" 2074b7e3f244SSam Leffler , tag 2075b7e3f244SSam Leffler , READ_REG(sc, SAFE_HI_CFG) 2076b7e3f244SSam Leffler , READ_REG(sc, SAFE_HI_MASK) 2077b7e3f244SSam Leffler , READ_REG(sc, SAFE_HI_DESC_CNT) 2078b7e3f244SSam Leffler , READ_REG(sc, SAFE_HU_STAT) 2079b7e3f244SSam Leffler , READ_REG(sc, SAFE_HM_STAT) 2080b7e3f244SSam Leffler ); 2081b7e3f244SSam Leffler } 2082b7e3f244SSam Leffler 2083b7e3f244SSam Leffler static void 2084b7e3f244SSam Leffler safe_dump_ringstate(struct safe_softc *sc, const char *tag) 2085b7e3f244SSam Leffler { 2086b7e3f244SSam Leffler u_int32_t estat = READ_REG(sc, SAFE_PE_ERNGSTAT); 2087b7e3f244SSam Leffler 2088b7e3f244SSam Leffler /* NB: assume caller has lock on ring */ 2089668329e9SPeter Wemm printf("%s: ERNGSTAT %x (next %u) back %lu front %lu\n", 2090b7e3f244SSam Leffler tag, 2091b7e3f244SSam Leffler estat, (estat >> SAFE_PE_ERNGSTAT_NEXT_S), 2092668329e9SPeter Wemm (unsigned long)(sc->sc_back - sc->sc_ring), 2093668329e9SPeter Wemm (unsigned long)(sc->sc_front - sc->sc_ring)); 2094b7e3f244SSam Leffler } 2095b7e3f244SSam Leffler 2096b7e3f244SSam Leffler static void 2097b7e3f244SSam Leffler safe_dump_request(struct safe_softc *sc, const char* tag, struct safe_ringentry *re) 2098b7e3f244SSam Leffler { 2099b7e3f244SSam Leffler int ix, nsegs; 2100b7e3f244SSam Leffler 2101b7e3f244SSam Leffler ix = re - sc->sc_ring; 2102b7e3f244SSam Leffler printf("%s: %p (%u): csr %x src %x dst %x sa %x len %x\n" 2103b7e3f244SSam Leffler , tag 2104b7e3f244SSam Leffler , re, ix 2105b7e3f244SSam Leffler , re->re_desc.d_csr 2106b7e3f244SSam Leffler , re->re_desc.d_src 2107b7e3f244SSam Leffler , re->re_desc.d_dst 2108b7e3f244SSam Leffler , re->re_desc.d_sa 2109b7e3f244SSam Leffler , re->re_desc.d_len 2110b7e3f244SSam Leffler ); 2111b7e3f244SSam Leffler if (re->re_src.nsegs > 1) { 2112b7e3f244SSam Leffler ix = (re->re_desc.d_src - sc->sc_spalloc.dma_paddr) / 2113b7e3f244SSam Leffler sizeof(struct safe_pdesc); 2114b7e3f244SSam Leffler for (nsegs = re->re_src.nsegs; nsegs; nsegs--) { 2115b7e3f244SSam Leffler printf(" spd[%u] %p: %p size %u flags %x" 2116b7e3f244SSam Leffler , ix, &sc->sc_spring[ix] 2117668329e9SPeter Wemm , (caddr_t)(uintptr_t) sc->sc_spring[ix].pd_addr 2118b7e3f244SSam Leffler , sc->sc_spring[ix].pd_size 2119b7e3f244SSam Leffler , sc->sc_spring[ix].pd_flags 2120b7e3f244SSam Leffler ); 2121b7e3f244SSam Leffler if (sc->sc_spring[ix].pd_size == 0) 2122b7e3f244SSam Leffler printf(" (zero!)"); 2123b7e3f244SSam Leffler printf("\n"); 2124b7e3f244SSam Leffler if (++ix == SAFE_TOTAL_SPART) 2125b7e3f244SSam Leffler ix = 0; 2126b7e3f244SSam Leffler } 2127b7e3f244SSam Leffler } 2128b7e3f244SSam Leffler if (re->re_dst.nsegs > 1) { 2129b7e3f244SSam Leffler ix = (re->re_desc.d_dst - sc->sc_dpalloc.dma_paddr) / 2130b7e3f244SSam Leffler sizeof(struct safe_pdesc); 2131b7e3f244SSam Leffler for (nsegs = re->re_dst.nsegs; nsegs; nsegs--) { 2132b7e3f244SSam Leffler printf(" dpd[%u] %p: %p flags %x\n" 2133b7e3f244SSam Leffler , ix, &sc->sc_dpring[ix] 2134668329e9SPeter Wemm , (caddr_t)(uintptr_t) sc->sc_dpring[ix].pd_addr 2135b7e3f244SSam Leffler , sc->sc_dpring[ix].pd_flags 2136b7e3f244SSam Leffler ); 2137b7e3f244SSam Leffler if (++ix == SAFE_TOTAL_DPART) 2138b7e3f244SSam Leffler ix = 0; 2139b7e3f244SSam Leffler } 2140b7e3f244SSam Leffler } 2141b7e3f244SSam Leffler printf("sa: cmd0 %08x cmd1 %08x staterec %x\n", 2142b7e3f244SSam Leffler re->re_sa.sa_cmd0, re->re_sa.sa_cmd1, re->re_sa.sa_staterec); 2143b7e3f244SSam Leffler printf("sa: key %x %x %x %x %x %x %x %x\n" 2144b7e3f244SSam Leffler , re->re_sa.sa_key[0] 2145b7e3f244SSam Leffler , re->re_sa.sa_key[1] 2146b7e3f244SSam Leffler , re->re_sa.sa_key[2] 2147b7e3f244SSam Leffler , re->re_sa.sa_key[3] 2148b7e3f244SSam Leffler , re->re_sa.sa_key[4] 2149b7e3f244SSam Leffler , re->re_sa.sa_key[5] 2150b7e3f244SSam Leffler , re->re_sa.sa_key[6] 2151b7e3f244SSam Leffler , re->re_sa.sa_key[7] 2152b7e3f244SSam Leffler ); 2153b7e3f244SSam Leffler printf("sa: indigest %x %x %x %x %x\n" 2154b7e3f244SSam Leffler , re->re_sa.sa_indigest[0] 2155b7e3f244SSam Leffler , re->re_sa.sa_indigest[1] 2156b7e3f244SSam Leffler , re->re_sa.sa_indigest[2] 2157b7e3f244SSam Leffler , re->re_sa.sa_indigest[3] 2158b7e3f244SSam Leffler , re->re_sa.sa_indigest[4] 2159b7e3f244SSam Leffler ); 2160b7e3f244SSam Leffler printf("sa: outdigest %x %x %x %x %x\n" 2161b7e3f244SSam Leffler , re->re_sa.sa_outdigest[0] 2162b7e3f244SSam Leffler , re->re_sa.sa_outdigest[1] 2163b7e3f244SSam Leffler , re->re_sa.sa_outdigest[2] 2164b7e3f244SSam Leffler , re->re_sa.sa_outdigest[3] 2165b7e3f244SSam Leffler , re->re_sa.sa_outdigest[4] 2166b7e3f244SSam Leffler ); 2167b7e3f244SSam Leffler printf("sr: iv %x %x %x %x\n" 2168b7e3f244SSam Leffler , re->re_sastate.sa_saved_iv[0] 2169b7e3f244SSam Leffler , re->re_sastate.sa_saved_iv[1] 2170b7e3f244SSam Leffler , re->re_sastate.sa_saved_iv[2] 2171b7e3f244SSam Leffler , re->re_sastate.sa_saved_iv[3] 2172b7e3f244SSam Leffler ); 2173b7e3f244SSam Leffler printf("sr: hashbc %u indigest %x %x %x %x %x\n" 2174b7e3f244SSam Leffler , re->re_sastate.sa_saved_hashbc 2175b7e3f244SSam Leffler , re->re_sastate.sa_saved_indigest[0] 2176b7e3f244SSam Leffler , re->re_sastate.sa_saved_indigest[1] 2177b7e3f244SSam Leffler , re->re_sastate.sa_saved_indigest[2] 2178b7e3f244SSam Leffler , re->re_sastate.sa_saved_indigest[3] 2179b7e3f244SSam Leffler , re->re_sastate.sa_saved_indigest[4] 2180b7e3f244SSam Leffler ); 2181b7e3f244SSam Leffler } 2182b7e3f244SSam Leffler 2183b7e3f244SSam Leffler static void 2184b7e3f244SSam Leffler safe_dump_ring(struct safe_softc *sc, const char *tag) 2185b7e3f244SSam Leffler { 2186b7e3f244SSam Leffler mtx_lock(&sc->sc_ringmtx); 2187b7e3f244SSam Leffler printf("\nSafeNet Ring State:\n"); 2188b7e3f244SSam Leffler safe_dump_intrstate(sc, tag); 2189b7e3f244SSam Leffler safe_dump_dmastatus(sc, tag); 2190b7e3f244SSam Leffler safe_dump_ringstate(sc, tag); 2191b7e3f244SSam Leffler if (sc->sc_nqchip) { 2192b7e3f244SSam Leffler struct safe_ringentry *re = sc->sc_back; 2193b7e3f244SSam Leffler do { 2194b7e3f244SSam Leffler safe_dump_request(sc, tag, re); 2195b7e3f244SSam Leffler if (++re == sc->sc_ringtop) 2196b7e3f244SSam Leffler re = sc->sc_ring; 2197b7e3f244SSam Leffler } while (re != sc->sc_front); 2198b7e3f244SSam Leffler } 2199b7e3f244SSam Leffler mtx_unlock(&sc->sc_ringmtx); 2200b7e3f244SSam Leffler } 2201b7e3f244SSam Leffler 2202b7e3f244SSam Leffler static int 2203b7e3f244SSam Leffler sysctl_hw_safe_dump(SYSCTL_HANDLER_ARGS) 2204b7e3f244SSam Leffler { 2205b7e3f244SSam Leffler char dmode[64]; 2206b7e3f244SSam Leffler int error; 2207b7e3f244SSam Leffler 2208b7e3f244SSam Leffler strncpy(dmode, "", sizeof(dmode) - 1); 2209b7e3f244SSam Leffler dmode[sizeof(dmode) - 1] = '\0'; 2210b7e3f244SSam Leffler error = sysctl_handle_string(oidp, &dmode[0], sizeof(dmode), req); 2211b7e3f244SSam Leffler 2212b7e3f244SSam Leffler if (error == 0 && req->newptr != NULL) { 2213b7e3f244SSam Leffler struct safe_softc *sc = safec; 2214b7e3f244SSam Leffler 2215b7e3f244SSam Leffler if (!sc) 2216b7e3f244SSam Leffler return EINVAL; 2217b7e3f244SSam Leffler if (strncmp(dmode, "dma", 3) == 0) 2218b7e3f244SSam Leffler safe_dump_dmastatus(sc, "safe0"); 2219b7e3f244SSam Leffler else if (strncmp(dmode, "int", 3) == 0) 2220b7e3f244SSam Leffler safe_dump_intrstate(sc, "safe0"); 2221b7e3f244SSam Leffler else if (strncmp(dmode, "ring", 4) == 0) 2222b7e3f244SSam Leffler safe_dump_ring(sc, "safe0"); 2223b7e3f244SSam Leffler else 2224b7e3f244SSam Leffler return EINVAL; 2225b7e3f244SSam Leffler } 2226b7e3f244SSam Leffler return error; 2227b7e3f244SSam Leffler } 2228b7e3f244SSam Leffler SYSCTL_PROC(_hw_safe, OID_AUTO, dump, CTLTYPE_STRING | CTLFLAG_RW, 2229b7e3f244SSam Leffler 0, 0, sysctl_hw_safe_dump, "A", "Dump driver state"); 2230b7e3f244SSam Leffler #endif /* SAFE_DEBUG */ 2231