Merge branches 'topic/fix/hda' and 'topic/fix/sound-core' into for-linus
[linux-block.git] / Documentation / lguest / lguest.c
CommitLineData
f938d2c8 1/*P:100 This is the Launcher code, a simple program which lays out the
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2 * "physical" memory for the new Guest by mapping the kernel image and
3 * the virtual devices, then opens /dev/lguest to tell the kernel
4 * about the Guest and control it. :*/
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5#define _LARGEFILE64_SOURCE
6#define _GNU_SOURCE
7#include <stdio.h>
8#include <string.h>
9#include <unistd.h>
10#include <err.h>
11#include <stdint.h>
12#include <stdlib.h>
13#include <elf.h>
14#include <sys/mman.h>
6649bb7a 15#include <sys/param.h>
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16#include <sys/types.h>
17#include <sys/stat.h>
18#include <sys/wait.h>
19#include <fcntl.h>
20#include <stdbool.h>
21#include <errno.h>
22#include <ctype.h>
23#include <sys/socket.h>
24#include <sys/ioctl.h>
25#include <sys/time.h>
26#include <time.h>
27#include <netinet/in.h>
28#include <net/if.h>
29#include <linux/sockios.h>
30#include <linux/if_tun.h>
31#include <sys/uio.h>
32#include <termios.h>
33#include <getopt.h>
34#include <zlib.h>
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35#include <assert.h>
36#include <sched.h>
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37#include <limits.h>
38#include <stddef.h>
a161883a 39#include <signal.h>
b45d8cb0 40#include "linux/lguest_launcher.h"
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41#include "linux/virtio_config.h"
42#include "linux/virtio_net.h"
43#include "linux/virtio_blk.h"
44#include "linux/virtio_console.h"
28fd6d7f 45#include "linux/virtio_rng.h"
17cbca2b 46#include "linux/virtio_ring.h"
d5d02d6d 47#include "asm/bootparam.h"
a6bd8e13 48/*L:110 We can ignore the 39 include files we need for this program, but I do
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49 * want to draw attention to the use of kernel-style types.
50 *
51 * As Linus said, "C is a Spartan language, and so should your naming be." I
52 * like these abbreviations, so we define them here. Note that u64 is always
53 * unsigned long long, which works on all Linux systems: this means that we can
54 * use %llu in printf for any u64. */
55typedef unsigned long long u64;
56typedef uint32_t u32;
57typedef uint16_t u16;
58typedef uint8_t u8;
dde79789 59/*:*/
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60
61#define PAGE_PRESENT 0x7 /* Present, RW, Execute */
62#define NET_PEERNUM 1
63#define BRIDGE_PFX "bridge:"
64#ifndef SIOCBRADDIF
65#define SIOCBRADDIF 0x89a2 /* add interface to bridge */
66#endif
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67/* We can have up to 256 pages for devices. */
68#define DEVICE_PAGES 256
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69/* This will occupy 3 pages: it must be a power of 2. */
70#define VIRTQUEUE_NUM 256
8ca47e00 71
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72/*L:120 verbose is both a global flag and a macro. The C preprocessor allows
73 * this, and although I wouldn't recommend it, it works quite nicely here. */
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74static bool verbose;
75#define verbose(args...) \
76 do { if (verbose) printf(args); } while(0)
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77/*:*/
78
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79/* File descriptors for the Waker. */
80struct {
81 int pipe[2];
82 int lguest_fd;
83} waker_fds;
84
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85/* The pointer to the start of guest memory. */
86static void *guest_base;
87/* The maximum guest physical address allowed, and maximum possible. */
88static unsigned long guest_limit, guest_max;
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89/* The pipe for signal hander to write to. */
90static int timeoutpipe[2];
aa124984 91static unsigned int timeout_usec = 500;
8ca47e00 92
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93/* a per-cpu variable indicating whose vcpu is currently running */
94static unsigned int __thread cpu_id;
95
dde79789 96/* This is our list of devices. */
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97struct device_list
98{
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99 /* Summary information about the devices in our list: ready to pass to
100 * select() to ask which need servicing.*/
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101 fd_set infds;
102 int max_infd;
103
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104 /* Counter to assign interrupt numbers. */
105 unsigned int next_irq;
106
107 /* Counter to print out convenient device numbers. */
108 unsigned int device_num;
109
dde79789 110 /* The descriptor page for the devices. */
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111 u8 *descpage;
112
dde79789 113 /* A single linked list of devices. */
8ca47e00 114 struct device *dev;
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115 /* And a pointer to the last device for easy append and also for
116 * configuration appending. */
117 struct device *lastdev;
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118};
119
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120/* The list of Guest devices, based on command line arguments. */
121static struct device_list devices;
122
dde79789 123/* The device structure describes a single device. */
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124struct device
125{
dde79789 126 /* The linked-list pointer. */
8ca47e00 127 struct device *next;
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128
129 /* The this device's descriptor, as mapped into the Guest. */
8ca47e00 130 struct lguest_device_desc *desc;
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131
132 /* The name of this device, for --verbose. */
133 const char *name;
8ca47e00 134
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135 /* If handle_input is set, it wants to be called when this file
136 * descriptor is ready. */
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137 int fd;
138 bool (*handle_input)(int fd, struct device *me);
139
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140 /* Any queues attached to this device */
141 struct virtqueue *vq;
8ca47e00 142
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143 /* Handle status being finalized (ie. feature bits stable). */
144 void (*ready)(struct device *me);
145
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146 /* Device-specific data. */
147 void *priv;
148};
149
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150/* The virtqueue structure describes a queue attached to a device. */
151struct virtqueue
152{
153 struct virtqueue *next;
154
155 /* Which device owns me. */
156 struct device *dev;
157
158 /* The configuration for this queue. */
159 struct lguest_vqconfig config;
160
161 /* The actual ring of buffers. */
162 struct vring vring;
163
164 /* Last available index we saw. */
165 u16 last_avail_idx;
166
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167 /* The routine to call when the Guest pings us, or timeout. */
168 void (*handle_output)(int fd, struct virtqueue *me, bool timeout);
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169
170 /* Outstanding buffers */
171 unsigned int inflight;
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172
173 /* Is this blocked awaiting a timer? */
174 bool blocked;
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175};
176
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177/* Remember the arguments to the program so we can "reboot" */
178static char **main_args;
179
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180/* Since guest is UP and we don't run at the same time, we don't need barriers.
181 * But I include them in the code in case others copy it. */
182#define wmb()
183
184/* Convert an iovec element to the given type.
185 *
186 * This is a fairly ugly trick: we need to know the size of the type and
187 * alignment requirement to check the pointer is kosher. It's also nice to
188 * have the name of the type in case we report failure.
189 *
190 * Typing those three things all the time is cumbersome and error prone, so we
191 * have a macro which sets them all up and passes to the real function. */
192#define convert(iov, type) \
193 ((type *)_convert((iov), sizeof(type), __alignof__(type), #type))
194
195static void *_convert(struct iovec *iov, size_t size, size_t align,
196 const char *name)
197{
198 if (iov->iov_len != size)
199 errx(1, "Bad iovec size %zu for %s", iov->iov_len, name);
200 if ((unsigned long)iov->iov_base % align != 0)
201 errx(1, "Bad alignment %p for %s", iov->iov_base, name);
202 return iov->iov_base;
203}
204
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205/* Wrapper for the last available index. Makes it easier to change. */
206#define lg_last_avail(vq) ((vq)->last_avail_idx)
207
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208/* The virtio configuration space is defined to be little-endian. x86 is
209 * little-endian too, but it's nice to be explicit so we have these helpers. */
210#define cpu_to_le16(v16) (v16)
211#define cpu_to_le32(v32) (v32)
212#define cpu_to_le64(v64) (v64)
213#define le16_to_cpu(v16) (v16)
214#define le32_to_cpu(v32) (v32)
a586d4f6 215#define le64_to_cpu(v64) (v64)
17cbca2b 216
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217/* Is this iovec empty? */
218static bool iov_empty(const struct iovec iov[], unsigned int num_iov)
219{
220 unsigned int i;
221
222 for (i = 0; i < num_iov; i++)
223 if (iov[i].iov_len)
224 return false;
225 return true;
226}
227
228/* Take len bytes from the front of this iovec. */
229static void iov_consume(struct iovec iov[], unsigned num_iov, unsigned len)
230{
231 unsigned int i;
232
233 for (i = 0; i < num_iov; i++) {
234 unsigned int used;
235
236 used = iov[i].iov_len < len ? iov[i].iov_len : len;
237 iov[i].iov_base += used;
238 iov[i].iov_len -= used;
239 len -= used;
240 }
241 assert(len == 0);
242}
243
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244/* The device virtqueue descriptors are followed by feature bitmasks. */
245static u8 *get_feature_bits(struct device *dev)
246{
247 return (u8 *)(dev->desc + 1)
248 + dev->desc->num_vq * sizeof(struct lguest_vqconfig);
249}
250
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251/*L:100 The Launcher code itself takes us out into userspace, that scary place
252 * where pointers run wild and free! Unfortunately, like most userspace
253 * programs, it's quite boring (which is why everyone likes to hack on the
254 * kernel!). Perhaps if you make up an Lguest Drinking Game at this point, it
255 * will get you through this section. Or, maybe not.
256 *
257 * The Launcher sets up a big chunk of memory to be the Guest's "physical"
258 * memory and stores it in "guest_base". In other words, Guest physical ==
259 * Launcher virtual with an offset.
260 *
261 * This can be tough to get your head around, but usually it just means that we
262 * use these trivial conversion functions when the Guest gives us it's
263 * "physical" addresses: */
264static void *from_guest_phys(unsigned long addr)
265{
266 return guest_base + addr;
267}
268
269static unsigned long to_guest_phys(const void *addr)
270{
271 return (addr - guest_base);
272}
273
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274/*L:130
275 * Loading the Kernel.
276 *
277 * We start with couple of simple helper routines. open_or_die() avoids
278 * error-checking code cluttering the callers: */
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279static int open_or_die(const char *name, int flags)
280{
281 int fd = open(name, flags);
282 if (fd < 0)
283 err(1, "Failed to open %s", name);
284 return fd;
285}
286
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287/* map_zeroed_pages() takes a number of pages. */
288static void *map_zeroed_pages(unsigned int num)
8ca47e00 289{
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290 int fd = open_or_die("/dev/zero", O_RDONLY);
291 void *addr;
8ca47e00 292
dde79789 293 /* We use a private mapping (ie. if we write to the page, it will be
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294 * copied). */
295 addr = mmap(NULL, getpagesize() * num,
296 PROT_READ|PROT_WRITE|PROT_EXEC, MAP_PRIVATE, fd, 0);
297 if (addr == MAP_FAILED)
298 err(1, "Mmaping %u pages of /dev/zero", num);
34bdaab4 299 close(fd);
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300
301 return addr;
302}
303
304/* Get some more pages for a device. */
305static void *get_pages(unsigned int num)
306{
307 void *addr = from_guest_phys(guest_limit);
308
309 guest_limit += num * getpagesize();
310 if (guest_limit > guest_max)
311 errx(1, "Not enough memory for devices");
312 return addr;
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313}
314
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315/* This routine is used to load the kernel or initrd. It tries mmap, but if
316 * that fails (Plan 9's kernel file isn't nicely aligned on page boundaries),
317 * it falls back to reading the memory in. */
318static void map_at(int fd, void *addr, unsigned long offset, unsigned long len)
319{
320 ssize_t r;
321
322 /* We map writable even though for some segments are marked read-only.
323 * The kernel really wants to be writable: it patches its own
324 * instructions.
325 *
326 * MAP_PRIVATE means that the page won't be copied until a write is
327 * done to it. This allows us to share untouched memory between
328 * Guests. */
329 if (mmap(addr, len, PROT_READ|PROT_WRITE|PROT_EXEC,
330 MAP_FIXED|MAP_PRIVATE, fd, offset) != MAP_FAILED)
331 return;
332
333 /* pread does a seek and a read in one shot: saves a few lines. */
334 r = pread(fd, addr, len, offset);
335 if (r != len)
336 err(1, "Reading offset %lu len %lu gave %zi", offset, len, r);
337}
338
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339/* This routine takes an open vmlinux image, which is in ELF, and maps it into
340 * the Guest memory. ELF = Embedded Linking Format, which is the format used
341 * by all modern binaries on Linux including the kernel.
342 *
343 * The ELF headers give *two* addresses: a physical address, and a virtual
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344 * address. We use the physical address; the Guest will map itself to the
345 * virtual address.
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346 *
347 * We return the starting address. */
47436aa4 348static unsigned long map_elf(int elf_fd, const Elf32_Ehdr *ehdr)
8ca47e00 349{
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350 Elf32_Phdr phdr[ehdr->e_phnum];
351 unsigned int i;
8ca47e00 352
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353 /* Sanity checks on the main ELF header: an x86 executable with a
354 * reasonable number of correctly-sized program headers. */
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355 if (ehdr->e_type != ET_EXEC
356 || ehdr->e_machine != EM_386
357 || ehdr->e_phentsize != sizeof(Elf32_Phdr)
358 || ehdr->e_phnum < 1 || ehdr->e_phnum > 65536U/sizeof(Elf32_Phdr))
359 errx(1, "Malformed elf header");
360
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361 /* An ELF executable contains an ELF header and a number of "program"
362 * headers which indicate which parts ("segments") of the program to
363 * load where. */
364
365 /* We read in all the program headers at once: */
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366 if (lseek(elf_fd, ehdr->e_phoff, SEEK_SET) < 0)
367 err(1, "Seeking to program headers");
368 if (read(elf_fd, phdr, sizeof(phdr)) != sizeof(phdr))
369 err(1, "Reading program headers");
370
dde79789 371 /* Try all the headers: there are usually only three. A read-only one,
a6bd8e13 372 * a read-write one, and a "note" section which we don't load. */
8ca47e00 373 for (i = 0; i < ehdr->e_phnum; i++) {
dde79789 374 /* If this isn't a loadable segment, we ignore it */
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375 if (phdr[i].p_type != PT_LOAD)
376 continue;
377
378 verbose("Section %i: size %i addr %p\n",
379 i, phdr[i].p_memsz, (void *)phdr[i].p_paddr);
380
6649bb7a 381 /* We map this section of the file at its physical address. */
3c6b5bfa 382 map_at(elf_fd, from_guest_phys(phdr[i].p_paddr),
6649bb7a 383 phdr[i].p_offset, phdr[i].p_filesz);
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384 }
385
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386 /* The entry point is given in the ELF header. */
387 return ehdr->e_entry;
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388}
389
dde79789 390/*L:150 A bzImage, unlike an ELF file, is not meant to be loaded. You're
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391 * supposed to jump into it and it will unpack itself. We used to have to
392 * perform some hairy magic because the unpacking code scared me.
dde79789 393 *
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394 * Fortunately, Jeremy Fitzhardinge convinced me it wasn't that hard and wrote
395 * a small patch to jump over the tricky bits in the Guest, so now we just read
396 * the funky header so we know where in the file to load, and away we go! */
47436aa4 397static unsigned long load_bzimage(int fd)
8ca47e00 398{
43d33b21 399 struct boot_params boot;
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400 int r;
401 /* Modern bzImages get loaded at 1M. */
402 void *p = from_guest_phys(0x100000);
403
404 /* Go back to the start of the file and read the header. It should be
71cced6e 405 * a Linux boot header (see Documentation/x86/i386/boot.txt) */
5bbf89fc 406 lseek(fd, 0, SEEK_SET);
43d33b21 407 read(fd, &boot, sizeof(boot));
5bbf89fc 408
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409 /* Inside the setup_hdr, we expect the magic "HdrS" */
410 if (memcmp(&boot.hdr.header, "HdrS", 4) != 0)
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411 errx(1, "This doesn't look like a bzImage to me");
412
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413 /* Skip over the extra sectors of the header. */
414 lseek(fd, (boot.hdr.setup_sects+1) * 512, SEEK_SET);
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415
416 /* Now read everything into memory. in nice big chunks. */
417 while ((r = read(fd, p, 65536)) > 0)
418 p += r;
419
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420 /* Finally, code32_start tells us where to enter the kernel. */
421 return boot.hdr.code32_start;
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422}
423
dde79789 424/*L:140 Loading the kernel is easy when it's a "vmlinux", but most kernels
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425 * come wrapped up in the self-decompressing "bzImage" format. With a little
426 * work, we can load those, too. */
47436aa4 427static unsigned long load_kernel(int fd)
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428{
429 Elf32_Ehdr hdr;
430
dde79789 431 /* Read in the first few bytes. */
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432 if (read(fd, &hdr, sizeof(hdr)) != sizeof(hdr))
433 err(1, "Reading kernel");
434
dde79789 435 /* If it's an ELF file, it starts with "\177ELF" */
8ca47e00 436 if (memcmp(hdr.e_ident, ELFMAG, SELFMAG) == 0)
47436aa4 437 return map_elf(fd, &hdr);
8ca47e00 438
a6bd8e13 439 /* Otherwise we assume it's a bzImage, and try to load it. */
47436aa4 440 return load_bzimage(fd);
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441}
442
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443/* This is a trivial little helper to align pages. Andi Kleen hated it because
444 * it calls getpagesize() twice: "it's dumb code."
445 *
446 * Kernel guys get really het up about optimization, even when it's not
447 * necessary. I leave this code as a reaction against that. */
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448static inline unsigned long page_align(unsigned long addr)
449{
dde79789 450 /* Add upwards and truncate downwards. */
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451 return ((addr + getpagesize()-1) & ~(getpagesize()-1));
452}
453
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454/*L:180 An "initial ram disk" is a disk image loaded into memory along with
455 * the kernel which the kernel can use to boot from without needing any
456 * drivers. Most distributions now use this as standard: the initrd contains
457 * the code to load the appropriate driver modules for the current machine.
458 *
459 * Importantly, James Morris works for RedHat, and Fedora uses initrds for its
460 * kernels. He sent me this (and tells me when I break it). */
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461static unsigned long load_initrd(const char *name, unsigned long mem)
462{
463 int ifd;
464 struct stat st;
465 unsigned long len;
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466
467 ifd = open_or_die(name, O_RDONLY);
dde79789 468 /* fstat() is needed to get the file size. */
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469 if (fstat(ifd, &st) < 0)
470 err(1, "fstat() on initrd '%s'", name);
471
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472 /* We map the initrd at the top of memory, but mmap wants it to be
473 * page-aligned, so we round the size up for that. */
8ca47e00 474 len = page_align(st.st_size);
3c6b5bfa 475 map_at(ifd, from_guest_phys(mem - len), 0, st.st_size);
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476 /* Once a file is mapped, you can close the file descriptor. It's a
477 * little odd, but quite useful. */
8ca47e00 478 close(ifd);
6649bb7a 479 verbose("mapped initrd %s size=%lu @ %p\n", name, len, (void*)mem-len);
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480
481 /* We return the initrd size. */
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482 return len;
483}
484
a6bd8e13 485/* Once we know how much memory we have we can construct simple linear page
47436aa4 486 * tables which set virtual == physical which will get the Guest far enough
3c6b5bfa 487 * into the boot to create its own.
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488 *
489 * We lay them out of the way, just below the initrd (which is why we need to
a6bd8e13 490 * know its size here). */
8ca47e00 491static unsigned long setup_pagetables(unsigned long mem,
47436aa4 492 unsigned long initrd_size)
8ca47e00 493{
511801dc 494 unsigned long *pgdir, *linear;
8ca47e00 495 unsigned int mapped_pages, i, linear_pages;
511801dc 496 unsigned int ptes_per_page = getpagesize()/sizeof(void *);
8ca47e00 497
47436aa4 498 mapped_pages = mem/getpagesize();
8ca47e00 499
dde79789 500 /* Each PTE page can map ptes_per_page pages: how many do we need? */
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501 linear_pages = (mapped_pages + ptes_per_page-1)/ptes_per_page;
502
dde79789 503 /* We put the toplevel page directory page at the top of memory. */
3c6b5bfa 504 pgdir = from_guest_phys(mem) - initrd_size - getpagesize();
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505
506 /* Now we use the next linear_pages pages as pte pages */
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507 linear = (void *)pgdir - linear_pages*getpagesize();
508
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509 /* Linear mapping is easy: put every page's address into the mapping in
510 * order. PAGE_PRESENT contains the flags Present, Writable and
511 * Executable. */
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512 for (i = 0; i < mapped_pages; i++)
513 linear[i] = ((i * getpagesize()) | PAGE_PRESENT);
514
47436aa4 515 /* The top level points to the linear page table pages above. */
8ca47e00 516 for (i = 0; i < mapped_pages; i += ptes_per_page) {
47436aa4 517 pgdir[i/ptes_per_page]
511801dc 518 = ((to_guest_phys(linear) + i*sizeof(void *))
3c6b5bfa 519 | PAGE_PRESENT);
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520 }
521
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522 verbose("Linear mapping of %u pages in %u pte pages at %#lx\n",
523 mapped_pages, linear_pages, to_guest_phys(linear));
8ca47e00 524
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525 /* We return the top level (guest-physical) address: the kernel needs
526 * to know where it is. */
3c6b5bfa 527 return to_guest_phys(pgdir);
8ca47e00 528}
e1e72965 529/*:*/
8ca47e00 530
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531/* Simple routine to roll all the commandline arguments together with spaces
532 * between them. */
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533static void concat(char *dst, char *args[])
534{
535 unsigned int i, len = 0;
536
537 for (i = 0; args[i]; i++) {
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538 if (i) {
539 strcat(dst+len, " ");
540 len++;
541 }
8ca47e00 542 strcpy(dst+len, args[i]);
1ef36fa6 543 len += strlen(args[i]);
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544 }
545 /* In case it's empty. */
546 dst[len] = '\0';
547}
548
e1e72965
RR
549/*L:185 This is where we actually tell the kernel to initialize the Guest. We
550 * saw the arguments it expects when we looked at initialize() in lguest_user.c:
551 * the base of Guest "physical" memory, the top physical page to allow, the
47436aa4
RR
552 * top level pagetable and the entry point for the Guest. */
553static int tell_kernel(unsigned long pgdir, unsigned long start)
8ca47e00 554{
511801dc
JS
555 unsigned long args[] = { LHREQ_INITIALIZE,
556 (unsigned long)guest_base,
47436aa4 557 guest_limit / getpagesize(), pgdir, start };
8ca47e00
RR
558 int fd;
559
3c6b5bfa
RR
560 verbose("Guest: %p - %p (%#lx)\n",
561 guest_base, guest_base + guest_limit, guest_limit);
8ca47e00
RR
562 fd = open_or_die("/dev/lguest", O_RDWR);
563 if (write(fd, args, sizeof(args)) < 0)
564 err(1, "Writing to /dev/lguest");
dde79789
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565
566 /* We return the /dev/lguest file descriptor to control this Guest */
8ca47e00
RR
567 return fd;
568}
dde79789 569/*:*/
8ca47e00 570
17cbca2b 571static void add_device_fd(int fd)
8ca47e00 572{
17cbca2b
RR
573 FD_SET(fd, &devices.infds);
574 if (fd > devices.max_infd)
575 devices.max_infd = fd;
8ca47e00
RR
576}
577
dde79789
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578/*L:200
579 * The Waker.
580 *
e1e72965
RR
581 * With console, block and network devices, we can have lots of input which we
582 * need to process. We could try to tell the kernel what file descriptors to
583 * watch, but handing a file descriptor mask through to the kernel is fairly
584 * icky.
dde79789 585 *
8c79873d 586 * Instead, we clone off a thread which watches the file descriptors and writes
e1e72965
RR
587 * the LHREQ_BREAK command to the /dev/lguest file descriptor to tell the Host
588 * stop running the Guest. This causes the Launcher to return from the
dde79789
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589 * /dev/lguest read with -EAGAIN, where it will write to /dev/lguest to reset
590 * the LHREQ_BREAK and wake us up again.
591 *
592 * This, of course, is merely a different *kind* of icky.
8c79873d
RR
593 *
594 * Given my well-known antipathy to threads, I'd prefer to use processes. But
595 * it's easier to share Guest memory with threads, and trivial to share the
596 * devices.infds as the Launcher changes it.
dde79789 597 */
8c79873d 598static int waker(void *unused)
8ca47e00 599{
8c79873d
RR
600 /* Close the write end of the pipe: only the Launcher has it open. */
601 close(waker_fds.pipe[1]);
8ca47e00
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602
603 for (;;) {
17cbca2b 604 fd_set rfds = devices.infds;
511801dc 605 unsigned long args[] = { LHREQ_BREAK, 1 };
8c79873d
RR
606 unsigned int maxfd = devices.max_infd;
607
608 /* We also listen to the pipe from the Launcher. */
609 FD_SET(waker_fds.pipe[0], &rfds);
610 if (waker_fds.pipe[0] > maxfd)
611 maxfd = waker_fds.pipe[0];
8ca47e00 612
dde79789 613 /* Wait until input is ready from one of the devices. */
8c79873d
RR
614 select(maxfd+1, &rfds, NULL, NULL, NULL);
615
616 /* Message from Launcher? */
617 if (FD_ISSET(waker_fds.pipe[0], &rfds)) {
618 char c;
619 /* If this fails, then assume Launcher has exited.
620 * Don't do anything on exit: we're just a thread! */
621 if (read(waker_fds.pipe[0], &c, 1) != 1)
622 _exit(0);
623 continue;
624 }
625
626 /* Send LHREQ_BREAK command to snap the Launcher out of it. */
627 pwrite(waker_fds.lguest_fd, args, sizeof(args), cpu_id);
8ca47e00 628 }
8c79873d 629 return 0;
8ca47e00
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630}
631
dde79789 632/* This routine just sets up a pipe to the Waker process. */
8c79873d
RR
633static void setup_waker(int lguest_fd)
634{
635 /* This pipe is closed when Launcher dies, telling Waker. */
636 if (pipe(waker_fds.pipe) != 0)
637 err(1, "Creating pipe for Waker");
8ca47e00 638
8c79873d
RR
639 /* Waker also needs to know the lguest fd */
640 waker_fds.lguest_fd = lguest_fd;
641
642 if (clone(waker, malloc(4096) + 4096, CLONE_VM | SIGCHLD, NULL) == -1)
643 err(1, "Creating Waker");
8ca47e00
RR
644}
645
e1e72965 646/*
dde79789
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647 * Device Handling.
648 *
e1e72965 649 * When the Guest gives us a buffer, it sends an array of addresses and sizes.
dde79789 650 * We need to make sure it's not trying to reach into the Launcher itself, so
e1e72965 651 * we have a convenient routine which checks it and exits with an error message
dde79789
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652 * if something funny is going on:
653 */
8ca47e00
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654static void *_check_pointer(unsigned long addr, unsigned int size,
655 unsigned int line)
656{
dde79789
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657 /* We have to separately check addr and addr+size, because size could
658 * be huge and addr + size might wrap around. */
3c6b5bfa 659 if (addr >= guest_limit || addr + size >= guest_limit)
17cbca2b 660 errx(1, "%s:%i: Invalid address %#lx", __FILE__, line, addr);
dde79789
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661 /* We return a pointer for the caller's convenience, now we know it's
662 * safe to use. */
3c6b5bfa 663 return from_guest_phys(addr);
8ca47e00 664}
dde79789 665/* A macro which transparently hands the line number to the real function. */
8ca47e00
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666#define check_pointer(addr,size) _check_pointer(addr, size, __LINE__)
667
e1e72965
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668/* Each buffer in the virtqueues is actually a chain of descriptors. This
669 * function returns the next descriptor in the chain, or vq->vring.num if we're
670 * at the end. */
17cbca2b
RR
671static unsigned next_desc(struct virtqueue *vq, unsigned int i)
672{
673 unsigned int next;
674
675 /* If this descriptor says it doesn't chain, we're done. */
676 if (!(vq->vring.desc[i].flags & VRING_DESC_F_NEXT))
677 return vq->vring.num;
678
679 /* Check they're not leading us off end of descriptors. */
680 next = vq->vring.desc[i].next;
681 /* Make sure compiler knows to grab that: we don't want it changing! */
682 wmb();
683
684 if (next >= vq->vring.num)
685 errx(1, "Desc next is %u", next);
686
687 return next;
688}
689
690/* This looks in the virtqueue and for the first available buffer, and converts
691 * it to an iovec for convenient access. Since descriptors consist of some
692 * number of output then some number of input descriptors, it's actually two
693 * iovecs, but we pack them into one and note how many of each there were.
694 *
695 * This function returns the descriptor number found, or vq->vring.num (which
696 * is never a valid descriptor number) if none was found. */
697static unsigned get_vq_desc(struct virtqueue *vq,
698 struct iovec iov[],
699 unsigned int *out_num, unsigned int *in_num)
700{
701 unsigned int i, head;
b5111790 702 u16 last_avail;
17cbca2b
RR
703
704 /* Check it isn't doing very strange things with descriptor numbers. */
b5111790
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705 last_avail = lg_last_avail(vq);
706 if ((u16)(vq->vring.avail->idx - last_avail) > vq->vring.num)
17cbca2b 707 errx(1, "Guest moved used index from %u to %u",
b5111790 708 last_avail, vq->vring.avail->idx);
17cbca2b
RR
709
710 /* If there's nothing new since last we looked, return invalid. */
b5111790 711 if (vq->vring.avail->idx == last_avail)
17cbca2b
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712 return vq->vring.num;
713
714 /* Grab the next descriptor number they're advertising, and increment
715 * the index we've seen. */
b5111790
RR
716 head = vq->vring.avail->ring[last_avail % vq->vring.num];
717 lg_last_avail(vq)++;
17cbca2b
RR
718
719 /* If their number is silly, that's a fatal mistake. */
720 if (head >= vq->vring.num)
721 errx(1, "Guest says index %u is available", head);
722
723 /* When we start there are none of either input nor output. */
724 *out_num = *in_num = 0;
725
726 i = head;
727 do {
728 /* Grab the first descriptor, and check it's OK. */
729 iov[*out_num + *in_num].iov_len = vq->vring.desc[i].len;
730 iov[*out_num + *in_num].iov_base
731 = check_pointer(vq->vring.desc[i].addr,
732 vq->vring.desc[i].len);
733 /* If this is an input descriptor, increment that count. */
734 if (vq->vring.desc[i].flags & VRING_DESC_F_WRITE)
735 (*in_num)++;
736 else {
737 /* If it's an output descriptor, they're all supposed
738 * to come before any input descriptors. */
739 if (*in_num)
740 errx(1, "Descriptor has out after in");
741 (*out_num)++;
742 }
743
744 /* If we've got too many, that implies a descriptor loop. */
745 if (*out_num + *in_num > vq->vring.num)
746 errx(1, "Looped descriptor");
747 } while ((i = next_desc(vq, i)) != vq->vring.num);
dde79789 748
20887611 749 vq->inflight++;
17cbca2b 750 return head;
8ca47e00
RR
751}
752
e1e72965 753/* After we've used one of their buffers, we tell them about it. We'll then
17cbca2b
RR
754 * want to send them an interrupt, using trigger_irq(). */
755static void add_used(struct virtqueue *vq, unsigned int head, int len)
8ca47e00 756{
17cbca2b
RR
757 struct vring_used_elem *used;
758
e1e72965
RR
759 /* The virtqueue contains a ring of used buffers. Get a pointer to the
760 * next entry in that used ring. */
17cbca2b
RR
761 used = &vq->vring.used->ring[vq->vring.used->idx % vq->vring.num];
762 used->id = head;
763 used->len = len;
764 /* Make sure buffer is written before we update index. */
765 wmb();
766 vq->vring.used->idx++;
20887611 767 vq->inflight--;
8ca47e00
RR
768}
769
17cbca2b
RR
770/* This actually sends the interrupt for this virtqueue */
771static void trigger_irq(int fd, struct virtqueue *vq)
8ca47e00 772{
17cbca2b
RR
773 unsigned long buf[] = { LHREQ_IRQ, vq->config.irq };
774
20887611
RR
775 /* If they don't want an interrupt, don't send one, unless empty. */
776 if ((vq->vring.avail->flags & VRING_AVAIL_F_NO_INTERRUPT)
777 && vq->inflight)
17cbca2b
RR
778 return;
779
780 /* Send the Guest an interrupt tell them we used something up. */
8ca47e00 781 if (write(fd, buf, sizeof(buf)) != 0)
17cbca2b 782 err(1, "Triggering irq %i", vq->config.irq);
8ca47e00
RR
783}
784
17cbca2b
RR
785/* And here's the combo meal deal. Supersize me! */
786static void add_used_and_trigger(int fd, struct virtqueue *vq,
787 unsigned int head, int len)
8ca47e00 788{
17cbca2b
RR
789 add_used(vq, head, len);
790 trigger_irq(fd, vq);
8ca47e00
RR
791}
792
e1e72965
RR
793/*
794 * The Console
795 *
796 * Here is the input terminal setting we save, and the routine to restore them
797 * on exit so the user gets their terminal back. */
8ca47e00
RR
798static struct termios orig_term;
799static void restore_term(void)
800{
801 tcsetattr(STDIN_FILENO, TCSANOW, &orig_term);
802}
803
dde79789 804/* We associate some data with the console for our exit hack. */
8ca47e00
RR
805struct console_abort
806{
dde79789 807 /* How many times have they hit ^C? */
8ca47e00 808 int count;
dde79789 809 /* When did they start? */
8ca47e00
RR
810 struct timeval start;
811};
812
dde79789 813/* This is the routine which handles console input (ie. stdin). */
8ca47e00
RR
814static bool handle_console_input(int fd, struct device *dev)
815{
8ca47e00 816 int len;
17cbca2b
RR
817 unsigned int head, in_num, out_num;
818 struct iovec iov[dev->vq->vring.num];
8ca47e00
RR
819 struct console_abort *abort = dev->priv;
820
17cbca2b
RR
821 /* First we need a console buffer from the Guests's input virtqueue. */
822 head = get_vq_desc(dev->vq, iov, &out_num, &in_num);
56ae43df
RR
823
824 /* If they're not ready for input, stop listening to this file
825 * descriptor. We'll start again once they add an input buffer. */
826 if (head == dev->vq->vring.num)
827 return false;
828
829 if (out_num)
17cbca2b 830 errx(1, "Output buffers in console in queue?");
8ca47e00 831
dde79789
RR
832 /* This is why we convert to iovecs: the readv() call uses them, and so
833 * it reads straight into the Guest's buffer. */
17cbca2b 834 len = readv(dev->fd, iov, in_num);
8ca47e00 835 if (len <= 0) {
dde79789 836 /* This implies that the console is closed, is /dev/null, or
17cbca2b 837 * something went terribly wrong. */
8ca47e00 838 warnx("Failed to get console input, ignoring console.");
56ae43df 839 /* Put the input terminal back. */
17cbca2b 840 restore_term();
56ae43df
RR
841 /* Remove callback from input vq, so it doesn't restart us. */
842 dev->vq->handle_output = NULL;
843 /* Stop listening to this fd: don't call us again. */
17cbca2b 844 return false;
8ca47e00
RR
845 }
846
56ae43df
RR
847 /* Tell the Guest about the new input. */
848 add_used_and_trigger(fd, dev->vq, head, len);
8ca47e00 849
dde79789
RR
850 /* Three ^C within one second? Exit.
851 *
852 * This is such a hack, but works surprisingly well. Each ^C has to be
853 * in a buffer by itself, so they can't be too fast. But we check that
854 * we get three within about a second, so they can't be too slow. */
8ca47e00
RR
855 if (len == 1 && ((char *)iov[0].iov_base)[0] == 3) {
856 if (!abort->count++)
857 gettimeofday(&abort->start, NULL);
858 else if (abort->count == 3) {
859 struct timeval now;
860 gettimeofday(&now, NULL);
861 if (now.tv_sec <= abort->start.tv_sec+1) {
511801dc 862 unsigned long args[] = { LHREQ_BREAK, 0 };
dde79789
RR
863 /* Close the fd so Waker will know it has to
864 * exit. */
8c79873d
RR
865 close(waker_fds.pipe[1]);
866 /* Just in case Waker is blocked in BREAK, send
dde79789 867 * unbreak now. */
8ca47e00
RR
868 write(fd, args, sizeof(args));
869 exit(2);
870 }
871 abort->count = 0;
872 }
873 } else
dde79789 874 /* Any other key resets the abort counter. */
8ca47e00
RR
875 abort->count = 0;
876
dde79789 877 /* Everything went OK! */
8ca47e00
RR
878 return true;
879}
880
17cbca2b
RR
881/* Handling output for console is simple: we just get all the output buffers
882 * and write them to stdout. */
a161883a 883static void handle_console_output(int fd, struct virtqueue *vq, bool timeout)
8ca47e00 884{
17cbca2b
RR
885 unsigned int head, out, in;
886 int len;
887 struct iovec iov[vq->vring.num];
888
889 /* Keep getting output buffers from the Guest until we run out. */
890 while ((head = get_vq_desc(vq, iov, &out, &in)) != vq->vring.num) {
891 if (in)
892 errx(1, "Input buffers in output queue?");
893 len = writev(STDOUT_FILENO, iov, out);
894 add_used_and_trigger(fd, vq, head, len);
895 }
8ca47e00
RR
896}
897
1dc3e3bc
RR
898/* This is called when we no longer want to hear about Guest changes to a
899 * virtqueue. This is more efficient in high-traffic cases, but it means we
900 * have to set a timer to check if any more changes have occurred. */
a161883a
RR
901static void block_vq(struct virtqueue *vq)
902{
903 struct itimerval itm;
904
905 vq->vring.used->flags |= VRING_USED_F_NO_NOTIFY;
906 vq->blocked = true;
907
908 itm.it_interval.tv_sec = 0;
909 itm.it_interval.tv_usec = 0;
910 itm.it_value.tv_sec = 0;
aa124984 911 itm.it_value.tv_usec = timeout_usec;
a161883a
RR
912
913 setitimer(ITIMER_REAL, &itm, NULL);
914}
915
e1e72965
RR
916/*
917 * The Network
918 *
919 * Handling output for network is also simple: we get all the output buffers
17cbca2b 920 * and write them (ignoring the first element) to this device's file descriptor
a6bd8e13
RR
921 * (/dev/net/tun).
922 */
a161883a 923static void handle_net_output(int fd, struct virtqueue *vq, bool timeout)
8ca47e00 924{
a161883a 925 unsigned int head, out, in, num = 0;
17cbca2b
RR
926 int len;
927 struct iovec iov[vq->vring.num];
aa124984 928 static int last_timeout_num;
17cbca2b
RR
929
930 /* Keep getting output buffers from the Guest until we run out. */
931 while ((head = get_vq_desc(vq, iov, &out, &in)) != vq->vring.num) {
932 if (in)
933 errx(1, "Input buffers in output queue?");
398f187d
RR
934 len = writev(vq->dev->fd, iov, out);
935 if (len < 0)
936 err(1, "Writing network packet to tun");
17cbca2b 937 add_used_and_trigger(fd, vq, head, len);
a161883a 938 num++;
17cbca2b 939 }
a161883a
RR
940
941 /* Block further kicks and set up a timer if we saw anything. */
942 if (!timeout && num)
943 block_vq(vq);
aa124984 944
1dc3e3bc
RR
945 /* We never quite know how long should we wait before we check the
946 * queue again for more packets. We start at 500 microseconds, and if
947 * we get fewer packets than last time, we assume we made the timeout
948 * too small and increase it by 10 microseconds. Otherwise, we drop it
949 * by one microsecond every time. It seems to work well enough. */
aa124984
RR
950 if (timeout) {
951 if (num < last_timeout_num)
952 timeout_usec += 10;
953 else if (timeout_usec > 1)
954 timeout_usec--;
955 last_timeout_num = num;
956 }
8ca47e00
RR
957}
958
17cbca2b
RR
959/* This is where we handle a packet coming in from the tun device to our
960 * Guest. */
8ca47e00
RR
961static bool handle_tun_input(int fd, struct device *dev)
962{
17cbca2b 963 unsigned int head, in_num, out_num;
8ca47e00 964 int len;
17cbca2b 965 struct iovec iov[dev->vq->vring.num];
8ca47e00 966
17cbca2b
RR
967 /* First we need a network buffer from the Guests's recv virtqueue. */
968 head = get_vq_desc(dev->vq, iov, &out_num, &in_num);
969 if (head == dev->vq->vring.num) {
dde79789 970 /* Now, it's expected that if we try to send a packet too
17cbca2b
RR
971 * early, the Guest won't be ready yet. Wait until the device
972 * status says it's ready. */
973 /* FIXME: Actually want DRIVER_ACTIVE here. */
5dae785a
RR
974
975 /* Now tell it we want to know if new things appear. */
976 dev->vq->vring.used->flags &= ~VRING_USED_F_NO_NOTIFY;
977 wmb();
978
56ae43df
RR
979 /* We'll turn this back on if input buffers are registered. */
980 return false;
17cbca2b
RR
981 } else if (out_num)
982 errx(1, "Output buffers in network recv queue?");
983
dde79789 984 /* Read the packet from the device directly into the Guest's buffer. */
398f187d 985 len = readv(dev->fd, iov, in_num);
8ca47e00
RR
986 if (len <= 0)
987 err(1, "reading network");
dde79789 988
56ae43df 989 /* Tell the Guest about the new packet. */
398f187d 990 add_used_and_trigger(fd, dev->vq, head, len);
17cbca2b 991
8ca47e00 992 verbose("tun input packet len %i [%02x %02x] (%s)\n", len,
17cbca2b
RR
993 ((u8 *)iov[1].iov_base)[0], ((u8 *)iov[1].iov_base)[1],
994 head != dev->vq->vring.num ? "sent" : "discarded");
995
dde79789 996 /* All good. */
8ca47e00
RR
997 return true;
998}
999
e1e72965
RR
1000/*L:215 This is the callback attached to the network and console input
1001 * virtqueues: it ensures we try again, in case we stopped console or net
56ae43df 1002 * delivery because Guest didn't have any buffers. */
a161883a 1003static void enable_fd(int fd, struct virtqueue *vq, bool timeout)
56ae43df
RR
1004{
1005 add_device_fd(vq->dev->fd);
8c79873d
RR
1006 /* Snap the Waker out of its select loop. */
1007 write(waker_fds.pipe[1], "", 1);
56ae43df
RR
1008}
1009
a161883a 1010static void net_enable_fd(int fd, struct virtqueue *vq, bool timeout)
5dae785a
RR
1011{
1012 /* We don't need to know again when Guest refills receive buffer. */
1013 vq->vring.used->flags |= VRING_USED_F_NO_NOTIFY;
a161883a 1014 enable_fd(fd, vq, timeout);
5dae785a
RR
1015}
1016
a007a751
RR
1017/* When the Guest tells us they updated the status field, we handle it. */
1018static void update_device_status(struct device *dev)
6e5aa7ef
RR
1019{
1020 struct virtqueue *vq;
1021
a007a751
RR
1022 /* This is a reset. */
1023 if (dev->desc->status == 0) {
1024 verbose("Resetting device %s\n", dev->name);
6e5aa7ef 1025
a007a751
RR
1026 /* Clear any features they've acked. */
1027 memset(get_feature_bits(dev) + dev->desc->feature_len, 0,
1028 dev->desc->feature_len);
6e5aa7ef 1029
a007a751
RR
1030 /* Zero out the virtqueues. */
1031 for (vq = dev->vq; vq; vq = vq->next) {
1032 memset(vq->vring.desc, 0,
1033 vring_size(vq->config.num, getpagesize()));
b5111790 1034 lg_last_avail(vq) = 0;
a007a751
RR
1035 }
1036 } else if (dev->desc->status & VIRTIO_CONFIG_S_FAILED) {
1037 warnx("Device %s configuration FAILED", dev->name);
1038 } else if (dev->desc->status & VIRTIO_CONFIG_S_DRIVER_OK) {
1039 unsigned int i;
1040
1041 verbose("Device %s OK: offered", dev->name);
1042 for (i = 0; i < dev->desc->feature_len; i++)
32c68e5c 1043 verbose(" %02x", get_feature_bits(dev)[i]);
a007a751
RR
1044 verbose(", accepted");
1045 for (i = 0; i < dev->desc->feature_len; i++)
32c68e5c 1046 verbose(" %02x", get_feature_bits(dev)
a007a751
RR
1047 [dev->desc->feature_len+i]);
1048
1049 if (dev->ready)
1050 dev->ready(dev);
6e5aa7ef
RR
1051 }
1052}
1053
17cbca2b
RR
1054/* This is the generic routine we call when the Guest uses LHCALL_NOTIFY. */
1055static void handle_output(int fd, unsigned long addr)
8ca47e00
RR
1056{
1057 struct device *i;
17cbca2b
RR
1058 struct virtqueue *vq;
1059
6e5aa7ef 1060 /* Check each device and virtqueue. */
17cbca2b 1061 for (i = devices.dev; i; i = i->next) {
a007a751 1062 /* Notifications to device descriptors update device status. */
6e5aa7ef 1063 if (from_guest_phys(addr) == i->desc) {
a007a751 1064 update_device_status(i);
6e5aa7ef
RR
1065 return;
1066 }
1067
1068 /* Notifications to virtqueues mean output has occurred. */
17cbca2b 1069 for (vq = i->vq; vq; vq = vq->next) {
6e5aa7ef
RR
1070 if (vq->config.pfn != addr/getpagesize())
1071 continue;
1072
1073 /* Guest should acknowledge (and set features!) before
1074 * using the device. */
1075 if (i->desc->status == 0) {
1076 warnx("%s gave early output", i->name);
17cbca2b
RR
1077 return;
1078 }
6e5aa7ef
RR
1079
1080 if (strcmp(vq->dev->name, "console") != 0)
1081 verbose("Output to %s\n", vq->dev->name);
1082 if (vq->handle_output)
a161883a 1083 vq->handle_output(fd, vq, false);
6e5aa7ef 1084 return;
8ca47e00
RR
1085 }
1086 }
dde79789 1087
17cbca2b
RR
1088 /* Early console write is done using notify on a nul-terminated string
1089 * in Guest memory. */
1090 if (addr >= guest_limit)
1091 errx(1, "Bad NOTIFY %#lx", addr);
1092
1093 write(STDOUT_FILENO, from_guest_phys(addr),
1094 strnlen(from_guest_phys(addr), guest_limit - addr));
8ca47e00
RR
1095}
1096
a161883a
RR
1097static void handle_timeout(int fd)
1098{
1099 char buf[32];
1100 struct device *i;
1101 struct virtqueue *vq;
1102
1103 /* Clear the pipe */
1104 read(timeoutpipe[0], buf, sizeof(buf));
1105
1106 /* Check each device and virtqueue: flush blocked ones. */
1107 for (i = devices.dev; i; i = i->next) {
1108 for (vq = i->vq; vq; vq = vq->next) {
1109 if (!vq->blocked)
1110 continue;
1111
1112 vq->vring.used->flags &= ~VRING_USED_F_NO_NOTIFY;
1113 vq->blocked = false;
1114 if (vq->handle_output)
1115 vq->handle_output(fd, vq, true);
1116 }
1117 }
1118}
1119
e1e72965 1120/* This is called when the Waker wakes us up: check for incoming file
dde79789 1121 * descriptors. */
17cbca2b 1122static void handle_input(int fd)
8ca47e00 1123{
dde79789 1124 /* select() wants a zeroed timeval to mean "don't wait". */
8ca47e00
RR
1125 struct timeval poll = { .tv_sec = 0, .tv_usec = 0 };
1126
1127 for (;;) {
1128 struct device *i;
17cbca2b 1129 fd_set fds = devices.infds;
a161883a 1130 int num;
8ca47e00 1131
a161883a
RR
1132 num = select(devices.max_infd+1, &fds, NULL, NULL, &poll);
1133 /* Could get interrupted */
1134 if (num < 0)
1135 continue;
dde79789 1136 /* If nothing is ready, we're done. */
a161883a 1137 if (num == 0)
8ca47e00
RR
1138 break;
1139
a6bd8e13
RR
1140 /* Otherwise, call the device(s) which have readable file
1141 * descriptors and a method of handling them. */
17cbca2b 1142 for (i = devices.dev; i; i = i->next) {
8ca47e00 1143 if (i->handle_input && FD_ISSET(i->fd, &fds)) {
56ae43df
RR
1144 if (i->handle_input(fd, i))
1145 continue;
1146
dde79789 1147 /* If handle_input() returns false, it means we
56ae43df
RR
1148 * should no longer service it. Networking and
1149 * console do this when there's no input
1150 * buffers to deliver into. Console also uses
a6bd8e13 1151 * it when it discovers that stdin is closed. */
56ae43df 1152 FD_CLR(i->fd, &devices.infds);
8ca47e00
RR
1153 }
1154 }
a161883a
RR
1155
1156 /* Is this the timeout fd? */
1157 if (FD_ISSET(timeoutpipe[0], &fds))
1158 handle_timeout(fd);
8ca47e00
RR
1159 }
1160}
1161
dde79789
RR
1162/*L:190
1163 * Device Setup
1164 *
1165 * All devices need a descriptor so the Guest knows it exists, and a "struct
1166 * device" so the Launcher can keep track of it. We have common helper
a6bd8e13
RR
1167 * routines to allocate and manage them.
1168 */
8ca47e00 1169
a586d4f6
RR
1170/* The layout of the device page is a "struct lguest_device_desc" followed by a
1171 * number of virtqueue descriptors, then two sets of feature bits, then an
1172 * array of configuration bytes. This routine returns the configuration
1173 * pointer. */
1174static u8 *device_config(const struct device *dev)
1175{
1176 return (void *)(dev->desc + 1)
1177 + dev->desc->num_vq * sizeof(struct lguest_vqconfig)
1178 + dev->desc->feature_len * 2;
17cbca2b
RR
1179}
1180
a586d4f6
RR
1181/* This routine allocates a new "struct lguest_device_desc" from descriptor
1182 * table page just above the Guest's normal memory. It returns a pointer to
1183 * that descriptor. */
1184static struct lguest_device_desc *new_dev_desc(u16 type)
17cbca2b 1185{
a586d4f6
RR
1186 struct lguest_device_desc d = { .type = type };
1187 void *p;
17cbca2b 1188
a586d4f6
RR
1189 /* Figure out where the next device config is, based on the last one. */
1190 if (devices.lastdev)
1191 p = device_config(devices.lastdev)
1192 + devices.lastdev->desc->config_len;
1193 else
1194 p = devices.descpage;
17cbca2b 1195
a586d4f6
RR
1196 /* We only have one page for all the descriptors. */
1197 if (p + sizeof(d) > (void *)devices.descpage + getpagesize())
1198 errx(1, "Too many devices");
17cbca2b 1199
a586d4f6
RR
1200 /* p might not be aligned, so we memcpy in. */
1201 return memcpy(p, &d, sizeof(d));
17cbca2b
RR
1202}
1203
a586d4f6
RR
1204/* Each device descriptor is followed by the description of its virtqueues. We
1205 * specify how many descriptors the virtqueue is to have. */
17cbca2b 1206static void add_virtqueue(struct device *dev, unsigned int num_descs,
a161883a 1207 void (*handle_output)(int, struct virtqueue *, bool))
17cbca2b
RR
1208{
1209 unsigned int pages;
1210 struct virtqueue **i, *vq = malloc(sizeof(*vq));
1211 void *p;
1212
a6bd8e13 1213 /* First we need some memory for this virtqueue. */
42b36cc0
RR
1214 pages = (vring_size(num_descs, getpagesize()) + getpagesize() - 1)
1215 / getpagesize();
17cbca2b
RR
1216 p = get_pages(pages);
1217
d1c856e0
RR
1218 /* Initialize the virtqueue */
1219 vq->next = NULL;
1220 vq->last_avail_idx = 0;
1221 vq->dev = dev;
20887611 1222 vq->inflight = 0;
a161883a 1223 vq->blocked = false;
d1c856e0 1224
17cbca2b
RR
1225 /* Initialize the configuration. */
1226 vq->config.num = num_descs;
1227 vq->config.irq = devices.next_irq++;
1228 vq->config.pfn = to_guest_phys(p) / getpagesize();
1229
1230 /* Initialize the vring. */
42b36cc0 1231 vring_init(&vq->vring, num_descs, p, getpagesize());
17cbca2b 1232
a586d4f6
RR
1233 /* Append virtqueue to this device's descriptor. We use
1234 * device_config() to get the end of the device's current virtqueues;
1235 * we check that we haven't added any config or feature information
1236 * yet, otherwise we'd be overwriting them. */
1237 assert(dev->desc->config_len == 0 && dev->desc->feature_len == 0);
1238 memcpy(device_config(dev), &vq->config, sizeof(vq->config));
1239 dev->desc->num_vq++;
1240
1241 verbose("Virtqueue page %#lx\n", to_guest_phys(p));
17cbca2b
RR
1242
1243 /* Add to tail of list, so dev->vq is first vq, dev->vq->next is
1244 * second. */
1245 for (i = &dev->vq; *i; i = &(*i)->next);
1246 *i = vq;
1247
e1e72965
RR
1248 /* Set the routine to call when the Guest does something to this
1249 * virtqueue. */
17cbca2b 1250 vq->handle_output = handle_output;
e1e72965 1251
426e3e0a
RR
1252 /* As an optimization, set the advisory "Don't Notify Me" flag if we
1253 * don't have a handler */
17cbca2b
RR
1254 if (!handle_output)
1255 vq->vring.used->flags = VRING_USED_F_NO_NOTIFY;
8ca47e00
RR
1256}
1257
6e5aa7ef 1258/* The first half of the feature bitmask is for us to advertise features. The
a6bd8e13 1259 * second half is for the Guest to accept features. */
a586d4f6
RR
1260static void add_feature(struct device *dev, unsigned bit)
1261{
6e5aa7ef 1262 u8 *features = get_feature_bits(dev);
a586d4f6
RR
1263
1264 /* We can't extend the feature bits once we've added config bytes */
1265 if (dev->desc->feature_len <= bit / CHAR_BIT) {
1266 assert(dev->desc->config_len == 0);
1267 dev->desc->feature_len = (bit / CHAR_BIT) + 1;
1268 }
1269
a586d4f6
RR
1270 features[bit / CHAR_BIT] |= (1 << (bit % CHAR_BIT));
1271}
1272
1273/* This routine sets the configuration fields for an existing device's
1274 * descriptor. It only works for the last device, but that's OK because that's
1275 * how we use it. */
1276static void set_config(struct device *dev, unsigned len, const void *conf)
1277{
1278 /* Check we haven't overflowed our single page. */
1279 if (device_config(dev) + len > devices.descpage + getpagesize())
1280 errx(1, "Too many devices");
1281
1282 /* Copy in the config information, and store the length. */
1283 memcpy(device_config(dev), conf, len);
1284 dev->desc->config_len = len;
1285}
1286
17cbca2b 1287/* This routine does all the creation and setup of a new device, including
a6bd8e13
RR
1288 * calling new_dev_desc() to allocate the descriptor and device memory.
1289 *
1290 * See what I mean about userspace being boring? */
17cbca2b
RR
1291static struct device *new_device(const char *name, u16 type, int fd,
1292 bool (*handle_input)(int, struct device *))
8ca47e00
RR
1293{
1294 struct device *dev = malloc(sizeof(*dev));
1295
dde79789 1296 /* Now we populate the fields one at a time. */
8ca47e00 1297 dev->fd = fd;
dde79789
RR
1298 /* If we have an input handler for this file descriptor, then we add it
1299 * to the device_list's fdset and maxfd. */
8ca47e00 1300 if (handle_input)
17cbca2b
RR
1301 add_device_fd(dev->fd);
1302 dev->desc = new_dev_desc(type);
8ca47e00 1303 dev->handle_input = handle_input;
17cbca2b 1304 dev->name = name;
d1c856e0 1305 dev->vq = NULL;
a007a751 1306 dev->ready = NULL;
a586d4f6
RR
1307
1308 /* Append to device list. Prepending to a single-linked list is
1309 * easier, but the user expects the devices to be arranged on the bus
1310 * in command-line order. The first network device on the command line
1311 * is eth0, the first block device /dev/vda, etc. */
1312 if (devices.lastdev)
1313 devices.lastdev->next = dev;
1314 else
1315 devices.dev = dev;
1316 devices.lastdev = dev;
1317
8ca47e00
RR
1318 return dev;
1319}
1320
dde79789
RR
1321/* Our first setup routine is the console. It's a fairly simple device, but
1322 * UNIX tty handling makes it uglier than it could be. */
17cbca2b 1323static void setup_console(void)
8ca47e00
RR
1324{
1325 struct device *dev;
1326
dde79789 1327 /* If we can save the initial standard input settings... */
8ca47e00
RR
1328 if (tcgetattr(STDIN_FILENO, &orig_term) == 0) {
1329 struct termios term = orig_term;
dde79789
RR
1330 /* Then we turn off echo, line buffering and ^C etc. We want a
1331 * raw input stream to the Guest. */
8ca47e00
RR
1332 term.c_lflag &= ~(ISIG|ICANON|ECHO);
1333 tcsetattr(STDIN_FILENO, TCSANOW, &term);
dde79789
RR
1334 /* If we exit gracefully, the original settings will be
1335 * restored so the user can see what they're typing. */
8ca47e00
RR
1336 atexit(restore_term);
1337 }
1338
17cbca2b
RR
1339 dev = new_device("console", VIRTIO_ID_CONSOLE,
1340 STDIN_FILENO, handle_console_input);
dde79789 1341 /* We store the console state in dev->priv, and initialize it. */
8ca47e00
RR
1342 dev->priv = malloc(sizeof(struct console_abort));
1343 ((struct console_abort *)dev->priv)->count = 0;
8ca47e00 1344
56ae43df
RR
1345 /* The console needs two virtqueues: the input then the output. When
1346 * they put something the input queue, we make sure we're listening to
1347 * stdin. When they put something in the output queue, we write it to
e1e72965 1348 * stdout. */
56ae43df 1349 add_virtqueue(dev, VIRTQUEUE_NUM, enable_fd);
17cbca2b
RR
1350 add_virtqueue(dev, VIRTQUEUE_NUM, handle_console_output);
1351
1352 verbose("device %u: console\n", devices.device_num++);
8ca47e00 1353}
17cbca2b 1354/*:*/
8ca47e00 1355
a161883a
RR
1356static void timeout_alarm(int sig)
1357{
1358 write(timeoutpipe[1], "", 1);
1359}
1360
1361static void setup_timeout(void)
1362{
1363 if (pipe(timeoutpipe) != 0)
1364 err(1, "Creating timeout pipe");
1365
1366 if (fcntl(timeoutpipe[1], F_SETFL,
1367 fcntl(timeoutpipe[1], F_GETFL) | O_NONBLOCK) != 0)
1368 err(1, "Making timeout pipe nonblocking");
1369
1370 add_device_fd(timeoutpipe[0]);
1371 signal(SIGALRM, timeout_alarm);
1372}
1373
17cbca2b
RR
1374/*M:010 Inter-guest networking is an interesting area. Simplest is to have a
1375 * --sharenet=<name> option which opens or creates a named pipe. This can be
1376 * used to send packets to another guest in a 1:1 manner.
dde79789 1377 *
17cbca2b
RR
1378 * More sopisticated is to use one of the tools developed for project like UML
1379 * to do networking.
dde79789 1380 *
17cbca2b
RR
1381 * Faster is to do virtio bonding in kernel. Doing this 1:1 would be
1382 * completely generic ("here's my vring, attach to your vring") and would work
1383 * for any traffic. Of course, namespace and permissions issues need to be
1384 * dealt with. A more sophisticated "multi-channel" virtio_net.c could hide
1385 * multiple inter-guest channels behind one interface, although it would
1386 * require some manner of hotplugging new virtio channels.
1387 *
1388 * Finally, we could implement a virtio network switch in the kernel. :*/
8ca47e00
RR
1389
1390static u32 str2ip(const char *ipaddr)
1391{
dec6a2be 1392 unsigned int b[4];
8ca47e00 1393
dec6a2be
MM
1394 if (sscanf(ipaddr, "%u.%u.%u.%u", &b[0], &b[1], &b[2], &b[3]) != 4)
1395 errx(1, "Failed to parse IP address '%s'", ipaddr);
1396 return (b[0] << 24) | (b[1] << 16) | (b[2] << 8) | b[3];
1397}
1398
1399static void str2mac(const char *macaddr, unsigned char mac[6])
1400{
1401 unsigned int m[6];
1402 if (sscanf(macaddr, "%02x:%02x:%02x:%02x:%02x:%02x",
1403 &m[0], &m[1], &m[2], &m[3], &m[4], &m[5]) != 6)
1404 errx(1, "Failed to parse mac address '%s'", macaddr);
1405 mac[0] = m[0];
1406 mac[1] = m[1];
1407 mac[2] = m[2];
1408 mac[3] = m[3];
1409 mac[4] = m[4];
1410 mac[5] = m[5];
8ca47e00
RR
1411}
1412
dde79789
RR
1413/* This code is "adapted" from libbridge: it attaches the Host end of the
1414 * network device to the bridge device specified by the command line.
1415 *
1416 * This is yet another James Morris contribution (I'm an IP-level guy, so I
1417 * dislike bridging), and I just try not to break it. */
8ca47e00
RR
1418static void add_to_bridge(int fd, const char *if_name, const char *br_name)
1419{
1420 int ifidx;
1421 struct ifreq ifr;
1422
1423 if (!*br_name)
1424 errx(1, "must specify bridge name");
1425
1426 ifidx = if_nametoindex(if_name);
1427 if (!ifidx)
1428 errx(1, "interface %s does not exist!", if_name);
1429
1430 strncpy(ifr.ifr_name, br_name, IFNAMSIZ);
dec6a2be 1431 ifr.ifr_name[IFNAMSIZ-1] = '\0';
8ca47e00
RR
1432 ifr.ifr_ifindex = ifidx;
1433 if (ioctl(fd, SIOCBRADDIF, &ifr) < 0)
1434 err(1, "can't add %s to bridge %s", if_name, br_name);
1435}
1436
dde79789
RR
1437/* This sets up the Host end of the network device with an IP address, brings
1438 * it up so packets will flow, the copies the MAC address into the hwaddr
17cbca2b 1439 * pointer. */
dec6a2be 1440static void configure_device(int fd, const char *tapif, u32 ipaddr)
8ca47e00
RR
1441{
1442 struct ifreq ifr;
1443 struct sockaddr_in *sin = (struct sockaddr_in *)&ifr.ifr_addr;
1444
1445 memset(&ifr, 0, sizeof(ifr));
dec6a2be
MM
1446 strcpy(ifr.ifr_name, tapif);
1447
1448 /* Don't read these incantations. Just cut & paste them like I did! */
8ca47e00
RR
1449 sin->sin_family = AF_INET;
1450 sin->sin_addr.s_addr = htonl(ipaddr);
1451 if (ioctl(fd, SIOCSIFADDR, &ifr) != 0)
dec6a2be 1452 err(1, "Setting %s interface address", tapif);
8ca47e00
RR
1453 ifr.ifr_flags = IFF_UP;
1454 if (ioctl(fd, SIOCSIFFLAGS, &ifr) != 0)
dec6a2be
MM
1455 err(1, "Bringing interface %s up", tapif);
1456}
1457
dec6a2be 1458static int get_tun_device(char tapif[IFNAMSIZ])
8ca47e00 1459{
8ca47e00 1460 struct ifreq ifr;
dec6a2be
MM
1461 int netfd;
1462
1463 /* Start with this zeroed. Messy but sure. */
1464 memset(&ifr, 0, sizeof(ifr));
8ca47e00 1465
dde79789
RR
1466 /* We open the /dev/net/tun device and tell it we want a tap device. A
1467 * tap device is like a tun device, only somehow different. To tell
1468 * the truth, I completely blundered my way through this code, but it
1469 * works now! */
8ca47e00 1470 netfd = open_or_die("/dev/net/tun", O_RDWR);
398f187d 1471 ifr.ifr_flags = IFF_TAP | IFF_NO_PI | IFF_VNET_HDR;
8ca47e00
RR
1472 strcpy(ifr.ifr_name, "tap%d");
1473 if (ioctl(netfd, TUNSETIFF, &ifr) != 0)
1474 err(1, "configuring /dev/net/tun");
dec6a2be 1475
398f187d
RR
1476 if (ioctl(netfd, TUNSETOFFLOAD,
1477 TUN_F_CSUM|TUN_F_TSO4|TUN_F_TSO6|TUN_F_TSO_ECN) != 0)
1478 err(1, "Could not set features for tun device");
1479
dde79789
RR
1480 /* We don't need checksums calculated for packets coming in this
1481 * device: trust us! */
8ca47e00
RR
1482 ioctl(netfd, TUNSETNOCSUM, 1);
1483
dec6a2be
MM
1484 memcpy(tapif, ifr.ifr_name, IFNAMSIZ);
1485 return netfd;
1486}
1487
1488/*L:195 Our network is a Host<->Guest network. This can either use bridging or
1489 * routing, but the principle is the same: it uses the "tun" device to inject
1490 * packets into the Host as if they came in from a normal network card. We
1491 * just shunt packets between the Guest and the tun device. */
1492static void setup_tun_net(char *arg)
1493{
1494 struct device *dev;
1495 int netfd, ipfd;
1496 u32 ip = INADDR_ANY;
1497 bool bridging = false;
1498 char tapif[IFNAMSIZ], *p;
1499 struct virtio_net_config conf;
1500
1501 netfd = get_tun_device(tapif);
1502
17cbca2b
RR
1503 /* First we create a new network device. */
1504 dev = new_device("net", VIRTIO_ID_NET, netfd, handle_tun_input);
dde79789 1505
56ae43df
RR
1506 /* Network devices need a receive and a send queue, just like
1507 * console. */
5dae785a 1508 add_virtqueue(dev, VIRTQUEUE_NUM, net_enable_fd);
17cbca2b 1509 add_virtqueue(dev, VIRTQUEUE_NUM, handle_net_output);
8ca47e00 1510
dde79789
RR
1511 /* We need a socket to perform the magic network ioctls to bring up the
1512 * tap interface, connect to the bridge etc. Any socket will do! */
8ca47e00
RR
1513 ipfd = socket(PF_INET, SOCK_DGRAM, IPPROTO_IP);
1514 if (ipfd < 0)
1515 err(1, "opening IP socket");
1516
dde79789 1517 /* If the command line was --tunnet=bridge:<name> do bridging. */
8ca47e00 1518 if (!strncmp(BRIDGE_PFX, arg, strlen(BRIDGE_PFX))) {
dec6a2be
MM
1519 arg += strlen(BRIDGE_PFX);
1520 bridging = true;
1521 }
1522
1523 /* A mac address may follow the bridge name or IP address */
1524 p = strchr(arg, ':');
1525 if (p) {
1526 str2mac(p+1, conf.mac);
40c42076 1527 add_feature(dev, VIRTIO_NET_F_MAC);
dec6a2be 1528 *p = '\0';
dec6a2be
MM
1529 }
1530
1531 /* arg is now either an IP address or a bridge name */
1532 if (bridging)
1533 add_to_bridge(ipfd, tapif, arg);
1534 else
8ca47e00
RR
1535 ip = str2ip(arg);
1536
dec6a2be
MM
1537 /* Set up the tun device. */
1538 configure_device(ipfd, tapif, ip);
8ca47e00 1539
20887611 1540 add_feature(dev, VIRTIO_F_NOTIFY_ON_EMPTY);
398f187d
RR
1541 /* Expect Guest to handle everything except UFO */
1542 add_feature(dev, VIRTIO_NET_F_CSUM);
1543 add_feature(dev, VIRTIO_NET_F_GUEST_CSUM);
398f187d
RR
1544 add_feature(dev, VIRTIO_NET_F_GUEST_TSO4);
1545 add_feature(dev, VIRTIO_NET_F_GUEST_TSO6);
1546 add_feature(dev, VIRTIO_NET_F_GUEST_ECN);
1547 add_feature(dev, VIRTIO_NET_F_HOST_TSO4);
1548 add_feature(dev, VIRTIO_NET_F_HOST_TSO6);
1549 add_feature(dev, VIRTIO_NET_F_HOST_ECN);
a586d4f6 1550 set_config(dev, sizeof(conf), &conf);
8ca47e00 1551
a586d4f6 1552 /* We don't need the socket any more; setup is done. */
8ca47e00
RR
1553 close(ipfd);
1554
dec6a2be
MM
1555 devices.device_num++;
1556
1557 if (bridging)
1558 verbose("device %u: tun %s attached to bridge: %s\n",
1559 devices.device_num, tapif, arg);
1560 else
1561 verbose("device %u: tun %s: %s\n",
1562 devices.device_num, tapif, arg);
8ca47e00 1563}
17cbca2b 1564
e1e72965
RR
1565/* Our block (disk) device should be really simple: the Guest asks for a block
1566 * number and we read or write that position in the file. Unfortunately, that
1567 * was amazingly slow: the Guest waits until the read is finished before
1568 * running anything else, even if it could have been doing useful work.
17cbca2b 1569 *
e1e72965
RR
1570 * We could use async I/O, except it's reputed to suck so hard that characters
1571 * actually go missing from your code when you try to use it.
17cbca2b
RR
1572 *
1573 * So we farm the I/O out to thread, and communicate with it via a pipe. */
1574
e1e72965 1575/* This hangs off device->priv. */
17cbca2b
RR
1576struct vblk_info
1577{
1578 /* The size of the file. */
1579 off64_t len;
1580
1581 /* The file descriptor for the file. */
1582 int fd;
1583
1584 /* IO thread listens on this file descriptor [0]. */
1585 int workpipe[2];
1586
1587 /* IO thread writes to this file descriptor to mark it done, then
1588 * Launcher triggers interrupt to Guest. */
1589 int done_fd;
1590};
1591
e1e72965
RR
1592/*L:210
1593 * The Disk
1594 *
1595 * Remember that the block device is handled by a separate I/O thread. We head
1596 * straight into the core of that thread here:
1597 */
17cbca2b
RR
1598static bool service_io(struct device *dev)
1599{
1600 struct vblk_info *vblk = dev->priv;
1601 unsigned int head, out_num, in_num, wlen;
1602 int ret;
cb38fa23 1603 u8 *in;
17cbca2b
RR
1604 struct virtio_blk_outhdr *out;
1605 struct iovec iov[dev->vq->vring.num];
1606 off64_t off;
1607
e1e72965 1608 /* See if there's a request waiting. If not, nothing to do. */
17cbca2b
RR
1609 head = get_vq_desc(dev->vq, iov, &out_num, &in_num);
1610 if (head == dev->vq->vring.num)
1611 return false;
1612
e1e72965
RR
1613 /* Every block request should contain at least one output buffer
1614 * (detailing the location on disk and the type of request) and one
1615 * input buffer (to hold the result). */
17cbca2b
RR
1616 if (out_num == 0 || in_num == 0)
1617 errx(1, "Bad virtblk cmd %u out=%u in=%u",
1618 head, out_num, in_num);
1619
1620 out = convert(&iov[0], struct virtio_blk_outhdr);
cb38fa23 1621 in = convert(&iov[out_num+in_num-1], u8);
17cbca2b
RR
1622 off = out->sector * 512;
1623
e1e72965
RR
1624 /* The block device implements "barriers", where the Guest indicates
1625 * that it wants all previous writes to occur before this write. We
1626 * don't have a way of asking our kernel to do a barrier, so we just
1627 * synchronize all the data in the file. Pretty poor, no? */
17cbca2b
RR
1628 if (out->type & VIRTIO_BLK_T_BARRIER)
1629 fdatasync(vblk->fd);
1630
e1e72965
RR
1631 /* In general the virtio block driver is allowed to try SCSI commands.
1632 * It'd be nice if we supported eject, for example, but we don't. */
17cbca2b
RR
1633 if (out->type & VIRTIO_BLK_T_SCSI_CMD) {
1634 fprintf(stderr, "Scsi commands unsupported\n");
cb38fa23 1635 *in = VIRTIO_BLK_S_UNSUPP;
1200e646 1636 wlen = sizeof(*in);
17cbca2b
RR
1637 } else if (out->type & VIRTIO_BLK_T_OUT) {
1638 /* Write */
1639
1640 /* Move to the right location in the block file. This can fail
1641 * if they try to write past end. */
1642 if (lseek64(vblk->fd, off, SEEK_SET) != off)
1643 err(1, "Bad seek to sector %llu", out->sector);
1644
1645 ret = writev(vblk->fd, iov+1, out_num-1);
1646 verbose("WRITE to sector %llu: %i\n", out->sector, ret);
1647
1648 /* Grr... Now we know how long the descriptor they sent was, we
1649 * make sure they didn't try to write over the end of the block
1650 * file (possibly extending it). */
1651 if (ret > 0 && off + ret > vblk->len) {
1652 /* Trim it back to the correct length */
1653 ftruncate64(vblk->fd, vblk->len);
1654 /* Die, bad Guest, die. */
1655 errx(1, "Write past end %llu+%u", off, ret);
1656 }
1200e646 1657 wlen = sizeof(*in);
cb38fa23 1658 *in = (ret >= 0 ? VIRTIO_BLK_S_OK : VIRTIO_BLK_S_IOERR);
17cbca2b
RR
1659 } else {
1660 /* Read */
1661
1662 /* Move to the right location in the block file. This can fail
1663 * if they try to read past end. */
1664 if (lseek64(vblk->fd, off, SEEK_SET) != off)
1665 err(1, "Bad seek to sector %llu", out->sector);
1666
1667 ret = readv(vblk->fd, iov+1, in_num-1);
1668 verbose("READ from sector %llu: %i\n", out->sector, ret);
1669 if (ret >= 0) {
1200e646 1670 wlen = sizeof(*in) + ret;
cb38fa23 1671 *in = VIRTIO_BLK_S_OK;
17cbca2b 1672 } else {
1200e646 1673 wlen = sizeof(*in);
cb38fa23 1674 *in = VIRTIO_BLK_S_IOERR;
17cbca2b
RR
1675 }
1676 }
1677
1678 /* We can't trigger an IRQ, because we're not the Launcher. It does
1679 * that when we tell it we're done. */
1680 add_used(dev->vq, head, wlen);
1681 return true;
1682}
1683
1684/* This is the thread which actually services the I/O. */
1685static int io_thread(void *_dev)
1686{
1687 struct device *dev = _dev;
1688 struct vblk_info *vblk = dev->priv;
1689 char c;
1690
1691 /* Close other side of workpipe so we get 0 read when main dies. */
1692 close(vblk->workpipe[1]);
1693 /* Close the other side of the done_fd pipe. */
1694 close(dev->fd);
1695
1696 /* When this read fails, it means Launcher died, so we follow. */
1697 while (read(vblk->workpipe[0], &c, 1) == 1) {
e1e72965 1698 /* We acknowledge each request immediately to reduce latency,
17cbca2b 1699 * rather than waiting until we've done them all. I haven't
a6bd8e13
RR
1700 * measured to see if it makes any difference.
1701 *
1702 * That would be an interesting test, wouldn't it? You could
1703 * also try having more than one I/O thread. */
17cbca2b
RR
1704 while (service_io(dev))
1705 write(vblk->done_fd, &c, 1);
1706 }
1707 return 0;
1708}
1709
e1e72965 1710/* Now we've seen the I/O thread, we return to the Launcher to see what happens
a6bd8e13 1711 * when that thread tells us it's completed some I/O. */
17cbca2b
RR
1712static bool handle_io_finish(int fd, struct device *dev)
1713{
1714 char c;
1715
e1e72965
RR
1716 /* If the I/O thread died, presumably it printed the error, so we
1717 * simply exit. */
17cbca2b
RR
1718 if (read(dev->fd, &c, 1) != 1)
1719 exit(1);
1720
1721 /* It did some work, so trigger the irq. */
1722 trigger_irq(fd, dev->vq);
1723 return true;
1724}
1725
e1e72965 1726/* When the Guest submits some I/O, we just need to wake the I/O thread. */
a161883a 1727static void handle_virtblk_output(int fd, struct virtqueue *vq, bool timeout)
17cbca2b
RR
1728{
1729 struct vblk_info *vblk = vq->dev->priv;
1730 char c = 0;
1731
1732 /* Wake up I/O thread and tell it to go to work! */
1733 if (write(vblk->workpipe[1], &c, 1) != 1)
1734 /* Presumably it indicated why it died. */
1735 exit(1);
1736}
1737
e1e72965 1738/*L:198 This actually sets up a virtual block device. */
17cbca2b
RR
1739static void setup_block_file(const char *filename)
1740{
1741 int p[2];
1742 struct device *dev;
1743 struct vblk_info *vblk;
1744 void *stack;
a586d4f6 1745 struct virtio_blk_config conf;
17cbca2b
RR
1746
1747 /* This is the pipe the I/O thread will use to tell us I/O is done. */
1748 pipe(p);
1749
1750 /* The device responds to return from I/O thread. */
1751 dev = new_device("block", VIRTIO_ID_BLOCK, p[0], handle_io_finish);
1752
e1e72965 1753 /* The device has one virtqueue, where the Guest places requests. */
17cbca2b
RR
1754 add_virtqueue(dev, VIRTQUEUE_NUM, handle_virtblk_output);
1755
1756 /* Allocate the room for our own bookkeeping */
1757 vblk = dev->priv = malloc(sizeof(*vblk));
1758
1759 /* First we open the file and store the length. */
1760 vblk->fd = open_or_die(filename, O_RDWR|O_LARGEFILE);
1761 vblk->len = lseek64(vblk->fd, 0, SEEK_END);
1762
a586d4f6
RR
1763 /* We support barriers. */
1764 add_feature(dev, VIRTIO_BLK_F_BARRIER);
1765
17cbca2b 1766 /* Tell Guest how many sectors this device has. */
a586d4f6 1767 conf.capacity = cpu_to_le64(vblk->len / 512);
17cbca2b
RR
1768
1769 /* Tell Guest not to put in too many descriptors at once: two are used
1770 * for the in and out elements. */
a586d4f6
RR
1771 add_feature(dev, VIRTIO_BLK_F_SEG_MAX);
1772 conf.seg_max = cpu_to_le32(VIRTQUEUE_NUM - 2);
1773
1774 set_config(dev, sizeof(conf), &conf);
17cbca2b
RR
1775
1776 /* The I/O thread writes to this end of the pipe when done. */
1777 vblk->done_fd = p[1];
1778
e1e72965
RR
1779 /* This is the second pipe, which is how we tell the I/O thread about
1780 * more work. */
17cbca2b
RR
1781 pipe(vblk->workpipe);
1782
a6bd8e13
RR
1783 /* Create stack for thread and run it. Since stack grows upwards, we
1784 * point the stack pointer to the end of this region. */
17cbca2b 1785 stack = malloc(32768);
ec04b13f
BR
1786 /* SIGCHLD - We dont "wait" for our cloned thread, so prevent it from
1787 * becoming a zombie. */
a6bd8e13 1788 if (clone(io_thread, stack + 32768, CLONE_VM | SIGCHLD, dev) == -1)
17cbca2b
RR
1789 err(1, "Creating clone");
1790
1791 /* We don't need to keep the I/O thread's end of the pipes open. */
1792 close(vblk->done_fd);
1793 close(vblk->workpipe[0]);
1794
1795 verbose("device %u: virtblock %llu sectors\n",
a586d4f6 1796 devices.device_num, le64_to_cpu(conf.capacity));
17cbca2b 1797}
28fd6d7f
RR
1798
1799/* Our random number generator device reads from /dev/random into the Guest's
1800 * input buffers. The usual case is that the Guest doesn't want random numbers
1801 * and so has no buffers although /dev/random is still readable, whereas
1802 * console is the reverse.
1803 *
1804 * The same logic applies, however. */
1805static bool handle_rng_input(int fd, struct device *dev)
1806{
1807 int len;
1808 unsigned int head, in_num, out_num, totlen = 0;
1809 struct iovec iov[dev->vq->vring.num];
1810
1811 /* First we need a buffer from the Guests's virtqueue. */
1812 head = get_vq_desc(dev->vq, iov, &out_num, &in_num);
1813
1814 /* If they're not ready for input, stop listening to this file
1815 * descriptor. We'll start again once they add an input buffer. */
1816 if (head == dev->vq->vring.num)
1817 return false;
1818
1819 if (out_num)
1820 errx(1, "Output buffers in rng?");
1821
1822 /* This is why we convert to iovecs: the readv() call uses them, and so
1823 * it reads straight into the Guest's buffer. We loop to make sure we
1824 * fill it. */
1825 while (!iov_empty(iov, in_num)) {
1826 len = readv(dev->fd, iov, in_num);
1827 if (len <= 0)
1828 err(1, "Read from /dev/random gave %i", len);
1829 iov_consume(iov, in_num, len);
1830 totlen += len;
1831 }
1832
1833 /* Tell the Guest about the new input. */
1834 add_used_and_trigger(fd, dev->vq, head, totlen);
1835
1836 /* Everything went OK! */
1837 return true;
1838}
1839
1840/* And this creates a "hardware" random number device for the Guest. */
1841static void setup_rng(void)
1842{
1843 struct device *dev;
1844 int fd;
1845
1846 fd = open_or_die("/dev/random", O_RDONLY);
1847
1848 /* The device responds to return from I/O thread. */
1849 dev = new_device("rng", VIRTIO_ID_RNG, fd, handle_rng_input);
1850
1851 /* The device has one virtqueue, where the Guest places inbufs. */
1852 add_virtqueue(dev, VIRTQUEUE_NUM, enable_fd);
1853
1854 verbose("device %u: rng\n", devices.device_num++);
1855}
a6bd8e13 1856/* That's the end of device setup. */
ec04b13f 1857
a6bd8e13 1858/*L:230 Reboot is pretty easy: clean up and exec() the Launcher afresh. */
ec04b13f
BR
1859static void __attribute__((noreturn)) restart_guest(void)
1860{
1861 unsigned int i;
1862
8c79873d
RR
1863 /* Since we don't track all open fds, we simply close everything beyond
1864 * stderr. */
ec04b13f
BR
1865 for (i = 3; i < FD_SETSIZE; i++)
1866 close(i);
8c79873d
RR
1867
1868 /* The exec automatically gets rid of the I/O and Waker threads. */
ec04b13f
BR
1869 execv(main_args[0], main_args);
1870 err(1, "Could not exec %s", main_args[0]);
1871}
8ca47e00 1872
a6bd8e13 1873/*L:220 Finally we reach the core of the Launcher which runs the Guest, serves
dde79789 1874 * its input and output, and finally, lays it to rest. */
17cbca2b 1875static void __attribute__((noreturn)) run_guest(int lguest_fd)
8ca47e00
RR
1876{
1877 for (;;) {
511801dc 1878 unsigned long args[] = { LHREQ_BREAK, 0 };
17cbca2b 1879 unsigned long notify_addr;
8ca47e00
RR
1880 int readval;
1881
1882 /* We read from the /dev/lguest device to run the Guest. */
e3283fa0
GOC
1883 readval = pread(lguest_fd, &notify_addr,
1884 sizeof(notify_addr), cpu_id);
8ca47e00 1885
17cbca2b
RR
1886 /* One unsigned long means the Guest did HCALL_NOTIFY */
1887 if (readval == sizeof(notify_addr)) {
1888 verbose("Notify on address %#lx\n", notify_addr);
1889 handle_output(lguest_fd, notify_addr);
8ca47e00 1890 continue;
dde79789 1891 /* ENOENT means the Guest died. Reading tells us why. */
8ca47e00
RR
1892 } else if (errno == ENOENT) {
1893 char reason[1024] = { 0 };
e3283fa0 1894 pread(lguest_fd, reason, sizeof(reason)-1, cpu_id);
8ca47e00 1895 errx(1, "%s", reason);
ec04b13f
BR
1896 /* ERESTART means that we need to reboot the guest */
1897 } else if (errno == ERESTART) {
1898 restart_guest();
a161883a 1899 /* EAGAIN means a signal (timeout).
dde79789 1900 * Anything else means a bug or incompatible change. */
8ca47e00
RR
1901 } else if (errno != EAGAIN)
1902 err(1, "Running guest failed");
dde79789 1903
e3283fa0
GOC
1904 /* Only service input on thread for CPU 0. */
1905 if (cpu_id != 0)
1906 continue;
1907
e1e72965 1908 /* Service input, then unset the BREAK to release the Waker. */
17cbca2b 1909 handle_input(lguest_fd);
e3283fa0 1910 if (pwrite(lguest_fd, args, sizeof(args), cpu_id) < 0)
8ca47e00
RR
1911 err(1, "Resetting break");
1912 }
1913}
a6bd8e13 1914/*L:240
e1e72965
RR
1915 * This is the end of the Launcher. The good news: we are over halfway
1916 * through! The bad news: the most fiendish part of the code still lies ahead
1917 * of us.
dde79789 1918 *
e1e72965
RR
1919 * Are you ready? Take a deep breath and join me in the core of the Host, in
1920 * "make Host".
1921 :*/
8ca47e00
RR
1922
1923static struct option opts[] = {
1924 { "verbose", 0, NULL, 'v' },
8ca47e00
RR
1925 { "tunnet", 1, NULL, 't' },
1926 { "block", 1, NULL, 'b' },
28fd6d7f 1927 { "rng", 0, NULL, 'r' },
8ca47e00
RR
1928 { "initrd", 1, NULL, 'i' },
1929 { NULL },
1930};
1931static void usage(void)
1932{
1933 errx(1, "Usage: lguest [--verbose] "
dec6a2be 1934 "[--tunnet=(<ipaddr>:<macaddr>|bridge:<bridgename>:<macaddr>)\n"
8ca47e00
RR
1935 "|--block=<filename>|--initrd=<filename>]...\n"
1936 "<mem-in-mb> vmlinux [args...]");
1937}
1938
3c6b5bfa 1939/*L:105 The main routine is where the real work begins: */
8ca47e00
RR
1940int main(int argc, char *argv[])
1941{
47436aa4
RR
1942 /* Memory, top-level pagetable, code startpoint and size of the
1943 * (optional) initrd. */
1944 unsigned long mem = 0, pgdir, start, initrd_size = 0;
e1e72965 1945 /* Two temporaries and the /dev/lguest file descriptor. */
6570c459 1946 int i, c, lguest_fd;
3c6b5bfa 1947 /* The boot information for the Guest. */
43d33b21 1948 struct boot_params *boot;
dde79789 1949 /* If they specify an initrd file to load. */
8ca47e00
RR
1950 const char *initrd_name = NULL;
1951
ec04b13f
BR
1952 /* Save the args: we "reboot" by execing ourselves again. */
1953 main_args = argv;
1954 /* We don't "wait" for the children, so prevent them from becoming
1955 * zombies. */
1956 signal(SIGCHLD, SIG_IGN);
1957
dde79789
RR
1958 /* First we initialize the device list. Since console and network
1959 * device receive input from a file descriptor, we keep an fdset
1960 * (infds) and the maximum fd number (max_infd) with the head of the
a586d4f6 1961 * list. We also keep a pointer to the last device. Finally, we keep
a6bd8e13
RR
1962 * the next interrupt number to use for devices (1: remember that 0 is
1963 * used by the timer). */
17cbca2b
RR
1964 FD_ZERO(&devices.infds);
1965 devices.max_infd = -1;
a586d4f6 1966 devices.lastdev = NULL;
17cbca2b 1967 devices.next_irq = 1;
8ca47e00 1968
e3283fa0 1969 cpu_id = 0;
dde79789
RR
1970 /* We need to know how much memory so we can set up the device
1971 * descriptor and memory pages for the devices as we parse the command
1972 * line. So we quickly look through the arguments to find the amount
1973 * of memory now. */
6570c459
RR
1974 for (i = 1; i < argc; i++) {
1975 if (argv[i][0] != '-') {
3c6b5bfa
RR
1976 mem = atoi(argv[i]) * 1024 * 1024;
1977 /* We start by mapping anonymous pages over all of
1978 * guest-physical memory range. This fills it with 0,
1979 * and ensures that the Guest won't be killed when it
1980 * tries to access it. */
1981 guest_base = map_zeroed_pages(mem / getpagesize()
1982 + DEVICE_PAGES);
1983 guest_limit = mem;
1984 guest_max = mem + DEVICE_PAGES*getpagesize();
17cbca2b 1985 devices.descpage = get_pages(1);
6570c459
RR
1986 break;
1987 }
1988 }
dde79789
RR
1989
1990 /* The options are fairly straight-forward */
8ca47e00
RR
1991 while ((c = getopt_long(argc, argv, "v", opts, NULL)) != EOF) {
1992 switch (c) {
1993 case 'v':
1994 verbose = true;
1995 break;
8ca47e00 1996 case 't':
17cbca2b 1997 setup_tun_net(optarg);
8ca47e00
RR
1998 break;
1999 case 'b':
17cbca2b 2000 setup_block_file(optarg);
8ca47e00 2001 break;
28fd6d7f
RR
2002 case 'r':
2003 setup_rng();
2004 break;
8ca47e00
RR
2005 case 'i':
2006 initrd_name = optarg;
2007 break;
2008 default:
2009 warnx("Unknown argument %s", argv[optind]);
2010 usage();
2011 }
2012 }
dde79789
RR
2013 /* After the other arguments we expect memory and kernel image name,
2014 * followed by command line arguments for the kernel. */
8ca47e00
RR
2015 if (optind + 2 > argc)
2016 usage();
2017
3c6b5bfa
RR
2018 verbose("Guest base is at %p\n", guest_base);
2019
dde79789 2020 /* We always have a console device */
17cbca2b 2021 setup_console();
8ca47e00 2022
a161883a
RR
2023 /* We can timeout waiting for Guest network transmit. */
2024 setup_timeout();
2025
8ca47e00 2026 /* Now we load the kernel */
47436aa4 2027 start = load_kernel(open_or_die(argv[optind+1], O_RDONLY));
8ca47e00 2028
3c6b5bfa
RR
2029 /* Boot information is stashed at physical address 0 */
2030 boot = from_guest_phys(0);
2031
dde79789 2032 /* Map the initrd image if requested (at top of physical memory) */
8ca47e00
RR
2033 if (initrd_name) {
2034 initrd_size = load_initrd(initrd_name, mem);
dde79789
RR
2035 /* These are the location in the Linux boot header where the
2036 * start and size of the initrd are expected to be found. */
43d33b21
RR
2037 boot->hdr.ramdisk_image = mem - initrd_size;
2038 boot->hdr.ramdisk_size = initrd_size;
dde79789 2039 /* The bootloader type 0xFF means "unknown"; that's OK. */
43d33b21 2040 boot->hdr.type_of_loader = 0xFF;
8ca47e00
RR
2041 }
2042
dde79789 2043 /* Set up the initial linear pagetables, starting below the initrd. */
47436aa4 2044 pgdir = setup_pagetables(mem, initrd_size);
8ca47e00 2045
dde79789
RR
2046 /* The Linux boot header contains an "E820" memory map: ours is a
2047 * simple, single region. */
43d33b21
RR
2048 boot->e820_entries = 1;
2049 boot->e820_map[0] = ((struct e820entry) { 0, mem, E820_RAM });
dde79789 2050 /* The boot header contains a command line pointer: we put the command
43d33b21
RR
2051 * line after the boot header. */
2052 boot->hdr.cmd_line_ptr = to_guest_phys(boot + 1);
e1e72965 2053 /* We use a simple helper to copy the arguments separated by spaces. */
43d33b21 2054 concat((char *)(boot + 1), argv+optind+2);
dde79789 2055
814a0e5c 2056 /* Boot protocol version: 2.07 supports the fields for lguest. */
43d33b21 2057 boot->hdr.version = 0x207;
814a0e5c
RR
2058
2059 /* The hardware_subarch value of "1" tells the Guest it's an lguest. */
43d33b21 2060 boot->hdr.hardware_subarch = 1;
814a0e5c 2061
43d33b21
RR
2062 /* Tell the entry path not to try to reload segment registers. */
2063 boot->hdr.loadflags |= KEEP_SEGMENTS;
8ca47e00 2064
dde79789
RR
2065 /* We tell the kernel to initialize the Guest: this returns the open
2066 * /dev/lguest file descriptor. */
47436aa4 2067 lguest_fd = tell_kernel(pgdir, start);
dde79789 2068
8c79873d
RR
2069 /* We clone off a thread, which wakes the Launcher whenever one of the
2070 * input file descriptors needs attention. We call this the Waker, and
2071 * we'll cover it in a moment. */
2072 setup_waker(lguest_fd);
8ca47e00 2073
dde79789 2074 /* Finally, run the Guest. This doesn't return. */
17cbca2b 2075 run_guest(lguest_fd);
8ca47e00 2076}
f56a384e
RR
2077/*:*/
2078
2079/*M:999
2080 * Mastery is done: you now know everything I do.
2081 *
2082 * But surely you have seen code, features and bugs in your wanderings which
2083 * you now yearn to attack? That is the real game, and I look forward to you
2084 * patching and forking lguest into the Your-Name-Here-visor.
2085 *
2086 * Farewell, and good coding!
2087 * Rusty Russell.
2088 */