1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 *
4 * Copyright (c) 2009, Microsoft Corporation.
5 *
6 * Authors:
7 * Haiyang Zhang <haiyangz@microsoft.com>
8 * Hank Janssen <hjanssen@microsoft.com>
9 * K. Y. Srinivasan <kys@microsoft.com>
10 */
11 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
12
13 #include <linux/kernel.h>
14 #include <linux/mm.h>
15 #include <linux/hyperv.h>
16 #include <linux/uio.h>
17 #include <linux/vmalloc.h>
18 #include <linux/slab.h>
19 #include <linux/prefetch.h>
20 #include <linux/io.h>
21 #include <linux/export.h>
22 #include <asm/mshyperv.h>
23
24 #include "hyperv_vmbus.h"
25
26 #define VMBUS_PKT_TRAILER 8
27
28 /*
29 * When we write to the ring buffer, check if the host needs to
30 * be signaled. Here is the details of this protocol:
31 *
32 * 1. The host guarantees that while it is draining the
33 * ring buffer, it will set the interrupt_mask to
34 * indicate it does not need to be interrupted when
35 * new data is placed.
36 *
37 * 2. The host guarantees that it will completely drain
38 * the ring buffer before exiting the read loop. Further,
39 * once the ring buffer is empty, it will clear the
40 * interrupt_mask and re-check to see if new data has
41 * arrived.
42 *
43 * KYS: Oct. 30, 2016:
44 * It looks like Windows hosts have logic to deal with DOS attacks that
45 * can be triggered if it receives interrupts when it is not expecting
46 * the interrupt. The host expects interrupts only when the ring
47 * transitions from empty to non-empty (or full to non full on the guest
48 * to host ring).
49 * So, base the signaling decision solely on the ring state until the
50 * host logic is fixed.
51 */
52
hv_signal_on_write(u32 old_write,struct vmbus_channel * channel)53 static void hv_signal_on_write(u32 old_write, struct vmbus_channel *channel)
54 {
55 struct hv_ring_buffer_info *rbi = &channel->outbound;
56
57 virt_mb();
58 if (READ_ONCE(rbi->ring_buffer->interrupt_mask))
59 return;
60
61 /* check interrupt_mask before read_index */
62 virt_rmb();
63 /*
64 * This is the only case we need to signal when the
65 * ring transitions from being empty to non-empty.
66 */
67 if (old_write == READ_ONCE(rbi->ring_buffer->read_index)) {
68 ++channel->intr_out_empty;
69 vmbus_setevent(channel);
70 }
71 }
72
73 /* Get the next write location for the specified ring buffer. */
74 static inline u32
hv_get_next_write_location(struct hv_ring_buffer_info * ring_info)75 hv_get_next_write_location(struct hv_ring_buffer_info *ring_info)
76 {
77 u32 next = ring_info->ring_buffer->write_index;
78
79 return next;
80 }
81
82 /* Set the next write location for the specified ring buffer. */
83 static inline void
hv_set_next_write_location(struct hv_ring_buffer_info * ring_info,u32 next_write_location)84 hv_set_next_write_location(struct hv_ring_buffer_info *ring_info,
85 u32 next_write_location)
86 {
87 ring_info->ring_buffer->write_index = next_write_location;
88 }
89
90 /* Get the size of the ring buffer. */
91 static inline u32
hv_get_ring_buffersize(const struct hv_ring_buffer_info * ring_info)92 hv_get_ring_buffersize(const struct hv_ring_buffer_info *ring_info)
93 {
94 return ring_info->ring_datasize;
95 }
96
97 /* Get the read and write indices as u64 of the specified ring buffer. */
98 static inline u64
hv_get_ring_bufferindices(struct hv_ring_buffer_info * ring_info)99 hv_get_ring_bufferindices(struct hv_ring_buffer_info *ring_info)
100 {
101 return (u64)ring_info->ring_buffer->write_index << 32;
102 }
103
104 /*
105 * Helper routine to copy from source to ring buffer.
106 * Assume there is enough room. Handles wrap-around in dest case only!!
107 */
hv_copyto_ringbuffer(struct hv_ring_buffer_info * ring_info,u32 start_write_offset,const void * src,u32 srclen)108 static u32 hv_copyto_ringbuffer(
109 struct hv_ring_buffer_info *ring_info,
110 u32 start_write_offset,
111 const void *src,
112 u32 srclen)
113 {
114 void *ring_buffer = hv_get_ring_buffer(ring_info);
115 u32 ring_buffer_size = hv_get_ring_buffersize(ring_info);
116
117 memcpy(ring_buffer + start_write_offset, src, srclen);
118
119 start_write_offset += srclen;
120 if (start_write_offset >= ring_buffer_size)
121 start_write_offset -= ring_buffer_size;
122
123 return start_write_offset;
124 }
125
126 /*
127 *
128 * hv_get_ringbuffer_availbytes()
129 *
130 * Get number of bytes available to read and to write to
131 * for the specified ring buffer
132 */
133 static void
hv_get_ringbuffer_availbytes(const struct hv_ring_buffer_info * rbi,u32 * read,u32 * write)134 hv_get_ringbuffer_availbytes(const struct hv_ring_buffer_info *rbi,
135 u32 *read, u32 *write)
136 {
137 u32 read_loc, write_loc, dsize;
138
139 /* Capture the read/write indices before they changed */
140 read_loc = READ_ONCE(rbi->ring_buffer->read_index);
141 write_loc = READ_ONCE(rbi->ring_buffer->write_index);
142 dsize = rbi->ring_datasize;
143
144 *write = write_loc >= read_loc ? dsize - (write_loc - read_loc) :
145 read_loc - write_loc;
146 *read = dsize - *write;
147 }
148
149 /* Get various debug metrics for the specified ring buffer. */
hv_ringbuffer_get_debuginfo(struct hv_ring_buffer_info * ring_info,struct hv_ring_buffer_debug_info * debug_info)150 int hv_ringbuffer_get_debuginfo(struct hv_ring_buffer_info *ring_info,
151 struct hv_ring_buffer_debug_info *debug_info)
152 {
153 u32 bytes_avail_towrite;
154 u32 bytes_avail_toread;
155
156 mutex_lock(&ring_info->ring_buffer_mutex);
157
158 if (!ring_info->ring_buffer) {
159 mutex_unlock(&ring_info->ring_buffer_mutex);
160 return -EINVAL;
161 }
162
163 hv_get_ringbuffer_availbytes(ring_info,
164 &bytes_avail_toread,
165 &bytes_avail_towrite);
166 debug_info->bytes_avail_toread = bytes_avail_toread;
167 debug_info->bytes_avail_towrite = bytes_avail_towrite;
168 debug_info->current_read_index = ring_info->ring_buffer->read_index;
169 debug_info->current_write_index = ring_info->ring_buffer->write_index;
170 debug_info->current_interrupt_mask
171 = ring_info->ring_buffer->interrupt_mask;
172 mutex_unlock(&ring_info->ring_buffer_mutex);
173
174 return 0;
175 }
176 EXPORT_SYMBOL_GPL(hv_ringbuffer_get_debuginfo);
177
178 /* Initialize a channel's ring buffer info mutex locks */
hv_ringbuffer_pre_init(struct vmbus_channel * channel)179 void hv_ringbuffer_pre_init(struct vmbus_channel *channel)
180 {
181 mutex_init(&channel->inbound.ring_buffer_mutex);
182 mutex_init(&channel->outbound.ring_buffer_mutex);
183 }
184
185 /* Initialize the ring buffer. */
hv_ringbuffer_init(struct hv_ring_buffer_info * ring_info,struct page * pages,u32 page_cnt,u32 max_pkt_size,bool confidential)186 int hv_ringbuffer_init(struct hv_ring_buffer_info *ring_info,
187 struct page *pages, u32 page_cnt, u32 max_pkt_size,
188 bool confidential)
189 {
190 struct page **pages_wraparound;
191 int i;
192
193 BUILD_BUG_ON((sizeof(struct hv_ring_buffer) != PAGE_SIZE));
194
195 /*
196 * First page holds struct hv_ring_buffer, do wraparound mapping for
197 * the rest.
198 */
199 pages_wraparound = kcalloc(page_cnt * 2 - 1,
200 sizeof(struct page *),
201 GFP_KERNEL);
202 if (!pages_wraparound)
203 return -ENOMEM;
204
205 pages_wraparound[0] = pages;
206 for (i = 0; i < 2 * (page_cnt - 1); i++)
207 pages_wraparound[i + 1] =
208 &pages[i % (page_cnt - 1) + 1];
209
210 ring_info->ring_buffer = (struct hv_ring_buffer *)
211 vmap(pages_wraparound, page_cnt * 2 - 1, VM_MAP,
212 confidential ? PAGE_KERNEL : pgprot_decrypted(PAGE_KERNEL));
213
214 kfree(pages_wraparound);
215 if (!ring_info->ring_buffer)
216 return -ENOMEM;
217
218 /*
219 * Ensure the header page is zero'ed since
220 * encryption status may have changed.
221 */
222 memset(ring_info->ring_buffer, 0, HV_HYP_PAGE_SIZE);
223
224 ring_info->ring_buffer->read_index =
225 ring_info->ring_buffer->write_index = 0;
226
227 /* Set the feature bit for enabling flow control. */
228 ring_info->ring_buffer->feature_bits.value = 1;
229
230 ring_info->ring_size = page_cnt << PAGE_SHIFT;
231 ring_info->ring_size_div10_reciprocal =
232 reciprocal_value(ring_info->ring_size / 10);
233 ring_info->ring_datasize = ring_info->ring_size -
234 sizeof(struct hv_ring_buffer);
235 ring_info->priv_read_index = 0;
236
237 /* Initialize buffer that holds copies of incoming packets */
238 if (max_pkt_size) {
239 ring_info->pkt_buffer = kzalloc(max_pkt_size, GFP_KERNEL);
240 if (!ring_info->pkt_buffer)
241 return -ENOMEM;
242 ring_info->pkt_buffer_size = max_pkt_size;
243 }
244
245 spin_lock_init(&ring_info->ring_lock);
246
247 return 0;
248 }
249
250 /* Cleanup the ring buffer. */
hv_ringbuffer_cleanup(struct hv_ring_buffer_info * ring_info)251 void hv_ringbuffer_cleanup(struct hv_ring_buffer_info *ring_info)
252 {
253 mutex_lock(&ring_info->ring_buffer_mutex);
254 vunmap(ring_info->ring_buffer);
255 ring_info->ring_buffer = NULL;
256 mutex_unlock(&ring_info->ring_buffer_mutex);
257
258 kfree(ring_info->pkt_buffer);
259 ring_info->pkt_buffer = NULL;
260 ring_info->pkt_buffer_size = 0;
261 }
262
263 /*
264 * Check if the ring buffer spinlock is available to take or not; used on
265 * atomic contexts, like panic path (see the Hyper-V framebuffer driver).
266 */
267
hv_ringbuffer_spinlock_busy(struct vmbus_channel * channel)268 bool hv_ringbuffer_spinlock_busy(struct vmbus_channel *channel)
269 {
270 struct hv_ring_buffer_info *rinfo = &channel->outbound;
271
272 return spin_is_locked(&rinfo->ring_lock);
273 }
274 EXPORT_SYMBOL_GPL(hv_ringbuffer_spinlock_busy);
275
276 /* Write to the ring buffer. */
hv_ringbuffer_write(struct vmbus_channel * channel,const struct kvec * kv_list,u32 kv_count,u64 requestid,u64 * trans_id)277 int hv_ringbuffer_write(struct vmbus_channel *channel,
278 const struct kvec *kv_list, u32 kv_count,
279 u64 requestid, u64 *trans_id)
280 {
281 int i;
282 u32 bytes_avail_towrite;
283 u32 totalbytes_towrite = sizeof(u64);
284 u32 next_write_location;
285 u32 old_write;
286 u64 prev_indices;
287 unsigned long flags;
288 struct hv_ring_buffer_info *outring_info = &channel->outbound;
289 struct vmpacket_descriptor *desc = kv_list[0].iov_base;
290 u64 __trans_id, rqst_id = VMBUS_NO_RQSTOR;
291
292 if (channel->rescind)
293 return -ENODEV;
294
295 for (i = 0; i < kv_count; i++)
296 totalbytes_towrite += kv_list[i].iov_len;
297
298 spin_lock_irqsave(&outring_info->ring_lock, flags);
299
300 bytes_avail_towrite = hv_get_bytes_to_write(outring_info);
301
302 /*
303 * If there is only room for the packet, assume it is full.
304 * Otherwise, the next time around, we think the ring buffer
305 * is empty since the read index == write index.
306 */
307 if (bytes_avail_towrite <= totalbytes_towrite) {
308 ++channel->out_full_total;
309
310 if (!channel->out_full_flag) {
311 ++channel->out_full_first;
312 channel->out_full_flag = true;
313 }
314
315 spin_unlock_irqrestore(&outring_info->ring_lock, flags);
316 return -EAGAIN;
317 }
318
319 channel->out_full_flag = false;
320
321 /* Write to the ring buffer */
322 next_write_location = hv_get_next_write_location(outring_info);
323
324 old_write = next_write_location;
325
326 for (i = 0; i < kv_count; i++) {
327 next_write_location = hv_copyto_ringbuffer(outring_info,
328 next_write_location,
329 kv_list[i].iov_base,
330 kv_list[i].iov_len);
331 }
332
333 /*
334 * Allocate the request ID after the data has been copied into the
335 * ring buffer. Once this request ID is allocated, the completion
336 * path could find the data and free it.
337 */
338
339 if (desc->flags == VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED) {
340 if (channel->next_request_id_callback != NULL) {
341 rqst_id = channel->next_request_id_callback(channel, requestid);
342 if (rqst_id == VMBUS_RQST_ERROR) {
343 spin_unlock_irqrestore(&outring_info->ring_lock, flags);
344 return -EAGAIN;
345 }
346 }
347 }
348 desc = hv_get_ring_buffer(outring_info) + old_write;
349 __trans_id = (rqst_id == VMBUS_NO_RQSTOR) ? requestid : rqst_id;
350 /*
351 * Ensure the compiler doesn't generate code that reads the value of
352 * the transaction ID from the ring buffer, which is shared with the
353 * Hyper-V host and subject to being changed at any time.
354 */
355 WRITE_ONCE(desc->trans_id, __trans_id);
356 if (trans_id)
357 *trans_id = __trans_id;
358
359 /* Set previous packet start */
360 prev_indices = hv_get_ring_bufferindices(outring_info);
361
362 next_write_location = hv_copyto_ringbuffer(outring_info,
363 next_write_location,
364 &prev_indices,
365 sizeof(u64));
366
367 /* Issue a full memory barrier before updating the write index */
368 virt_mb();
369
370 /* Now, update the write location */
371 hv_set_next_write_location(outring_info, next_write_location);
372
373
374 spin_unlock_irqrestore(&outring_info->ring_lock, flags);
375
376 hv_signal_on_write(old_write, channel);
377
378 if (channel->rescind) {
379 if (rqst_id != VMBUS_NO_RQSTOR) {
380 /* Reclaim request ID to avoid leak of IDs */
381 if (channel->request_addr_callback != NULL)
382 channel->request_addr_callback(channel, rqst_id);
383 }
384 return -ENODEV;
385 }
386
387 return 0;
388 }
389
hv_ringbuffer_read(struct vmbus_channel * channel,void * buffer,u32 buflen,u32 * buffer_actual_len,u64 * requestid,bool raw)390 int hv_ringbuffer_read(struct vmbus_channel *channel,
391 void *buffer, u32 buflen, u32 *buffer_actual_len,
392 u64 *requestid, bool raw)
393 {
394 struct vmpacket_descriptor *desc;
395 u32 packetlen, offset;
396
397 if (unlikely(buflen == 0))
398 return -EINVAL;
399
400 *buffer_actual_len = 0;
401 *requestid = 0;
402
403 /* Make sure there is something to read */
404 desc = hv_pkt_iter_first(channel);
405 if (desc == NULL) {
406 /*
407 * No error is set when there is even no header, drivers are
408 * supposed to analyze buffer_actual_len.
409 */
410 return 0;
411 }
412
413 offset = raw ? 0 : (desc->offset8 << 3);
414 packetlen = (desc->len8 << 3) - offset;
415 *buffer_actual_len = packetlen;
416 *requestid = desc->trans_id;
417
418 if (unlikely(packetlen > buflen))
419 return -ENOBUFS;
420
421 /* since ring is double mapped, only one copy is necessary */
422 memcpy(buffer, (const char *)desc + offset, packetlen);
423
424 /* Advance ring index to next packet descriptor */
425 __hv_pkt_iter_next(channel, desc);
426
427 /* Notify host of update */
428 hv_pkt_iter_close(channel);
429
430 return 0;
431 }
432
433 /*
434 * Determine number of bytes available in ring buffer after
435 * the current iterator (priv_read_index) location.
436 *
437 * This is similar to hv_get_bytes_to_read but with private
438 * read index instead.
439 */
hv_pkt_iter_avail(const struct hv_ring_buffer_info * rbi)440 static u32 hv_pkt_iter_avail(const struct hv_ring_buffer_info *rbi)
441 {
442 u32 priv_read_loc = rbi->priv_read_index;
443 u32 write_loc;
444
445 /*
446 * The Hyper-V host writes the packet data, then uses
447 * store_release() to update the write_index. Use load_acquire()
448 * here to prevent loads of the packet data from being re-ordered
449 * before the read of the write_index and potentially getting
450 * stale data.
451 */
452 write_loc = virt_load_acquire(&rbi->ring_buffer->write_index);
453
454 if (write_loc >= priv_read_loc)
455 return write_loc - priv_read_loc;
456 else
457 return (rbi->ring_datasize - priv_read_loc) + write_loc;
458 }
459
460 /*
461 * Get first vmbus packet from ring buffer after read_index
462 *
463 * If ring buffer is empty, returns NULL and no other action needed.
464 */
hv_pkt_iter_first(struct vmbus_channel * channel)465 struct vmpacket_descriptor *hv_pkt_iter_first(struct vmbus_channel *channel)
466 {
467 struct hv_ring_buffer_info *rbi = &channel->inbound;
468 struct vmpacket_descriptor *desc, *desc_copy;
469 u32 bytes_avail, pkt_len, pkt_offset;
470
471 hv_debug_delay_test(channel, MESSAGE_DELAY);
472
473 bytes_avail = hv_pkt_iter_avail(rbi);
474 if (bytes_avail < sizeof(struct vmpacket_descriptor))
475 return NULL;
476 bytes_avail = min(rbi->pkt_buffer_size, bytes_avail);
477
478 desc = (struct vmpacket_descriptor *)(hv_get_ring_buffer(rbi) + rbi->priv_read_index);
479
480 /*
481 * Ensure the compiler does not use references to incoming Hyper-V values (which
482 * could change at any moment) when reading local variables later in the code
483 */
484 pkt_len = READ_ONCE(desc->len8) << 3;
485 pkt_offset = READ_ONCE(desc->offset8) << 3;
486
487 /*
488 * If pkt_len is invalid, set it to the smaller of hv_pkt_iter_avail() and
489 * rbi->pkt_buffer_size
490 */
491 if (pkt_len < sizeof(struct vmpacket_descriptor) || pkt_len > bytes_avail)
492 pkt_len = bytes_avail;
493
494 /*
495 * If pkt_offset is invalid, arbitrarily set it to
496 * the size of vmpacket_descriptor
497 */
498 if (pkt_offset < sizeof(struct vmpacket_descriptor) || pkt_offset > pkt_len)
499 pkt_offset = sizeof(struct vmpacket_descriptor);
500
501 /* Copy the Hyper-V packet out of the ring buffer */
502 desc_copy = (struct vmpacket_descriptor *)rbi->pkt_buffer;
503 memcpy(desc_copy, desc, pkt_len);
504
505 /*
506 * Hyper-V could still change len8 and offset8 after the earlier read.
507 * Ensure that desc_copy has legal values for len8 and offset8 that
508 * are consistent with the copy we just made
509 */
510 desc_copy->len8 = pkt_len >> 3;
511 desc_copy->offset8 = pkt_offset >> 3;
512
513 return desc_copy;
514 }
515 EXPORT_SYMBOL_GPL(hv_pkt_iter_first);
516
517 /*
518 * Get next vmbus packet from ring buffer.
519 *
520 * Advances the current location (priv_read_index) and checks for more
521 * data. If the end of the ring buffer is reached, then return NULL.
522 */
523 struct vmpacket_descriptor *
__hv_pkt_iter_next(struct vmbus_channel * channel,const struct vmpacket_descriptor * desc)524 __hv_pkt_iter_next(struct vmbus_channel *channel,
525 const struct vmpacket_descriptor *desc)
526 {
527 struct hv_ring_buffer_info *rbi = &channel->inbound;
528 u32 packetlen = desc->len8 << 3;
529 u32 dsize = rbi->ring_datasize;
530
531 hv_debug_delay_test(channel, MESSAGE_DELAY);
532 /* bump offset to next potential packet */
533 rbi->priv_read_index += packetlen + VMBUS_PKT_TRAILER;
534 if (rbi->priv_read_index >= dsize)
535 rbi->priv_read_index -= dsize;
536
537 /* more data? */
538 return hv_pkt_iter_first(channel);
539 }
540 EXPORT_SYMBOL_GPL(__hv_pkt_iter_next);
541
542 /* How many bytes were read in this iterator cycle */
hv_pkt_iter_bytes_read(const struct hv_ring_buffer_info * rbi,u32 start_read_index)543 static u32 hv_pkt_iter_bytes_read(const struct hv_ring_buffer_info *rbi,
544 u32 start_read_index)
545 {
546 if (rbi->priv_read_index >= start_read_index)
547 return rbi->priv_read_index - start_read_index;
548 else
549 return rbi->ring_datasize - start_read_index +
550 rbi->priv_read_index;
551 }
552
553 /*
554 * Update host ring buffer after iterating over packets. If the host has
555 * stopped queuing new entries because it found the ring buffer full, and
556 * sufficient space is being freed up, signal the host. But be careful to
557 * only signal the host when necessary, both for performance reasons and
558 * because Hyper-V protects itself by throttling guests that signal
559 * inappropriately.
560 *
561 * Determining when to signal is tricky. There are three key data inputs
562 * that must be handled in this order to avoid race conditions:
563 *
564 * 1. Update the read_index
565 * 2. Read the pending_send_sz
566 * 3. Read the current write_index
567 *
568 * The interrupt_mask is not used to determine when to signal. The
569 * interrupt_mask is used only on the guest->host ring buffer when
570 * sending requests to the host. The host does not use it on the host->
571 * guest ring buffer to indicate whether it should be signaled.
572 */
hv_pkt_iter_close(struct vmbus_channel * channel)573 void hv_pkt_iter_close(struct vmbus_channel *channel)
574 {
575 struct hv_ring_buffer_info *rbi = &channel->inbound;
576 u32 curr_write_sz, pending_sz, bytes_read, start_read_index;
577
578 /*
579 * Make sure all reads are done before we update the read index since
580 * the writer may start writing to the read area once the read index
581 * is updated.
582 */
583 virt_rmb();
584 start_read_index = rbi->ring_buffer->read_index;
585 rbi->ring_buffer->read_index = rbi->priv_read_index;
586
587 /*
588 * Older versions of Hyper-V (before WS2102 and Win8) do not
589 * implement pending_send_sz and simply poll if the host->guest
590 * ring buffer is full. No signaling is needed or expected.
591 */
592 if (!rbi->ring_buffer->feature_bits.feat_pending_send_sz)
593 return;
594
595 /*
596 * Issue a full memory barrier before making the signaling decision.
597 * If reading pending_send_sz were to be reordered and happen
598 * before we commit the new read_index, a race could occur. If the
599 * host were to set the pending_send_sz after we have sampled
600 * pending_send_sz, and the ring buffer blocks before we commit the
601 * read index, we could miss sending the interrupt. Issue a full
602 * memory barrier to address this.
603 */
604 virt_mb();
605
606 /*
607 * If the pending_send_sz is zero, then the ring buffer is not
608 * blocked and there is no need to signal. This is far by the
609 * most common case, so exit quickly for best performance.
610 */
611 pending_sz = READ_ONCE(rbi->ring_buffer->pending_send_sz);
612 if (!pending_sz)
613 return;
614
615 /*
616 * Ensure the read of write_index in hv_get_bytes_to_write()
617 * happens after the read of pending_send_sz.
618 */
619 virt_rmb();
620 curr_write_sz = hv_get_bytes_to_write(rbi);
621 bytes_read = hv_pkt_iter_bytes_read(rbi, start_read_index);
622
623 /*
624 * We want to signal the host only if we're transitioning
625 * from a "not enough free space" state to a "enough free
626 * space" state. For example, it's possible that this function
627 * could run and free up enough space to signal the host, and then
628 * run again and free up additional space before the host has a
629 * chance to clear the pending_send_sz. The 2nd invocation would
630 * be a null transition from "enough free space" to "enough free
631 * space", which doesn't warrant a signal.
632 *
633 * Exactly filling the ring buffer is treated as "not enough
634 * space". The ring buffer always must have at least one byte
635 * empty so the empty and full conditions are distinguishable.
636 * hv_get_bytes_to_write() doesn't fully tell the truth in
637 * this regard.
638 *
639 * So first check if we were in the "enough free space" state
640 * before we began the iteration. If so, the host was not
641 * blocked, and there's no need to signal.
642 */
643 if (curr_write_sz - bytes_read > pending_sz)
644 return;
645
646 /*
647 * Similarly, if the new state is "not enough space", then
648 * there's no need to signal.
649 */
650 if (curr_write_sz <= pending_sz)
651 return;
652
653 ++channel->intr_in_full;
654 vmbus_setevent(channel);
655 }
656 EXPORT_SYMBOL_GPL(hv_pkt_iter_close);
657