1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
|
#include <stdint.h>
#include <stdbool.h>
#include <stdlib.h>
#include <uv.h>
#include "nvim/os/uv_helpers.h"
#include "nvim/os/rstream_defs.h"
#include "nvim/os/rstream.h"
#include "nvim/os/event_defs.h"
#include "nvim/os/event.h"
#include "nvim/vim.h"
#include "nvim/memory.h"
#include "nvim/log.h"
#include "nvim/misc1.h"
struct rstream {
uv_buf_t uvbuf;
void *data;
char *buffer;
uv_stream_t *stream;
uv_idle_t *fread_idle;
uv_handle_type file_type;
uv_file fd;
rstream_cb cb;
size_t buffer_size, rpos, wpos, fpos;
bool reading, free_handle, async;
};
// Callbacks used by libuv
static void alloc_cb(uv_handle_t *, size_t, uv_buf_t *);
static void read_cb(uv_stream_t *, ssize_t, const uv_buf_t *);
static void fread_idle_cb(uv_idle_t *);
static void close_cb(uv_handle_t *handle);
static void emit_read_event(RStream *rstream, bool eof);
RStream * rstream_new(rstream_cb cb,
size_t buffer_size,
void *data,
bool async)
{
RStream *rv = xmalloc(sizeof(RStream));
rv->buffer = xmalloc(buffer_size);
rv->buffer_size = buffer_size;
rv->data = data;
rv->async = async;
rv->cb = cb;
rv->rpos = rv->wpos = rv->fpos = 0;
rv->stream = NULL;
rv->fread_idle = NULL;
rv->free_handle = false;
rv->file_type = UV_UNKNOWN_HANDLE;
return rv;
}
void rstream_free(RStream *rstream)
{
if (rstream->free_handle) {
if (rstream->fread_idle != NULL) {
uv_close((uv_handle_t *)rstream->fread_idle, close_cb);
} else {
uv_close((uv_handle_t *)rstream->stream, close_cb);
}
}
free(rstream->buffer);
free(rstream);
}
void rstream_set_stream(RStream *rstream, uv_stream_t *stream)
{
handle_set_rstream((uv_handle_t *)stream, rstream);
rstream->stream = stream;
}
void rstream_set_file(RStream *rstream, uv_file file)
{
rstream->file_type = uv_guess_handle(file);
if (rstream->free_handle) {
// If this is the second time we're calling this function, free the
// previously allocated memory
if (rstream->fread_idle != NULL) {
uv_close((uv_handle_t *)rstream->fread_idle, close_cb);
} else {
uv_close((uv_handle_t *)rstream->stream, close_cb);
}
}
if (rstream->file_type == UV_FILE) {
// Non-blocking file reads are simulated with a idle handle that reads
// in chunks of rstream->buffer_size, giving time for other events to
// be processed between reads.
rstream->fread_idle = xmalloc(sizeof(uv_idle_t));
uv_idle_init(uv_default_loop(), rstream->fread_idle);
rstream->fread_idle->data = NULL;
handle_set_rstream((uv_handle_t *)rstream->fread_idle, rstream);
} else {
// Only pipes are supported for now
assert(rstream->file_type == UV_NAMED_PIPE
|| rstream->file_type == UV_TTY);
rstream->stream = xmalloc(sizeof(uv_pipe_t));
uv_pipe_init(uv_default_loop(), (uv_pipe_t *)rstream->stream, 0);
uv_pipe_open((uv_pipe_t *)rstream->stream, file);
rstream->stream->data = NULL;
handle_set_rstream((uv_handle_t *)rstream->stream, rstream);
}
rstream->fd = file;
rstream->free_handle = true;
}
bool rstream_is_regular_file(RStream *rstream)
{
return rstream->file_type == UV_FILE;
}
void rstream_start(RStream *rstream)
{
if (rstream->file_type == UV_FILE) {
uv_idle_start(rstream->fread_idle, fread_idle_cb);
} else {
rstream->reading = false;
uv_read_start(rstream->stream, alloc_cb, read_cb);
}
}
void rstream_stop(RStream *rstream)
{
if (rstream->file_type == UV_FILE) {
uv_idle_stop(rstream->fread_idle);
} else {
uv_read_stop(rstream->stream);
}
}
size_t rstream_read(RStream *rstream, char *buf, size_t count)
{
size_t read_count = rstream->wpos - rstream->rpos;
if (count < read_count) {
read_count = count;
}
if (read_count > 0) {
memcpy(buf, rstream->buffer + rstream->rpos, read_count);
rstream->rpos += read_count;
}
if (rstream->wpos == rstream->buffer_size) {
// `wpos` is at the end of the buffer, so free some space by moving unread
// data...
memmove(
rstream->buffer, // ...To the beginning of the buffer(rpos 0)
rstream->buffer + rstream->rpos, // ...From the first unread position
rstream->wpos - rstream->rpos); // ...By the number of unread bytes
rstream->wpos -= rstream->rpos;
rstream->rpos = 0;
if (rstream->wpos < rstream->buffer_size) {
// Restart reading since we have freed some space
rstream_start(rstream);
}
}
return read_count;
}
size_t rstream_available(RStream *rstream)
{
return rstream->wpos - rstream->rpos;
}
void rstream_read_event(Event event)
{
RStream *rstream = event.data.rstream.ptr;
rstream->cb(rstream, rstream->data, event.data.rstream.eof);
}
// Called by libuv to allocate memory for reading.
static void alloc_cb(uv_handle_t *handle, size_t suggested, uv_buf_t *buf)
{
RStream *rstream = handle_get_rstream(handle);
if (rstream->reading) {
buf->len = 0;
return;
}
buf->len = rstream->buffer_size - rstream->wpos;
buf->base = rstream->buffer + rstream->wpos;
// Avoid `alloc_cb`, `alloc_cb` sequences on windows
rstream->reading = true;
}
// Callback invoked by libuv after it copies the data into the buffer provided
// by `alloc_cb`. This is also called on EOF or when `alloc_cb` returns a
// 0-length buffer.
static void read_cb(uv_stream_t *stream, ssize_t cnt, const uv_buf_t *buf)
{
RStream *rstream = handle_get_rstream((uv_handle_t *)stream);
if (cnt <= 0) {
if (cnt != UV_ENOBUFS) {
// Read error or EOF, either way stop the stream and invoke the callback
// with eof == true
uv_read_stop(stream);
emit_read_event(rstream, true);
}
return;
}
// at this point we're sure that cnt is positive, no error occurred
size_t nread = (size_t) cnt;
// Data was already written, so all we need is to update 'wpos' to reflect
// the space actually used in the buffer.
rstream->wpos += nread;
if (rstream->wpos == rstream->buffer_size) {
// The last read filled the buffer, stop reading for now
rstream_stop(rstream);
}
rstream->reading = false;
emit_read_event(rstream, false);
}
// Called by the by the 'idle' handle to emulate a reading event
static void fread_idle_cb(uv_idle_t *handle)
{
uv_fs_t req;
RStream *rstream = handle_get_rstream((uv_handle_t *)handle);
rstream->uvbuf.base = rstream->buffer + rstream->wpos;
rstream->uvbuf.len = rstream->buffer_size - rstream->wpos;
// the offset argument to uv_fs_read is int64_t, could someone really try
// to read more than 9 quintillion (9e18) bytes?
// upcast is meant to avoid tautological condition warning on 32 bits
uintmax_t fpos_intmax = rstream->fpos;
if (fpos_intmax > INT64_MAX) {
ELOG("stream offset overflow");
preserve_exit();
}
// Synchronous read
uv_fs_read(
uv_default_loop(),
&req,
rstream->fd,
&rstream->uvbuf,
1,
(int64_t) rstream->fpos,
NULL);
uv_fs_req_cleanup(&req);
if (req.result <= 0) {
uv_idle_stop(rstream->fread_idle);
emit_read_event(rstream, true);
return;
}
// no errors (req.result (ssize_t) is positive), it's safe to cast.
size_t nread = (size_t) req.result;
rstream->wpos += nread;
rstream->fpos += nread;
if (rstream->wpos == rstream->buffer_size) {
// The last read filled the buffer, stop reading for now
rstream_stop(rstream);
}
emit_read_event(rstream, false);
}
static void close_cb(uv_handle_t *handle)
{
free(handle->data);
free(handle);
}
static void emit_read_event(RStream *rstream, bool eof)
{
if (rstream->async) {
Event event;
event.type = kEventRStreamData;
event.data.rstream.ptr = rstream;
event.data.rstream.eof = eof;
event_push(event);
} else {
// Invoke the callback passing in the number of bytes available and data
// associated with the stream
rstream->cb(rstream, rstream->data, eof);
}
}
|