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[/] [openrisc/] [tags/] [gnu-src/] [newlib-1.18.0/] [newlib-1.18.0-or32-1.0rc1/] [newlib/] [libc/] [sys/] [linux/] [include/] [netinet/] [ip_dummynet.h] - Blame information for rev 345

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1 207 jeremybenn
/*
2
 * Copyright (c) 1998-2002 Luigi Rizzo, Universita` di Pisa
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 * Portions Copyright (c) 2000 Akamba Corp.
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 * All rights reserved
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 *
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 * Redistribution and use in source and binary forms, with or without
7
 * modification, are permitted provided that the following conditions
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 * are met:
9
 * 1. Redistributions of source code must retain the above copyright
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 *    notice, this list of conditions and the following disclaimer.
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 * 2. Redistributions in binary form must reproduce the above copyright
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 *    notice, this list of conditions and the following disclaimer in the
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 *    documentation and/or other materials provided with the distribution.
14
 *
15
 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
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 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18
 * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
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 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
21
 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22
 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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 * SUCH DAMAGE.
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 *
27
 * $FreeBSD: src/sys/netinet/ip_dummynet.h,v 1.18 2002/05/05 21:27:47 luigi Exp $
28
 */
29
 
30
#ifndef _IP_DUMMYNET_H
31
#define _IP_DUMMYNET_H
32
 
33
/*
34
 * Definition of dummynet data structures. In the structures, I decided
35
 * not to use the macros in <sys/queue.h> in the hope of making the code
36
 * easier to port to other architectures. The type of lists and queue we
37
 * use here is pretty simple anyways.
38
 */
39
 
40
/*
41
 * We start with a heap, which is used in the scheduler to decide when
42
 * to transmit packets etc.
43
 *
44
 * The key for the heap is used for two different values:
45
 *
46
 * 1. timer ticks- max 10K/second, so 32 bits are enough;
47
 *
48
 * 2. virtual times. These increase in steps of len/x, where len is the
49
 *    packet length, and x is either the weight of the flow, or the
50
 *    sum of all weights.
51
 *    If we limit to max 1000 flows and a max weight of 100, then
52
 *    x needs 17 bits. The packet size is 16 bits, so we can easily
53
 *    overflow if we do not allow errors.
54
 * So we use a key "dn_key" which is 64 bits. Some macros are used to
55
 * compare key values and handle wraparounds.
56
 * MAX64 returns the largest of two key values.
57
 * MY_M is used as a shift count when doing fixed point arithmetic
58
 * (a better name would be useful...).
59
 */
60
typedef u_int64_t dn_key ;      /* sorting key */
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#define DN_KEY_LT(a,b)     ((int64_t)((a)-(b)) < 0)
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#define DN_KEY_LEQ(a,b)    ((int64_t)((a)-(b)) <= 0)
63
#define DN_KEY_GT(a,b)     ((int64_t)((a)-(b)) > 0)
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#define DN_KEY_GEQ(a,b)    ((int64_t)((a)-(b)) >= 0)
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#define MAX64(x,y)  (( (int64_t) ( (y)-(x) )) > 0 ) ? (y) : (x)
66
#define MY_M    16 /* number of left shift to obtain a larger precision */
67
 
68
/*
69
 * XXX With this scaling, max 1000 flows, max weight 100, 1Gbit/s, the
70
 * virtual time wraps every 15 days.
71
 */
72
 
73
/*
74
 * The OFFSET_OF macro is used to return the offset of a field within
75
 * a structure. It is used by the heap management routines.
76
 */
77
#define OFFSET_OF(type, field) ((int)&( ((type *)0)->field) )
78
 
79
/*
80
 * A heap entry is made of a key and a pointer to the actual
81
 * object stored in the heap.
82
 * The heap is an array of dn_heap_entry entries, dynamically allocated.
83
 * Current size is "size", with "elements" actually in use.
84
 * The heap normally supports only ordered insert and extract from the top.
85
 * If we want to extract an object from the middle of the heap, we
86
 * have to know where the object itself is located in the heap (or we
87
 * need to scan the whole array). To this purpose, an object has a
88
 * field (int) which contains the index of the object itself into the
89
 * heap. When the object is moved, the field must also be updated.
90
 * The offset of the index in the object is stored in the 'offset'
91
 * field in the heap descriptor. The assumption is that this offset
92
 * is non-zero if we want to support extract from the middle.
93
 */
94
struct dn_heap_entry {
95
    dn_key key ;        /* sorting key. Topmost element is smallest one */
96
    void *object ;      /* object pointer */
97
} ;
98
 
99
struct dn_heap {
100
    int size ;
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    int elements ;
102
    int offset ; /* XXX if > 0 this is the offset of direct ptr to obj */
103
    struct dn_heap_entry *p ;   /* really an array of "size" entries */
104
} ;
105
 
106
/*
107
 * MT_DUMMYNET is a new (fake) mbuf type that is prepended to the
108
 * packet when it comes out of a pipe. The definition
109
 * ought to go in /sys/sys/mbuf.h but here it is less intrusive.
110
 */
111
 
112
#define MT_DUMMYNET MT_CONTROL
113
 
114
/*
115
 * struct dn_pkt identifies a packet in the dummynet queue. The
116
 * first part is really an m_hdr for implementation purposes, and some
117
 * fields are saved there. When passing the packet back to the ip_input/
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 * ip_output()/bdg_forward, the struct is prepended to the mbuf chain with type
119
 * MT_DUMMYNET, and contains the pointer to the matching rule.
120
 *
121
 * Note: there is no real need to make this structure contain an m_hdr,
122
 * in the future this should be changed to a normal data structure.
123
 */
124
struct dn_pkt {
125
    struct m_hdr hdr ;
126
#define dn_next hdr.mh_nextpkt  /* next element in queue */
127
#define DN_NEXT(x)      (struct dn_pkt *)(x)->dn_next
128
#define dn_m    hdr.mh_next     /* packet to be forwarded */
129
#define dn_dir  hdr.mh_flags    /* action when pkt extracted from a queue */
130
#define DN_TO_IP_OUT    1
131
#define DN_TO_IP_IN     2
132
#define DN_TO_BDG_FWD   3
133
 
134
    dn_key  output_time;        /* when the pkt is due for delivery     */
135
    struct ifnet *ifp;          /* interface, for ip_output             */
136
    struct sockaddr_in *dn_dst ;
137
    struct route ro;            /* route, for ip_output. MUST COPY      */
138
    int flags ;                 /* flags, for ip_output (IPv6 ?)        */
139
};
140
 
141
/*
142
 * Overall structure of dummynet (with WF2Q+):
143
 
144
In dummynet, packets are selected with the firewall rules, and passed
145
to two different objects: PIPE or QUEUE.
146
 
147
A QUEUE is just a queue with configurable size and queue management
148
policy. It is also associated with a mask (to discriminate among
149
different flows), a weight (used to give different shares of the
150
bandwidth to different flows) and a "pipe", which essentially
151
supplies the transmit clock for all queues associated with that
152
pipe.
153
 
154
A PIPE emulates a fixed-bandwidth link, whose bandwidth is
155
configurable.  The "clock" for a pipe can come from either an
156
internal timer, or from the transmit interrupt of an interface.
157
A pipe is also associated with one (or more, if masks are used)
158
queue, where all packets for that pipe are stored.
159
 
160
The bandwidth available on the pipe is shared by the queues
161
associated with that pipe (only one in case the packet is sent
162
to a PIPE) according to the WF2Q+ scheduling algorithm and the
163
configured weights.
164
 
165
In general, incoming packets are stored in the appropriate queue,
166
which is then placed into one of a few heaps managed by a scheduler
167
to decide when the packet should be extracted.
168
The scheduler (a function called dummynet()) is run at every timer
169
tick, and grabs queues from the head of the heaps when they are
170
ready for processing.
171
 
172
There are three data structures definining a pipe and associated queues:
173
 
174
 + dn_pipe, which contains the main configuration parameters related
175
   to delay and bandwidth;
176
 + dn_flow_set, which contains WF2Q+ configuration, flow
177
   masks, plr and RED configuration;
178
 + dn_flow_queue, which is the per-flow queue (containing the packets)
179
 
180
Multiple dn_flow_set can be linked to the same pipe, and multiple
181
dn_flow_queue can be linked to the same dn_flow_set.
182
All data structures are linked in a linear list which is used for
183
housekeeping purposes.
184
 
185
During configuration, we create and initialize the dn_flow_set
186
and dn_pipe structures (a dn_pipe also contains a dn_flow_set).
187
 
188
At runtime: packets are sent to the appropriate dn_flow_set (either
189
WFQ ones, or the one embedded in the dn_pipe for fixed-rate flows),
190
which in turn dispatches them to the appropriate dn_flow_queue
191
(created dynamically according to the masks).
192
 
193
The transmit clock for fixed rate flows (ready_event()) selects the
194
dn_flow_queue to be used to transmit the next packet. For WF2Q,
195
wfq_ready_event() extract a pipe which in turn selects the right
196
flow using a number of heaps defined into the pipe itself.
197
 
198
 *
199
 */
200
 
201
/*
202
 * per flow queue. This contains the flow identifier, the queue
203
 * of packets, counters, and parameters used to support both RED and
204
 * WF2Q+.
205
 *
206
 * A dn_flow_queue is created and initialized whenever a packet for
207
 * a new flow arrives.
208
 */
209
struct dn_flow_queue {
210
    struct dn_flow_queue *next ;
211
    struct ipfw_flow_id id ;
212
 
213
    struct dn_pkt *head, *tail ;        /* queue of packets */
214
    u_int len ;
215
    u_int len_bytes ;
216
    long numbytes ;             /* credit for transmission (dynamic queues) */
217
 
218
    u_int64_t tot_pkts ;        /* statistics counters  */
219
    u_int64_t tot_bytes ;
220
    u_int32_t drops ;
221
 
222
    int hash_slot ;             /* debugging/diagnostic */
223
 
224
    /* RED parameters */
225
    int avg ;                   /* average queue length est. (scaled) */
226
    int count ;                 /* arrivals since last RED drop */
227
    int random ;                /* random value (scaled) */
228
    u_int32_t q_time ;          /* start of queue idle time */
229
 
230
    /* WF2Q+ support */
231
    struct dn_flow_set *fs ;    /* parent flow set */
232
    int heap_pos ;              /* position (index) of struct in heap */
233
    dn_key sched_time ;         /* current time when queue enters ready_heap */
234
 
235
    dn_key S,F ;                /* start time, finish time */
236
    /*
237
     * Setting F < S means the timestamp is invalid. We only need
238
     * to test this when the queue is empty.
239
     */
240
} ;
241
 
242
/*
243
 * flow_set descriptor. Contains the "template" parameters for the
244
 * queue configuration, and pointers to the hash table of dn_flow_queue's.
245
 *
246
 * The hash table is an array of lists -- we identify the slot by
247
 * hashing the flow-id, then scan the list looking for a match.
248
 * The size of the hash table (buckets) is configurable on a per-queue
249
 * basis.
250
 *
251
 * A dn_flow_set is created whenever a new queue or pipe is created (in the
252
 * latter case, the structure is located inside the struct dn_pipe).
253
 */
254
struct dn_flow_set {
255
    struct dn_flow_set *next; /* next flow set in all_flow_sets list */
256
 
257
    u_short fs_nr ;             /* flow_set number       */
258
    u_short flags_fs;
259
#define DN_HAVE_FLOW_MASK       0x0001
260
#define DN_IS_RED               0x0002
261
#define DN_IS_GENTLE_RED        0x0004
262
#define DN_QSIZE_IS_BYTES       0x0008  /* queue size is measured in bytes */
263
#define DN_IS_PIPE              0x4000
264
#define DN_IS_QUEUE             0x8000
265
 
266
    struct dn_pipe *pipe ;      /* pointer to parent pipe */
267
    u_short parent_nr ;         /* parent pipe#, 0 if local to a pipe */
268
 
269
    int weight ;                /* WFQ queue weight */
270
    int qsize ;                 /* queue size in slots or bytes */
271
    int plr ;                   /* pkt loss rate (2^31-1 means 100%) */
272
 
273
    struct ipfw_flow_id flow_mask ;
274
 
275
    /* hash table of queues onto this flow_set */
276
    int rq_size ;               /* number of slots */
277
    int rq_elements ;           /* active elements */
278
    struct dn_flow_queue **rq;  /* array of rq_size entries */
279
 
280
    u_int32_t last_expired ;    /* do not expire too frequently */
281
    int backlogged ;            /* #active queues for this flowset */
282
 
283
        /* RED parameters */
284
#define SCALE_RED               16
285
#define SCALE(x)                ( (x) << SCALE_RED )
286
#define SCALE_VAL(x)            ( (x) >> SCALE_RED )
287
#define SCALE_MUL(x,y)          ( ( (x) * (y) ) >> SCALE_RED )
288
    int w_q ;                   /* queue weight (scaled) */
289
    int max_th ;                /* maximum threshold for queue (scaled) */
290
    int min_th ;                /* minimum threshold for queue (scaled) */
291
    int max_p ;                 /* maximum value for p_b (scaled) */
292
    u_int c_1 ;                 /* max_p/(max_th-min_th) (scaled) */
293
    u_int c_2 ;                 /* max_p*min_th/(max_th-min_th) (scaled) */
294
    u_int c_3 ;                 /* for GRED, (1-max_p)/max_th (scaled) */
295
    u_int c_4 ;                 /* for GRED, 1 - 2*max_p (scaled) */
296
    u_int * w_q_lookup ;        /* lookup table for computing (1-w_q)^t */
297
    u_int lookup_depth ;        /* depth of lookup table */
298
    int lookup_step ;           /* granularity inside the lookup table */
299
    int lookup_weight ;         /* equal to (1-w_q)^t / (1-w_q)^(t+1) */
300
    int avg_pkt_size ;          /* medium packet size */
301
    int max_pkt_size ;          /* max packet size */
302
} ;
303
 
304
/*
305
 * Pipe descriptor. Contains global parameters, delay-line queue,
306
 * and the flow_set used for fixed-rate queues.
307
 *
308
 * For WF2Q+ support it also has 3 heaps holding dn_flow_queue:
309
 *   not_eligible_heap, for queues whose start time is higher
310
 *      than the virtual time. Sorted by start time.
311
 *   scheduler_heap, for queues eligible for scheduling. Sorted by
312
 *      finish time.
313
 *   idle_heap, all flows that are idle and can be removed. We
314
 *      do that on each tick so we do not slow down too much
315
 *      operations during forwarding.
316
 *
317
 */
318
struct dn_pipe {                /* a pipe */
319
    struct dn_pipe *next ;
320
 
321
    int pipe_nr ;               /* number       */
322
    int bandwidth;              /* really, bytes/tick.  */
323
    int delay ;                 /* really, ticks        */
324
 
325
    struct      dn_pkt *head, *tail ;   /* packets in delay line */
326
 
327
    /* WF2Q+ */
328
    struct dn_heap scheduler_heap ; /* top extract - key Finish time*/
329
    struct dn_heap not_eligible_heap; /* top extract- key Start time */
330
    struct dn_heap idle_heap ; /* random extract - key Start=Finish time */
331
 
332
    dn_key V ;                  /* virtual time */
333
    int sum;                    /* sum of weights of all active sessions */
334
    int numbytes;               /* bits I can transmit (more or less). */
335
 
336
    dn_key sched_time ;         /* time pipe was scheduled in ready_heap */
337
 
338
    /*
339
     * When the tx clock come from an interface (if_name[0] != '\0'), its name
340
     * is stored below, whereas the ifp is filled when the rule is configured.
341
     */
342
    char if_name[16];
343
    struct ifnet *ifp ;
344
    int ready ; /* set if ifp != NULL and we got a signal from it */
345
 
346
    struct dn_flow_set fs ; /* used with fixed-rate flows */
347
};
348
 
349
#ifdef _KERNEL
350
typedef int ip_dn_ctl_t(struct sockopt *); /* raw_ip.c */
351
typedef void ip_dn_ruledel_t(void *); /* ip_fw.c */
352
typedef int ip_dn_io_t(int pipe, int dir, struct mbuf *m,
353
        struct ifnet *ifp, struct route *ro, struct sockaddr_in * dst,
354
        struct ip_fw *rule, int flags); /* ip_{in,out}put.c, bridge.c */
355
extern  ip_dn_ctl_t *ip_dn_ctl_ptr;
356
extern  ip_dn_ruledel_t *ip_dn_ruledel_ptr;
357
extern  ip_dn_io_t *ip_dn_io_ptr;
358
#define DUMMYNET_LOADED (ip_dn_io_ptr != NULL)
359
#endif
360
 
361
#endif /* _IP_DUMMYNET_H */

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