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altq_jobs.c revision 1.9.2.1
      1  1.9.2.1  pgoyette /*	$NetBSD: altq_jobs.c,v 1.9.2.1 2017/01/07 08:56:08 pgoyette Exp $	*/
      2      1.2     peter /*	$KAME: altq_jobs.c,v 1.11 2005/04/13 03:44:25 suz Exp $	*/
      3      1.2     peter /*
      4      1.2     peter  * Copyright (c) 2001, the Rector and Board of Visitors of the
      5      1.2     peter  * University of Virginia.
      6      1.2     peter  * All rights reserved.
      7      1.2     peter  *
      8      1.2     peter  * Redistribution and use in source and binary forms,
      9      1.2     peter  * with or without modification, are permitted provided
     10      1.2     peter  * that the following conditions are met:
     11      1.2     peter  *
     12      1.2     peter  * Redistributions of source code must retain the above
     13      1.2     peter  * copyright notice, this list of conditions and the following
     14      1.2     peter  * disclaimer.
     15      1.2     peter  *
     16      1.2     peter  * Redistributions in binary form must reproduce the above
     17      1.2     peter  * copyright notice, this list of conditions and the following
     18      1.2     peter  * disclaimer in the documentation and/or other materials provided
     19      1.2     peter  * with the distribution.
     20      1.2     peter  *
     21      1.2     peter  * Neither the name of the University of Virginia nor the names
     22      1.2     peter  * of its contributors may be used to endorse or promote products
     23      1.2     peter  * derived from this software without specific prior written
     24      1.2     peter  * permission.
     25      1.2     peter  *
     26      1.2     peter  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND
     27      1.2     peter  * CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES,
     28      1.2     peter  * INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     29      1.2     peter  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
     30      1.2     peter  * DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE
     31      1.2     peter  * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY,
     32      1.2     peter  * OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
     33      1.2     peter  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     34      1.2     peter  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
     35      1.2     peter  * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     36      1.2     peter  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
     37      1.2     peter  * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
     38      1.2     peter  * THE POSSIBILITY OF SUCH DAMAGE.
     39      1.2     peter  */
     40      1.2     peter /*
     41      1.2     peter  * JoBS - altq prototype implementation
     42      1.2     peter  *
     43      1.2     peter  * Author: Nicolas Christin <nicolas (at) cs.virginia.edu>
     44      1.2     peter  *
     45      1.2     peter  * JoBS algorithms originally devised and proposed by
     46      1.2     peter  * Nicolas Christin and Jorg Liebeherr.
     47      1.2     peter  * Grateful acknowledgments to Tarek Abdelzaher for his help and
     48      1.2     peter  * comments, and to Kenjiro Cho for some helpful advice.
     49      1.2     peter  * Contributed by the Multimedia Networks Group at the University
     50      1.2     peter  * of Virginia.
     51      1.2     peter  *
     52      1.2     peter  * Papers and additional info can be found at
     53      1.2     peter  * http://qosbox.cs.virginia.edu
     54      1.2     peter  *
     55      1.2     peter  */
     56      1.2     peter 
     57      1.2     peter /*
     58      1.2     peter  * JoBS queue
     59      1.2     peter  */
     60      1.2     peter 
     61      1.2     peter #include <sys/cdefs.h>
     62  1.9.2.1  pgoyette __KERNEL_RCSID(0, "$NetBSD: altq_jobs.c,v 1.9.2.1 2017/01/07 08:56:08 pgoyette Exp $");
     63      1.2     peter 
     64      1.2     peter #ifdef _KERNEL_OPT
     65      1.2     peter #include "opt_altq.h"
     66      1.2     peter #include "opt_inet.h"
     67      1.2     peter #endif
     68      1.2     peter 
     69      1.2     peter #ifdef ALTQ_JOBS  /* jobs is enabled by ALTQ_JOBS option in opt_altq.h */
     70      1.2     peter 
     71      1.2     peter #include <sys/param.h>
     72      1.2     peter #include <sys/malloc.h>
     73      1.2     peter #include <sys/mbuf.h>
     74      1.2     peter #include <sys/socket.h>
     75      1.2     peter #include <sys/sockio.h>
     76      1.2     peter #include <sys/systm.h>
     77      1.2     peter #include <sys/proc.h>
     78      1.2     peter #include <sys/errno.h>
     79      1.2     peter #include <sys/kernel.h>
     80      1.2     peter #include <sys/queue.h>
     81      1.2     peter #include <sys/kauth.h>
     82      1.2     peter 
     83      1.2     peter #ifdef __FreeBSD__
     84      1.2     peter #include <sys/limits.h>
     85      1.2     peter #endif
     86      1.2     peter 
     87      1.2     peter #include <net/if.h>
     88      1.2     peter #include <net/if_types.h>
     89      1.2     peter 
     90      1.2     peter #include <altq/altq.h>
     91      1.2     peter #include <altq/altq_conf.h>
     92      1.2     peter #include <altq/altq_jobs.h>
     93      1.2     peter 
     94      1.2     peter #ifdef ALTQ3_COMPAT
     95      1.2     peter /*
     96      1.2     peter  * function prototypes
     97      1.2     peter  */
     98      1.2     peter static struct jobs_if *jobs_attach(struct ifaltq *, u_int, u_int, u_int);
     99      1.8  christos static void jobs_detach(struct jobs_if *);
    100      1.2     peter static int jobs_clear_interface(struct jobs_if *);
    101      1.2     peter static int jobs_request(struct ifaltq *, int, void *);
    102      1.2     peter static void jobs_purge(struct jobs_if *);
    103      1.2     peter static struct jobs_class *jobs_class_create(struct jobs_if *,
    104      1.2     peter     int, int64_t, int64_t, int64_t, int64_t, int64_t, int);
    105      1.2     peter static int jobs_class_destroy(struct jobs_class *);
    106      1.9  knakahar static int jobs_enqueue(struct ifaltq *, struct mbuf *);
    107      1.2     peter static struct mbuf *jobs_dequeue(struct ifaltq *, int);
    108      1.2     peter 
    109      1.2     peter static int jobs_addq(struct jobs_class *, struct mbuf *, struct jobs_if*);
    110      1.2     peter static struct mbuf *jobs_getq(struct jobs_class *);
    111      1.2     peter static struct mbuf *jobs_pollq(struct jobs_class *);
    112      1.2     peter static void jobs_purgeq(struct jobs_class *);
    113      1.2     peter 
    114      1.2     peter static int jobscmd_if_attach(struct jobs_attach *);
    115      1.2     peter static int jobscmd_if_detach(struct jobs_interface *);
    116      1.2     peter static int jobscmd_add_class(struct jobs_add_class *);
    117      1.2     peter static int jobscmd_delete_class(struct jobs_delete_class *);
    118      1.2     peter static int jobscmd_modify_class(struct jobs_modify_class *);
    119      1.2     peter static int jobscmd_add_filter(struct jobs_add_filter *);
    120      1.2     peter static int jobscmd_delete_filter(struct jobs_delete_filter *);
    121      1.2     peter static int jobscmd_class_stats(struct jobs_class_stats *);
    122      1.2     peter static void get_class_stats(struct class_stats *, struct jobs_class *);
    123      1.2     peter static struct jobs_class *clh_to_clp(struct jobs_if *, u_long);
    124      1.2     peter static u_long clp_to_clh(struct jobs_class *);
    125      1.2     peter 
    126      1.2     peter static TSLIST *tslist_alloc(void);
    127      1.2     peter static void tslist_destroy(struct jobs_class *);
    128      1.2     peter static int tslist_enqueue(struct jobs_class *, u_int64_t);
    129      1.2     peter static void tslist_dequeue(struct jobs_class *);
    130      1.2     peter static void tslist_drop(struct jobs_class *);
    131      1.2     peter 
    132      1.2     peter static int enforce_wc(struct jobs_if *);
    133      1.2     peter static int64_t* adjust_rates_rdc(struct jobs_if *);
    134      1.2     peter static int64_t* assign_rate_drops_adc(struct jobs_if *);
    135      1.2     peter static int64_t* update_error(struct jobs_if *);
    136      1.2     peter static int min_rates_adc(struct jobs_if *);
    137      1.2     peter static int64_t proj_delay(struct jobs_if *, int);
    138      1.2     peter static int pick_dropped_rlc(struct jobs_if *);
    139      1.2     peter 
    140      1.2     peter altqdev_decl(jobs);
    141      1.2     peter 
    142      1.2     peter /* jif_list keeps all jobs_if's allocated. */
    143      1.2     peter static struct jobs_if *jif_list = NULL;
    144      1.2     peter 
    145      1.2     peter typedef unsigned long long ull;
    146      1.2     peter 
    147      1.2     peter /* setup functions */
    148      1.2     peter 
    149      1.2     peter static struct jobs_if *
    150      1.2     peter jobs_attach(struct ifaltq *ifq, u_int bandwidth, u_int qlimit, u_int separate)
    151      1.2     peter {
    152      1.2     peter 	struct jobs_if *jif;
    153      1.2     peter 
    154      1.2     peter 	jif = malloc(sizeof(struct jobs_if), M_DEVBUF, M_WAITOK|M_ZERO);
    155      1.2     peter 	if (jif == NULL)
    156      1.2     peter 	        return (NULL);
    157      1.2     peter 
    158      1.2     peter 	jif->jif_bandwidth = bandwidth;
    159      1.2     peter 	jif->jif_qlimit = qlimit;
    160      1.2     peter 	jif->jif_separate = separate;
    161      1.2     peter #ifdef ALTQ_DEBUG
    162      1.2     peter 	printf("JoBS bandwidth = %d bps\n", (int)bandwidth);
    163      1.2     peter 	printf("JoBS buffer size = %d pkts [%s]\n",
    164      1.2     peter 	       (int)qlimit, separate?"separate buffers":"shared buffer");
    165      1.2     peter #endif
    166      1.2     peter 	jif->jif_maxpri = -1;
    167      1.2     peter 	jif->jif_ifq = ifq;
    168      1.2     peter 
    169      1.2     peter 	jif->wc_cycles_enqueue = 0;
    170      1.2     peter 	jif->avg_cycles_enqueue = 0;
    171      1.2     peter 	jif->avg_cycles2_enqueue = 0;
    172      1.6    plunky 	jif->bc_cycles_enqueue = ALTQ_INFINITY;
    173      1.2     peter 	jif->wc_cycles_dequeue = 0;
    174      1.2     peter 	jif->avg_cycles_dequeue = 0;
    175      1.2     peter 	jif->avg_cycles2_dequeue = 0;
    176      1.6    plunky 	jif->bc_cycles_dequeue = ALTQ_INFINITY;
    177      1.2     peter 	jif->total_enqueued = 0;
    178      1.2     peter 	jif->total_dequeued = 0;
    179      1.2     peter 
    180      1.2     peter 	/* add this state to the jobs list */
    181      1.2     peter 	jif->jif_next = jif_list;
    182      1.2     peter 	jif_list = jif;
    183      1.2     peter 
    184      1.2     peter 	return (jif);
    185      1.2     peter }
    186      1.2     peter 
    187      1.8  christos static void
    188      1.2     peter jobs_detach(struct jobs_if *jif)
    189      1.2     peter {
    190      1.2     peter 	(void)jobs_clear_interface(jif);
    191      1.2     peter 
    192      1.2     peter 	/* remove this interface from the jif list */
    193      1.2     peter 	if (jif_list == jif)
    194      1.2     peter 		jif_list = jif->jif_next;
    195      1.2     peter 	else {
    196      1.2     peter 		struct jobs_if *p;
    197      1.2     peter 
    198      1.2     peter 		for (p = jif_list; p != NULL; p = p->jif_next)
    199      1.2     peter 			if (p->jif_next == jif) {
    200      1.2     peter 				p->jif_next = jif->jif_next;
    201      1.2     peter 				break;
    202      1.2     peter 			}
    203      1.2     peter 		ASSERT(p != NULL);
    204      1.2     peter 	}
    205      1.2     peter 	free(jif, M_DEVBUF);
    206      1.2     peter }
    207      1.2     peter 
    208      1.2     peter /*
    209      1.2     peter  * bring the interface back to the initial state by discarding
    210      1.2     peter  * all the filters and classes.
    211      1.2     peter  */
    212      1.2     peter static int
    213      1.2     peter jobs_clear_interface(struct jobs_if *jif)
    214      1.2     peter {
    215      1.2     peter 	struct jobs_class	*cl;
    216      1.2     peter 	int	pri;
    217      1.2     peter 
    218      1.2     peter 	/* free the filters for this interface */
    219      1.2     peter 	acc_discard_filters(&jif->jif_classifier, NULL, 1);
    220      1.2     peter 
    221      1.2     peter 	/* clear out the classes */
    222      1.2     peter 	for (pri = 0; pri <= jif->jif_maxpri; pri++)
    223      1.2     peter 		if ((cl = jif->jif_classes[pri]) != NULL)
    224      1.2     peter 			jobs_class_destroy(cl);
    225      1.2     peter 
    226      1.2     peter 	return (0);
    227      1.2     peter }
    228      1.2     peter 
    229      1.2     peter static int
    230      1.4  christos jobs_request(struct ifaltq *ifq, int req, void *arg)
    231      1.2     peter {
    232      1.2     peter 	struct jobs_if	*jif = (struct jobs_if *)ifq->altq_disc;
    233      1.2     peter 
    234      1.2     peter 	switch (req) {
    235      1.2     peter 	case ALTRQ_PURGE:
    236      1.2     peter 		jobs_purge(jif);
    237      1.2     peter 		break;
    238      1.2     peter 	}
    239      1.2     peter 	return (0);
    240      1.2     peter }
    241      1.2     peter 
    242      1.2     peter /* discard all the queued packets on the interface */
    243      1.2     peter static void
    244      1.2     peter jobs_purge(struct jobs_if *jif)
    245      1.2     peter {
    246      1.2     peter 	struct jobs_class *cl;
    247      1.2     peter 	int pri;
    248      1.2     peter 
    249      1.2     peter 	for (pri = 0; pri <= jif->jif_maxpri; pri++) {
    250      1.2     peter 		if ((cl = jif->jif_classes[pri]) != NULL && !qempty(cl->cl_q))
    251      1.2     peter 			jobs_purgeq(cl);
    252      1.2     peter 	}
    253      1.2     peter 	if (ALTQ_IS_ENABLED(jif->jif_ifq))
    254      1.2     peter 		jif->jif_ifq->ifq_len = 0;
    255      1.2     peter }
    256      1.2     peter 
    257      1.2     peter static struct jobs_class *
    258      1.2     peter jobs_class_create(struct jobs_if *jif, int pri, int64_t adc, int64_t rdc,
    259      1.2     peter     int64_t alc, int64_t rlc, int64_t arc, int flags)
    260      1.2     peter {
    261      1.2     peter 	struct jobs_class *cl, *scan1, *scan2;
    262      1.2     peter 	int s;
    263      1.2     peter 	int class_exists1, class_exists2;
    264      1.2     peter 	int i, j;
    265      1.2     peter 	int64_t tmp[JOBS_MAXPRI];
    266      1.2     peter 	u_int64_t now;
    267      1.2     peter 
    268      1.2     peter 	if ((cl = jif->jif_classes[pri]) != NULL) {
    269      1.2     peter 		/* modify the class instead of creating a new one */
    270      1.2     peter 		s = splnet();
    271      1.2     peter 		if (!qempty(cl->cl_q))
    272      1.2     peter 			jobs_purgeq(cl);
    273      1.2     peter 		splx(s);
    274      1.2     peter 	} else {
    275      1.2     peter 		cl = malloc(sizeof(struct jobs_class), M_DEVBUF,
    276      1.2     peter 		    M_WAITOK|M_ZERO);
    277      1.2     peter 		if (cl == NULL)
    278      1.2     peter 			return (NULL);
    279      1.2     peter 
    280      1.2     peter 		cl->cl_q = malloc(sizeof(class_queue_t), M_DEVBUF,
    281      1.2     peter 		    M_WAITOK|M_ZERO);
    282      1.2     peter 		if (cl->cl_q == NULL)
    283      1.2     peter 			goto err_ret;
    284      1.2     peter 
    285      1.2     peter 		cl->arv_tm = tslist_alloc();
    286      1.2     peter 		if (cl->arv_tm == NULL)
    287      1.2     peter 			goto err_ret;
    288      1.2     peter 	}
    289      1.2     peter 
    290      1.2     peter 	jif->jif_classes[pri] = cl;
    291      1.2     peter 
    292      1.2     peter 	if (flags & JOCF_DEFAULTCLASS)
    293      1.2     peter 		jif->jif_default = cl;
    294      1.2     peter 
    295      1.2     peter 	qtype(cl->cl_q) = Q_DROPTAIL;
    296      1.2     peter 	qlen(cl->cl_q) = 0;
    297      1.2     peter 	cl->service_rate = 0;
    298      1.2     peter 	cl->min_rate_adc = 0;
    299      1.2     peter 	cl->current_loss = 0;
    300      1.2     peter 	cl->cl_period = 0;
    301      1.2     peter 	PKTCNTR_RESET(&cl->cl_arrival);
    302      1.2     peter 	PKTCNTR_RESET(&cl->cl_rin);
    303      1.2     peter 	PKTCNTR_RESET(&cl->cl_rout);
    304      1.2     peter 	PKTCNTR_RESET(&cl->cl_rout_th);
    305      1.2     peter 	PKTCNTR_RESET(&cl->cl_dropcnt);
    306      1.2     peter 	PKTCNTR_RESET(&cl->st_arrival);
    307      1.2     peter 	PKTCNTR_RESET(&cl->st_rin);
    308      1.2     peter 	PKTCNTR_RESET(&cl->st_rout);
    309      1.2     peter 	PKTCNTR_RESET(&cl->st_dropcnt);
    310      1.2     peter 	cl->st_service_rate = 0;
    311      1.2     peter 	cl->cl_lastdel = 0;
    312      1.2     peter 	cl->cl_avgdel = 0;
    313      1.2     peter 	cl->adc_violations = 0;
    314      1.2     peter 
    315      1.2     peter 	if (adc == -1) {
    316      1.2     peter 		cl->concerned_adc = 0;
    317      1.6    plunky 		adc = ALTQ_INFINITY;
    318      1.2     peter 	} else
    319      1.2     peter 		cl->concerned_adc = 1;
    320      1.2     peter 
    321      1.2     peter 	if (alc == -1) {
    322      1.2     peter 		cl->concerned_alc = 0;
    323      1.6    plunky 		alc = ALTQ_INFINITY;
    324      1.2     peter 	} else
    325      1.2     peter 		cl->concerned_alc = 1;
    326      1.2     peter 
    327      1.2     peter 	if (rdc == -1) {
    328      1.2     peter 		rdc = 0;
    329      1.2     peter 		cl->concerned_rdc = 0;
    330      1.2     peter 	} else
    331      1.2     peter 		cl->concerned_rdc = 1;
    332      1.2     peter 
    333      1.2     peter 	if (rlc == -1) {
    334      1.2     peter 		rlc = 0;
    335      1.2     peter 		cl->concerned_rlc = 0;
    336      1.2     peter 	} else
    337      1.2     peter 		cl->concerned_rlc = 1;
    338      1.2     peter 
    339      1.2     peter 	if (arc == -1) {
    340      1.2     peter 		arc = 0;
    341      1.2     peter 		cl->concerned_arc = 0;
    342      1.2     peter 	} else
    343      1.2     peter 		cl->concerned_arc = 1;
    344      1.2     peter 
    345      1.2     peter 	cl->cl_rdc=rdc;
    346      1.2     peter 
    347      1.2     peter 	if (cl->concerned_adc) {
    348      1.2     peter 		/* adc is given in us, convert it to clock ticks */
    349      1.2     peter 		cl->cl_adc = (u_int64_t)(adc*machclk_freq/GRANULARITY);
    350      1.2     peter 	} else
    351      1.2     peter 		cl->cl_adc = adc;
    352      1.2     peter 
    353      1.2     peter 	if (cl->concerned_arc) {
    354      1.2     peter 		/* arc is given in bps, convert it to internal unit */
    355      1.2     peter 		cl->cl_arc = (u_int64_t)(bps_to_internal(arc));
    356      1.2     peter 	} else
    357      1.2     peter 		cl->cl_arc = arc;
    358      1.2     peter 
    359      1.2     peter 	cl->cl_rlc=rlc;
    360      1.2     peter 	cl->cl_alc=alc;
    361      1.2     peter 	cl->delay_prod_others = 0;
    362      1.2     peter 	cl->loss_prod_others = 0;
    363      1.2     peter 	cl->cl_flags = flags;
    364      1.2     peter 	cl->cl_pri = pri;
    365      1.2     peter 	if (pri > jif->jif_maxpri)
    366      1.2     peter 		jif->jif_maxpri = pri;
    367      1.2     peter 	cl->cl_jif = jif;
    368      1.2     peter 	cl->cl_handle = (u_long)cl;  /* just a pointer to this class */
    369      1.2     peter 
    370      1.2     peter 	/*
    371      1.2     peter 	 * update delay_prod_others and loss_prod_others
    372      1.2     peter 	 * in all classes if needed
    373      1.2     peter 	 */
    374      1.2     peter 
    375      1.2     peter 	if (cl->concerned_rdc) {
    376      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
    377      1.2     peter 			scan1 = jif->jif_classes[i];
    378      1.2     peter 			class_exists1 = (scan1 != NULL);
    379      1.2     peter 			if (class_exists1) {
    380      1.2     peter 				tmp[i] = 1;
    381      1.2     peter 				for (j = 0; j <= i-1; j++) {
    382      1.2     peter 					scan2 = jif->jif_classes[j];
    383      1.2     peter 					class_exists2 = (scan2 != NULL);
    384      1.2     peter 					if (class_exists2
    385      1.2     peter 					    && scan2->concerned_rdc)
    386      1.2     peter 						tmp[i] *= scan2->cl_rdc;
    387      1.2     peter 				}
    388      1.2     peter 			} else
    389      1.2     peter 				tmp[i] = 0;
    390      1.2     peter 		}
    391      1.2     peter 
    392      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
    393      1.2     peter 			scan1 = jif->jif_classes[i];
    394      1.2     peter 			class_exists1 = (scan1 != NULL);
    395      1.2     peter 			if (class_exists1) {
    396      1.2     peter 				scan1->delay_prod_others = 1;
    397      1.2     peter 				for (j = 0; j <= jif->jif_maxpri; j++) {
    398      1.2     peter 					scan2 = jif->jif_classes[j];
    399      1.2     peter 					class_exists2 = (scan2 != NULL);
    400      1.2     peter 					if (class_exists2 && j != i
    401      1.2     peter 					    && scan2->concerned_rdc)
    402      1.2     peter 						scan1->delay_prod_others *= tmp[j];
    403      1.2     peter 				}
    404      1.2     peter 			}
    405      1.2     peter 		}
    406      1.2     peter 	}
    407      1.2     peter 
    408      1.2     peter 	if (cl->concerned_rlc) {
    409      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
    410      1.2     peter 			scan1 = jif->jif_classes[i];
    411      1.2     peter 			class_exists1 = (scan1 != NULL);
    412      1.2     peter 			if (class_exists1) {
    413      1.2     peter 				tmp[i] = 1;
    414      1.2     peter 				for (j = 0; j <= i-1; j++) {
    415      1.2     peter 					scan2 = jif->jif_classes[j];
    416      1.2     peter 					class_exists2 = (scan2 != NULL);
    417      1.2     peter 					if (class_exists2
    418      1.2     peter 					    && scan2->concerned_rlc)
    419      1.2     peter 						tmp[i] *= scan2->cl_rlc;
    420      1.2     peter 				}
    421      1.2     peter 			} else
    422      1.2     peter 				tmp[i] = 0;
    423      1.2     peter 		}
    424      1.2     peter 
    425      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
    426      1.2     peter 			scan1 = jif->jif_classes[i];
    427      1.2     peter 			class_exists1 = (scan1 != NULL);
    428      1.2     peter 			if (class_exists1) {
    429      1.2     peter 				scan1->loss_prod_others = 1;
    430      1.2     peter 				for (j = 0; j <= jif->jif_maxpri; j++) {
    431      1.2     peter 					scan2 = jif->jif_classes[j];
    432      1.2     peter 					class_exists2 = (scan2 != NULL);
    433      1.2     peter 					if (class_exists2 && j != i
    434      1.2     peter 					    && scan2->concerned_rlc)
    435      1.2     peter 						scan1->loss_prod_others *= tmp[j];
    436      1.2     peter 				}
    437      1.2     peter 			}
    438      1.2     peter 		}
    439      1.2     peter 	}
    440      1.2     peter 
    441      1.2     peter 	now = read_machclk();
    442      1.2     peter 	cl->idletime = now;
    443      1.2     peter 	return (cl);
    444      1.2     peter 
    445      1.2     peter  err_ret:
    446      1.2     peter 	if (cl->cl_q != NULL)
    447      1.2     peter 		free(cl->cl_q, M_DEVBUF);
    448      1.2     peter 	if (cl->arv_tm != NULL)
    449      1.2     peter 		free(cl->arv_tm, M_DEVBUF);
    450      1.2     peter 
    451      1.2     peter 	free(cl, M_DEVBUF);
    452      1.2     peter 	return (NULL);
    453      1.2     peter }
    454      1.2     peter 
    455      1.2     peter static int
    456      1.2     peter jobs_class_destroy(struct jobs_class *cl)
    457      1.2     peter {
    458      1.2     peter 	struct jobs_if *jif;
    459      1.2     peter 	int s, pri;
    460      1.2     peter 
    461      1.2     peter 	s = splnet();
    462      1.2     peter 
    463      1.2     peter 	/* delete filters referencing to this class */
    464      1.2     peter 	acc_discard_filters(&cl->cl_jif->jif_classifier, cl, 0);
    465      1.2     peter 
    466      1.2     peter 	if (!qempty(cl->cl_q))
    467      1.2     peter 		jobs_purgeq(cl);
    468      1.2     peter 
    469      1.2     peter 	jif = cl->cl_jif;
    470      1.2     peter 	jif->jif_classes[cl->cl_pri] = NULL;
    471      1.2     peter 	if (jif->jif_maxpri == cl->cl_pri) {
    472      1.2     peter 		for (pri = cl->cl_pri; pri >= 0; pri--)
    473      1.2     peter 			if (jif->jif_classes[pri] != NULL) {
    474      1.2     peter 				jif->jif_maxpri = pri;
    475      1.2     peter 				break;
    476      1.2     peter 			}
    477      1.2     peter 		if (pri < 0)
    478      1.2     peter 			jif->jif_maxpri = -1;
    479      1.2     peter 	}
    480      1.2     peter 	splx(s);
    481      1.2     peter 
    482      1.2     peter 	tslist_destroy(cl);
    483      1.2     peter 	free(cl->cl_q, M_DEVBUF);
    484      1.2     peter 	free(cl, M_DEVBUF);
    485      1.2     peter 	return (0);
    486      1.2     peter }
    487      1.2     peter 
    488      1.2     peter /*
    489      1.2     peter  * jobs_enqueue is an enqueue function to be registered to
    490      1.2     peter  * (*altq_enqueue) in struct ifaltq.
    491      1.2     peter  */
    492      1.2     peter static int
    493      1.9  knakahar jobs_enqueue(struct ifaltq *ifq, struct mbuf *m)
    494      1.2     peter {
    495      1.2     peter 	struct jobs_if	*jif = (struct jobs_if *)ifq->altq_disc;
    496      1.2     peter 	struct jobs_class *cl, *scan;
    497      1.2     peter 	int len;
    498      1.2     peter 	int return_flag;
    499      1.2     peter 	int pri;
    500      1.2     peter 	u_int64_t now;
    501      1.2     peter 	u_int64_t old_arv;
    502      1.2     peter 	int64_t* delta_rate;
    503      1.2     peter 	u_int64_t tstamp1, tstamp2, cycles; /* used for benchmarking only */
    504      1.2     peter 
    505      1.2     peter 	jif->total_enqueued++;
    506      1.2     peter 	now = read_machclk();
    507      1.2     peter 	tstamp1 = now;
    508      1.2     peter 
    509      1.2     peter 	return_flag = 0;
    510      1.2     peter 
    511      1.2     peter 	/* proceed with packet enqueuing */
    512      1.2     peter 
    513      1.2     peter 	if (IFQ_IS_EMPTY(ifq)) {
    514      1.2     peter 		for (pri=0; pri <= jif->jif_maxpri; pri++) {
    515      1.2     peter 			scan = jif->jif_classes[pri];
    516      1.2     peter 			if (scan != NULL) {
    517      1.2     peter 				/*
    518      1.2     peter 				 * reset all quantities, except:
    519      1.2     peter 				 * average delay, number of violations
    520      1.2     peter 				 */
    521      1.2     peter 				PKTCNTR_RESET(&scan->cl_rin);
    522      1.2     peter 				PKTCNTR_RESET(&scan->cl_rout);
    523      1.2     peter 				PKTCNTR_RESET(&scan->cl_rout_th);
    524      1.2     peter 				PKTCNTR_RESET(&scan->cl_arrival);
    525      1.2     peter 				PKTCNTR_RESET(&scan->cl_dropcnt);
    526      1.2     peter 				scan->cl_lastdel = 0;
    527      1.2     peter 				scan->current_loss = 0;
    528      1.2     peter 				scan->service_rate = 0;
    529      1.2     peter 				scan->idletime = now;
    530      1.2     peter 				scan->cl_last_rate_update = now;
    531      1.2     peter 			}
    532      1.2     peter 		}
    533      1.2     peter 	}
    534      1.2     peter 
    535      1.2     peter 	/* grab class set by classifier */
    536      1.9  knakahar 	if ((cl = m->m_pkthdr.pattr_class) == NULL)
    537      1.2     peter 		cl = jif->jif_default;
    538      1.2     peter 
    539      1.2     peter 	len = m_pktlen(m);
    540      1.2     peter 	old_arv = cl->cl_arrival.bytes;
    541      1.2     peter 	PKTCNTR_ADD(&cl->cl_arrival, (int)len);
    542      1.2     peter 	PKTCNTR_ADD(&cl->cl_rin, (int)len);
    543      1.2     peter 	PKTCNTR_ADD(&cl->st_arrival, (int)len);
    544      1.2     peter 	PKTCNTR_ADD(&cl->st_rin, (int)len);
    545      1.2     peter 
    546      1.2     peter 	if (cl->cl_arrival.bytes < old_arv) {
    547      1.2     peter 		/* deals w/ overflow */
    548      1.2     peter 		for (pri=0; pri <= jif->jif_maxpri; pri++) {
    549      1.2     peter 			scan = jif->jif_classes[pri];
    550      1.2     peter 			if (scan != NULL) {
    551      1.2     peter 				/*
    552      1.2     peter 				 * reset all quantities, except:
    553      1.2     peter 				 * average delay, number of violations
    554      1.2     peter 				 */
    555      1.2     peter 				PKTCNTR_RESET(&scan->cl_rin);
    556      1.2     peter 				PKTCNTR_RESET(&scan->cl_rout);
    557      1.2     peter 				PKTCNTR_RESET(&scan->cl_rout_th);
    558      1.2     peter 				PKTCNTR_RESET(&scan->cl_arrival);
    559      1.2     peter 				PKTCNTR_RESET(&scan->cl_dropcnt);
    560      1.2     peter 				scan->current_loss = 0;
    561      1.2     peter 				scan->service_rate = 0;
    562      1.2     peter 				scan->idletime = now;
    563      1.2     peter 				scan->cl_last_rate_update = now;
    564      1.2     peter 			}
    565      1.2     peter 		}
    566      1.2     peter 		PKTCNTR_ADD(&cl->cl_arrival, (int)len);
    567      1.2     peter 		PKTCNTR_ADD(&cl->cl_rin, (int)len);
    568      1.2     peter 	}
    569      1.2     peter 
    570      1.2     peter 	if (cl->cl_arrival.bytes > cl->cl_rin.bytes)
    571      1.2     peter 		cl->current_loss =
    572      1.2     peter 		    ((cl->cl_arrival.bytes - cl->cl_rin.bytes) << SCALE_LOSS)
    573      1.2     peter 		    / cl->cl_arrival.bytes;
    574      1.2     peter 	else
    575      1.2     peter 		cl->current_loss = 0;
    576      1.2     peter 
    577      1.2     peter 	/* for MDRR: update theoretical value of the output curve */
    578      1.2     peter 
    579      1.2     peter 	for (pri=0; pri <= jif->jif_maxpri; pri++) {
    580      1.2     peter 		scan = jif->jif_classes[pri];
    581      1.2     peter 		if (scan != NULL) {
    582      1.2     peter 			if (scan->cl_last_rate_update == scan->idletime
    583      1.2     peter 			    || scan->cl_last_rate_update == 0)
    584      1.2     peter 				scan->cl_last_rate_update = now; /* initial case */
    585      1.2     peter 			else
    586      1.2     peter 				scan->cl_rout_th.bytes +=
    587      1.2     peter 				    delay_diff(now, scan->cl_last_rate_update)
    588      1.2     peter 				    * scan->service_rate;
    589      1.2     peter 
    590      1.2     peter 			/*
    591      1.2     peter 			 * we don't really care about packets here
    592      1.2     peter 			 * WARNING: rout_th is SCALED
    593      1.2     peter 			 * (b/c of the service rate)
    594      1.2     peter 			 * for precision, as opposed to rout.
    595      1.2     peter 			 */
    596      1.2     peter 
    597      1.2     peter 			scan->cl_last_rate_update = now;
    598      1.2     peter 		}
    599      1.2     peter 	}
    600      1.2     peter 
    601      1.2     peter 	if (jobs_addq(cl, m, jif) != 0)
    602      1.2     peter 		return_flag = ENOBUFS; /* signals there's a buffer overflow */
    603      1.2     peter 	else
    604      1.2     peter 		IFQ_INC_LEN(ifq);
    605      1.2     peter 
    606      1.2     peter 	/* successfully queued. */
    607      1.2     peter 
    608      1.2     peter 	enforce_wc(jif);
    609      1.2     peter 
    610      1.2     peter 	if (!min_rates_adc(jif)) {
    611      1.2     peter 		delta_rate = assign_rate_drops_adc(jif);
    612      1.2     peter 		if (delta_rate != NULL) {
    613      1.2     peter 			for (pri = 0; pri <= jif->jif_maxpri; pri++)
    614      1.2     peter 			  if ((cl = jif->jif_classes[pri]) != NULL &&
    615      1.2     peter 			      !qempty(cl->cl_q))
    616      1.2     peter 				cl->service_rate += delta_rate[pri];
    617      1.2     peter 			free(delta_rate, M_DEVBUF);
    618      1.2     peter 		}
    619      1.2     peter 	}
    620      1.2     peter 
    621      1.2     peter 	delta_rate = adjust_rates_rdc(jif);
    622      1.2     peter 
    623      1.2     peter 	if (delta_rate != NULL) {
    624      1.2     peter 		for (pri = 0; pri <= jif->jif_maxpri; pri++)
    625      1.2     peter 			if ((cl = jif->jif_classes[pri]) != NULL &&
    626      1.2     peter 			    !qempty(cl->cl_q))
    627      1.2     peter 				cl->service_rate += delta_rate[pri];
    628      1.2     peter 		free(delta_rate, M_DEVBUF);
    629      1.2     peter 	}
    630      1.2     peter 
    631      1.2     peter 	tstamp2 = read_machclk();
    632      1.2     peter 	cycles = delay_diff(tstamp2, tstamp1);
    633      1.2     peter 	if (cycles > jif->wc_cycles_enqueue)
    634      1.2     peter 		jif->wc_cycles_enqueue=cycles;
    635      1.2     peter 	if (cycles < jif->bc_cycles_enqueue)
    636      1.2     peter 		jif->bc_cycles_enqueue=cycles;
    637      1.2     peter 
    638      1.2     peter 	jif->avg_cycles_enqueue += cycles;
    639      1.2     peter 	jif->avg_cycles2_enqueue += cycles * cycles;
    640      1.2     peter 
    641      1.2     peter 	return (return_flag);
    642      1.2     peter }
    643      1.2     peter 
    644      1.2     peter /*
    645      1.2     peter  * jobs_dequeue is a dequeue function to be registered to
    646      1.2     peter  * (*altq_dequeue) in struct ifaltq.
    647      1.2     peter  *
    648      1.2     peter  * note: ALTDQ_POLL returns the next packet without removing the packet
    649      1.2     peter  *	from the queue.  ALTDQ_REMOVE is a normal dequeue operation.
    650      1.2     peter  *	ALTDQ_REMOVE must return the same packet if called immediately
    651      1.2     peter  *	after ALTDQ_POLL.
    652      1.2     peter  */
    653      1.2     peter 
    654      1.2     peter static struct mbuf *
    655      1.2     peter jobs_dequeue(struct ifaltq *ifq, int op)
    656      1.2     peter {
    657      1.2     peter 	struct jobs_if	*jif = (struct jobs_if *)ifq->altq_disc;
    658      1.2     peter 	struct jobs_class *cl;
    659      1.2     peter 	struct mbuf *m;
    660      1.2     peter 	int pri;
    661      1.2     peter 	int svc_class;
    662      1.2     peter 	int64_t max_error;
    663      1.2     peter 	int64_t error;
    664      1.2     peter 	u_int64_t now;
    665      1.2     peter 	u_int64_t tstamp1, tstamp2, cycles;
    666      1.2     peter 
    667      1.2     peter 	jif->total_dequeued++;
    668      1.2     peter 
    669      1.2     peter 	now = read_machclk();
    670      1.2     peter 	tstamp1 = now;
    671      1.2     peter 
    672      1.2     peter 	if (IFQ_IS_EMPTY(ifq)) {
    673      1.2     peter 		/* no packet in the queue */
    674      1.2     peter 		for (pri=0; pri <= jif->jif_maxpri; pri++) {
    675      1.2     peter 		  cl = jif->jif_classes[pri];
    676      1.2     peter 		  if (cl != NULL)
    677      1.2     peter 		    cl->idletime = now;
    678      1.2     peter 		}
    679      1.2     peter 
    680      1.2     peter 		tstamp2 = read_machclk();
    681      1.2     peter 		cycles = delay_diff(tstamp2, tstamp1);
    682      1.2     peter 		if (cycles > jif->wc_cycles_dequeue)
    683      1.2     peter 			jif->wc_cycles_dequeue = cycles;
    684      1.2     peter 		if (cycles < jif->bc_cycles_dequeue)
    685      1.2     peter 			jif->bc_cycles_dequeue = cycles;
    686      1.2     peter 
    687      1.2     peter 		jif->avg_cycles_dequeue += cycles;
    688      1.2     peter 		jif->avg_cycles2_dequeue += cycles * cycles;
    689      1.2     peter 
    690      1.2     peter 		return (NULL);
    691      1.2     peter 	}
    692      1.2     peter 
    693      1.2     peter 	/*
    694      1.2     peter 	 * select the class whose actual tranmissions are the furthest
    695      1.2     peter 	 * from the promised transmissions
    696      1.2     peter 	 */
    697      1.2     peter 
    698      1.2     peter 	max_error = -1;
    699      1.2     peter 	svc_class = -1;
    700      1.2     peter 
    701      1.2     peter 	for (pri=0; pri <= jif->jif_maxpri; pri++) {
    702      1.2     peter 		if (((cl = jif->jif_classes[pri]) != NULL)
    703      1.2     peter 		    && !qempty(cl->cl_q)) {
    704      1.2     peter 			error = (int64_t)cl->cl_rout_th.bytes
    705      1.2     peter 			    -(int64_t)scale_rate(cl->cl_rout.bytes);
    706      1.2     peter 			if (max_error == -1) {
    707      1.2     peter 				max_error = error;
    708      1.2     peter 				svc_class = pri;
    709      1.2     peter 			} else if (error > max_error) {
    710      1.2     peter 				max_error = error;
    711      1.2     peter 				svc_class = pri;
    712      1.2     peter 			}
    713      1.2     peter 		}
    714      1.2     peter 	}
    715      1.2     peter 
    716      1.2     peter 	if (svc_class != -1)
    717      1.2     peter 		cl = jif->jif_classes[svc_class];
    718      1.2     peter 	else
    719      1.2     peter 		cl = NULL;
    720      1.2     peter 
    721      1.2     peter 	if (op == ALTDQ_POLL) {
    722      1.2     peter 		tstamp2 = read_machclk();
    723      1.2     peter 		cycles = delay_diff(tstamp2, tstamp1);
    724      1.2     peter 		if (cycles > jif->wc_cycles_dequeue)
    725      1.2     peter 			jif->wc_cycles_dequeue = cycles;
    726      1.2     peter 		if (cycles < jif->bc_cycles_dequeue)
    727      1.2     peter 			jif->bc_cycles_dequeue = cycles;
    728      1.2     peter 
    729      1.2     peter 		jif->avg_cycles_dequeue += cycles;
    730      1.2     peter 		jif->avg_cycles2_dequeue += cycles * cycles;
    731      1.2     peter 
    732      1.2     peter 		return (jobs_pollq(cl));
    733      1.2     peter 	}
    734      1.2     peter 
    735      1.2     peter 	if (cl != NULL)
    736      1.2     peter 		m = jobs_getq(cl);
    737      1.2     peter 	else
    738      1.2     peter 		m = NULL;
    739      1.2     peter 
    740      1.2     peter 	if (m != NULL) {
    741      1.2     peter 		IFQ_DEC_LEN(ifq);
    742      1.2     peter 		if (qempty(cl->cl_q))
    743      1.2     peter 			cl->cl_period++;
    744      1.2     peter 
    745      1.2     peter 		cl->cl_lastdel = (u_int64_t)delay_diff(now,
    746      1.2     peter 		    tslist_first(cl->arv_tm)->timestamp);
    747      1.2     peter 		if (cl->concerned_adc
    748      1.2     peter 		    && (int64_t)cl->cl_lastdel > cl->cl_adc)
    749      1.2     peter 			cl->adc_violations++;
    750      1.2     peter 		cl->cl_avgdel  += ticks_to_secs(GRANULARITY*cl->cl_lastdel);
    751      1.2     peter 
    752      1.2     peter 		PKTCNTR_ADD(&cl->cl_rout, m_pktlen(m));
    753      1.2     peter 		PKTCNTR_ADD(&cl->st_rout, m_pktlen(m));
    754      1.2     peter 	}
    755      1.2     peter 	if (cl != NULL)
    756      1.2     peter 		tslist_dequeue(cl);		/* dequeue the timestamp */
    757      1.2     peter 
    758      1.2     peter 	tstamp2 = read_machclk();
    759      1.2     peter 	cycles = delay_diff(tstamp2, tstamp1);
    760      1.2     peter 	if (cycles > jif->wc_cycles_dequeue)
    761      1.2     peter 		jif->wc_cycles_dequeue = cycles;
    762      1.2     peter 	if (cycles < jif->bc_cycles_dequeue)
    763      1.2     peter 		jif->bc_cycles_dequeue = cycles;
    764      1.2     peter 
    765      1.2     peter 	jif->avg_cycles_dequeue += cycles;
    766      1.2     peter 	jif->avg_cycles2_dequeue += cycles * cycles;
    767      1.2     peter 
    768      1.2     peter 	return (m);
    769      1.2     peter }
    770      1.2     peter 
    771      1.2     peter static int
    772      1.2     peter jobs_addq(struct jobs_class *cl, struct mbuf *m, struct jobs_if *jif)
    773      1.2     peter {
    774      1.2     peter 	int victim;
    775      1.2     peter 	u_int64_t len;
    776      1.2     peter 	u_int64_t now;
    777      1.2     peter 	struct jobs_class* victim_class;
    778      1.2     peter 
    779      1.2     peter 	victim = -1;
    780      1.2     peter 	victim_class = NULL;
    781      1.2     peter 	len = 0;
    782      1.2     peter 
    783      1.2     peter 	now = read_machclk();
    784      1.2     peter 
    785      1.2     peter 	if (jif->jif_separate && qlen(cl->cl_q) >= jif->jif_qlimit) {
    786      1.2     peter 		/*
    787      1.2     peter 		 * separate buffers: no guarantees on packet drops
    788      1.2     peter 		 * can be offered
    789      1.2     peter 		 * thus we drop the incoming packet
    790      1.2     peter 		 */
    791      1.2     peter 		len = (u_int64_t)m_pktlen(m);
    792      1.2     peter 		PKTCNTR_ADD(&cl->cl_dropcnt, (int)len);
    793      1.2     peter 		PKTCNTR_SUB(&cl->cl_rin, (int)len);
    794      1.2     peter 		PKTCNTR_ADD(&cl->st_dropcnt, (int)len);
    795      1.2     peter 		PKTCNTR_SUB(&cl->st_rin, (int)len);
    796      1.2     peter 		cl->current_loss += (len << SCALE_LOSS)
    797      1.2     peter 		    /cl->cl_arrival.bytes;
    798      1.2     peter 		m_freem(m);
    799      1.2     peter 		return (-1);
    800      1.2     peter 
    801      1.2     peter 	} else if (!jif->jif_separate
    802      1.2     peter 		   && jif->jif_ifq->ifq_len >= jif->jif_qlimit) {
    803      1.2     peter 		/* shared buffer: supports guarantees on losses */
    804      1.2     peter 		if (!cl->concerned_rlc) {
    805      1.2     peter 			if (!cl->concerned_alc) {
    806      1.2     peter 				/*
    807      1.2     peter 				 * no ALC, no RLC on this class:
    808      1.2     peter 				 * drop the incoming packet
    809      1.2     peter 				 */
    810      1.2     peter 				len = (u_int64_t)m_pktlen(m);
    811      1.2     peter 				PKTCNTR_ADD(&cl->cl_dropcnt, (int)len);
    812      1.2     peter 				PKTCNTR_SUB(&cl->cl_rin, (int)len);
    813      1.2     peter 				PKTCNTR_ADD(&cl->st_dropcnt, (int)len);
    814      1.2     peter 				PKTCNTR_SUB(&cl->st_rin, (int)len);
    815      1.2     peter 				cl->current_loss += (len << SCALE_LOSS)/cl->cl_arrival.bytes;
    816      1.2     peter 				m_freem(m);
    817      1.2     peter 				return (-1);
    818      1.2     peter 			} else {
    819      1.2     peter 				/*
    820      1.2     peter 				 * no RLC, but an ALC:
    821      1.2     peter 				 * drop the incoming packet if possible
    822      1.2     peter 				 */
    823      1.2     peter 				len = (u_int64_t)m_pktlen(m);
    824      1.2     peter 				if (cl->current_loss + (len << SCALE_LOSS)
    825      1.2     peter 				    / cl->cl_arrival.bytes <= cl->cl_alc) {
    826      1.2     peter 					PKTCNTR_ADD(&cl->cl_dropcnt, (int)len);
    827      1.2     peter 					PKTCNTR_SUB(&cl->cl_rin, (int)len);
    828      1.2     peter 					PKTCNTR_ADD(&cl->st_dropcnt, (int)len);
    829      1.2     peter 					PKTCNTR_SUB(&cl->st_rin, (int)len);
    830      1.2     peter 					cl->current_loss += (len << SCALE_LOSS)/cl->cl_arrival.bytes;
    831      1.2     peter 					m_freem(m);
    832      1.2     peter 					return (-1);
    833      1.2     peter 				} else {
    834      1.2     peter 					/*
    835      1.2     peter 					 * the ALC would be violated:
    836      1.2     peter 					 * pick another class
    837      1.2     peter 					 */
    838      1.2     peter 					_addq(cl->cl_q, m);
    839      1.2     peter 					tslist_enqueue(cl, now);
    840      1.2     peter 
    841      1.2     peter 					victim = pick_dropped_rlc(jif);
    842      1.2     peter 
    843      1.2     peter 					if (victim == -1) {
    844      1.2     peter 						/*
    845      1.2     peter 						 * something went wrong
    846      1.2     peter 						 * let us discard
    847      1.2     peter 						 * the incoming packet,
    848      1.2     peter 						 * regardless of what
    849      1.2     peter 						 * may happen...
    850      1.2     peter 						 */
    851      1.2     peter 						victim_class = cl;
    852      1.2     peter 					} else
    853      1.2     peter 						victim_class = jif->jif_classes[victim];
    854      1.2     peter 
    855      1.2     peter 					if (victim_class != NULL) {
    856      1.2     peter 						/*
    857      1.2     peter 						 * test for safety
    858      1.2     peter 						 * purposes...
    859      1.2     peter 						 * it must be true
    860      1.2     peter 						 */
    861      1.2     peter 						m = _getq_tail(victim_class->cl_q);
    862      1.2     peter 						len = (u_int64_t)m_pktlen(m);
    863      1.2     peter 						PKTCNTR_ADD(&victim_class->cl_dropcnt, (int)len);
    864      1.2     peter 						PKTCNTR_SUB(&victim_class->cl_rin, (int)len);
    865      1.2     peter 						PKTCNTR_ADD(&victim_class->st_dropcnt, (int)len);
    866      1.2     peter 						PKTCNTR_SUB(&victim_class->st_rin, (int)len);
    867      1.2     peter 						victim_class->current_loss += (len << SCALE_LOSS)/victim_class->cl_arrival.bytes;
    868      1.2     peter 						m_freem(m); /* the packet is trashed here */
    869      1.2     peter 						tslist_drop(victim_class); /* and its timestamp as well */
    870      1.2     peter 					}
    871      1.2     peter 					return (-1);
    872      1.2     peter 				}
    873      1.2     peter 			}
    874      1.2     peter 		} else {
    875      1.2     peter 			/*
    876      1.2     peter 			 * RLC on that class:
    877      1.2     peter 			 * pick class according to RLCs
    878      1.2     peter 			 */
    879      1.2     peter 			_addq(cl->cl_q, m);
    880      1.2     peter 			tslist_enqueue(cl, now);
    881      1.2     peter 
    882      1.2     peter 			victim = pick_dropped_rlc(jif);
    883      1.2     peter 			if (victim == -1) {
    884      1.2     peter 				/*
    885      1.2     peter 				 * something went wrong
    886      1.2     peter 				 * let us discard the incoming packet,
    887      1.2     peter 				 * regardless of what may happen...
    888      1.2     peter 				 */
    889      1.2     peter 				victim_class = cl;
    890      1.2     peter 			} else
    891      1.2     peter 				victim_class = jif->jif_classes[victim];
    892      1.2     peter 
    893      1.2     peter 			if (victim_class != NULL) {
    894      1.2     peter 				/*
    895      1.2     peter 				 * test for safety purposes...
    896      1.2     peter 				 * it must be true
    897      1.2     peter 				 */
    898      1.2     peter 				m = _getq_tail(victim_class->cl_q);
    899      1.2     peter 				len = (u_int64_t)m_pktlen(m);
    900      1.2     peter 				PKTCNTR_ADD(&victim_class->cl_dropcnt, (int)len);
    901      1.2     peter 				PKTCNTR_SUB(&victim_class->cl_rin, (int)len);
    902      1.2     peter 				PKTCNTR_ADD(&victim_class->st_dropcnt, (int)len);
    903      1.2     peter 				PKTCNTR_SUB(&victim_class->st_rin, (int)len);
    904      1.2     peter 				victim_class->current_loss += (len << SCALE_LOSS)/victim_class->cl_arrival.bytes;
    905      1.2     peter 				m_freem(m); /* the packet is trashed here */
    906      1.2     peter 				tslist_drop(victim_class); /* and its timestamp as well */
    907      1.2     peter 			}
    908      1.2     peter 			return (-1);
    909      1.2     peter 		}
    910      1.2     peter 	}
    911      1.2     peter 	/* else: no drop */
    912      1.2     peter 
    913      1.2     peter 	_addq(cl->cl_q, m);
    914      1.2     peter 	tslist_enqueue(cl, now);
    915      1.2     peter 
    916      1.2     peter 	return (0);
    917      1.2     peter }
    918      1.2     peter 
    919      1.2     peter static struct mbuf *
    920      1.2     peter jobs_getq(struct jobs_class *cl)
    921      1.2     peter {
    922      1.2     peter 	return _getq(cl->cl_q);
    923      1.2     peter }
    924      1.2     peter 
    925      1.2     peter static struct mbuf *
    926      1.2     peter jobs_pollq(struct jobs_class *cl)
    927      1.2     peter {
    928      1.2     peter 	return qhead(cl->cl_q);
    929      1.2     peter }
    930      1.2     peter 
    931      1.2     peter static void
    932      1.2     peter jobs_purgeq(struct jobs_class *cl)
    933      1.2     peter {
    934      1.2     peter 	struct mbuf *m;
    935      1.2     peter 
    936      1.2     peter 	if (qempty(cl->cl_q))
    937      1.2     peter 		return;
    938      1.2     peter 
    939      1.2     peter 	while ((m = _getq(cl->cl_q)) != NULL) {
    940      1.2     peter 		PKTCNTR_ADD(&cl->cl_dropcnt, m_pktlen(m));
    941      1.2     peter 		PKTCNTR_ADD(&cl->st_dropcnt, m_pktlen(m));
    942      1.2     peter 		m_freem(m);
    943      1.2     peter 		tslist_drop(cl);
    944      1.2     peter 	}
    945      1.2     peter 	ASSERT(qlen(cl->cl_q) == 0);
    946      1.2     peter }
    947      1.2     peter 
    948      1.2     peter /*
    949      1.2     peter  * timestamp list support routines
    950      1.2     peter  *
    951      1.2     peter  * this implementation has been revamped and
    952      1.2     peter  * now uses a TAILQ structure.
    953      1.2     peter  * timestamp list holds class timestamps
    954      1.2     peter  * there is one timestamp list per class.
    955      1.2     peter  */
    956      1.2     peter static TSLIST *
    957      1.2     peter tslist_alloc(void)
    958      1.2     peter {
    959      1.2     peter 	TSLIST *list_init;
    960      1.2     peter 
    961      1.2     peter 	list_init = malloc(sizeof(TSLIST), M_DEVBUF, M_WAITOK);
    962      1.2     peter 	TAILQ_INIT(list_init);
    963      1.2     peter 	return (list_init);
    964      1.2     peter }
    965      1.2     peter 
    966      1.2     peter static void
    967      1.2     peter tslist_destroy(struct jobs_class *cl)
    968      1.2     peter {
    969      1.2     peter 	while (tslist_first(cl->arv_tm) != NULL)
    970      1.2     peter 		tslist_dequeue(cl);
    971      1.2     peter 
    972      1.2     peter 	free(cl->arv_tm, M_DEVBUF);
    973      1.2     peter }
    974      1.2     peter 
    975      1.2     peter static int
    976      1.2     peter tslist_enqueue(struct jobs_class *cl, u_int64_t arv)
    977      1.2     peter {
    978      1.2     peter 	TSENTRY *pushed;
    979      1.2     peter 	pushed = malloc(sizeof(TSENTRY), M_DEVBUF, M_WAITOK);
    980      1.2     peter 	if (pushed == NULL)
    981      1.2     peter 		return (0);
    982      1.2     peter 
    983      1.2     peter 	pushed->timestamp = arv;
    984      1.2     peter 	TAILQ_INSERT_TAIL(cl->arv_tm, pushed, ts_list);
    985      1.2     peter 	return (1);
    986      1.2     peter }
    987      1.2     peter 
    988      1.2     peter static void
    989      1.2     peter tslist_dequeue(struct jobs_class *cl)
    990      1.2     peter {
    991      1.2     peter 	TSENTRY *popped;
    992      1.2     peter 	popped = tslist_first(cl->arv_tm);
    993      1.2     peter 	if (popped != NULL) {
    994      1.2     peter 		  TAILQ_REMOVE(cl->arv_tm, popped, ts_list);
    995      1.2     peter 		  free(popped, M_DEVBUF);
    996      1.2     peter 	}
    997      1.2     peter 	return;
    998      1.2     peter }
    999      1.2     peter 
   1000      1.2     peter static void
   1001      1.2     peter tslist_drop(struct jobs_class *cl)
   1002      1.2     peter {
   1003      1.2     peter 	TSENTRY *popped;
   1004      1.2     peter 	popped = tslist_last(cl->arv_tm);
   1005      1.2     peter 	if (popped != NULL) {
   1006      1.2     peter 		  TAILQ_REMOVE(cl->arv_tm, popped, ts_list);
   1007      1.2     peter 		  free(popped, M_DEVBUF);
   1008      1.2     peter 	}
   1009      1.2     peter 	return;
   1010      1.2     peter }
   1011      1.2     peter 
   1012      1.2     peter /*
   1013      1.2     peter  * rate allocation support routines
   1014      1.2     peter  */
   1015      1.2     peter /*
   1016      1.2     peter  * enforce_wc: enforce that backlogged classes have non-zero
   1017      1.2     peter  * service rate, and that non-backlogged classes have zero
   1018      1.2     peter  * service rate.
   1019      1.2     peter  */
   1020      1.2     peter 
   1021      1.2     peter static int
   1022      1.2     peter enforce_wc(struct jobs_if *jif)
   1023      1.2     peter {
   1024      1.2     peter 	struct jobs_class *cl;
   1025      1.2     peter 
   1026      1.2     peter 	int64_t active_classes;
   1027      1.2     peter 	int pri;
   1028      1.2     peter 	int is_backlogged, class_exists, updated;
   1029      1.2     peter 
   1030      1.2     peter 	updated = 0;
   1031      1.2     peter 	active_classes = 0;
   1032      1.2     peter 
   1033      1.2     peter 	for (pri = 0; pri <= jif->jif_maxpri; pri++) {
   1034      1.2     peter 		cl = jif->jif_classes[pri];
   1035      1.2     peter 		class_exists = (cl != NULL);
   1036      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1037      1.2     peter 
   1038      1.2     peter 		if (is_backlogged)
   1039      1.2     peter 			active_classes++;
   1040      1.2     peter 		if ((is_backlogged && cl->service_rate <= 0)
   1041      1.2     peter 		    ||(class_exists
   1042      1.2     peter 		       && !is_backlogged && cl->service_rate > 0))
   1043      1.2     peter 			updated = 1;
   1044      1.2     peter 	}
   1045      1.2     peter 
   1046      1.2     peter 	if (updated) {
   1047      1.2     peter 		for (pri = 0; pri <= jif->jif_maxpri; pri++) {
   1048      1.2     peter 			cl = jif->jif_classes[pri];
   1049      1.2     peter 			class_exists = (cl != NULL);
   1050      1.2     peter 			is_backlogged = (class_exists && !qempty(cl->cl_q));
   1051      1.2     peter 
   1052      1.2     peter 			if (class_exists && !is_backlogged)
   1053      1.2     peter 				cl->service_rate = 0;
   1054      1.2     peter 			else if (is_backlogged)
   1055      1.2     peter 				cl->service_rate = (int64_t)(bps_to_internal((u_int64_t)jif->jif_bandwidth)/active_classes);
   1056      1.2     peter 		}
   1057      1.2     peter 	}
   1058      1.2     peter 
   1059      1.2     peter 	return (updated);
   1060      1.2     peter }
   1061      1.2     peter 
   1062      1.2     peter /*
   1063      1.2     peter  * adjust_rates_rdc: compute the service rates adjustments
   1064      1.2     peter  * needed to realize the desired proportional delay differentiation.
   1065      1.2     peter  * essentially, the rate adjustement delta_rate = prop_control*error,
   1066      1.2     peter  * where error is the difference between the measured "weighted"
   1067      1.2     peter  * delay and the mean of the weighted delays. see paper for more
   1068      1.2     peter  * information.
   1069      1.2     peter  * prop_control has slightly changed since the INFOCOM paper,
   1070      1.2     peter  * this condition seems to provide better results.
   1071      1.2     peter  */
   1072      1.2     peter 
   1073      1.2     peter static int64_t *
   1074      1.2     peter adjust_rates_rdc(struct jobs_if *jif)
   1075      1.2     peter {
   1076      1.2     peter 	int64_t *result;
   1077      1.2     peter 	int64_t credit, available, lower_bound, upper_bound;
   1078      1.2     peter 	int64_t bk;
   1079      1.2     peter 	int i, j;
   1080      1.2     peter 	int rdc_classes, active_classes;
   1081      1.2     peter 	int class_exists, is_backlogged;
   1082      1.2     peter 	struct jobs_class *cl;
   1083      1.2     peter 	int64_t *error;
   1084      1.2     peter 	int64_t prop_control;
   1085      1.2     peter 	u_int64_t max_prod;
   1086      1.2     peter 	u_int64_t min_share;
   1087      1.2     peter 	u_int64_t max_avg_pkt_size;
   1088      1.2     peter 
   1089      1.2     peter 	/*
   1090      1.2     peter 	 * min_share is scaled
   1091      1.2     peter 	 * to avoid dealing with doubles
   1092      1.2     peter 	 */
   1093      1.2     peter 	active_classes = 0;
   1094      1.2     peter 	rdc_classes = 0;
   1095      1.2     peter 	max_prod = 0;
   1096      1.2     peter 	max_avg_pkt_size = 0;
   1097      1.2     peter 
   1098      1.2     peter 	upper_bound = (int64_t)jif->jif_bandwidth;
   1099      1.2     peter 
   1100      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1101      1.2     peter 		cl = jif->jif_classes[i];
   1102      1.2     peter 		class_exists = (cl != NULL);
   1103      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1104      1.2     peter 		if (is_backlogged) {
   1105      1.2     peter 			active_classes++;
   1106      1.2     peter 			if (cl->concerned_rdc)
   1107      1.2     peter 				rdc_classes++;
   1108      1.2     peter 			else
   1109      1.2     peter 				upper_bound -=
   1110      1.2     peter 				    internal_to_bps(cl->service_rate);
   1111      1.2     peter 		}
   1112      1.2     peter 	}
   1113      1.2     peter 
   1114      1.2     peter 	result = malloc((jif->jif_maxpri+1)*sizeof(int64_t),
   1115      1.2     peter 	    M_DEVBUF, M_WAITOK);
   1116      1.2     peter 
   1117      1.2     peter 	if (result == NULL)
   1118      1.2     peter 		return NULL;
   1119      1.2     peter 
   1120      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++)
   1121      1.2     peter 		result[i] = 0;
   1122      1.2     peter 
   1123      1.2     peter 	if (upper_bound <= 0 || rdc_classes == 0)
   1124      1.2     peter 		return result;
   1125      1.2     peter 
   1126      1.2     peter 	credit = 0;
   1127      1.2     peter 	lower_bound = 0;
   1128      1.2     peter 	min_share = ((u_int64_t)1 << SCALE_SHARE);
   1129      1.2     peter 	bk = 0;
   1130      1.2     peter 
   1131      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1132      1.2     peter 		cl = jif->jif_classes[i];
   1133      1.2     peter 		class_exists = (cl != NULL);
   1134      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1135      1.2     peter 		if (is_backlogged && cl->concerned_rdc)
   1136      1.2     peter 			bk += cl->cl_rin.bytes;
   1137      1.2     peter 	}
   1138      1.2     peter 
   1139      1.2     peter 	if (bk == 0)
   1140      1.2     peter 		return (result);
   1141      1.2     peter 
   1142      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1143      1.2     peter 		cl = jif->jif_classes[i];
   1144      1.2     peter 		class_exists = (cl != NULL);
   1145      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1146      1.2     peter 		if (is_backlogged
   1147      1.2     peter 		    && (cl->cl_rin.bytes << SCALE_SHARE)/bk < min_share)
   1148      1.2     peter 			min_share = (cl->cl_rin.bytes << SCALE_SHARE)/bk;
   1149      1.2     peter 		if (is_backlogged && cl->concerned_rdc
   1150      1.2     peter 		    && cl->delay_prod_others > max_prod)
   1151      1.2     peter 			max_prod = cl->delay_prod_others;
   1152      1.2     peter 
   1153      1.2     peter 		if (is_backlogged && cl->concerned_rdc
   1154      1.2     peter 		    && cl->cl_rin.bytes > max_avg_pkt_size*cl->cl_rin.packets)
   1155      1.2     peter 			max_avg_pkt_size = (u_int64_t)((u_int)cl->cl_rin.bytes/(u_int)cl->cl_rin.packets);
   1156      1.2     peter 	}
   1157      1.2     peter 
   1158      1.2     peter 	error = update_error(jif);
   1159      1.2     peter 	if (!error)
   1160      1.7  riastrad 		goto fail;
   1161      1.2     peter 
   1162      1.2     peter 	prop_control = (upper_bound*upper_bound*min_share)
   1163      1.2     peter 	    /(max_prod*(max_avg_pkt_size << 2));
   1164      1.2     peter 
   1165      1.2     peter 	prop_control = bps_to_internal(ticks_to_secs(prop_control)); /* in BT-1 */
   1166      1.2     peter 
   1167      1.2     peter 	credit = 0;
   1168      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1169      1.2     peter 		cl = jif->jif_classes[i];
   1170      1.2     peter 		class_exists = (cl != NULL);
   1171      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1172      1.2     peter 		if (is_backlogged && cl->concerned_rdc) {
   1173      1.2     peter 			result[i] = -prop_control*error[i]; /* in BT-1 */
   1174      1.2     peter 			result[i] >>= (SCALE_SHARE);
   1175      1.2     peter 		}
   1176      1.2     peter 	}
   1177      1.2     peter 
   1178      1.2     peter 	free(error, M_DEVBUF); /* we don't need these anymore */
   1179      1.2     peter 
   1180      1.2     peter 	/* saturation */
   1181      1.2     peter 
   1182      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1183      1.2     peter 		cl = jif->jif_classes[i];
   1184      1.2     peter 		class_exists = (cl != NULL);
   1185      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1186      1.2     peter 
   1187      1.2     peter 		if (is_backlogged && cl->concerned_rdc)
   1188      1.2     peter 			lower_bound += cl->min_rate_adc;
   1189      1.2     peter 		/*
   1190      1.2     peter 		 * note: if there's no ADC or ARC on cl,
   1191      1.2     peter 		 * this is equal to zero, which is fine
   1192      1.2     peter 		 */
   1193      1.2     peter 	}
   1194      1.2     peter 
   1195      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1196      1.2     peter 		cl = jif->jif_classes[i];
   1197      1.2     peter 		class_exists = (cl != NULL);
   1198      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1199      1.2     peter 
   1200      1.2     peter 		if (is_backlogged && cl->concerned_rdc
   1201      1.2     peter 		    && result[i] + cl->service_rate > upper_bound) {
   1202      1.2     peter 			for (j = 0; j <= jif->jif_maxpri; j++) {
   1203      1.2     peter 				cl = jif->jif_classes[j];
   1204      1.2     peter 				class_exists = (cl != NULL);
   1205      1.2     peter 				is_backlogged = (class_exists
   1206      1.2     peter 						 && !qempty(cl->cl_q));
   1207      1.2     peter 				if (is_backlogged && cl->concerned_rdc) {
   1208      1.2     peter 					if (j == i)
   1209      1.2     peter 						result[j] = upper_bound
   1210      1.2     peter 						    -cl->service_rate
   1211      1.2     peter 						    + cl->min_rate_adc
   1212      1.2     peter 						    - lower_bound;
   1213      1.2     peter 					else
   1214      1.2     peter 						result[j] =
   1215      1.2     peter 						    -cl->service_rate
   1216      1.2     peter 						    +cl->min_rate_adc;
   1217      1.2     peter 				}
   1218      1.2     peter 			}
   1219      1.2     peter 			return result;
   1220      1.2     peter 		}
   1221      1.2     peter 
   1222      1.2     peter 		cl = jif->jif_classes[i];
   1223      1.2     peter 		/* do this again since it may have been modified */
   1224      1.2     peter 		class_exists = (cl != NULL);
   1225      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1226      1.2     peter 
   1227      1.2     peter 		if (is_backlogged && cl->concerned_rdc
   1228      1.2     peter 		    && result[i] + cl->service_rate < cl->min_rate_adc) {
   1229      1.2     peter 			credit += cl->service_rate+result[i]
   1230      1.2     peter 			    -cl->min_rate_adc;
   1231      1.2     peter 			/* "credit" is in fact a negative number */
   1232      1.2     peter 			result[i] = -cl->service_rate+cl->min_rate_adc;
   1233      1.2     peter 		}
   1234      1.2     peter 	}
   1235      1.2     peter 
   1236      1.2     peter 	for (i = jif->jif_maxpri; (i >= 0 && credit < 0); i--) {
   1237      1.2     peter 		cl = jif->jif_classes[i];
   1238      1.2     peter 		class_exists = (cl != NULL);
   1239      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1240      1.2     peter 
   1241      1.2     peter 		if (is_backlogged && cl->concerned_rdc) {
   1242      1.2     peter 			available = result[i]
   1243      1.2     peter 			    + cl->service_rate-cl->min_rate_adc;
   1244      1.2     peter 			if (available >= -credit) {
   1245      1.2     peter 				result[i] += credit;
   1246      1.2     peter 				credit = 0;
   1247      1.2     peter 			} else {
   1248      1.2     peter 				result[i] -= available;
   1249      1.2     peter 				credit += available;
   1250      1.2     peter 			}
   1251      1.2     peter 		}
   1252      1.2     peter 	}
   1253      1.2     peter 	return result;
   1254      1.7  riastrad 
   1255      1.7  riastrad fail:	free(result, M_DEVBUF);
   1256      1.7  riastrad 	return NULL;
   1257      1.2     peter }
   1258      1.2     peter 
   1259      1.2     peter /*
   1260      1.2     peter  * assign_rate_drops_adc: returns the adjustment needed to
   1261      1.2     peter  * the service rates to meet the absolute delay/rate constraints
   1262      1.2     peter  * (delay/throughput bounds) and drops traffic if need be.
   1263      1.2     peter  * see tech. report UVA/T.R. CS-2000-24/CS-2001-21 for more info.
   1264      1.2     peter  */
   1265      1.2     peter 
   1266      1.2     peter static int64_t *
   1267      1.2     peter assign_rate_drops_adc(struct jobs_if *jif)
   1268      1.2     peter {
   1269      1.2     peter 	int64_t *result;
   1270      1.2     peter 	int class_exists, is_backlogged;
   1271      1.2     peter 	struct jobs_class *cl;
   1272      1.2     peter 
   1273      1.2     peter 	int64_t *c, *n, *k;
   1274      1.2     peter 	int64_t *available;
   1275      1.2     peter 
   1276      1.2     peter 	int lowest, highest;
   1277      1.2     peter 	int keep_going;
   1278      1.2     peter 	int i;
   1279      1.2     peter 	u_int64_t now, oldest_arv;
   1280      1.2     peter 	int64_t	remaining_time;
   1281      1.2     peter 	struct mbuf* pkt;
   1282      1.2     peter 	u_int64_t len;
   1283      1.2     peter 
   1284      1.2     peter 	now = read_machclk();
   1285      1.2     peter 	oldest_arv = now;
   1286      1.2     peter 
   1287      1.2     peter 	result = malloc((jif->jif_maxpri+1)*sizeof(int64_t), M_DEVBUF, M_WAITOK);
   1288      1.2     peter 	if (result == NULL)
   1289      1.7  riastrad 		goto fail0;
   1290      1.2     peter 	c = malloc((jif->jif_maxpri+1)*sizeof(u_int64_t), M_DEVBUF, M_WAITOK);
   1291      1.2     peter 	if (c == NULL)
   1292      1.7  riastrad 		goto fail1;
   1293      1.2     peter 	n = malloc((jif->jif_maxpri+1)*sizeof(u_int64_t), M_DEVBUF, M_WAITOK);
   1294      1.2     peter 	if (n == NULL)
   1295      1.7  riastrad 		goto fail2;
   1296      1.2     peter 	k = malloc((jif->jif_maxpri+1)*sizeof(u_int64_t), M_DEVBUF, M_WAITOK);
   1297      1.2     peter 	if (k == NULL)
   1298      1.7  riastrad 		goto fail3;
   1299      1.2     peter 	available = malloc((jif->jif_maxpri+1)*sizeof(int64_t), M_DEVBUF, M_WAITOK);
   1300      1.2     peter 	if (available == NULL)
   1301      1.7  riastrad 		goto fail4;
   1302      1.2     peter 
   1303      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++)
   1304      1.2     peter 		result[i] = 0;
   1305      1.2     peter 
   1306      1.2     peter 	keep_going = 1;
   1307      1.2     peter 
   1308      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1309      1.2     peter 		cl = jif->jif_classes[i];
   1310      1.2     peter 		class_exists = (cl != NULL);
   1311      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1312      1.2     peter 
   1313      1.2     peter 		if (is_backlogged) {
   1314      1.2     peter 			if (cl->concerned_adc) {
   1315      1.2     peter 				/*
   1316      1.2     peter 				 * get the arrival time of the oldest
   1317      1.2     peter 				 * class-i packet
   1318      1.2     peter 				 */
   1319      1.2     peter 				if (tslist_first(cl->arv_tm) == NULL)
   1320      1.2     peter 					oldest_arv = now; /* NOTREACHED */
   1321      1.2     peter 				else
   1322      1.2     peter 					oldest_arv = (tslist_first(cl->arv_tm))->timestamp;
   1323      1.2     peter 
   1324      1.2     peter 				n[i] = cl->service_rate;
   1325      1.2     peter 				k[i] = scale_rate((int64_t)(cl->cl_rin.bytes - cl->cl_rout.bytes));
   1326      1.2     peter 
   1327      1.2     peter 				remaining_time = cl->cl_adc
   1328      1.2     peter 				    - (int64_t)delay_diff(now, oldest_arv);
   1329      1.2     peter 				if (remaining_time > 0) {
   1330      1.2     peter 					c[i] = remaining_time;
   1331      1.2     peter 					/*
   1332      1.2     peter 					 * c is the remaining time before
   1333      1.2     peter 					 * the deadline is violated
   1334      1.2     peter 					 * (in ticks)
   1335      1.2     peter 					 */
   1336      1.2     peter 					available[i] = n[i]-k[i]/c[i];
   1337      1.2     peter 				} else {
   1338      1.2     peter 					/*
   1339      1.2     peter 					 * deadline has passed...
   1340      1.2     peter 					 * we allocate the whole link
   1341      1.2     peter 					 * capacity to hopefully
   1342      1.2     peter 					 * solve the problem
   1343      1.2     peter 					 */
   1344      1.2     peter 					c[i] = 0;
   1345      1.2     peter 					available[i] = -((int64_t)bps_to_internal((u_int64_t)jif->jif_bandwidth));
   1346      1.2     peter 				}
   1347      1.2     peter 				if (cl->concerned_arc) {
   1348      1.2     peter 					/*
   1349      1.2     peter 					 * there's an ARC in addition
   1350      1.2     peter 					 * to the ADC
   1351      1.2     peter 					 */
   1352      1.2     peter 					if (n[i] - cl->cl_arc < available[i])
   1353      1.2     peter 						available[i] = n[i]
   1354      1.2     peter 						    - cl->cl_arc;
   1355      1.2     peter 				}
   1356      1.2     peter 			} else if (cl->concerned_arc) {
   1357      1.2     peter 				/*
   1358      1.2     peter 				 * backlogged, concerned by ARC
   1359      1.2     peter 				 * but not by ADC
   1360      1.2     peter 				 */
   1361      1.2     peter 				n[i] = cl->service_rate;
   1362      1.2     peter 				available[i] = n[i] - cl->cl_arc;
   1363      1.2     peter 			} else {
   1364      1.2     peter 				/*
   1365      1.2     peter 				 * backlogged but not concerned by ADC
   1366      1.2     peter 				 * or ARC -> can give everything
   1367      1.2     peter 				 */
   1368      1.2     peter 				n[i] = cl->service_rate;
   1369      1.2     peter 				available[i] = n[i];
   1370      1.2     peter 			}
   1371      1.2     peter 		} else {
   1372      1.2     peter 			/* not backlogged */
   1373      1.2     peter 			n[i] = 0;
   1374      1.2     peter 			k[i] = 0;
   1375      1.2     peter 			c[i] = 0;
   1376      1.2     peter 			if (class_exists)
   1377      1.2     peter 				available[i] = cl->service_rate;
   1378      1.2     peter 			else
   1379      1.2     peter 				available[i] = 0;
   1380      1.2     peter 		}
   1381      1.2     peter 	}
   1382      1.2     peter 
   1383      1.2     peter 	/* step 1: adjust rates (greedy algorithm) */
   1384      1.2     peter 
   1385      1.2     peter 	highest = 0;
   1386      1.2     peter 	lowest  = jif->jif_maxpri;
   1387      1.2     peter 
   1388      1.2     peter 	while (highest < jif->jif_maxpri+1 && available[highest] >= 0)
   1389      1.2     peter 		highest++; /* which is the highest class that needs more service? */
   1390      1.2     peter 	while (lowest > 0 && available[lowest] <= 0)
   1391      1.2     peter 		lowest--;  /* which is the lowest class that needs less service? */
   1392      1.2     peter 
   1393      1.2     peter 	while (highest != jif->jif_maxpri+1 && lowest != -1) {
   1394      1.2     peter 		/* give the excess service from lowest to highest */
   1395      1.2     peter 		if (available[lowest]+available[highest] > 0) {
   1396      1.2     peter 			/*
   1397      1.2     peter 			 * still some "credit" left
   1398      1.2     peter 			 * give all that is needed by "highest"
   1399      1.2     peter 			 */
   1400      1.2     peter 			n[lowest]  += available[highest];
   1401      1.2     peter 			n[highest] -= available[highest];
   1402      1.2     peter 			available[lowest]  += available[highest];
   1403      1.2     peter 			available[highest] = 0;
   1404      1.2     peter 
   1405      1.2     peter 			while (highest < jif->jif_maxpri+1
   1406      1.2     peter 			       && available[highest] >= 0)
   1407      1.2     peter 				highest++;  /* which is the highest class that needs more service now? */
   1408      1.2     peter 
   1409      1.2     peter 		} else if (available[lowest]+available[highest] == 0) {
   1410      1.2     peter 			/* no more credit left but it's fine */
   1411      1.2     peter 			n[lowest]  += available[highest];
   1412      1.2     peter 			n[highest] -= available[highest];
   1413      1.2     peter 			available[highest] = 0;
   1414      1.2     peter 			available[lowest]  = 0;
   1415      1.2     peter 
   1416      1.2     peter 			while (highest < jif->jif_maxpri+1
   1417      1.2     peter 			       && available[highest] >= 0)
   1418      1.2     peter 				highest++;  /* which is the highest class that needs more service? */
   1419      1.2     peter 			while (lowest >= 0 && available[lowest] <= 0)
   1420      1.2     peter 				lowest--;   /* which is the lowest class that needs less service? */
   1421      1.2     peter 
   1422      1.2     peter 		} else if (available[lowest]+available[highest] < 0) {
   1423      1.2     peter 			/*
   1424      1.2     peter 			 * no more credit left and we need to switch
   1425      1.2     peter 			 * to another class
   1426      1.2     peter 			 */
   1427      1.2     peter 			n[lowest]  -= available[lowest];
   1428      1.2     peter 			n[highest] += available[lowest];
   1429      1.2     peter 			available[highest] += available[lowest];
   1430      1.2     peter 			available[lowest]  = 0;
   1431      1.2     peter 
   1432      1.2     peter 			while ((lowest >= 0)&&(available[lowest] <= 0))
   1433      1.2     peter 				lowest--;  /* which is the lowest class that needs less service? */
   1434      1.2     peter 		}
   1435      1.2     peter 	}
   1436      1.2     peter 
   1437      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1438      1.2     peter 		cl = jif->jif_classes[i];
   1439      1.2     peter 		class_exists = (cl != NULL);
   1440      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1441      1.2     peter 		if (is_backlogged) {
   1442      1.2     peter 			result[i] = n[i] - cl->service_rate;
   1443      1.2     peter 		} else {
   1444      1.2     peter 			if (class_exists)
   1445      1.2     peter 				result[i] = - cl->service_rate;
   1446      1.2     peter 			else
   1447      1.2     peter 				result[i] = 0;
   1448      1.2     peter 		}
   1449      1.2     peter 	}
   1450      1.2     peter 
   1451      1.2     peter 	/* step 2: adjust drops (for ADC) */
   1452      1.2     peter 
   1453      1.2     peter 	if (highest != jif->jif_maxpri+1) {
   1454      1.2     peter 		/* some class(es) still need(s) additional service */
   1455      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
   1456      1.2     peter 			cl = jif->jif_classes[i];
   1457      1.2     peter 			class_exists = (cl != NULL);
   1458      1.2     peter 			is_backlogged = (class_exists
   1459      1.2     peter 					 && !qempty(cl->cl_q));
   1460      1.2     peter 			if (is_backlogged && available[i] < 0) {
   1461      1.2     peter 				if (cl->concerned_adc) {
   1462      1.2     peter 					k[i] = c[i]*n[i];
   1463      1.2     peter 					while (keep_going && scale_rate((int64_t)(cl->cl_rin.bytes-cl->cl_rout.bytes)) > k[i]) {
   1464      1.2     peter 						pkt = qtail(cl->cl_q);
   1465      1.2     peter 						if (pkt != NULL) {
   1466      1.2     peter 							/* "safeguard" test (a packet SHOULD be in there) */
   1467      1.2     peter 							len = (u_int64_t)m_pktlen(pkt);
   1468      1.2     peter 							/* access packet at the tail */
   1469      1.2     peter 							if (cl->concerned_alc
   1470      1.2     peter 							    && cl->current_loss+(len << SCALE_LOSS)/cl->cl_arrival.bytes > cl->cl_alc) {
   1471      1.2     peter 								keep_going = 0; /* relax ADC in favor of ALC */
   1472      1.2     peter 							} else {
   1473      1.2     peter 								/* drop packet at the tail of the class-i queue, update values */
   1474      1.2     peter 								pkt = _getq_tail(cl->cl_q);
   1475      1.2     peter 								len = (u_int64_t)m_pktlen(pkt);
   1476      1.2     peter 								PKTCNTR_ADD(&cl->cl_dropcnt, (int)len);
   1477      1.2     peter 								PKTCNTR_SUB(&cl->cl_rin, (int)len);
   1478      1.2     peter 								PKTCNTR_ADD(&cl->st_dropcnt, (int)len);
   1479      1.2     peter 								PKTCNTR_SUB(&cl->st_rin, (int)len);
   1480      1.2     peter 								cl->current_loss += (len << SCALE_LOSS)/cl->cl_arrival.bytes;
   1481      1.2     peter 								m_freem(pkt); /* the packet is trashed here */
   1482      1.2     peter 								tslist_drop(cl);
   1483      1.2     peter 								IFQ_DEC_LEN(cl->cl_jif->jif_ifq);
   1484      1.2     peter 							}
   1485      1.2     peter 						} else
   1486      1.2     peter 							keep_going = 0; /* NOTREACHED */
   1487      1.2     peter 					}
   1488      1.2     peter 					k[i] = scale_rate((int64_t)(cl->cl_rin.bytes-cl->cl_rout.bytes));
   1489      1.2     peter 				}
   1490      1.2     peter 				/*
   1491      1.2     peter 				 * n[i] is the max rate we can give.
   1492      1.2     peter 				 * the above drops as much as possible
   1493      1.2     peter 				 * to respect a delay bound.
   1494      1.2     peter 				 * for throughput bounds,
   1495      1.2     peter 				 * there's nothing that can be done
   1496      1.2     peter 				 * after the greedy reallocation.
   1497      1.2     peter 				 */
   1498      1.2     peter 			}
   1499      1.2     peter 		}
   1500      1.2     peter 	}
   1501      1.2     peter 
   1502      1.2     peter 	/* update the values of min_rate_adc */
   1503      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1504      1.2     peter 		cl = jif->jif_classes[i];
   1505      1.2     peter 		class_exists = (cl != NULL);
   1506      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1507      1.2     peter 		if (is_backlogged && cl->concerned_adc) {
   1508      1.2     peter 			if (c[i] != 0) {
   1509      1.2     peter 				if (cl->concerned_adc
   1510      1.2     peter 				    && !cl->concerned_arc)
   1511      1.2     peter 					cl->min_rate_adc = k[i]/c[i];
   1512      1.2     peter 				else
   1513      1.2     peter 					cl->min_rate_adc = n[i];
   1514      1.2     peter 			} else
   1515      1.2     peter 				cl->min_rate_adc = (int64_t)bps_to_internal((u_int64_t)jif->jif_bandwidth);
   1516      1.2     peter 		} else if (is_backlogged && cl->concerned_arc)
   1517      1.2     peter 			cl->min_rate_adc = n[i]; /* the best we can give */
   1518      1.2     peter 		else {
   1519      1.2     peter 			if (class_exists)
   1520      1.2     peter 				cl->min_rate_adc = 0;
   1521      1.2     peter 		}
   1522      1.2     peter 	}
   1523      1.2     peter 
   1524      1.2     peter 	free(c, M_DEVBUF);
   1525      1.2     peter 	free(n, M_DEVBUF);
   1526      1.2     peter 	free(k, M_DEVBUF);
   1527      1.2     peter 	free(available, M_DEVBUF);
   1528      1.2     peter 
   1529      1.2     peter 	return (result);
   1530      1.7  riastrad 
   1531      1.7  riastrad fail5: __unused
   1532      1.7  riastrad 	free(available, M_DEVBUF);
   1533      1.7  riastrad fail4:	free(k, M_DEVBUF);
   1534      1.7  riastrad fail3:	free(n, M_DEVBUF);
   1535      1.7  riastrad fail2:	free(c, M_DEVBUF);
   1536      1.7  riastrad fail1:	free(result, M_DEVBUF);
   1537      1.7  riastrad fail0:	return NULL;
   1538      1.2     peter }
   1539      1.2     peter 
   1540      1.2     peter /*
   1541      1.2     peter  * update_error: returns the difference between the mean weighted
   1542      1.2     peter  * delay and the weighted delay for each class. if proportional
   1543      1.2     peter  * delay differentiation is perfectly achieved, it should return
   1544      1.2     peter  * zero for each class.
   1545      1.2     peter  */
   1546      1.2     peter static int64_t *
   1547      1.2     peter update_error(struct jobs_if *jif)
   1548      1.2     peter {
   1549      1.2     peter 	int i;
   1550  1.9.2.1  pgoyette 	int active_classes;
   1551      1.2     peter 	u_int64_t mean_weighted_delay;
   1552      1.2     peter 	u_int64_t delays[JOBS_MAXPRI];
   1553      1.2     peter 	int64_t* error;
   1554      1.2     peter 	int class_exists, is_backlogged;
   1555      1.2     peter 	struct jobs_class *cl;
   1556      1.2     peter 
   1557      1.2     peter 	error = malloc(sizeof(int64_t)*(jif->jif_maxpri+1), M_DEVBUF,
   1558      1.2     peter 	    M_WAITOK|M_ZERO);
   1559      1.2     peter 
   1560      1.2     peter 	if (error == NULL)
   1561      1.2     peter 		return NULL;
   1562      1.2     peter 
   1563      1.2     peter 	mean_weighted_delay = 0;
   1564      1.2     peter 	active_classes = 0;
   1565      1.2     peter 
   1566      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1567      1.2     peter 		cl = jif->jif_classes[i];
   1568      1.2     peter 		class_exists = (cl != NULL);
   1569      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1570      1.2     peter 
   1571      1.2     peter 		if (is_backlogged) {
   1572      1.2     peter 			if (cl->concerned_rdc) {
   1573      1.2     peter 				delays[i] = proj_delay(jif, i);
   1574      1.2     peter 				mean_weighted_delay += cl->delay_prod_others*delays[i];
   1575      1.2     peter 				active_classes ++;
   1576      1.2     peter 			}
   1577      1.2     peter 		}
   1578      1.2     peter 	}
   1579      1.2     peter 
   1580      1.2     peter 	if (active_classes == 0)
   1581      1.2     peter 		return error;
   1582      1.2     peter 	else
   1583      1.2     peter 		mean_weighted_delay /= active_classes;
   1584      1.2     peter 
   1585      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1586      1.2     peter 		cl = jif->jif_classes[i];
   1587      1.2     peter 		class_exists = (cl != NULL);
   1588      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1589      1.2     peter 
   1590      1.2     peter 		if (is_backlogged && cl->concerned_rdc)
   1591      1.2     peter 			error[i] = ((int64_t)mean_weighted_delay)-((int64_t)cl->delay_prod_others*delays[i]);
   1592      1.2     peter 		else
   1593      1.2     peter 			error[i] = 0; /*
   1594      1.2     peter 				       * either the class isn't concerned,
   1595      1.2     peter 				       * or it's not backlogged.
   1596      1.2     peter 				       * in any case, the rate shouldn't
   1597      1.2     peter 				       * be adjusted.
   1598      1.2     peter 				       */
   1599      1.2     peter 	}
   1600      1.2     peter 	return error;
   1601      1.2     peter }
   1602      1.2     peter 
   1603      1.2     peter /*
   1604      1.2     peter  * min_rates_adc: computes the minimum service rates needed in
   1605      1.2     peter  * each class to meet the absolute delay bounds. if, for any
   1606      1.2     peter  * class i, the current service rate of class i is less than
   1607      1.2     peter  * the computed minimum service rate, this function returns
   1608      1.2     peter  * false, true otherwise.
   1609      1.2     peter  */
   1610      1.2     peter static int
   1611      1.2     peter min_rates_adc(struct jobs_if *jif)
   1612      1.2     peter {
   1613      1.2     peter 	int result;
   1614      1.2     peter 	int i;
   1615      1.2     peter 	int class_exists, is_backlogged;
   1616      1.2     peter 	int64_t remaining_time;
   1617      1.2     peter 	struct jobs_class *cl;
   1618      1.2     peter 	result = 1;
   1619      1.2     peter 
   1620      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1621      1.2     peter 		cl = jif->jif_classes[i];
   1622      1.2     peter 		class_exists = (cl != NULL);
   1623      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1624      1.2     peter 		if (is_backlogged && cl->concerned_adc) {
   1625      1.2     peter 			remaining_time = cl->cl_adc - proj_delay(jif, i);
   1626      1.2     peter 			if (remaining_time > 0 ) {
   1627      1.2     peter 				/* min rate needed for ADC */
   1628      1.2     peter 				cl->min_rate_adc = scale_rate((int64_t)(cl->cl_rin.bytes-cl->cl_rout.bytes))/remaining_time;
   1629      1.2     peter 				if (cl->concerned_arc
   1630      1.2     peter 				    && cl->cl_arc > cl->min_rate_adc) {
   1631      1.2     peter 					/* min rate needed for ADC + ARC */
   1632      1.2     peter 					cl->min_rate_adc = cl->cl_arc;
   1633      1.2     peter 				}
   1634      1.2     peter 			} else {
   1635      1.2     peter 				/* the deadline has been exceeded: give the whole link capacity to hopefully fix the situation */
   1636      1.2     peter 				cl->min_rate_adc = (int64_t)bps_to_internal((u_int64_t)jif->jif_bandwidth);
   1637      1.2     peter 			}
   1638      1.2     peter       		} else if (is_backlogged && cl->concerned_arc)
   1639      1.2     peter 			cl->min_rate_adc = cl->cl_arc; 			/* no ADC, an ARC */
   1640      1.2     peter 		else if (class_exists)
   1641      1.2     peter 			cl->min_rate_adc = 0;	/*
   1642      1.2     peter 						 * either the class is not
   1643      1.2     peter 						 * backlogged
   1644      1.2     peter 						 * or there is no ADC and
   1645      1.2     peter 						 * no ARC
   1646      1.2     peter 						 */
   1647      1.2     peter 		if (is_backlogged && cl->min_rate_adc > cl->service_rate)
   1648      1.2     peter 			result = 0;
   1649      1.2     peter 	}
   1650      1.2     peter 
   1651      1.2     peter 	return result;
   1652      1.2     peter }
   1653      1.2     peter 
   1654      1.2     peter /*
   1655      1.2     peter  * proj_delay: computes the difference between the current time
   1656      1.2     peter  * and the time the oldest class-i packet still in the class-i
   1657      1.2     peter  * queue i arrived in the system.
   1658      1.2     peter  */
   1659      1.2     peter static int64_t
   1660      1.2     peter proj_delay(struct jobs_if *jif, int i)
   1661      1.2     peter {
   1662      1.2     peter 	u_int64_t now;
   1663      1.2     peter 	int class_exists, is_backlogged;
   1664      1.2     peter 	struct jobs_class *cl;
   1665      1.2     peter 
   1666      1.2     peter 	now = read_machclk();
   1667      1.2     peter 	cl = jif->jif_classes[i];
   1668      1.2     peter 	class_exists = (cl != NULL);
   1669      1.2     peter 	is_backlogged = (class_exists && !qempty(cl->cl_q));
   1670      1.2     peter 
   1671      1.2     peter 	if (is_backlogged)
   1672      1.2     peter 		return ((int64_t)delay_diff(now, tslist_first(cl->arv_tm)->timestamp));
   1673      1.2     peter 
   1674      1.2     peter 	return (0); /* NOTREACHED */
   1675      1.2     peter }
   1676      1.2     peter 
   1677      1.2     peter /*
   1678      1.2     peter  * pick_dropped_rlc: returns the class index of the class to be
   1679      1.2     peter  * dropped for meeting the relative loss constraints.
   1680      1.2     peter  */
   1681      1.2     peter static int
   1682      1.2     peter pick_dropped_rlc(struct jobs_if *jif)
   1683      1.2     peter {
   1684      1.2     peter 	int64_t mean;
   1685      1.2     peter 	int64_t* loss_error;
   1686  1.9.2.1  pgoyette 	int i, active_classes;
   1687      1.2     peter 	int class_exists, is_backlogged;
   1688      1.2     peter 	int class_dropped;
   1689      1.2     peter 	int64_t max_error;
   1690      1.2     peter 	int64_t max_alc;
   1691      1.2     peter 	struct mbuf* pkt;
   1692      1.2     peter 	struct jobs_class *cl;
   1693      1.2     peter 	u_int64_t len;
   1694      1.2     peter 
   1695      1.2     peter 	loss_error = malloc(sizeof(int64_t)*(jif->jif_maxpri+1),
   1696      1.2     peter 	    M_DEVBUF, M_WAITOK);
   1697      1.2     peter 
   1698      1.2     peter 	if (loss_error == NULL)
   1699      1.2     peter 		return -1;
   1700      1.2     peter 
   1701      1.2     peter 	class_dropped = -1;
   1702      1.2     peter 	max_error = 0;
   1703      1.2     peter 	mean = 0;
   1704      1.2     peter 	active_classes = 0;
   1705      1.2     peter 
   1706      1.2     peter 	for (i = 0; i <= jif->jif_maxpri; i++) {
   1707      1.2     peter 		cl = jif->jif_classes[i];
   1708      1.2     peter 		class_exists = (cl != NULL);
   1709      1.2     peter 		is_backlogged = (class_exists && !qempty(cl->cl_q));
   1710      1.2     peter 		if (is_backlogged) {
   1711      1.2     peter 			if (cl->concerned_rlc) {
   1712      1.2     peter 				mean += cl->loss_prod_others
   1713      1.2     peter 				    * cl->current_loss;
   1714      1.2     peter 				active_classes++;
   1715      1.2     peter 			}
   1716      1.2     peter 		}
   1717      1.2     peter 	}
   1718      1.2     peter 
   1719      1.2     peter 	if (active_classes > 0)
   1720      1.2     peter 		mean /= active_classes;
   1721      1.2     peter 
   1722      1.2     peter 	if (active_classes == 0)
   1723      1.2     peter 		class_dropped = JOBS_MAXPRI+1; /*
   1724      1.2     peter 						* no classes are concerned
   1725      1.2     peter 						* by RLCs (JOBS_MAXPRI+1
   1726      1.2     peter 						* means "ignore RLC" here)
   1727      1.2     peter 						*/
   1728      1.2     peter 	else {
   1729      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
   1730      1.2     peter 			cl = jif->jif_classes[i];
   1731      1.2     peter 			class_exists = (cl != NULL);
   1732      1.2     peter 			is_backlogged = (class_exists
   1733      1.2     peter 					 && !qempty(cl->cl_q));
   1734      1.2     peter 
   1735      1.2     peter 			if ((is_backlogged)&&(cl->cl_rlc))
   1736      1.2     peter 				loss_error[i]=cl->loss_prod_others
   1737      1.2     peter 				    *cl->current_loss-mean;
   1738      1.2     peter 			else
   1739      1.6    plunky 				loss_error[i] = ALTQ_INFINITY;
   1740      1.2     peter 		}
   1741      1.2     peter 
   1742      1.2     peter 		for (i = 0; i <= jif->jif_maxpri; i++) {
   1743      1.2     peter 			cl = jif->jif_classes[i];
   1744      1.2     peter 			class_exists = (cl != NULL);
   1745      1.2     peter 			is_backlogged = (class_exists
   1746      1.2     peter 					 && !qempty(cl->cl_q));
   1747      1.2     peter 			if (is_backlogged && loss_error[i] <= max_error) {
   1748      1.2     peter 				/*
   1749      1.2     peter 				 * find out which class is the most
   1750      1.2     peter 				 * below the mean.
   1751      1.2     peter 				 * it's the one that needs to be dropped
   1752      1.2     peter 				 * ties are broken in favor of the higher
   1753      1.2     peter 				 * priority classes (i.e., if two classes
   1754      1.2     peter 				 * present the same deviation, the lower
   1755      1.2     peter 				 * priority class will get dropped).
   1756      1.2     peter 				 */
   1757      1.2     peter 				max_error = loss_error[i];
   1758      1.2     peter 				class_dropped = i;
   1759      1.2     peter 			}
   1760      1.2     peter 		}
   1761      1.2     peter 
   1762      1.2     peter 		if (class_dropped != -1) {
   1763      1.2     peter 			cl = jif->jif_classes[class_dropped];
   1764      1.2     peter 			pkt = qtail(cl->cl_q);
   1765      1.2     peter 			if (pkt != NULL) {
   1766      1.2     peter 				/*
   1767      1.2     peter 				 * "safeguard" test (a packet SHOULD be
   1768      1.2     peter 				 * in there)
   1769      1.2     peter 				 */
   1770      1.2     peter 				len = (u_int64_t)m_pktlen(pkt);
   1771      1.2     peter 				/* access packet at the tail */
   1772      1.2     peter 				if (cl->current_loss+(len << SCALE_LOSS)/cl->cl_arrival.bytes > cl->cl_alc) {
   1773      1.2     peter 					/*
   1774      1.2     peter 					 * the class to drop for meeting
   1775      1.2     peter 					 * the RLC will defeat the ALC:
   1776      1.2     peter 					 * ignore RLC.
   1777      1.2     peter 					 */
   1778      1.2     peter 					class_dropped = JOBS_MAXPRI+1;
   1779      1.2     peter 				}
   1780      1.2     peter 			} else
   1781      1.2     peter 				class_dropped = JOBS_MAXPRI+1; /* NOTREACHED */
   1782      1.2     peter 		} else
   1783      1.2     peter 			class_dropped = JOBS_MAXPRI+1;
   1784      1.2     peter 	}
   1785      1.2     peter 
   1786      1.2     peter 	if (class_dropped == JOBS_MAXPRI+1) {
   1787      1.2     peter 		max_alc = -((int64_t)1 << SCALE_LOSS);
   1788      1.2     peter 		for (i = jif->jif_maxpri; i >= 0; i--) {
   1789      1.2     peter 			cl = jif->jif_classes[i];
   1790      1.2     peter 			class_exists = (cl != NULL);
   1791      1.2     peter 			is_backlogged = (class_exists
   1792      1.2     peter 					 && !qempty(cl->cl_q));
   1793      1.2     peter 			if (is_backlogged) {
   1794      1.2     peter 				if (cl->concerned_alc && cl->cl_alc - cl->current_loss > max_alc) {
   1795      1.2     peter 					max_alc = cl->cl_alc-cl->current_loss; /* pick the class which is the furthest from its ALC */
   1796      1.2     peter 					class_dropped = i;
   1797      1.2     peter 				} else if (!cl->concerned_alc && ((int64_t) 1 << SCALE_LOSS)-cl->current_loss > max_alc) {
   1798      1.2     peter 					max_alc = ((int64_t) 1 << SCALE_LOSS)-cl->current_loss;
   1799      1.2     peter 					class_dropped = i;
   1800      1.2     peter 				}
   1801      1.2     peter 			}
   1802      1.2     peter 		}
   1803      1.2     peter 	}
   1804      1.2     peter 
   1805      1.2     peter 	free(loss_error, M_DEVBUF);
   1806      1.2     peter 	return (class_dropped);
   1807      1.2     peter }
   1808      1.2     peter 
   1809      1.2     peter /*
   1810      1.2     peter  * ALTQ binding/setup functions
   1811      1.2     peter  */
   1812      1.2     peter /*
   1813      1.2     peter  * jobs device interface
   1814      1.2     peter  */
   1815      1.2     peter int
   1816      1.4  christos jobsopen(dev_t dev, int flag, int fmt,
   1817      1.4  christos     struct lwp *l)
   1818      1.2     peter {
   1819      1.2     peter 	if (machclk_freq == 0)
   1820      1.2     peter 		init_machclk();
   1821      1.2     peter 
   1822      1.2     peter 	if (machclk_freq == 0) {
   1823      1.2     peter 		printf("jobs: no CPU clock available!\n");
   1824      1.2     peter 		return (ENXIO);
   1825      1.2     peter 	}
   1826      1.2     peter 	/* everything will be done when the queueing scheme is attached. */
   1827      1.2     peter 	return 0;
   1828      1.2     peter }
   1829      1.2     peter 
   1830      1.2     peter int
   1831      1.4  christos jobsclose(dev_t dev, int flag, int fmt,
   1832      1.4  christos     struct lwp *l)
   1833      1.2     peter {
   1834      1.2     peter 	struct jobs_if *jif;
   1835      1.2     peter 
   1836      1.2     peter 	while ((jif = jif_list) != NULL) {
   1837      1.2     peter 		/* destroy all */
   1838      1.2     peter 		if (ALTQ_IS_ENABLED(jif->jif_ifq))
   1839      1.2     peter 			altq_disable(jif->jif_ifq);
   1840      1.2     peter 
   1841      1.8  christos 		int error = altq_detach(pif->pif_ifq);
   1842      1.8  christos 		switch (error) {
   1843      1.8  christos 		case 0:
   1844      1.8  christos 		case ENXIO:	/* already disabled */
   1845      1.8  christos 			break;
   1846      1.8  christos 		default:
   1847      1.8  christos 			return error;
   1848      1.8  christos 		}
   1849      1.8  christos 		jobs_detach(jif);
   1850      1.2     peter 	}
   1851      1.2     peter 
   1852      1.2     peter 	return error;
   1853      1.2     peter }
   1854      1.2     peter 
   1855      1.2     peter int
   1856      1.5  christos jobsioctl(dev_t dev, ioctlcmd_t cmd, void *addr, int flag,
   1857      1.2     peter     struct lwp *l)
   1858      1.2     peter {
   1859      1.2     peter 	struct jobs_if *jif;
   1860      1.2     peter 	struct jobs_interface *ifacep;
   1861      1.2     peter 	struct proc *p = l->l_proc;
   1862      1.2     peter 	int	error = 0;
   1863      1.2     peter 
   1864      1.2     peter 	/* check super-user privilege */
   1865      1.2     peter 	switch (cmd) {
   1866      1.2     peter 	case JOBS_GETSTATS:
   1867      1.2     peter 		break;
   1868      1.2     peter 	default:
   1869      1.2     peter #if (__FreeBSD_version > 400000)
   1870      1.2     peter 		if ((error = suser(p)) != 0)
   1871      1.2     peter 			return (error);
   1872      1.2     peter #else
   1873      1.3      elad 		if ((error = kauth_authorize_network(p->p_cred,
   1874      1.3      elad 		    KAUTH_NETWORK_ALTQ, KAUTH_REQ_NETWORK_ALTQ_JOBS, NULL,
   1875      1.3      elad 		    NULL, NULL)) != 0)
   1876      1.2     peter 			return (error);
   1877      1.2     peter #endif
   1878      1.2     peter 		break;
   1879      1.2     peter 	}
   1880      1.2     peter 
   1881      1.2     peter 	switch (cmd) {
   1882      1.2     peter 
   1883      1.2     peter 	case JOBS_IF_ATTACH:
   1884      1.2     peter 		error = jobscmd_if_attach((struct jobs_attach *)addr);
   1885      1.2     peter 		break;
   1886      1.2     peter 
   1887      1.2     peter 	case JOBS_IF_DETACH:
   1888      1.2     peter 		error = jobscmd_if_detach((struct jobs_interface *)addr);
   1889      1.2     peter 		break;
   1890      1.2     peter 
   1891      1.2     peter 	case JOBS_ENABLE:
   1892      1.2     peter 	case JOBS_DISABLE:
   1893      1.2     peter 	case JOBS_CLEAR:
   1894      1.2     peter 		ifacep = (struct jobs_interface *)addr;
   1895      1.2     peter 		if ((jif = altq_lookup(ifacep->jobs_ifname,
   1896      1.2     peter 				       ALTQT_JOBS)) == NULL) {
   1897      1.2     peter 			error = EBADF;
   1898      1.2     peter 			break;
   1899      1.2     peter 		}
   1900      1.2     peter 
   1901      1.2     peter 		switch (cmd) {
   1902      1.2     peter 		case JOBS_ENABLE:
   1903      1.2     peter 			if (jif->jif_default == NULL) {
   1904      1.2     peter #if 1
   1905      1.2     peter 				printf("jobs: no default class\n");
   1906      1.2     peter #endif
   1907      1.2     peter 				error = EINVAL;
   1908      1.2     peter 				break;
   1909      1.2     peter 			}
   1910      1.2     peter 			error = altq_enable(jif->jif_ifq);
   1911      1.2     peter 			break;
   1912      1.2     peter 
   1913      1.2     peter 		case JOBS_DISABLE:
   1914      1.2     peter 			error = altq_disable(jif->jif_ifq);
   1915      1.2     peter 			break;
   1916      1.2     peter 
   1917      1.2     peter 		case JOBS_CLEAR:
   1918      1.2     peter 			jobs_clear_interface(jif);
   1919      1.2     peter 			break;
   1920      1.2     peter 		}
   1921      1.2     peter 		break;
   1922      1.2     peter 
   1923      1.2     peter 		case JOBS_ADD_CLASS:
   1924      1.2     peter 			error = jobscmd_add_class((struct jobs_add_class *)addr);
   1925      1.2     peter 			break;
   1926      1.2     peter 
   1927      1.2     peter 	case JOBS_DEL_CLASS:
   1928      1.2     peter 		error = jobscmd_delete_class((struct jobs_delete_class *)addr);
   1929      1.2     peter 		break;
   1930      1.2     peter 
   1931      1.2     peter 	case JOBS_MOD_CLASS:
   1932      1.2     peter 		error = jobscmd_modify_class((struct jobs_modify_class *)addr);
   1933      1.2     peter 		break;
   1934      1.2     peter 
   1935      1.2     peter 	case JOBS_ADD_FILTER:
   1936      1.2     peter 		error = jobscmd_add_filter((struct jobs_add_filter *)addr);
   1937      1.2     peter 		break;
   1938      1.2     peter 
   1939      1.2     peter 	case JOBS_DEL_FILTER:
   1940      1.2     peter 		error = jobscmd_delete_filter((struct jobs_delete_filter *)addr);
   1941      1.2     peter 		break;
   1942      1.2     peter 
   1943      1.2     peter 	case JOBS_GETSTATS:
   1944      1.2     peter 		error = jobscmd_class_stats((struct jobs_class_stats *)addr);
   1945      1.2     peter 		break;
   1946      1.2     peter 
   1947      1.2     peter 	default:
   1948      1.2     peter 		error = EINVAL;
   1949      1.2     peter 		break;
   1950      1.2     peter 	}
   1951      1.2     peter 	return error;
   1952      1.2     peter }
   1953      1.2     peter 
   1954      1.2     peter static int
   1955      1.2     peter jobscmd_if_attach(struct jobs_attach *ap)
   1956      1.2     peter {
   1957      1.2     peter 	struct jobs_if *jif;
   1958      1.2     peter 	struct ifnet *ifp;
   1959      1.2     peter 	int error;
   1960      1.2     peter 
   1961      1.2     peter 	if ((ifp = ifunit(ap->iface.jobs_ifname)) == NULL)
   1962      1.2     peter 		return (ENXIO);
   1963      1.2     peter 	if ((jif = jobs_attach(&ifp->if_snd, ap->bandwidth, ap->qlimit, ap->separate)) == NULL)
   1964      1.2     peter 		return (ENOMEM);
   1965      1.2     peter 
   1966      1.2     peter 	/*
   1967      1.2     peter 	 * set JOBS to this ifnet structure.
   1968      1.2     peter 	 */
   1969      1.2     peter 	if ((error = altq_attach(&ifp->if_snd, ALTQT_JOBS, jif,
   1970      1.2     peter 				 jobs_enqueue, jobs_dequeue, jobs_request,
   1971      1.2     peter 				 &jif->jif_classifier, acc_classify)) != 0)
   1972      1.8  christos 		jobs_detach(jif);
   1973      1.2     peter 
   1974      1.2     peter 	return (error);
   1975      1.2     peter }
   1976      1.2     peter 
   1977      1.2     peter static int
   1978      1.2     peter jobscmd_if_detach(struct jobs_interface *ap)
   1979      1.2     peter {
   1980      1.2     peter 	struct jobs_if *jif;
   1981      1.2     peter 	int error;
   1982      1.2     peter 
   1983      1.2     peter 	if ((jif = altq_lookup(ap->jobs_ifname, ALTQT_JOBS)) == NULL)
   1984      1.2     peter 		return (EBADF);
   1985      1.2     peter 
   1986      1.2     peter 	if (ALTQ_IS_ENABLED(jif->jif_ifq))
   1987      1.2     peter 		altq_disable(jif->jif_ifq);
   1988      1.2     peter 
   1989      1.2     peter 	if ((error = altq_detach(jif->jif_ifq)))
   1990      1.2     peter 		return (error);
   1991      1.2     peter 
   1992      1.8  christos 	jobs_detach(jif);
   1993      1.8  christos 	return 0;
   1994      1.2     peter }
   1995      1.2     peter 
   1996      1.2     peter static int
   1997      1.2     peter jobscmd_add_class(struct jobs_add_class *ap)
   1998      1.2     peter {
   1999      1.2     peter 	struct jobs_if *jif;
   2000      1.2     peter 	struct jobs_class *cl;
   2001      1.2     peter 
   2002      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2003      1.2     peter 		return (EBADF);
   2004      1.2     peter 
   2005      1.2     peter 	if (ap->pri < 0 || ap->pri >= JOBS_MAXPRI)
   2006      1.2     peter 		return (EINVAL);
   2007      1.2     peter 
   2008      1.2     peter 	if ((cl = jobs_class_create(jif, ap->pri,
   2009      1.2     peter 				    ap->cl_adc, ap->cl_rdc,
   2010      1.2     peter 				    ap->cl_alc, ap->cl_rlc, ap-> cl_arc,
   2011      1.2     peter 				    ap->flags)) == NULL)
   2012      1.2     peter 		return (ENOMEM);
   2013      1.2     peter 
   2014      1.2     peter 	/* return a class handle to the user */
   2015      1.2     peter 	ap->class_handle = clp_to_clh(cl);
   2016      1.2     peter 	return (0);
   2017      1.2     peter }
   2018      1.2     peter 
   2019      1.2     peter static int
   2020      1.2     peter jobscmd_delete_class(struct jobs_delete_class *ap)
   2021      1.2     peter {
   2022      1.2     peter 	struct jobs_if *jif;
   2023      1.2     peter 	struct jobs_class *cl;
   2024      1.2     peter 
   2025      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2026      1.2     peter 		return (EBADF);
   2027      1.2     peter 
   2028      1.2     peter 	if ((cl = clh_to_clp(jif, ap->class_handle)) == NULL)
   2029      1.2     peter 		return (EINVAL);
   2030      1.2     peter 
   2031      1.2     peter 	return jobs_class_destroy(cl);
   2032      1.2     peter }
   2033      1.2     peter 
   2034      1.2     peter static int
   2035      1.2     peter jobscmd_modify_class(struct jobs_modify_class *ap)
   2036      1.2     peter {
   2037      1.2     peter 	struct jobs_if *jif;
   2038      1.2     peter 	struct jobs_class *cl;
   2039      1.2     peter 
   2040      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2041      1.2     peter 		return (EBADF);
   2042      1.2     peter 
   2043      1.2     peter 	if (ap->pri < 0 || ap->pri >= JOBS_MAXPRI)
   2044      1.2     peter 		return (EINVAL);
   2045      1.2     peter 
   2046      1.2     peter 	if ((cl = clh_to_clp(jif, ap->class_handle)) == NULL)
   2047      1.2     peter 		return (EINVAL);
   2048      1.2     peter 
   2049      1.2     peter 	/*
   2050      1.2     peter 	 * if priority is changed, move the class to the new priority
   2051      1.2     peter 	 */
   2052      1.2     peter 	if (jif->jif_classes[ap->pri] != cl) {
   2053      1.2     peter 		if (jif->jif_classes[ap->pri] != NULL)
   2054      1.2     peter 			return (EEXIST);
   2055      1.2     peter 		jif->jif_classes[cl->cl_pri] = NULL;
   2056      1.2     peter 		jif->jif_classes[ap->pri] = cl;
   2057      1.2     peter 		cl->cl_pri = ap->pri;
   2058      1.2     peter 	}
   2059      1.2     peter 
   2060      1.2     peter 	/* call jobs_class_create to change class parameters */
   2061      1.2     peter 	if ((cl = jobs_class_create(jif, ap->pri,
   2062      1.2     peter 				    ap->cl_adc, ap->cl_rdc,
   2063      1.2     peter 				    ap->cl_alc, ap->cl_rlc, ap->cl_arc,
   2064      1.2     peter 				    ap->flags)) == NULL)
   2065      1.2     peter 		return (ENOMEM);
   2066      1.2     peter 	return 0;
   2067      1.2     peter }
   2068      1.2     peter 
   2069      1.2     peter static int
   2070      1.2     peter jobscmd_add_filter(struct jobs_add_filter *ap)
   2071      1.2     peter {
   2072      1.2     peter 	struct jobs_if *jif;
   2073      1.2     peter 	struct jobs_class *cl;
   2074      1.2     peter 
   2075      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2076      1.2     peter 		return (EBADF);
   2077      1.2     peter 
   2078      1.2     peter 	if ((cl = clh_to_clp(jif, ap->class_handle)) == NULL)
   2079      1.2     peter 		return (EINVAL);
   2080      1.2     peter 
   2081      1.2     peter 	return acc_add_filter(&jif->jif_classifier, &ap->filter,
   2082      1.2     peter 			      cl, &ap->filter_handle);
   2083      1.2     peter }
   2084      1.2     peter 
   2085      1.2     peter static int
   2086      1.2     peter jobscmd_delete_filter(struct jobs_delete_filter *ap)
   2087      1.2     peter {
   2088      1.2     peter 	struct jobs_if *jif;
   2089      1.2     peter 
   2090      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2091      1.2     peter 		return (EBADF);
   2092      1.2     peter 
   2093      1.2     peter 	return acc_delete_filter(&jif->jif_classifier, ap->filter_handle);
   2094      1.2     peter }
   2095      1.2     peter 
   2096      1.2     peter static int
   2097      1.2     peter jobscmd_class_stats(struct jobs_class_stats *ap)
   2098      1.2     peter {
   2099      1.2     peter 	struct jobs_if *jif;
   2100      1.2     peter 	struct jobs_class *cl;
   2101      1.2     peter 	struct class_stats stats, *usp;
   2102      1.2     peter 	int pri, error;
   2103      1.2     peter 
   2104      1.2     peter 	if ((jif = altq_lookup(ap->iface.jobs_ifname, ALTQT_JOBS)) == NULL)
   2105      1.2     peter 		return (EBADF);
   2106      1.2     peter 
   2107      1.2     peter 	ap->maxpri = jif->jif_maxpri;
   2108      1.2     peter 
   2109      1.2     peter 	/* then, read the next N classes */
   2110      1.2     peter 	usp = ap->stats;
   2111      1.2     peter 	for (pri = 0; pri <= jif->jif_maxpri; pri++) {
   2112      1.2     peter 		cl = jif->jif_classes[pri];
   2113      1.2     peter 		if (cl != NULL)
   2114      1.2     peter 			get_class_stats(&stats, cl);
   2115      1.2     peter 		else
   2116      1.2     peter 			(void)memset(&stats, 0, sizeof(stats));
   2117      1.5  christos 		if ((error = copyout((void *)&stats, (void *)usp++,
   2118      1.2     peter 				     sizeof(stats))) != 0)
   2119      1.2     peter 			return (error);
   2120      1.2     peter 	}
   2121      1.2     peter 	return (0);
   2122      1.2     peter }
   2123      1.2     peter 
   2124      1.2     peter static void
   2125      1.2     peter get_class_stats(struct class_stats *sp, struct jobs_class *cl)
   2126      1.2     peter {
   2127      1.2     peter 	u_int64_t now;
   2128      1.2     peter 	now = read_machclk();
   2129      1.2     peter 
   2130      1.2     peter 	sp->class_handle = clp_to_clh(cl);
   2131      1.2     peter 	sp->qlength = qlen(cl->cl_q);
   2132      1.2     peter 
   2133      1.2     peter 	sp->period = cl->cl_period;
   2134      1.2     peter 	sp->rin = cl->st_rin;
   2135      1.2     peter 	sp->arrival = cl->st_arrival;
   2136      1.2     peter 	sp->arrivalbusy = cl->cl_arrival;
   2137      1.2     peter 	sp->rout = cl->st_rout;
   2138      1.2     peter 	sp->dropcnt = cl->cl_dropcnt;
   2139      1.2     peter 
   2140      1.2     peter 	/*  PKTCNTR_RESET(&cl->st_arrival);*/
   2141      1.2     peter 	PKTCNTR_RESET(&cl->st_rin);
   2142      1.2     peter 	PKTCNTR_RESET(&cl->st_rout);
   2143      1.2     peter 
   2144      1.2     peter 	sp->totallength = cl->cl_jif->jif_ifq->ifq_len;
   2145      1.2     peter 	sp->lastdel = ticks_to_secs(GRANULARITY*cl->cl_lastdel);
   2146      1.2     peter 	sp->avgdel = cl->cl_avgdel;
   2147      1.2     peter 
   2148      1.2     peter 	cl->cl_avgdel = 0;
   2149      1.2     peter 
   2150      1.2     peter 	sp->busylength = ticks_to_secs(1000*delay_diff(now, cl->idletime));
   2151      1.2     peter 	sp->adc_violations = cl->adc_violations;
   2152      1.2     peter 
   2153      1.2     peter 	sp->wc_cycles_enqueue = cl->cl_jif->wc_cycles_enqueue;
   2154      1.2     peter 	sp->wc_cycles_dequeue = cl->cl_jif->wc_cycles_dequeue;
   2155      1.2     peter 	sp->bc_cycles_enqueue = cl->cl_jif->bc_cycles_enqueue;
   2156      1.2     peter 	sp->bc_cycles_dequeue = cl->cl_jif->bc_cycles_dequeue;
   2157      1.2     peter 	sp->avg_cycles_enqueue = cl->cl_jif->avg_cycles_enqueue;
   2158      1.2     peter 	sp->avg_cycles_dequeue = cl->cl_jif->avg_cycles_dequeue;
   2159      1.2     peter 	sp->avg_cycles2_enqueue = cl->cl_jif->avg_cycles2_enqueue;
   2160      1.2     peter 	sp->avg_cycles2_dequeue = cl->cl_jif->avg_cycles2_dequeue;
   2161      1.2     peter 	sp->total_enqueued = cl->cl_jif->total_enqueued;
   2162      1.2     peter 	sp->total_dequeued = cl->cl_jif->total_dequeued;
   2163      1.2     peter }
   2164      1.2     peter 
   2165      1.2     peter /* convert a class handle to the corresponding class pointer */
   2166      1.2     peter static struct jobs_class *
   2167      1.2     peter clh_to_clp(struct jobs_if *jif, u_long chandle)
   2168      1.2     peter {
   2169      1.2     peter 	struct jobs_class *cl;
   2170      1.2     peter 
   2171      1.2     peter 	cl = (struct jobs_class *)chandle;
   2172      1.2     peter 	if (chandle != ALIGN(cl)) {
   2173      1.2     peter #if 1
   2174      1.2     peter 		printf("clh_to_cl: unaligned pointer %p\n", cl);
   2175      1.2     peter #endif
   2176      1.2     peter 		return (NULL);
   2177      1.2     peter 	}
   2178      1.2     peter 
   2179      1.2     peter 	if (cl == NULL || cl->cl_handle != chandle || cl->cl_jif != jif)
   2180      1.2     peter 		return (NULL);
   2181      1.2     peter 	return (cl);
   2182      1.2     peter }
   2183      1.2     peter 
   2184      1.2     peter /* convert a class pointer to the corresponding class handle */
   2185      1.2     peter static u_long
   2186      1.2     peter clp_to_clh(struct jobs_class *cl)
   2187      1.2     peter {
   2188      1.2     peter 	return (cl->cl_handle);
   2189      1.2     peter }
   2190      1.2     peter 
   2191      1.2     peter #ifdef KLD_MODULE
   2192      1.2     peter 
   2193      1.2     peter static struct altqsw jobs_sw =
   2194      1.2     peter 	{"jobs", jobsopen, jobsclose, jobsioctl};
   2195      1.2     peter 
   2196      1.2     peter ALTQ_MODULE(altq_jobs, ALTQT_JOBS, &jobs_sw);
   2197      1.2     peter 
   2198      1.2     peter #endif /* KLD_MODULE */
   2199      1.2     peter 
   2200      1.2     peter #endif /* ALTQ3_COMPAT */
   2201      1.2     peter #endif /* ALTQ_JOBS */
   2202