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altq_hfsc.c revision 1.24.62.1
      1  1.24.62.1       snj /*	$NetBSD: altq_hfsc.c,v 1.24.62.1 2017/08/12 04:44:32 snj Exp $	*/
      2       1.19     peter /*	$KAME: altq_hfsc.c,v 1.26 2005/04/13 03:44:24 suz Exp $	*/
      3        1.1   thorpej 
      4        1.1   thorpej /*
      5        1.1   thorpej  * Copyright (c) 1997-1999 Carnegie Mellon University. All Rights Reserved.
      6        1.1   thorpej  *
      7        1.1   thorpej  * Permission to use, copy, modify, and distribute this software and
      8        1.1   thorpej  * its documentation is hereby granted (including for commercial or
      9        1.1   thorpej  * for-profit use), provided that both the copyright notice and this
     10        1.1   thorpej  * permission notice appear in all copies of the software, derivative
     11       1.19     peter  * works, or modified versions, and any portions thereof.
     12        1.1   thorpej  *
     13        1.1   thorpej  * THIS SOFTWARE IS EXPERIMENTAL AND IS KNOWN TO HAVE BUGS, SOME OF
     14        1.1   thorpej  * WHICH MAY HAVE SERIOUS CONSEQUENCES.  CARNEGIE MELLON PROVIDES THIS
     15        1.1   thorpej  * SOFTWARE IN ITS ``AS IS'' CONDITION, AND ANY EXPRESS OR IMPLIED
     16        1.1   thorpej  * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     17        1.1   thorpej  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
     18        1.1   thorpej  * DISCLAIMED.  IN NO EVENT SHALL CARNEGIE MELLON UNIVERSITY BE LIABLE
     19        1.1   thorpej  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     20        1.1   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT
     21        1.1   thorpej  * OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
     22        1.1   thorpej  * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
     23        1.1   thorpej  * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     24        1.1   thorpej  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
     25        1.1   thorpej  * USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH
     26        1.1   thorpej  * DAMAGE.
     27        1.1   thorpej  *
     28        1.1   thorpej  * Carnegie Mellon encourages (but does not require) users of this
     29        1.1   thorpej  * software to return any improvements or extensions that they make,
     30        1.1   thorpej  * and to grant Carnegie Mellon the rights to redistribute these
     31        1.1   thorpej  * changes without encumbrance.
     32        1.1   thorpej  */
     33        1.1   thorpej /*
     34        1.1   thorpej  * H-FSC is described in Proceedings of SIGCOMM'97,
     35       1.10     perry  * "A Hierarchical Fair Service Curve Algorithm for Link-Sharing,
     36        1.1   thorpej  * Real-Time and Priority Service"
     37        1.1   thorpej  * by Ion Stoica, Hui Zhang, and T. S. Eugene Ng.
     38       1.19     peter  *
     39       1.19     peter  * Oleg Cherevko <olwi (at) aq.ml.com.ua> added the upperlimit for link-sharing.
     40       1.19     peter  * when a class has an upperlimit, the fit-time is computed from the
     41       1.19     peter  * upperlimit service curve.  the link-sharing scheduler does not schedule
     42       1.19     peter  * a class whose fit-time exceeds the current time.
     43        1.1   thorpej  */
     44        1.5     lukem 
     45        1.5     lukem #include <sys/cdefs.h>
     46  1.24.62.1       snj __KERNEL_RCSID(0, "$NetBSD: altq_hfsc.c,v 1.24.62.1 2017/08/12 04:44:32 snj Exp $");
     47        1.1   thorpej 
     48       1.19     peter #ifdef _KERNEL_OPT
     49        1.1   thorpej #include "opt_altq.h"
     50        1.1   thorpej #include "opt_inet.h"
     51       1.20     peter #include "pf.h"
     52        1.1   thorpej #endif
     53        1.1   thorpej 
     54        1.1   thorpej #ifdef ALTQ_HFSC  /* hfsc is enabled by ALTQ_HFSC option in opt_altq.h */
     55        1.1   thorpej 
     56        1.1   thorpej #include <sys/param.h>
     57        1.1   thorpej #include <sys/malloc.h>
     58        1.1   thorpej #include <sys/mbuf.h>
     59        1.1   thorpej #include <sys/socket.h>
     60       1.19     peter #include <sys/systm.h>
     61       1.19     peter #include <sys/errno.h>
     62       1.19     peter #include <sys/queue.h>
     63       1.19     peter #if 1 /* ALTQ3_COMPAT */
     64        1.1   thorpej #include <sys/sockio.h>
     65        1.1   thorpej #include <sys/proc.h>
     66        1.1   thorpej #include <sys/kernel.h>
     67       1.19     peter #endif /* ALTQ3_COMPAT */
     68       1.16  christos #include <sys/kauth.h>
     69        1.1   thorpej 
     70        1.1   thorpej #include <net/if.h>
     71       1.19     peter #include <netinet/in.h>
     72        1.1   thorpej 
     73       1.20     peter #if NPF > 0
     74       1.19     peter #include <net/pfvar.h>
     75       1.20     peter #endif
     76        1.1   thorpej #include <altq/altq.h>
     77       1.19     peter #include <altq/altq_hfsc.h>
     78       1.19     peter #ifdef ALTQ3_COMPAT
     79        1.1   thorpej #include <altq/altq_conf.h>
     80       1.19     peter #endif
     81        1.1   thorpej 
     82        1.1   thorpej /*
     83        1.1   thorpej  * function prototypes
     84        1.1   thorpej  */
     85       1.19     peter static int			 hfsc_clear_interface(struct hfsc_if *);
     86       1.19     peter static int			 hfsc_request(struct ifaltq *, int, void *);
     87       1.19     peter static void			 hfsc_purge(struct hfsc_if *);
     88       1.19     peter static struct hfsc_class	*hfsc_class_create(struct hfsc_if *,
     89       1.19     peter     struct service_curve *, struct service_curve *, struct service_curve *,
     90       1.19     peter     struct hfsc_class *, int, int, int);
     91       1.19     peter static int			 hfsc_class_destroy(struct hfsc_class *);
     92       1.19     peter static struct hfsc_class	*hfsc_nextclass(struct hfsc_class *);
     93       1.19     peter static int			 hfsc_enqueue(struct ifaltq *, struct mbuf *,
     94       1.19     peter 				    struct altq_pktattr *);
     95       1.19     peter static struct mbuf		*hfsc_dequeue(struct ifaltq *, int);
     96       1.19     peter 
     97       1.19     peter static int		 hfsc_addq(struct hfsc_class *, struct mbuf *);
     98       1.19     peter static struct mbuf	*hfsc_getq(struct hfsc_class *);
     99       1.19     peter static struct mbuf	*hfsc_pollq(struct hfsc_class *);
    100       1.19     peter static void		 hfsc_purgeq(struct hfsc_class *);
    101       1.19     peter 
    102       1.19     peter static void		 update_cfmin(struct hfsc_class *);
    103       1.19     peter static void		 set_active(struct hfsc_class *, int);
    104       1.19     peter static void		 set_passive(struct hfsc_class *);
    105       1.19     peter 
    106       1.19     peter static void		 init_ed(struct hfsc_class *, int);
    107       1.19     peter static void		 update_ed(struct hfsc_class *, int);
    108       1.19     peter static void		 update_d(struct hfsc_class *, int);
    109       1.19     peter static void		 init_vf(struct hfsc_class *, int);
    110       1.19     peter static void		 update_vf(struct hfsc_class *, int, u_int64_t);
    111       1.19     peter static ellist_t		*ellist_alloc(void);
    112       1.19     peter static void		 ellist_destroy(ellist_t *);
    113       1.19     peter static void		 ellist_insert(struct hfsc_class *);
    114       1.19     peter static void		 ellist_remove(struct hfsc_class *);
    115       1.19     peter static void		 ellist_update(struct hfsc_class *);
    116       1.19     peter struct hfsc_class	*ellist_get_mindl(ellist_t *, u_int64_t);
    117       1.19     peter static actlist_t	*actlist_alloc(void);
    118       1.19     peter static void		 actlist_destroy(actlist_t *);
    119       1.19     peter static void		 actlist_insert(struct hfsc_class *);
    120       1.19     peter static void		 actlist_remove(struct hfsc_class *);
    121       1.19     peter static void		 actlist_update(struct hfsc_class *);
    122       1.19     peter 
    123       1.19     peter static struct hfsc_class	*actlist_firstfit(struct hfsc_class *,
    124       1.19     peter 				    u_int64_t);
    125       1.19     peter 
    126       1.19     peter static inline u_int64_t	seg_x2y(u_int64_t, u_int64_t);
    127       1.19     peter static inline u_int64_t	seg_y2x(u_int64_t, u_int64_t);
    128       1.19     peter static inline u_int64_t	m2sm(u_int);
    129       1.19     peter static inline u_int64_t	m2ism(u_int);
    130       1.19     peter static inline u_int64_t	d2dx(u_int);
    131       1.19     peter static u_int			sm2m(u_int64_t);
    132       1.19     peter static u_int			dx2d(u_int64_t);
    133       1.19     peter 
    134       1.19     peter static void		sc2isc(struct service_curve *, struct internal_sc *);
    135       1.19     peter static void		rtsc_init(struct runtime_sc *, struct internal_sc *,
    136       1.19     peter 			    u_int64_t, u_int64_t);
    137       1.19     peter static u_int64_t	rtsc_y2x(struct runtime_sc *, u_int64_t);
    138       1.19     peter static u_int64_t	rtsc_x2y(struct runtime_sc *, u_int64_t);
    139       1.19     peter static void		rtsc_min(struct runtime_sc *, struct internal_sc *,
    140       1.19     peter 			    u_int64_t, u_int64_t);
    141       1.19     peter 
    142       1.19     peter static void			 get_class_stats(struct hfsc_classstats *,
    143       1.19     peter 				    struct hfsc_class *);
    144       1.19     peter static struct hfsc_class	*clh_to_clp(struct hfsc_if *, u_int32_t);
    145       1.19     peter 
    146       1.19     peter 
    147       1.19     peter #ifdef ALTQ3_COMPAT
    148       1.19     peter static struct hfsc_if *hfsc_attach(struct ifaltq *, u_int);
    149       1.19     peter static int hfsc_detach(struct hfsc_if *);
    150       1.19     peter static int hfsc_class_modify(struct hfsc_class *, struct service_curve *,
    151       1.19     peter     struct service_curve *, struct service_curve *);
    152       1.19     peter 
    153       1.19     peter static int hfsccmd_if_attach(struct hfsc_attach *);
    154       1.19     peter static int hfsccmd_if_detach(struct hfsc_interface *);
    155       1.19     peter static int hfsccmd_add_class(struct hfsc_add_class *);
    156       1.19     peter static int hfsccmd_delete_class(struct hfsc_delete_class *);
    157       1.19     peter static int hfsccmd_modify_class(struct hfsc_modify_class *);
    158       1.19     peter static int hfsccmd_add_filter(struct hfsc_add_filter *);
    159       1.19     peter static int hfsccmd_delete_filter(struct hfsc_delete_filter *);
    160       1.19     peter static int hfsccmd_class_stats(struct hfsc_class_stats *);
    161       1.19     peter 
    162       1.19     peter altqdev_decl(hfsc);
    163       1.19     peter #endif /* ALTQ3_COMPAT */
    164        1.1   thorpej 
    165        1.1   thorpej /*
    166        1.1   thorpej  * macros
    167        1.1   thorpej  */
    168        1.1   thorpej #define	is_a_parent_class(cl)	((cl)->cl_children != NULL)
    169        1.1   thorpej 
    170       1.19     peter #define	HT_INFINITY	0xffffffffffffffffLL	/* infinite time value */
    171       1.19     peter 
    172       1.19     peter #ifdef ALTQ3_COMPAT
    173        1.1   thorpej /* hif_list keeps all hfsc_if's allocated. */
    174        1.1   thorpej static struct hfsc_if *hif_list = NULL;
    175       1.19     peter #endif /* ALTQ3_COMPAT */
    176       1.19     peter 
    177       1.20     peter #if NPF > 0
    178       1.19     peter int
    179       1.19     peter hfsc_pfattach(struct pf_altq *a)
    180       1.19     peter {
    181       1.19     peter 	struct ifnet *ifp;
    182       1.19     peter 	int s, error;
    183       1.19     peter 
    184       1.19     peter 	if ((ifp = ifunit(a->ifname)) == NULL || a->altq_disc == NULL)
    185       1.19     peter 		return (EINVAL);
    186       1.19     peter 	s = splnet();
    187       1.19     peter 	error = altq_attach(&ifp->if_snd, ALTQT_HFSC, a->altq_disc,
    188       1.19     peter 	    hfsc_enqueue, hfsc_dequeue, hfsc_request, NULL, NULL);
    189       1.19     peter 	splx(s);
    190       1.19     peter 	return (error);
    191       1.19     peter }
    192        1.1   thorpej 
    193       1.19     peter int
    194       1.19     peter hfsc_add_altq(struct pf_altq *a)
    195        1.1   thorpej {
    196        1.1   thorpej 	struct hfsc_if *hif;
    197       1.19     peter 	struct ifnet *ifp;
    198       1.19     peter 
    199       1.19     peter 	if ((ifp = ifunit(a->ifname)) == NULL)
    200       1.19     peter 		return (EINVAL);
    201       1.19     peter 	if (!ALTQ_IS_READY(&ifp->if_snd))
    202       1.19     peter 		return (ENODEV);
    203        1.1   thorpej 
    204       1.13  christos 	hif = malloc(sizeof(struct hfsc_if), M_DEVBUF, M_WAITOK|M_ZERO);
    205        1.1   thorpej 	if (hif == NULL)
    206       1.19     peter 		return (ENOMEM);
    207        1.1   thorpej 
    208        1.1   thorpej 	hif->hif_eligible = ellist_alloc();
    209        1.1   thorpej 	if (hif->hif_eligible == NULL) {
    210       1.13  christos 		free(hif, M_DEVBUF);
    211       1.19     peter 		return (ENOMEM);
    212        1.1   thorpej 	}
    213        1.1   thorpej 
    214       1.19     peter 	hif->hif_ifq = &ifp->if_snd;
    215       1.19     peter 
    216       1.19     peter 	/* keep the state in pf_altq */
    217       1.19     peter 	a->altq_disc = hif;
    218       1.19     peter 
    219       1.19     peter 	return (0);
    220       1.19     peter }
    221       1.19     peter 
    222       1.19     peter int
    223       1.19     peter hfsc_remove_altq(struct pf_altq *a)
    224       1.19     peter {
    225       1.19     peter 	struct hfsc_if *hif;
    226       1.19     peter 
    227       1.19     peter 	if ((hif = a->altq_disc) == NULL)
    228       1.19     peter 		return (EINVAL);
    229       1.19     peter 	a->altq_disc = NULL;
    230       1.19     peter 
    231       1.19     peter 	(void)hfsc_clear_interface(hif);
    232       1.19     peter 	(void)hfsc_class_destroy(hif->hif_rootclass);
    233       1.19     peter 
    234       1.19     peter 	ellist_destroy(hif->hif_eligible);
    235       1.19     peter 
    236       1.19     peter 	free(hif, M_DEVBUF);
    237       1.19     peter 
    238       1.19     peter 	return (0);
    239       1.19     peter }
    240       1.19     peter 
    241       1.19     peter int
    242       1.19     peter hfsc_add_queue(struct pf_altq *a)
    243       1.19     peter {
    244       1.19     peter 	struct hfsc_if *hif;
    245       1.19     peter 	struct hfsc_class *cl, *parent;
    246       1.19     peter 	struct hfsc_opts *opts;
    247       1.19     peter 	struct service_curve rtsc, lssc, ulsc;
    248       1.19     peter 
    249       1.19     peter 	if ((hif = a->altq_disc) == NULL)
    250       1.19     peter 		return (EINVAL);
    251       1.19     peter 
    252       1.19     peter 	opts = &a->pq_u.hfsc_opts;
    253       1.19     peter 
    254       1.19     peter 	if (a->parent_qid == HFSC_NULLCLASS_HANDLE &&
    255       1.19     peter 	    hif->hif_rootclass == NULL)
    256       1.19     peter 		parent = NULL;
    257       1.19     peter 	else if ((parent = clh_to_clp(hif, a->parent_qid)) == NULL)
    258       1.19     peter 		return (EINVAL);
    259       1.19     peter 
    260       1.19     peter 	if (a->qid == 0)
    261       1.19     peter 		return (EINVAL);
    262       1.19     peter 
    263       1.19     peter 	if (clh_to_clp(hif, a->qid) != NULL)
    264       1.19     peter 		return (EBUSY);
    265        1.1   thorpej 
    266       1.19     peter 	rtsc.m1 = opts->rtsc_m1;
    267       1.19     peter 	rtsc.d  = opts->rtsc_d;
    268       1.19     peter 	rtsc.m2 = opts->rtsc_m2;
    269       1.19     peter 	lssc.m1 = opts->lssc_m1;
    270       1.19     peter 	lssc.d  = opts->lssc_d;
    271       1.19     peter 	lssc.m2 = opts->lssc_m2;
    272       1.19     peter 	ulsc.m1 = opts->ulsc_m1;
    273       1.19     peter 	ulsc.d  = opts->ulsc_d;
    274       1.19     peter 	ulsc.m2 = opts->ulsc_m2;
    275        1.1   thorpej 
    276       1.19     peter 	cl = hfsc_class_create(hif, &rtsc, &lssc, &ulsc,
    277       1.19     peter 	    parent, a->qlimit, opts->flags, a->qid);
    278       1.19     peter 	if (cl == NULL)
    279       1.19     peter 		return (ENOMEM);
    280        1.1   thorpej 
    281       1.19     peter 	return (0);
    282        1.1   thorpej }
    283        1.1   thorpej 
    284       1.19     peter int
    285       1.19     peter hfsc_remove_queue(struct pf_altq *a)
    286       1.19     peter {
    287        1.1   thorpej 	struct hfsc_if *hif;
    288       1.19     peter 	struct hfsc_class *cl;
    289       1.19     peter 
    290       1.19     peter 	if ((hif = a->altq_disc) == NULL)
    291       1.19     peter 		return (EINVAL);
    292       1.19     peter 
    293       1.19     peter 	if ((cl = clh_to_clp(hif, a->qid)) == NULL)
    294       1.19     peter 		return (EINVAL);
    295       1.19     peter 
    296       1.19     peter 	return (hfsc_class_destroy(cl));
    297       1.19     peter }
    298       1.19     peter 
    299       1.19     peter int
    300       1.19     peter hfsc_getqstats(struct pf_altq *a, void *ubuf, int *nbytes)
    301        1.1   thorpej {
    302       1.19     peter 	struct hfsc_if *hif;
    303       1.19     peter 	struct hfsc_class *cl;
    304       1.19     peter 	struct hfsc_classstats stats;
    305       1.19     peter 	int error = 0;
    306        1.1   thorpej 
    307       1.19     peter 	if ((hif = altq_lookup(a->ifname, ALTQT_HFSC)) == NULL)
    308       1.19     peter 		return (EBADF);
    309       1.10     perry 
    310       1.19     peter 	if ((cl = clh_to_clp(hif, a->qid)) == NULL)
    311       1.19     peter 		return (EINVAL);
    312        1.1   thorpej 
    313       1.19     peter 	if (*nbytes < sizeof(stats))
    314       1.19     peter 		return (EINVAL);
    315        1.1   thorpej 
    316  1.24.62.1       snj 	memset(&stats, 0, sizeof(stats));
    317       1.19     peter 	get_class_stats(&stats, cl);
    318        1.1   thorpej 
    319       1.23  christos 	if ((error = copyout((void *)&stats, ubuf, sizeof(stats))) != 0)
    320       1.19     peter 		return (error);
    321       1.19     peter 	*nbytes = sizeof(stats);
    322        1.1   thorpej 	return (0);
    323        1.1   thorpej }
    324       1.20     peter #endif /* NPF > 0 */
    325        1.1   thorpej 
    326        1.1   thorpej /*
    327        1.1   thorpej  * bring the interface back to the initial state by discarding
    328        1.1   thorpej  * all the filters and classes except the root class.
    329        1.1   thorpej  */
    330        1.1   thorpej static int
    331       1.19     peter hfsc_clear_interface(struct hfsc_if *hif)
    332        1.1   thorpej {
    333        1.1   thorpej 	struct hfsc_class	*cl;
    334        1.1   thorpej 
    335       1.19     peter #ifdef ALTQ3_COMPAT
    336        1.1   thorpej 	/* free the filters for this interface */
    337        1.1   thorpej 	acc_discard_filters(&hif->hif_classifier, NULL, 1);
    338       1.19     peter #endif
    339        1.1   thorpej 
    340        1.1   thorpej 	/* clear out the classes */
    341       1.19     peter 	while (hif->hif_rootclass != NULL &&
    342       1.19     peter 	    (cl = hif->hif_rootclass->cl_children) != NULL) {
    343        1.1   thorpej 		/*
    344        1.1   thorpej 		 * remove the first leaf class found in the hierarchy
    345        1.1   thorpej 		 * then start over
    346        1.1   thorpej 		 */
    347        1.1   thorpej 		for (; cl != NULL; cl = hfsc_nextclass(cl)) {
    348        1.1   thorpej 			if (!is_a_parent_class(cl)) {
    349        1.1   thorpej 				(void)hfsc_class_destroy(cl);
    350        1.1   thorpej 				break;
    351        1.1   thorpej 			}
    352        1.1   thorpej 		}
    353        1.1   thorpej 	}
    354       1.10     perry 
    355        1.1   thorpej 	return (0);
    356        1.1   thorpej }
    357        1.1   thorpej 
    358        1.1   thorpej static int
    359       1.22  christos hfsc_request(struct ifaltq *ifq, int req, void *arg)
    360        1.1   thorpej {
    361        1.1   thorpej 	struct hfsc_if	*hif = (struct hfsc_if *)ifq->altq_disc;
    362        1.1   thorpej 
    363        1.1   thorpej 	switch (req) {
    364        1.1   thorpej 	case ALTRQ_PURGE:
    365        1.1   thorpej 		hfsc_purge(hif);
    366        1.1   thorpej 		break;
    367        1.1   thorpej 	}
    368        1.1   thorpej 	return (0);
    369        1.1   thorpej }
    370        1.1   thorpej 
    371        1.1   thorpej /* discard all the queued packets on the interface */
    372        1.1   thorpej static void
    373       1.19     peter hfsc_purge(struct hfsc_if *hif)
    374        1.1   thorpej {
    375        1.1   thorpej 	struct hfsc_class *cl;
    376        1.1   thorpej 
    377        1.1   thorpej 	for (cl = hif->hif_rootclass; cl != NULL; cl = hfsc_nextclass(cl))
    378        1.1   thorpej 		if (!qempty(cl->cl_q))
    379        1.1   thorpej 			hfsc_purgeq(cl);
    380        1.1   thorpej 	if (ALTQ_IS_ENABLED(hif->hif_ifq))
    381        1.1   thorpej 		hif->hif_ifq->ifq_len = 0;
    382        1.1   thorpej }
    383        1.1   thorpej 
    384        1.1   thorpej struct hfsc_class *
    385       1.19     peter hfsc_class_create(struct hfsc_if *hif, struct service_curve *rsc,
    386       1.19     peter     struct service_curve *fsc, struct service_curve *usc,
    387       1.19     peter     struct hfsc_class *parent, int qlimit, int flags, int qid)
    388        1.1   thorpej {
    389        1.1   thorpej 	struct hfsc_class *cl, *p;
    390       1.19     peter 	int i, s;
    391       1.19     peter 
    392       1.19     peter 	if (hif->hif_classes >= HFSC_MAX_CLASSES)
    393       1.19     peter 		return (NULL);
    394        1.1   thorpej 
    395        1.1   thorpej #ifndef ALTQ_RED
    396        1.1   thorpej 	if (flags & HFCF_RED) {
    397       1.19     peter #ifdef ALTQ_DEBUG
    398        1.1   thorpej 		printf("hfsc_class_create: RED not configured for HFSC!\n");
    399       1.19     peter #endif
    400        1.1   thorpej 		return (NULL);
    401        1.1   thorpej 	}
    402        1.1   thorpej #endif
    403        1.1   thorpej 
    404       1.13  christos 	cl = malloc(sizeof(struct hfsc_class), M_DEVBUF, M_WAITOK|M_ZERO);
    405        1.1   thorpej 	if (cl == NULL)
    406        1.1   thorpej 		return (NULL);
    407        1.1   thorpej 
    408       1.13  christos 	cl->cl_q = malloc(sizeof(class_queue_t), M_DEVBUF, M_WAITOK|M_ZERO);
    409        1.1   thorpej 	if (cl->cl_q == NULL)
    410        1.1   thorpej 		goto err_ret;
    411        1.1   thorpej 
    412        1.1   thorpej 	cl->cl_actc = actlist_alloc();
    413        1.1   thorpej 	if (cl->cl_actc == NULL)
    414        1.1   thorpej 		goto err_ret;
    415        1.1   thorpej 
    416        1.1   thorpej 	if (qlimit == 0)
    417        1.1   thorpej 		qlimit = 50;  /* use default */
    418        1.1   thorpej 	qlimit(cl->cl_q) = qlimit;
    419        1.1   thorpej 	qtype(cl->cl_q) = Q_DROPTAIL;
    420        1.1   thorpej 	qlen(cl->cl_q) = 0;
    421        1.1   thorpej 	cl->cl_flags = flags;
    422        1.1   thorpej #ifdef ALTQ_RED
    423        1.1   thorpej 	if (flags & (HFCF_RED|HFCF_RIO)) {
    424        1.1   thorpej 		int red_flags, red_pkttime;
    425       1.19     peter 		u_int m2;
    426       1.19     peter 
    427       1.19     peter 		m2 = 0;
    428       1.19     peter 		if (rsc != NULL && rsc->m2 > m2)
    429       1.19     peter 			m2 = rsc->m2;
    430       1.19     peter 		if (fsc != NULL && fsc->m2 > m2)
    431       1.19     peter 			m2 = fsc->m2;
    432       1.19     peter 		if (usc != NULL && usc->m2 > m2)
    433       1.19     peter 			m2 = usc->m2;
    434        1.1   thorpej 
    435        1.1   thorpej 		red_flags = 0;
    436        1.1   thorpej 		if (flags & HFCF_ECN)
    437        1.1   thorpej 			red_flags |= REDF_ECN;
    438        1.1   thorpej #ifdef ALTQ_RIO
    439        1.1   thorpej 		if (flags & HFCF_CLEARDSCP)
    440        1.1   thorpej 			red_flags |= RIOF_CLEARDSCP;
    441        1.1   thorpej #endif
    442       1.19     peter 		if (m2 < 8)
    443        1.1   thorpej 			red_pkttime = 1000 * 1000 * 1000; /* 1 sec */
    444        1.1   thorpej 		else
    445        1.1   thorpej 			red_pkttime = (int64_t)hif->hif_ifq->altq_ifp->if_mtu
    446       1.19     peter 				* 1000 * 1000 * 1000 / (m2 / 8);
    447        1.1   thorpej 		if (flags & HFCF_RED) {
    448       1.19     peter 			cl->cl_red = red_alloc(0, 0,
    449       1.19     peter 			    qlimit(cl->cl_q) * 10/100,
    450       1.19     peter 			    qlimit(cl->cl_q) * 30/100,
    451       1.19     peter 			    red_flags, red_pkttime);
    452        1.1   thorpej 			if (cl->cl_red != NULL)
    453        1.1   thorpej 				qtype(cl->cl_q) = Q_RED;
    454        1.1   thorpej 		}
    455        1.1   thorpej #ifdef ALTQ_RIO
    456        1.1   thorpej 		else {
    457        1.1   thorpej 			cl->cl_red = (red_t *)rio_alloc(0, NULL,
    458       1.19     peter 			    red_flags, red_pkttime);
    459        1.1   thorpej 			if (cl->cl_red != NULL)
    460        1.1   thorpej 				qtype(cl->cl_q) = Q_RIO;
    461        1.1   thorpej 		}
    462        1.1   thorpej #endif
    463        1.1   thorpej 	}
    464        1.1   thorpej #endif /* ALTQ_RED */
    465        1.1   thorpej 
    466       1.19     peter 	if (rsc != NULL && (rsc->m1 != 0 || rsc->m2 != 0)) {
    467       1.13  christos 		cl->cl_rsc = malloc(sizeof(struct internal_sc), M_DEVBUF,
    468       1.13  christos 		    M_WAITOK|M_ZERO);
    469        1.1   thorpej 		if (cl->cl_rsc == NULL)
    470        1.1   thorpej 			goto err_ret;
    471       1.19     peter 		sc2isc(rsc, cl->cl_rsc);
    472        1.1   thorpej 		rtsc_init(&cl->cl_deadline, cl->cl_rsc, 0, 0);
    473        1.1   thorpej 		rtsc_init(&cl->cl_eligible, cl->cl_rsc, 0, 0);
    474       1.19     peter 	}
    475       1.19     peter 	if (fsc != NULL && (fsc->m1 != 0 || fsc->m2 != 0)) {
    476       1.13  christos 		cl->cl_fsc = malloc(sizeof(struct internal_sc), M_DEVBUF,
    477       1.13  christos 		    M_WAITOK|M_ZERO);
    478        1.1   thorpej 		if (cl->cl_fsc == NULL)
    479        1.1   thorpej 			goto err_ret;
    480       1.19     peter 		sc2isc(fsc, cl->cl_fsc);
    481        1.1   thorpej 		rtsc_init(&cl->cl_virtual, cl->cl_fsc, 0, 0);
    482        1.1   thorpej 	}
    483       1.19     peter 	if (usc != NULL && (usc->m1 != 0 || usc->m2 != 0)) {
    484       1.19     peter 		cl->cl_usc = malloc(sizeof(struct internal_sc), M_DEVBUF,
    485       1.19     peter 		    M_WAITOK|M_ZERO);
    486       1.19     peter 		if (cl->cl_usc == NULL)
    487       1.19     peter 			goto err_ret;
    488       1.19     peter 		sc2isc(usc, cl->cl_usc);
    489       1.19     peter 		rtsc_init(&cl->cl_ulimit, cl->cl_usc, 0, 0);
    490       1.19     peter 	}
    491        1.1   thorpej 
    492        1.1   thorpej 	cl->cl_id = hif->hif_classid++;
    493       1.19     peter 	cl->cl_handle = qid;
    494        1.1   thorpej 	cl->cl_hif = hif;
    495        1.1   thorpej 	cl->cl_parent = parent;
    496        1.1   thorpej 
    497        1.3   thorpej 	s = splnet();
    498        1.1   thorpej 	hif->hif_classes++;
    499       1.19     peter 
    500       1.19     peter 	/*
    501       1.19     peter 	 * find a free slot in the class table.  if the slot matching
    502       1.19     peter 	 * the lower bits of qid is free, use this slot.  otherwise,
    503       1.19     peter 	 * use the first free slot.
    504       1.19     peter 	 */
    505       1.19     peter 	i = qid % HFSC_MAX_CLASSES;
    506       1.19     peter 	if (hif->hif_class_tbl[i] == NULL)
    507       1.19     peter 		hif->hif_class_tbl[i] = cl;
    508       1.19     peter 	else {
    509       1.19     peter 		for (i = 0; i < HFSC_MAX_CLASSES; i++)
    510       1.19     peter 			if (hif->hif_class_tbl[i] == NULL) {
    511       1.19     peter 				hif->hif_class_tbl[i] = cl;
    512       1.19     peter 				break;
    513       1.19     peter 			}
    514       1.19     peter 		if (i == HFSC_MAX_CLASSES) {
    515       1.19     peter 			splx(s);
    516       1.19     peter 			goto err_ret;
    517       1.19     peter 		}
    518       1.19     peter 	}
    519       1.19     peter 
    520        1.1   thorpej 	if (flags & HFCF_DEFAULTCLASS)
    521        1.1   thorpej 		hif->hif_defaultclass = cl;
    522        1.1   thorpej 
    523        1.1   thorpej 	if (parent == NULL) {
    524        1.1   thorpej 		/* this is root class */
    525       1.19     peter 		hif->hif_rootclass = cl;
    526       1.19     peter 	} else {
    527       1.19     peter 		/* add this class to the children list of the parent */
    528       1.19     peter 		if ((p = parent->cl_children) == NULL)
    529       1.19     peter 			parent->cl_children = cl;
    530       1.19     peter 		else {
    531       1.19     peter 			while (p->cl_siblings != NULL)
    532       1.19     peter 				p = p->cl_siblings;
    533       1.19     peter 			p->cl_siblings = cl;
    534       1.19     peter 		}
    535        1.1   thorpej 	}
    536        1.1   thorpej 	splx(s);
    537        1.1   thorpej 
    538        1.1   thorpej 	return (cl);
    539        1.1   thorpej 
    540        1.1   thorpej  err_ret:
    541        1.1   thorpej 	if (cl->cl_actc != NULL)
    542        1.1   thorpej 		actlist_destroy(cl->cl_actc);
    543        1.1   thorpej 	if (cl->cl_red != NULL) {
    544        1.1   thorpej #ifdef ALTQ_RIO
    545        1.1   thorpej 		if (q_is_rio(cl->cl_q))
    546        1.1   thorpej 			rio_destroy((rio_t *)cl->cl_red);
    547        1.1   thorpej #endif
    548        1.1   thorpej #ifdef ALTQ_RED
    549        1.1   thorpej 		if (q_is_red(cl->cl_q))
    550        1.1   thorpej 			red_destroy(cl->cl_red);
    551        1.1   thorpej #endif
    552        1.1   thorpej 	}
    553        1.1   thorpej 	if (cl->cl_fsc != NULL)
    554       1.13  christos 		free(cl->cl_fsc, M_DEVBUF);
    555        1.1   thorpej 	if (cl->cl_rsc != NULL)
    556       1.13  christos 		free(cl->cl_rsc, M_DEVBUF);
    557       1.19     peter 	if (cl->cl_usc != NULL)
    558       1.19     peter 		free(cl->cl_usc, M_DEVBUF);
    559        1.1   thorpej 	if (cl->cl_q != NULL)
    560       1.13  christos 		free(cl->cl_q, M_DEVBUF);
    561       1.13  christos 	free(cl, M_DEVBUF);
    562        1.1   thorpej 	return (NULL);
    563        1.1   thorpej }
    564        1.1   thorpej 
    565        1.1   thorpej static int
    566       1.19     peter hfsc_class_destroy(struct hfsc_class *cl)
    567        1.1   thorpej {
    568       1.19     peter 	int i, s;
    569       1.19     peter 
    570       1.19     peter 	if (cl == NULL)
    571       1.19     peter 		return (0);
    572        1.1   thorpej 
    573        1.1   thorpej 	if (is_a_parent_class(cl))
    574        1.1   thorpej 		return (EBUSY);
    575        1.1   thorpej 
    576        1.3   thorpej 	s = splnet();
    577        1.1   thorpej 
    578       1.19     peter #ifdef ALTQ3_COMPAT
    579        1.1   thorpej 	/* delete filters referencing to this class */
    580        1.1   thorpej 	acc_discard_filters(&cl->cl_hif->hif_classifier, cl, 0);
    581       1.19     peter #endif /* ALTQ3_COMPAT */
    582        1.1   thorpej 
    583        1.1   thorpej 	if (!qempty(cl->cl_q))
    584        1.1   thorpej 		hfsc_purgeq(cl);
    585        1.1   thorpej 
    586        1.1   thorpej 	if (cl->cl_parent == NULL) {
    587        1.1   thorpej 		/* this is root class */
    588        1.1   thorpej 	} else {
    589        1.1   thorpej 		struct hfsc_class *p = cl->cl_parent->cl_children;
    590        1.1   thorpej 
    591        1.1   thorpej 		if (p == cl)
    592        1.1   thorpej 			cl->cl_parent->cl_children = cl->cl_siblings;
    593        1.1   thorpej 		else do {
    594        1.1   thorpej 			if (p->cl_siblings == cl) {
    595        1.1   thorpej 				p->cl_siblings = cl->cl_siblings;
    596        1.1   thorpej 				break;
    597        1.1   thorpej 			}
    598        1.1   thorpej 		} while ((p = p->cl_siblings) != NULL);
    599        1.1   thorpej 		ASSERT(p != NULL);
    600        1.1   thorpej 	}
    601       1.19     peter 
    602       1.19     peter 	for (i = 0; i < HFSC_MAX_CLASSES; i++)
    603       1.19     peter 		if (cl->cl_hif->hif_class_tbl[i] == cl) {
    604       1.19     peter 			cl->cl_hif->hif_class_tbl[i] = NULL;
    605       1.19     peter 			break;
    606       1.19     peter 		}
    607       1.19     peter 
    608        1.1   thorpej 	cl->cl_hif->hif_classes--;
    609        1.1   thorpej 	splx(s);
    610        1.1   thorpej 
    611        1.1   thorpej 	actlist_destroy(cl->cl_actc);
    612        1.1   thorpej 
    613        1.1   thorpej 	if (cl->cl_red != NULL) {
    614        1.1   thorpej #ifdef ALTQ_RIO
    615        1.1   thorpej 		if (q_is_rio(cl->cl_q))
    616        1.1   thorpej 			rio_destroy((rio_t *)cl->cl_red);
    617        1.1   thorpej #endif
    618        1.1   thorpej #ifdef ALTQ_RED
    619        1.1   thorpej 		if (q_is_red(cl->cl_q))
    620        1.1   thorpej 			red_destroy(cl->cl_red);
    621        1.1   thorpej #endif
    622        1.1   thorpej 	}
    623       1.19     peter 
    624       1.19     peter 	if (cl == cl->cl_hif->hif_rootclass)
    625       1.19     peter 		cl->cl_hif->hif_rootclass = NULL;
    626       1.19     peter 	if (cl == cl->cl_hif->hif_defaultclass)
    627       1.19     peter 		cl->cl_hif->hif_defaultclass = NULL;
    628       1.19     peter 
    629       1.19     peter 	if (cl->cl_usc != NULL)
    630       1.19     peter 		free(cl->cl_usc, M_DEVBUF);
    631        1.1   thorpej 	if (cl->cl_fsc != NULL)
    632       1.13  christos 		free(cl->cl_fsc, M_DEVBUF);
    633        1.1   thorpej 	if (cl->cl_rsc != NULL)
    634       1.13  christos 		free(cl->cl_rsc, M_DEVBUF);
    635       1.13  christos 	free(cl->cl_q, M_DEVBUF);
    636       1.13  christos 	free(cl, M_DEVBUF);
    637        1.1   thorpej 
    638        1.1   thorpej 	return (0);
    639        1.1   thorpej }
    640        1.1   thorpej 
    641        1.1   thorpej /*
    642        1.1   thorpej  * hfsc_nextclass returns the next class in the tree.
    643        1.1   thorpej  *   usage:
    644       1.19     peter  *	for (cl = hif->hif_rootclass; cl != NULL; cl = hfsc_nextclass(cl))
    645        1.1   thorpej  *		do_something;
    646        1.1   thorpej  */
    647        1.1   thorpej static struct hfsc_class *
    648       1.19     peter hfsc_nextclass(struct hfsc_class *cl)
    649        1.1   thorpej {
    650        1.1   thorpej 	if (cl->cl_children != NULL)
    651        1.1   thorpej 		cl = cl->cl_children;
    652        1.1   thorpej 	else if (cl->cl_siblings != NULL)
    653        1.1   thorpej 		cl = cl->cl_siblings;
    654        1.1   thorpej 	else {
    655        1.1   thorpej 		while ((cl = cl->cl_parent) != NULL)
    656        1.1   thorpej 			if (cl->cl_siblings) {
    657        1.1   thorpej 				cl = cl->cl_siblings;
    658        1.1   thorpej 				break;
    659        1.1   thorpej 			}
    660        1.1   thorpej 	}
    661        1.1   thorpej 
    662        1.1   thorpej 	return (cl);
    663        1.1   thorpej }
    664        1.1   thorpej 
    665        1.1   thorpej /*
    666        1.1   thorpej  * hfsc_enqueue is an enqueue function to be registered to
    667        1.1   thorpej  * (*altq_enqueue) in struct ifaltq.
    668        1.1   thorpej  */
    669       1.10     perry static int
    670       1.19     peter hfsc_enqueue(struct ifaltq *ifq, struct mbuf *m, struct altq_pktattr *pktattr)
    671        1.1   thorpej {
    672        1.1   thorpej 	struct hfsc_if	*hif = (struct hfsc_if *)ifq->altq_disc;
    673        1.1   thorpej 	struct hfsc_class *cl;
    674       1.19     peter 	struct m_tag *t;
    675        1.1   thorpej 	int len;
    676        1.1   thorpej 
    677        1.1   thorpej 	/* grab class set by classifier */
    678       1.19     peter 	if ((m->m_flags & M_PKTHDR) == 0) {
    679       1.19     peter 		/* should not happen */
    680       1.19     peter 		printf("altq: packet for %s does not have pkthdr\n",
    681       1.19     peter 		    ifq->altq_ifp->if_xname);
    682       1.19     peter 		m_freem(m);
    683       1.19     peter 		return (ENOBUFS);
    684       1.19     peter 	}
    685       1.19     peter 	cl = NULL;
    686       1.24      yamt 	if ((t = m_tag_find(m, PACKET_TAG_ALTQ_QID, NULL)) != NULL)
    687       1.19     peter 		cl = clh_to_clp(hif, ((struct altq_tag *)(t+1))->qid);
    688       1.19     peter #ifdef ALTQ3_COMPAT
    689       1.19     peter 	else if ((ifq->altq_flags & ALTQF_CLASSIFY) && pktattr != NULL)
    690       1.19     peter 		cl = pktattr->pattr_class;
    691       1.19     peter #endif
    692       1.19     peter 	if (cl == NULL || is_a_parent_class(cl)) {
    693        1.1   thorpej 		cl = hif->hif_defaultclass;
    694       1.19     peter 		if (cl == NULL) {
    695       1.19     peter 			m_freem(m);
    696       1.19     peter 			return (ENOBUFS);
    697       1.19     peter 		}
    698       1.19     peter 	}
    699       1.19     peter #ifdef ALTQ3_COMPAT
    700       1.19     peter 	if (pktattr != NULL)
    701       1.19     peter 		cl->cl_pktattr = pktattr;  /* save proto hdr used by ECN */
    702       1.19     peter 	else
    703       1.19     peter #endif
    704       1.19     peter 		cl->cl_pktattr = NULL;
    705        1.1   thorpej 	len = m_pktlen(m);
    706        1.1   thorpej 	if (hfsc_addq(cl, m) != 0) {
    707        1.1   thorpej 		/* drop occurred.  mbuf was freed in hfsc_addq. */
    708        1.1   thorpej 		PKTCNTR_ADD(&cl->cl_stats.drop_cnt, len);
    709        1.1   thorpej 		return (ENOBUFS);
    710        1.1   thorpej 	}
    711        1.1   thorpej 	IFQ_INC_LEN(ifq);
    712        1.1   thorpej 	cl->cl_hif->hif_packets++;
    713        1.1   thorpej 
    714        1.1   thorpej 	/* successfully queued. */
    715        1.1   thorpej 	if (qlen(cl->cl_q) == 1)
    716        1.1   thorpej 		set_active(cl, m_pktlen(m));
    717        1.1   thorpej 
    718        1.1   thorpej 	return (0);
    719        1.1   thorpej }
    720        1.1   thorpej 
    721        1.1   thorpej /*
    722        1.1   thorpej  * hfsc_dequeue is a dequeue function to be registered to
    723        1.1   thorpej  * (*altq_dequeue) in struct ifaltq.
    724        1.1   thorpej  *
    725        1.1   thorpej  * note: ALTDQ_POLL returns the next packet without removing the packet
    726        1.1   thorpej  *	from the queue.  ALTDQ_REMOVE is a normal dequeue operation.
    727        1.1   thorpej  *	ALTDQ_REMOVE must return the same packet if called immediately
    728        1.1   thorpej  *	after ALTDQ_POLL.
    729        1.1   thorpej  */
    730        1.1   thorpej static struct mbuf *
    731       1.19     peter hfsc_dequeue(struct ifaltq *ifq, int op)
    732        1.1   thorpej {
    733        1.1   thorpej 	struct hfsc_if	*hif = (struct hfsc_if *)ifq->altq_disc;
    734        1.1   thorpej 	struct hfsc_class *cl;
    735        1.1   thorpej 	struct mbuf *m;
    736        1.1   thorpej 	int len, next_len;
    737        1.1   thorpej 	int realtime = 0;
    738       1.19     peter 	u_int64_t cur_time;
    739        1.1   thorpej 
    740        1.1   thorpej 	if (hif->hif_packets == 0)
    741        1.1   thorpej 		/* no packet in the tree */
    742        1.1   thorpej 		return (NULL);
    743        1.1   thorpej 
    744       1.19     peter 	cur_time = read_machclk();
    745       1.19     peter 
    746        1.1   thorpej 	if (op == ALTDQ_REMOVE && hif->hif_pollcache != NULL) {
    747       1.10     perry 
    748        1.1   thorpej 		cl = hif->hif_pollcache;
    749        1.1   thorpej 		hif->hif_pollcache = NULL;
    750        1.1   thorpej 		/* check if the class was scheduled by real-time criteria */
    751       1.19     peter 		if (cl->cl_rsc != NULL)
    752        1.1   thorpej 			realtime = (cl->cl_e <= cur_time);
    753        1.1   thorpej 	} else {
    754        1.1   thorpej 		/*
    755        1.1   thorpej 		 * if there are eligible classes, use real-time criteria.
    756        1.1   thorpej 		 * find the class with the minimum deadline among
    757        1.1   thorpej 		 * the eligible classes.
    758        1.1   thorpej 		 */
    759       1.19     peter 		if ((cl = ellist_get_mindl(hif->hif_eligible, cur_time))
    760       1.19     peter 		    != NULL) {
    761        1.1   thorpej 			realtime = 1;
    762        1.1   thorpej 		} else {
    763       1.19     peter #ifdef ALTQ_DEBUG
    764       1.19     peter 			int fits = 0;
    765       1.19     peter #endif
    766        1.1   thorpej 			/*
    767        1.1   thorpej 			 * use link-sharing criteria
    768        1.1   thorpej 			 * get the class with the minimum vt in the hierarchy
    769        1.1   thorpej 			 */
    770        1.1   thorpej 			cl = hif->hif_rootclass;
    771        1.1   thorpej 			while (is_a_parent_class(cl)) {
    772       1.19     peter 
    773       1.19     peter 				cl = actlist_firstfit(cl, cur_time);
    774       1.19     peter 				if (cl == NULL) {
    775       1.19     peter #ifdef ALTQ_DEBUG
    776       1.19     peter 					if (fits > 0)
    777       1.19     peter 						printf("%d fit but none found\n",fits);
    778       1.19     peter #endif
    779        1.1   thorpej 					return (NULL);
    780       1.19     peter 				}
    781       1.19     peter 				/*
    782       1.19     peter 				 * update parent's cl_cvtmin.
    783       1.19     peter 				 * don't update if the new vt is smaller.
    784       1.19     peter 				 */
    785       1.19     peter 				if (cl->cl_parent->cl_cvtmin < cl->cl_vt)
    786       1.19     peter 					cl->cl_parent->cl_cvtmin = cl->cl_vt;
    787       1.19     peter #ifdef ALTQ_DEBUG
    788       1.19     peter 				fits++;
    789       1.19     peter #endif
    790        1.1   thorpej 			}
    791        1.1   thorpej 		}
    792        1.1   thorpej 
    793        1.1   thorpej 		if (op == ALTDQ_POLL) {
    794        1.1   thorpej 			hif->hif_pollcache = cl;
    795        1.1   thorpej 			m = hfsc_pollq(cl);
    796        1.1   thorpej 			return (m);
    797        1.1   thorpej 		}
    798        1.1   thorpej 	}
    799        1.1   thorpej 
    800        1.1   thorpej 	m = hfsc_getq(cl);
    801       1.19     peter 	if (m == NULL)
    802       1.19     peter 		panic("hfsc_dequeue:");
    803        1.1   thorpej 	len = m_pktlen(m);
    804        1.1   thorpej 	cl->cl_hif->hif_packets--;
    805        1.1   thorpej 	IFQ_DEC_LEN(ifq);
    806        1.1   thorpej 	PKTCNTR_ADD(&cl->cl_stats.xmit_cnt, len);
    807        1.1   thorpej 
    808       1.19     peter 	update_vf(cl, len, cur_time);
    809        1.1   thorpej 	if (realtime)
    810        1.1   thorpej 		cl->cl_cumul += len;
    811        1.1   thorpej 
    812        1.1   thorpej 	if (!qempty(cl->cl_q)) {
    813        1.1   thorpej 		if (cl->cl_rsc != NULL) {
    814        1.1   thorpej 			/* update ed */
    815        1.1   thorpej 			next_len = m_pktlen(qhead(cl->cl_q));
    816       1.10     perry 
    817        1.1   thorpej 			if (realtime)
    818        1.1   thorpej 				update_ed(cl, next_len);
    819        1.1   thorpej 			else
    820        1.1   thorpej 				update_d(cl, next_len);
    821        1.1   thorpej 		}
    822        1.1   thorpej 	} else {
    823        1.1   thorpej 		/* the class becomes passive */
    824        1.1   thorpej 		set_passive(cl);
    825        1.1   thorpej 	}
    826        1.1   thorpej 
    827        1.1   thorpej 	return (m);
    828        1.1   thorpej }
    829        1.1   thorpej 
    830        1.1   thorpej static int
    831       1.19     peter hfsc_addq(struct hfsc_class *cl, struct mbuf *m)
    832        1.1   thorpej {
    833        1.1   thorpej 
    834        1.1   thorpej #ifdef ALTQ_RIO
    835        1.1   thorpej 	if (q_is_rio(cl->cl_q))
    836        1.1   thorpej 		return rio_addq((rio_t *)cl->cl_red, cl->cl_q,
    837        1.1   thorpej 				m, cl->cl_pktattr);
    838        1.1   thorpej #endif
    839        1.1   thorpej #ifdef ALTQ_RED
    840        1.1   thorpej 	if (q_is_red(cl->cl_q))
    841        1.1   thorpej 		return red_addq(cl->cl_red, cl->cl_q, m, cl->cl_pktattr);
    842        1.1   thorpej #endif
    843        1.1   thorpej 	if (qlen(cl->cl_q) >= qlimit(cl->cl_q)) {
    844        1.1   thorpej 		m_freem(m);
    845        1.1   thorpej 		return (-1);
    846        1.1   thorpej 	}
    847        1.1   thorpej 
    848        1.1   thorpej 	if (cl->cl_flags & HFCF_CLEARDSCP)
    849        1.1   thorpej 		write_dsfield(m, cl->cl_pktattr, 0);
    850        1.1   thorpej 
    851        1.1   thorpej 	_addq(cl->cl_q, m);
    852        1.1   thorpej 
    853        1.1   thorpej 	return (0);
    854        1.1   thorpej }
    855        1.1   thorpej 
    856        1.1   thorpej static struct mbuf *
    857       1.19     peter hfsc_getq(struct hfsc_class *cl)
    858        1.1   thorpej {
    859        1.1   thorpej #ifdef ALTQ_RIO
    860        1.1   thorpej 	if (q_is_rio(cl->cl_q))
    861        1.1   thorpej 		return rio_getq((rio_t *)cl->cl_red, cl->cl_q);
    862        1.1   thorpej #endif
    863        1.1   thorpej #ifdef ALTQ_RED
    864        1.1   thorpej 	if (q_is_red(cl->cl_q))
    865        1.1   thorpej 		return red_getq(cl->cl_red, cl->cl_q);
    866        1.1   thorpej #endif
    867        1.1   thorpej 	return _getq(cl->cl_q);
    868        1.1   thorpej }
    869        1.1   thorpej 
    870        1.1   thorpej static struct mbuf *
    871       1.19     peter hfsc_pollq(struct hfsc_class *cl)
    872        1.1   thorpej {
    873        1.1   thorpej 	return qhead(cl->cl_q);
    874        1.1   thorpej }
    875        1.1   thorpej 
    876        1.1   thorpej static void
    877       1.19     peter hfsc_purgeq(struct hfsc_class *cl)
    878        1.1   thorpej {
    879        1.1   thorpej 	struct mbuf *m;
    880        1.1   thorpej 
    881        1.1   thorpej 	if (qempty(cl->cl_q))
    882        1.1   thorpej 		return;
    883        1.1   thorpej 
    884        1.1   thorpej 	while ((m = _getq(cl->cl_q)) != NULL) {
    885        1.1   thorpej 		PKTCNTR_ADD(&cl->cl_stats.drop_cnt, m_pktlen(m));
    886        1.1   thorpej 		m_freem(m);
    887       1.19     peter 		cl->cl_hif->hif_packets--;
    888       1.19     peter 		IFQ_DEC_LEN(cl->cl_hif->hif_ifq);
    889        1.1   thorpej 	}
    890        1.1   thorpej 	ASSERT(qlen(cl->cl_q) == 0);
    891       1.10     perry 
    892       1.19     peter 	update_vf(cl, 0, 0);	/* remove cl from the actlist */
    893        1.1   thorpej 	set_passive(cl);
    894        1.1   thorpej }
    895        1.1   thorpej 
    896       1.10     perry static void
    897       1.19     peter set_active(struct hfsc_class *cl, int len)
    898        1.1   thorpej {
    899        1.1   thorpej 	if (cl->cl_rsc != NULL)
    900        1.1   thorpej 		init_ed(cl, len);
    901        1.1   thorpej 	if (cl->cl_fsc != NULL)
    902       1.19     peter 		init_vf(cl, len);
    903        1.1   thorpej 
    904        1.1   thorpej 	cl->cl_stats.period++;
    905        1.1   thorpej }
    906        1.1   thorpej 
    907       1.10     perry static void
    908       1.19     peter set_passive(struct hfsc_class *cl)
    909        1.1   thorpej {
    910        1.1   thorpej 	if (cl->cl_rsc != NULL)
    911        1.1   thorpej 		ellist_remove(cl);
    912        1.1   thorpej 
    913       1.19     peter 	/*
    914       1.19     peter 	 * actlist is now handled in update_vf() so that update_vf(cl, 0, 0)
    915       1.19     peter 	 * needs to be called explicitly to remove a class from actlist
    916       1.19     peter 	 */
    917        1.1   thorpej }
    918        1.1   thorpej 
    919       1.10     perry static void
    920       1.19     peter init_ed(struct hfsc_class *cl, int next_len)
    921        1.1   thorpej {
    922        1.1   thorpej 	u_int64_t cur_time;
    923        1.1   thorpej 
    924        1.1   thorpej 	cur_time = read_machclk();
    925        1.1   thorpej 
    926        1.1   thorpej 	/* update the deadline curve */
    927        1.1   thorpej 	rtsc_min(&cl->cl_deadline, cl->cl_rsc, cur_time, cl->cl_cumul);
    928        1.1   thorpej 
    929        1.1   thorpej 	/*
    930        1.1   thorpej 	 * update the eligible curve.
    931        1.1   thorpej 	 * for concave, it is equal to the deadline curve.
    932        1.1   thorpej 	 * for convex, it is a linear curve with slope m2.
    933        1.1   thorpej 	 */
    934        1.1   thorpej 	cl->cl_eligible = cl->cl_deadline;
    935        1.1   thorpej 	if (cl->cl_rsc->sm1 <= cl->cl_rsc->sm2) {
    936        1.1   thorpej 		cl->cl_eligible.dx = 0;
    937        1.1   thorpej 		cl->cl_eligible.dy = 0;
    938        1.1   thorpej 	}
    939        1.1   thorpej 
    940        1.1   thorpej 	/* compute e and d */
    941        1.1   thorpej 	cl->cl_e = rtsc_y2x(&cl->cl_eligible, cl->cl_cumul);
    942        1.1   thorpej 	cl->cl_d = rtsc_y2x(&cl->cl_deadline, cl->cl_cumul + next_len);
    943        1.1   thorpej 
    944        1.1   thorpej 	ellist_insert(cl);
    945        1.1   thorpej }
    946        1.1   thorpej 
    947       1.10     perry static void
    948       1.19     peter update_ed(struct hfsc_class *cl, int next_len)
    949        1.1   thorpej {
    950        1.1   thorpej 	cl->cl_e = rtsc_y2x(&cl->cl_eligible, cl->cl_cumul);
    951        1.1   thorpej 	cl->cl_d = rtsc_y2x(&cl->cl_deadline, cl->cl_cumul + next_len);
    952        1.1   thorpej 
    953        1.1   thorpej 	ellist_update(cl);
    954        1.1   thorpej }
    955        1.1   thorpej 
    956       1.10     perry static void
    957       1.19     peter update_d(struct hfsc_class *cl, int next_len)
    958        1.1   thorpej {
    959        1.1   thorpej 	cl->cl_d = rtsc_y2x(&cl->cl_deadline, cl->cl_cumul + next_len);
    960        1.1   thorpej }
    961        1.1   thorpej 
    962       1.10     perry static void
    963       1.22  christos init_vf(struct hfsc_class *cl, int len)
    964        1.1   thorpej {
    965       1.19     peter 	struct hfsc_class *max_cl, *p;
    966       1.19     peter 	u_int64_t vt, f, cur_time;
    967       1.19     peter 	int go_active;
    968       1.19     peter 
    969       1.19     peter 	cur_time = 0;
    970       1.19     peter 	go_active = 1;
    971       1.19     peter 	for ( ; cl->cl_parent != NULL; cl = cl->cl_parent) {
    972        1.1   thorpej 
    973       1.19     peter 		if (go_active && cl->cl_nactive++ == 0)
    974       1.19     peter 			go_active = 1;
    975       1.19     peter 		else
    976       1.19     peter 			go_active = 0;
    977       1.10     perry 
    978       1.19     peter 		if (go_active) {
    979       1.19     peter 			max_cl = actlist_last(cl->cl_parent->cl_actc);
    980       1.19     peter 			if (max_cl != NULL) {
    981       1.19     peter 				/*
    982       1.19     peter 				 * set vt to the average of the min and max
    983       1.19     peter 				 * classes.  if the parent's period didn't
    984       1.19     peter 				 * change, don't decrease vt of the class.
    985       1.19     peter 				 */
    986       1.19     peter 				vt = max_cl->cl_vt;
    987       1.19     peter 				if (cl->cl_parent->cl_cvtmin != 0)
    988       1.19     peter 					vt = (cl->cl_parent->cl_cvtmin + vt)/2;
    989       1.19     peter 
    990       1.19     peter 				if (cl->cl_parent->cl_vtperiod !=
    991       1.19     peter 				    cl->cl_parentperiod || vt > cl->cl_vt)
    992       1.19     peter 					cl->cl_vt = vt;
    993       1.19     peter 			} else {
    994       1.19     peter 				/*
    995       1.19     peter 				 * first child for a new parent backlog period.
    996       1.19     peter 				 * add parent's cvtmax to vtoff of children
    997       1.19     peter 				 * to make a new vt (vtoff + vt) larger than
    998       1.19     peter 				 * the vt in the last period for all children.
    999       1.19     peter 				 */
   1000       1.19     peter 				vt = cl->cl_parent->cl_cvtmax;
   1001       1.19     peter 				for (p = cl->cl_parent->cl_children; p != NULL;
   1002       1.19     peter 				     p = p->cl_siblings)
   1003       1.19     peter 					p->cl_vtoff += vt;
   1004       1.19     peter 				cl->cl_vt = 0;
   1005       1.19     peter 				cl->cl_parent->cl_cvtmax = 0;
   1006       1.19     peter 				cl->cl_parent->cl_cvtmin = 0;
   1007       1.19     peter 			}
   1008       1.19     peter 			cl->cl_initvt = cl->cl_vt;
   1009        1.1   thorpej 
   1010       1.19     peter 			/* update the virtual curve */
   1011       1.19     peter 			vt = cl->cl_vt + cl->cl_vtoff;
   1012       1.19     peter 			rtsc_min(&cl->cl_virtual, cl->cl_fsc, vt, cl->cl_total);
   1013       1.19     peter 			if (cl->cl_virtual.x == vt) {
   1014       1.19     peter 				cl->cl_virtual.x -= cl->cl_vtoff;
   1015       1.19     peter 				cl->cl_vtoff = 0;
   1016       1.19     peter 			}
   1017       1.19     peter 			cl->cl_vtadj = 0;
   1018        1.1   thorpej 
   1019       1.19     peter 			cl->cl_vtperiod++;  /* increment vt period */
   1020       1.19     peter 			cl->cl_parentperiod = cl->cl_parent->cl_vtperiod;
   1021       1.19     peter 			if (cl->cl_parent->cl_nactive == 0)
   1022       1.19     peter 				cl->cl_parentperiod++;
   1023       1.19     peter 			cl->cl_f = 0;
   1024       1.19     peter 
   1025       1.19     peter 			actlist_insert(cl);
   1026       1.19     peter 
   1027       1.19     peter 			if (cl->cl_usc != NULL) {
   1028       1.19     peter 				/* class has upper limit curve */
   1029       1.19     peter 				if (cur_time == 0)
   1030       1.19     peter 					cur_time = read_machclk();
   1031       1.19     peter 
   1032       1.19     peter 				/* update the ulimit curve */
   1033       1.19     peter 				rtsc_min(&cl->cl_ulimit, cl->cl_usc, cur_time,
   1034       1.19     peter 				    cl->cl_total);
   1035       1.19     peter 				/* compute myf */
   1036       1.19     peter 				cl->cl_myf = rtsc_y2x(&cl->cl_ulimit,
   1037       1.19     peter 				    cl->cl_total);
   1038       1.19     peter 				cl->cl_myfadj = 0;
   1039       1.19     peter 			}
   1040        1.1   thorpej 		}
   1041        1.1   thorpej 
   1042       1.19     peter 		if (cl->cl_myf > cl->cl_cfmin)
   1043       1.19     peter 			f = cl->cl_myf;
   1044       1.19     peter 		else
   1045       1.19     peter 			f = cl->cl_cfmin;
   1046       1.19     peter 		if (f != cl->cl_f) {
   1047       1.19     peter 			cl->cl_f = f;
   1048       1.19     peter 			update_cfmin(cl->cl_parent);
   1049       1.19     peter 		}
   1050        1.1   thorpej 	}
   1051        1.1   thorpej }
   1052        1.1   thorpej 
   1053       1.10     perry static void
   1054       1.19     peter update_vf(struct hfsc_class *cl, int len, u_int64_t cur_time)
   1055        1.1   thorpej {
   1056       1.19     peter 	u_int64_t f, myf_bound, delta;
   1057       1.19     peter 	int go_passive;
   1058       1.19     peter 
   1059       1.19     peter 	go_passive = qempty(cl->cl_q);
   1060       1.19     peter 
   1061       1.19     peter 	for (; cl->cl_parent != NULL; cl = cl->cl_parent) {
   1062        1.1   thorpej 
   1063        1.1   thorpej 		cl->cl_total += len;
   1064        1.1   thorpej 
   1065       1.19     peter 		if (cl->cl_fsc == NULL || cl->cl_nactive == 0)
   1066       1.19     peter 			continue;
   1067       1.19     peter 
   1068       1.19     peter 		if (go_passive && --cl->cl_nactive == 0)
   1069       1.19     peter 			go_passive = 1;
   1070       1.19     peter 		else
   1071       1.19     peter 			go_passive = 0;
   1072       1.19     peter 
   1073       1.19     peter 		if (go_passive) {
   1074       1.19     peter 			/* no more active child, going passive */
   1075       1.19     peter 
   1076       1.19     peter 			/* update cvtmax of the parent class */
   1077       1.19     peter 			if (cl->cl_vt > cl->cl_parent->cl_cvtmax)
   1078       1.19     peter 				cl->cl_parent->cl_cvtmax = cl->cl_vt;
   1079       1.19     peter 
   1080       1.19     peter 			/* remove this class from the vt list */
   1081       1.19     peter 			actlist_remove(cl);
   1082       1.19     peter 
   1083       1.19     peter 			update_cfmin(cl->cl_parent);
   1084       1.19     peter 
   1085       1.19     peter 			continue;
   1086       1.19     peter 		}
   1087       1.19     peter 
   1088       1.19     peter 		/*
   1089       1.19     peter 		 * update vt and f
   1090       1.19     peter 		 */
   1091       1.19     peter 		cl->cl_vt = rtsc_y2x(&cl->cl_virtual, cl->cl_total)
   1092       1.19     peter 		    - cl->cl_vtoff + cl->cl_vtadj;
   1093       1.19     peter 
   1094       1.19     peter 		/*
   1095       1.19     peter 		 * if vt of the class is smaller than cvtmin,
   1096       1.19     peter 		 * the class was skipped in the past due to non-fit.
   1097       1.19     peter 		 * if so, we need to adjust vtadj.
   1098       1.19     peter 		 */
   1099       1.19     peter 		if (cl->cl_vt < cl->cl_parent->cl_cvtmin) {
   1100       1.19     peter 			cl->cl_vtadj += cl->cl_parent->cl_cvtmin - cl->cl_vt;
   1101       1.19     peter 			cl->cl_vt = cl->cl_parent->cl_cvtmin;
   1102       1.19     peter 		}
   1103       1.19     peter 
   1104       1.19     peter 		/* update the vt list */
   1105       1.19     peter 		actlist_update(cl);
   1106       1.19     peter 
   1107       1.19     peter 		if (cl->cl_usc != NULL) {
   1108       1.19     peter 			cl->cl_myf = cl->cl_myfadj
   1109       1.19     peter 			    + rtsc_y2x(&cl->cl_ulimit, cl->cl_total);
   1110       1.19     peter 
   1111       1.19     peter 			/*
   1112       1.19     peter 			 * if myf lags behind by more than one clock tick
   1113       1.19     peter 			 * from the current time, adjust myfadj to prevent
   1114       1.19     peter 			 * a rate-limited class from going greedy.
   1115       1.19     peter 			 * in a steady state under rate-limiting, myf
   1116       1.19     peter 			 * fluctuates within one clock tick.
   1117       1.19     peter 			 */
   1118       1.19     peter 			myf_bound = cur_time - machclk_per_tick;
   1119       1.19     peter 			if (cl->cl_myf < myf_bound) {
   1120       1.19     peter 				delta = cur_time - cl->cl_myf;
   1121       1.19     peter 				cl->cl_myfadj += delta;
   1122       1.19     peter 				cl->cl_myf += delta;
   1123       1.19     peter 			}
   1124       1.19     peter 		}
   1125        1.1   thorpej 
   1126       1.19     peter 		/* cl_f is max(cl_myf, cl_cfmin) */
   1127       1.19     peter 		if (cl->cl_myf > cl->cl_cfmin)
   1128       1.19     peter 			f = cl->cl_myf;
   1129       1.19     peter 		else
   1130       1.19     peter 			f = cl->cl_cfmin;
   1131       1.19     peter 		if (f != cl->cl_f) {
   1132       1.19     peter 			cl->cl_f = f;
   1133       1.19     peter 			update_cfmin(cl->cl_parent);
   1134        1.1   thorpej 		}
   1135       1.19     peter 	}
   1136       1.19     peter }
   1137       1.19     peter 
   1138       1.19     peter static void
   1139       1.19     peter update_cfmin(struct hfsc_class *cl)
   1140       1.19     peter {
   1141       1.19     peter 	struct hfsc_class *p;
   1142       1.19     peter 	u_int64_t cfmin;
   1143        1.1   thorpej 
   1144       1.19     peter 	if (TAILQ_EMPTY(cl->cl_actc)) {
   1145       1.19     peter 		cl->cl_cfmin = 0;
   1146       1.19     peter 		return;
   1147       1.19     peter 	}
   1148       1.19     peter 	cfmin = HT_INFINITY;
   1149       1.19     peter 	TAILQ_FOREACH(p, cl->cl_actc, cl_actlist) {
   1150       1.19     peter 		if (p->cl_f == 0) {
   1151       1.19     peter 			cl->cl_cfmin = 0;
   1152       1.19     peter 			return;
   1153       1.19     peter 		}
   1154       1.19     peter 		if (p->cl_f < cfmin)
   1155       1.19     peter 			cfmin = p->cl_f;
   1156        1.1   thorpej 	}
   1157       1.19     peter 	cl->cl_cfmin = cfmin;
   1158        1.1   thorpej }
   1159        1.1   thorpej 
   1160        1.1   thorpej /*
   1161        1.1   thorpej  * TAILQ based ellist and actlist implementation
   1162        1.1   thorpej  * (ion wanted to make a calendar queue based implementation)
   1163        1.1   thorpej  */
   1164        1.1   thorpej /*
   1165        1.1   thorpej  * eligible list holds backlogged classes being sorted by their eligible times.
   1166        1.1   thorpej  * there is one eligible list per interface.
   1167        1.1   thorpej  */
   1168        1.1   thorpej 
   1169        1.1   thorpej static ellist_t *
   1170       1.19     peter ellist_alloc(void)
   1171        1.1   thorpej {
   1172        1.1   thorpej 	ellist_t *head;
   1173       1.10     perry 
   1174       1.13  christos 	head = malloc(sizeof(ellist_t), M_DEVBUF, M_WAITOK);
   1175       1.19     peter 	TAILQ_INIT(head);
   1176        1.1   thorpej 	return (head);
   1177        1.1   thorpej }
   1178        1.1   thorpej 
   1179        1.1   thorpej static void
   1180       1.19     peter ellist_destroy(ellist_t *head)
   1181        1.1   thorpej {
   1182       1.13  christos 	free(head, M_DEVBUF);
   1183        1.1   thorpej }
   1184        1.1   thorpej 
   1185       1.10     perry static void
   1186       1.19     peter ellist_insert(struct hfsc_class *cl)
   1187        1.1   thorpej {
   1188        1.1   thorpej 	struct hfsc_if	*hif = cl->cl_hif;
   1189        1.1   thorpej 	struct hfsc_class *p;
   1190        1.1   thorpej 
   1191        1.1   thorpej 	/* check the last entry first */
   1192        1.1   thorpej 	if ((p = TAILQ_LAST(hif->hif_eligible, _eligible)) == NULL ||
   1193        1.1   thorpej 	    p->cl_e <= cl->cl_e) {
   1194        1.1   thorpej 		TAILQ_INSERT_TAIL(hif->hif_eligible, cl, cl_ellist);
   1195        1.1   thorpej 		return;
   1196        1.1   thorpej 	}
   1197        1.1   thorpej 
   1198        1.1   thorpej 	TAILQ_FOREACH(p, hif->hif_eligible, cl_ellist) {
   1199        1.1   thorpej 		if (cl->cl_e < p->cl_e) {
   1200        1.1   thorpej 			TAILQ_INSERT_BEFORE(p, cl, cl_ellist);
   1201        1.1   thorpej 			return;
   1202        1.1   thorpej 		}
   1203        1.1   thorpej 	}
   1204        1.1   thorpej 	ASSERT(0); /* should not reach here */
   1205        1.1   thorpej }
   1206        1.1   thorpej 
   1207       1.10     perry static void
   1208       1.19     peter ellist_remove(struct hfsc_class *cl)
   1209        1.1   thorpej {
   1210        1.1   thorpej 	struct hfsc_if	*hif = cl->cl_hif;
   1211       1.10     perry 
   1212        1.1   thorpej 	TAILQ_REMOVE(hif->hif_eligible, cl, cl_ellist);
   1213        1.1   thorpej }
   1214        1.1   thorpej 
   1215       1.10     perry static void
   1216       1.19     peter ellist_update(struct hfsc_class *cl)
   1217        1.1   thorpej {
   1218        1.1   thorpej 	struct hfsc_if	*hif = cl->cl_hif;
   1219        1.1   thorpej 	struct hfsc_class *p, *last;
   1220        1.1   thorpej 
   1221        1.1   thorpej 	/*
   1222        1.1   thorpej 	 * the eligible time of a class increases monotonically.
   1223        1.1   thorpej 	 * if the next entry has a larger eligible time, nothing to do.
   1224        1.1   thorpej 	 */
   1225        1.1   thorpej 	p = TAILQ_NEXT(cl, cl_ellist);
   1226        1.1   thorpej 	if (p == NULL || cl->cl_e <= p->cl_e)
   1227        1.1   thorpej 		return;
   1228        1.1   thorpej 
   1229        1.1   thorpej 	/* check the last entry */
   1230        1.1   thorpej 	last = TAILQ_LAST(hif->hif_eligible, _eligible);
   1231        1.1   thorpej 	ASSERT(last != NULL);
   1232        1.1   thorpej 	if (last->cl_e <= cl->cl_e) {
   1233        1.1   thorpej 		TAILQ_REMOVE(hif->hif_eligible, cl, cl_ellist);
   1234        1.1   thorpej 		TAILQ_INSERT_TAIL(hif->hif_eligible, cl, cl_ellist);
   1235        1.1   thorpej 		return;
   1236        1.1   thorpej 	}
   1237        1.1   thorpej 
   1238        1.1   thorpej 	/*
   1239        1.1   thorpej 	 * the new position must be between the next entry
   1240        1.1   thorpej 	 * and the last entry
   1241        1.1   thorpej 	 */
   1242        1.1   thorpej 	while ((p = TAILQ_NEXT(p, cl_ellist)) != NULL) {
   1243        1.1   thorpej 		if (cl->cl_e < p->cl_e) {
   1244        1.1   thorpej 			TAILQ_REMOVE(hif->hif_eligible, cl, cl_ellist);
   1245        1.1   thorpej 			TAILQ_INSERT_BEFORE(p, cl, cl_ellist);
   1246        1.1   thorpej 			return;
   1247        1.1   thorpej 		}
   1248        1.1   thorpej 	}
   1249        1.1   thorpej 	ASSERT(0); /* should not reach here */
   1250        1.1   thorpej }
   1251        1.1   thorpej 
   1252        1.1   thorpej /* find the class with the minimum deadline among the eligible classes */
   1253        1.1   thorpej struct hfsc_class *
   1254       1.19     peter ellist_get_mindl(ellist_t *head, u_int64_t cur_time)
   1255        1.1   thorpej {
   1256        1.1   thorpej 	struct hfsc_class *p, *cl = NULL;
   1257        1.1   thorpej 
   1258        1.1   thorpej 	TAILQ_FOREACH(p, head, cl_ellist) {
   1259        1.1   thorpej 		if (p->cl_e > cur_time)
   1260        1.1   thorpej 			break;
   1261        1.1   thorpej 		if (cl == NULL || p->cl_d < cl->cl_d)
   1262        1.1   thorpej 			cl = p;
   1263        1.1   thorpej 	}
   1264        1.1   thorpej 	return (cl);
   1265        1.1   thorpej }
   1266        1.1   thorpej 
   1267        1.1   thorpej /*
   1268        1.1   thorpej  * active children list holds backlogged child classes being sorted
   1269        1.1   thorpej  * by their virtual time.
   1270        1.1   thorpej  * each intermediate class has one active children list.
   1271        1.1   thorpej  */
   1272        1.1   thorpej static actlist_t *
   1273       1.19     peter actlist_alloc(void)
   1274        1.1   thorpej {
   1275        1.1   thorpej 	actlist_t *head;
   1276       1.10     perry 
   1277       1.13  christos 	head = malloc(sizeof(actlist_t), M_DEVBUF, M_WAITOK);
   1278       1.19     peter 	TAILQ_INIT(head);
   1279        1.1   thorpej 	return (head);
   1280        1.1   thorpej }
   1281        1.1   thorpej 
   1282        1.1   thorpej static void
   1283       1.19     peter actlist_destroy(actlist_t *head)
   1284        1.1   thorpej {
   1285       1.13  christos 	free(head, M_DEVBUF);
   1286        1.1   thorpej }
   1287       1.10     perry static void
   1288       1.19     peter actlist_insert(struct hfsc_class *cl)
   1289        1.1   thorpej {
   1290        1.1   thorpej 	struct hfsc_class *p;
   1291        1.1   thorpej 
   1292        1.1   thorpej 	/* check the last entry first */
   1293        1.1   thorpej 	if ((p = TAILQ_LAST(cl->cl_parent->cl_actc, _active)) == NULL
   1294        1.1   thorpej 	    || p->cl_vt <= cl->cl_vt) {
   1295        1.1   thorpej 		TAILQ_INSERT_TAIL(cl->cl_parent->cl_actc, cl, cl_actlist);
   1296        1.1   thorpej 		return;
   1297        1.1   thorpej 	}
   1298        1.1   thorpej 
   1299        1.1   thorpej 	TAILQ_FOREACH(p, cl->cl_parent->cl_actc, cl_actlist) {
   1300        1.1   thorpej 		if (cl->cl_vt < p->cl_vt) {
   1301        1.1   thorpej 			TAILQ_INSERT_BEFORE(p, cl, cl_actlist);
   1302        1.1   thorpej 			return;
   1303        1.1   thorpej 		}
   1304        1.1   thorpej 	}
   1305        1.1   thorpej 	ASSERT(0); /* should not reach here */
   1306        1.1   thorpej }
   1307        1.1   thorpej 
   1308       1.10     perry static void
   1309       1.19     peter actlist_remove(struct hfsc_class *cl)
   1310        1.1   thorpej {
   1311        1.1   thorpej 	TAILQ_REMOVE(cl->cl_parent->cl_actc, cl, cl_actlist);
   1312        1.1   thorpej }
   1313        1.1   thorpej 
   1314        1.1   thorpej static void
   1315       1.19     peter actlist_update(struct hfsc_class *cl)
   1316        1.1   thorpej {
   1317        1.1   thorpej 	struct hfsc_class *p, *last;
   1318        1.1   thorpej 
   1319        1.1   thorpej 	/*
   1320        1.1   thorpej 	 * the virtual time of a class increases monotonically during its
   1321        1.1   thorpej 	 * backlogged period.
   1322        1.1   thorpej 	 * if the next entry has a larger virtual time, nothing to do.
   1323        1.1   thorpej 	 */
   1324        1.1   thorpej 	p = TAILQ_NEXT(cl, cl_actlist);
   1325       1.19     peter 	if (p == NULL || cl->cl_vt < p->cl_vt)
   1326        1.1   thorpej 		return;
   1327        1.1   thorpej 
   1328        1.1   thorpej 	/* check the last entry */
   1329        1.1   thorpej 	last = TAILQ_LAST(cl->cl_parent->cl_actc, _active);
   1330        1.1   thorpej 	ASSERT(last != NULL);
   1331        1.1   thorpej 	if (last->cl_vt <= cl->cl_vt) {
   1332        1.1   thorpej 		TAILQ_REMOVE(cl->cl_parent->cl_actc, cl, cl_actlist);
   1333        1.1   thorpej 		TAILQ_INSERT_TAIL(cl->cl_parent->cl_actc, cl, cl_actlist);
   1334        1.1   thorpej 		return;
   1335        1.1   thorpej 	}
   1336        1.1   thorpej 
   1337        1.1   thorpej 	/*
   1338        1.1   thorpej 	 * the new position must be between the next entry
   1339        1.1   thorpej 	 * and the last entry
   1340        1.1   thorpej 	 */
   1341        1.1   thorpej 	while ((p = TAILQ_NEXT(p, cl_actlist)) != NULL) {
   1342        1.1   thorpej 		if (cl->cl_vt < p->cl_vt) {
   1343        1.1   thorpej 			TAILQ_REMOVE(cl->cl_parent->cl_actc, cl, cl_actlist);
   1344        1.1   thorpej 			TAILQ_INSERT_BEFORE(p, cl, cl_actlist);
   1345        1.1   thorpej 			return;
   1346        1.1   thorpej 		}
   1347        1.1   thorpej 	}
   1348        1.1   thorpej 	ASSERT(0); /* should not reach here */
   1349        1.1   thorpej }
   1350        1.1   thorpej 
   1351       1.19     peter static struct hfsc_class *
   1352       1.19     peter actlist_firstfit(struct hfsc_class *cl, u_int64_t cur_time)
   1353       1.19     peter {
   1354       1.19     peter 	struct hfsc_class *p;
   1355       1.19     peter 
   1356       1.19     peter 	TAILQ_FOREACH(p, cl->cl_actc, cl_actlist) {
   1357       1.19     peter 		if (p->cl_f <= cur_time)
   1358       1.19     peter 			return (p);
   1359       1.19     peter 	}
   1360       1.19     peter 	return (NULL);
   1361       1.19     peter }
   1362       1.19     peter 
   1363        1.1   thorpej /*
   1364        1.1   thorpej  * service curve support functions
   1365        1.1   thorpej  *
   1366        1.1   thorpej  *  external service curve parameters
   1367        1.1   thorpej  *	m: bits/sec
   1368        1.1   thorpej  *	d: msec
   1369        1.1   thorpej  *  internal service curve parameters
   1370        1.1   thorpej  *	sm: (bytes/tsc_interval) << SM_SHIFT
   1371        1.1   thorpej  *	ism: (tsc_count/byte) << ISM_SHIFT
   1372        1.1   thorpej  *	dx: tsc_count
   1373        1.1   thorpej  *
   1374        1.1   thorpej  * SM_SHIFT and ISM_SHIFT are scaled in order to keep effective digits.
   1375        1.1   thorpej  * we should be able to handle 100K-1Gbps linkspeed with 200Hz-1GHz CPU
   1376        1.1   thorpej  * speed.  SM_SHIFT and ISM_SHIFT are selected to have at least 3 effective
   1377        1.1   thorpej  * digits in decimal using the following table.
   1378        1.1   thorpej  *
   1379       1.19     peter  *  bits/sec    100Kbps     1Mbps     10Mbps     100Mbps    1Gbps
   1380        1.1   thorpej  *  ----------+-------------------------------------------------------
   1381        1.1   thorpej  *  bytes/nsec  12.5e-6    125e-6     1250e-6    12500e-6   125000e-6
   1382        1.1   thorpej  *  sm(500MHz)  25.0e-6    250e-6     2500e-6    25000e-6   250000e-6
   1383        1.1   thorpej  *  sm(200MHz)  62.5e-6    625e-6     6250e-6    62500e-6   625000e-6
   1384       1.10     perry  *
   1385        1.1   thorpej  *  nsec/byte   80000      8000       800        80         8
   1386        1.1   thorpej  *  ism(500MHz) 40000      4000       400        40         4
   1387        1.1   thorpej  *  ism(200MHz) 16000      1600       160        16         1.6
   1388        1.1   thorpej  */
   1389        1.1   thorpej #define	SM_SHIFT	24
   1390        1.1   thorpej #define	ISM_SHIFT	10
   1391        1.1   thorpej 
   1392       1.19     peter #define	SM_MASK		((1LL << SM_SHIFT) - 1)
   1393       1.19     peter #define	ISM_MASK	((1LL << ISM_SHIFT) - 1)
   1394        1.1   thorpej 
   1395       1.12     perry static inline u_int64_t
   1396       1.19     peter seg_x2y(u_int64_t x, u_int64_t sm)
   1397        1.1   thorpej {
   1398        1.1   thorpej 	u_int64_t y;
   1399        1.1   thorpej 
   1400       1.19     peter 	/*
   1401       1.19     peter 	 * compute
   1402       1.19     peter 	 *	y = x * sm >> SM_SHIFT
   1403       1.19     peter 	 * but divide it for the upper and lower bits to avoid overflow
   1404       1.19     peter 	 */
   1405       1.19     peter 	y = (x >> SM_SHIFT) * sm + (((x & SM_MASK) * sm) >> SM_SHIFT);
   1406        1.1   thorpej 	return (y);
   1407        1.1   thorpej }
   1408        1.1   thorpej 
   1409       1.12     perry static inline u_int64_t
   1410       1.19     peter seg_y2x(u_int64_t y, u_int64_t ism)
   1411        1.1   thorpej {
   1412        1.1   thorpej 	u_int64_t x;
   1413        1.1   thorpej 
   1414        1.1   thorpej 	if (y == 0)
   1415        1.1   thorpej 		x = 0;
   1416       1.19     peter 	else if (ism == HT_INFINITY)
   1417       1.19     peter 		x = HT_INFINITY;
   1418       1.19     peter 	else {
   1419       1.19     peter 		x = (y >> ISM_SHIFT) * ism
   1420       1.19     peter 		    + (((y & ISM_MASK) * ism) >> ISM_SHIFT);
   1421       1.19     peter 	}
   1422        1.1   thorpej 	return (x);
   1423        1.1   thorpej }
   1424        1.1   thorpej 
   1425       1.12     perry static inline u_int64_t
   1426       1.19     peter m2sm(u_int m)
   1427        1.1   thorpej {
   1428        1.1   thorpej 	u_int64_t sm;
   1429        1.1   thorpej 
   1430        1.1   thorpej 	sm = ((u_int64_t)m << SM_SHIFT) / 8 / machclk_freq;
   1431        1.1   thorpej 	return (sm);
   1432        1.1   thorpej }
   1433        1.1   thorpej 
   1434       1.12     perry static inline u_int64_t
   1435       1.19     peter m2ism(u_int m)
   1436        1.1   thorpej {
   1437        1.1   thorpej 	u_int64_t ism;
   1438        1.1   thorpej 
   1439        1.1   thorpej 	if (m == 0)
   1440       1.19     peter 		ism = HT_INFINITY;
   1441        1.1   thorpej 	else
   1442        1.1   thorpej 		ism = ((u_int64_t)machclk_freq << ISM_SHIFT) * 8 / m;
   1443        1.1   thorpej 	return (ism);
   1444        1.1   thorpej }
   1445        1.1   thorpej 
   1446       1.12     perry static inline u_int64_t
   1447       1.19     peter d2dx(u_int d)
   1448        1.1   thorpej {
   1449        1.1   thorpej 	u_int64_t dx;
   1450       1.10     perry 
   1451        1.1   thorpej 	dx = ((u_int64_t)d * machclk_freq) / 1000;
   1452        1.1   thorpej 	return (dx);
   1453        1.1   thorpej }
   1454        1.1   thorpej 
   1455       1.10     perry static u_int
   1456       1.19     peter sm2m(u_int64_t sm)
   1457        1.1   thorpej {
   1458        1.1   thorpej 	u_int64_t m;
   1459        1.1   thorpej 
   1460        1.1   thorpej 	m = (sm * 8 * machclk_freq) >> SM_SHIFT;
   1461        1.1   thorpej 	return ((u_int)m);
   1462        1.1   thorpej }
   1463        1.1   thorpej 
   1464       1.10     perry static u_int
   1465       1.19     peter dx2d(u_int64_t dx)
   1466        1.1   thorpej {
   1467        1.1   thorpej 	u_int64_t d;
   1468        1.1   thorpej 
   1469        1.1   thorpej 	d = dx * 1000 / machclk_freq;
   1470        1.1   thorpej 	return ((u_int)d);
   1471        1.1   thorpej }
   1472        1.1   thorpej 
   1473       1.10     perry static void
   1474       1.19     peter sc2isc(struct service_curve *sc, struct internal_sc *isc)
   1475        1.1   thorpej {
   1476        1.1   thorpej 	isc->sm1 = m2sm(sc->m1);
   1477        1.1   thorpej 	isc->ism1 = m2ism(sc->m1);
   1478        1.1   thorpej 	isc->dx = d2dx(sc->d);
   1479        1.1   thorpej 	isc->dy = seg_x2y(isc->dx, isc->sm1);
   1480        1.1   thorpej 	isc->sm2 = m2sm(sc->m2);
   1481        1.1   thorpej 	isc->ism2 = m2ism(sc->m2);
   1482        1.1   thorpej }
   1483        1.1   thorpej 
   1484        1.1   thorpej /*
   1485        1.1   thorpej  * initialize the runtime service curve with the given internal
   1486        1.1   thorpej  * service curve starting at (x, y).
   1487        1.1   thorpej  */
   1488       1.10     perry static void
   1489       1.19     peter rtsc_init(struct runtime_sc *rtsc, struct internal_sc * isc, u_int64_t x,
   1490       1.19     peter     u_int64_t y)
   1491        1.1   thorpej {
   1492        1.1   thorpej 	rtsc->x =	x;
   1493        1.1   thorpej 	rtsc->y =	y;
   1494        1.1   thorpej 	rtsc->sm1 =	isc->sm1;
   1495        1.1   thorpej 	rtsc->ism1 =	isc->ism1;
   1496        1.1   thorpej 	rtsc->dx =	isc->dx;
   1497        1.1   thorpej 	rtsc->dy =	isc->dy;
   1498        1.1   thorpej 	rtsc->sm2 =	isc->sm2;
   1499        1.1   thorpej 	rtsc->ism2 =	isc->ism2;
   1500        1.1   thorpej }
   1501        1.1   thorpej 
   1502        1.1   thorpej /*
   1503        1.1   thorpej  * calculate the y-projection of the runtime service curve by the
   1504        1.1   thorpej  * given x-projection value
   1505        1.1   thorpej  */
   1506       1.10     perry static u_int64_t
   1507       1.19     peter rtsc_y2x(struct runtime_sc *rtsc, u_int64_t y)
   1508        1.1   thorpej {
   1509        1.1   thorpej 	u_int64_t	x;
   1510        1.1   thorpej 
   1511        1.1   thorpej 	if (y < rtsc->y)
   1512        1.1   thorpej 		x = rtsc->x;
   1513        1.1   thorpej 	else if (y <= rtsc->y + rtsc->dy) {
   1514        1.1   thorpej 		/* x belongs to the 1st segment */
   1515        1.1   thorpej 		if (rtsc->dy == 0)
   1516        1.1   thorpej 			x = rtsc->x + rtsc->dx;
   1517        1.1   thorpej 		else
   1518        1.1   thorpej 			x = rtsc->x + seg_y2x(y - rtsc->y, rtsc->ism1);
   1519        1.1   thorpej 	} else {
   1520        1.1   thorpej 		/* x belongs to the 2nd segment */
   1521        1.1   thorpej 		x = rtsc->x + rtsc->dx
   1522        1.1   thorpej 		    + seg_y2x(y - rtsc->y - rtsc->dy, rtsc->ism2);
   1523        1.1   thorpej 	}
   1524        1.1   thorpej 	return (x);
   1525        1.1   thorpej }
   1526        1.1   thorpej 
   1527       1.10     perry static u_int64_t
   1528       1.19     peter rtsc_x2y(struct runtime_sc *rtsc, u_int64_t x)
   1529        1.1   thorpej {
   1530        1.1   thorpej 	u_int64_t	y;
   1531        1.1   thorpej 
   1532        1.1   thorpej 	if (x <= rtsc->x)
   1533        1.1   thorpej 		y = rtsc->y;
   1534        1.1   thorpej 	else if (x <= rtsc->x + rtsc->dx)
   1535        1.1   thorpej 		/* y belongs to the 1st segment */
   1536        1.1   thorpej 		y = rtsc->y + seg_x2y(x - rtsc->x, rtsc->sm1);
   1537        1.1   thorpej 	else
   1538        1.1   thorpej 		/* y belongs to the 2nd segment */
   1539        1.1   thorpej 		y = rtsc->y + rtsc->dy
   1540        1.1   thorpej 		    + seg_x2y(x - rtsc->x - rtsc->dx, rtsc->sm2);
   1541        1.1   thorpej 	return (y);
   1542        1.1   thorpej }
   1543        1.1   thorpej 
   1544        1.1   thorpej /*
   1545        1.1   thorpej  * update the runtime service curve by taking the minimum of the current
   1546        1.1   thorpej  * runtime service curve and the service curve starting at (x, y).
   1547        1.1   thorpej  */
   1548       1.10     perry static void
   1549       1.19     peter rtsc_min(struct runtime_sc *rtsc, struct internal_sc *isc, u_int64_t x,
   1550       1.19     peter     u_int64_t y)
   1551        1.1   thorpej {
   1552        1.1   thorpej 	u_int64_t	y1, y2, dx, dy;
   1553        1.1   thorpej 
   1554        1.1   thorpej 	if (isc->sm1 <= isc->sm2) {
   1555        1.1   thorpej 		/* service curve is convex */
   1556        1.1   thorpej 		y1 = rtsc_x2y(rtsc, x);
   1557        1.1   thorpej 		if (y1 < y)
   1558        1.1   thorpej 			/* the current rtsc is smaller */
   1559        1.1   thorpej 			return;
   1560        1.1   thorpej 		rtsc->x = x;
   1561        1.1   thorpej 		rtsc->y = y;
   1562        1.1   thorpej 		return;
   1563        1.1   thorpej 	}
   1564        1.1   thorpej 
   1565        1.1   thorpej 	/*
   1566        1.1   thorpej 	 * service curve is concave
   1567        1.1   thorpej 	 * compute the two y values of the current rtsc
   1568        1.1   thorpej 	 *	y1: at x
   1569        1.1   thorpej 	 *	y2: at (x + dx)
   1570        1.1   thorpej 	 */
   1571        1.1   thorpej 	y1 = rtsc_x2y(rtsc, x);
   1572        1.1   thorpej 	if (y1 <= y) {
   1573        1.1   thorpej 		/* rtsc is below isc, no change to rtsc */
   1574        1.1   thorpej 		return;
   1575        1.1   thorpej 	}
   1576        1.1   thorpej 
   1577        1.1   thorpej 	y2 = rtsc_x2y(rtsc, x + isc->dx);
   1578        1.1   thorpej 	if (y2 >= y + isc->dy) {
   1579        1.1   thorpej 		/* rtsc is above isc, replace rtsc by isc */
   1580        1.1   thorpej 		rtsc->x = x;
   1581        1.1   thorpej 		rtsc->y = y;
   1582        1.1   thorpej 		rtsc->dx = isc->dx;
   1583        1.1   thorpej 		rtsc->dy = isc->dy;
   1584        1.1   thorpej 		return;
   1585        1.1   thorpej 	}
   1586        1.1   thorpej 
   1587        1.1   thorpej 	/*
   1588        1.1   thorpej 	 * the two curves intersect
   1589        1.1   thorpej 	 * compute the offsets (dx, dy) using the reverse
   1590        1.1   thorpej 	 * function of seg_x2y()
   1591        1.1   thorpej 	 *	seg_x2y(dx, sm1) == seg_x2y(dx, sm2) + (y1 - y)
   1592        1.1   thorpej 	 */
   1593        1.1   thorpej 	dx = ((y1 - y) << SM_SHIFT) / (isc->sm1 - isc->sm2);
   1594        1.1   thorpej 	/*
   1595        1.1   thorpej 	 * check if (x, y1) belongs to the 1st segment of rtsc.
   1596        1.1   thorpej 	 * if so, add the offset.
   1597       1.10     perry 	 */
   1598        1.1   thorpej 	if (rtsc->x + rtsc->dx > x)
   1599        1.1   thorpej 		dx += rtsc->x + rtsc->dx - x;
   1600        1.1   thorpej 	dy = seg_x2y(dx, isc->sm1);
   1601        1.1   thorpej 
   1602        1.1   thorpej 	rtsc->x = x;
   1603        1.1   thorpej 	rtsc->y = y;
   1604        1.1   thorpej 	rtsc->dx = dx;
   1605        1.1   thorpej 	rtsc->dy = dy;
   1606        1.1   thorpej 	return;
   1607        1.1   thorpej }
   1608        1.1   thorpej 
   1609       1.19     peter static void
   1610       1.19     peter get_class_stats(struct hfsc_classstats *sp, struct hfsc_class *cl)
   1611       1.19     peter {
   1612       1.19     peter 	sp->class_id = cl->cl_id;
   1613       1.19     peter 	sp->class_handle = cl->cl_handle;
   1614       1.19     peter 
   1615       1.19     peter 	if (cl->cl_rsc != NULL) {
   1616       1.19     peter 		sp->rsc.m1 = sm2m(cl->cl_rsc->sm1);
   1617       1.19     peter 		sp->rsc.d = dx2d(cl->cl_rsc->dx);
   1618       1.19     peter 		sp->rsc.m2 = sm2m(cl->cl_rsc->sm2);
   1619       1.19     peter 	} else {
   1620       1.19     peter 		sp->rsc.m1 = 0;
   1621       1.19     peter 		sp->rsc.d = 0;
   1622       1.19     peter 		sp->rsc.m2 = 0;
   1623       1.19     peter 	}
   1624       1.19     peter 	if (cl->cl_fsc != NULL) {
   1625       1.19     peter 		sp->fsc.m1 = sm2m(cl->cl_fsc->sm1);
   1626       1.19     peter 		sp->fsc.d = dx2d(cl->cl_fsc->dx);
   1627       1.19     peter 		sp->fsc.m2 = sm2m(cl->cl_fsc->sm2);
   1628       1.19     peter 	} else {
   1629       1.19     peter 		sp->fsc.m1 = 0;
   1630       1.19     peter 		sp->fsc.d = 0;
   1631       1.19     peter 		sp->fsc.m2 = 0;
   1632       1.19     peter 	}
   1633       1.19     peter 	if (cl->cl_usc != NULL) {
   1634       1.19     peter 		sp->usc.m1 = sm2m(cl->cl_usc->sm1);
   1635       1.19     peter 		sp->usc.d = dx2d(cl->cl_usc->dx);
   1636       1.19     peter 		sp->usc.m2 = sm2m(cl->cl_usc->sm2);
   1637       1.19     peter 	} else {
   1638       1.19     peter 		sp->usc.m1 = 0;
   1639       1.19     peter 		sp->usc.d = 0;
   1640       1.19     peter 		sp->usc.m2 = 0;
   1641       1.19     peter 	}
   1642       1.19     peter 
   1643       1.19     peter 	sp->total = cl->cl_total;
   1644       1.19     peter 	sp->cumul = cl->cl_cumul;
   1645       1.19     peter 
   1646       1.19     peter 	sp->d = cl->cl_d;
   1647       1.19     peter 	sp->e = cl->cl_e;
   1648       1.19     peter 	sp->vt = cl->cl_vt;
   1649       1.19     peter 	sp->f = cl->cl_f;
   1650       1.19     peter 
   1651       1.19     peter 	sp->initvt = cl->cl_initvt;
   1652       1.19     peter 	sp->vtperiod = cl->cl_vtperiod;
   1653       1.19     peter 	sp->parentperiod = cl->cl_parentperiod;
   1654       1.19     peter 	sp->nactive = cl->cl_nactive;
   1655       1.19     peter 	sp->vtoff = cl->cl_vtoff;
   1656       1.19     peter 	sp->cvtmax = cl->cl_cvtmax;
   1657       1.19     peter 	sp->myf = cl->cl_myf;
   1658       1.19     peter 	sp->cfmin = cl->cl_cfmin;
   1659       1.19     peter 	sp->cvtmin = cl->cl_cvtmin;
   1660       1.19     peter 	sp->myfadj = cl->cl_myfadj;
   1661       1.19     peter 	sp->vtadj = cl->cl_vtadj;
   1662       1.19     peter 
   1663       1.19     peter 	sp->cur_time = read_machclk();
   1664       1.19     peter 	sp->machclk_freq = machclk_freq;
   1665       1.19     peter 
   1666       1.19     peter 	sp->qlength = qlen(cl->cl_q);
   1667       1.19     peter 	sp->qlimit = qlimit(cl->cl_q);
   1668       1.19     peter 	sp->xmit_cnt = cl->cl_stats.xmit_cnt;
   1669       1.19     peter 	sp->drop_cnt = cl->cl_stats.drop_cnt;
   1670       1.19     peter 	sp->period = cl->cl_stats.period;
   1671       1.19     peter 
   1672       1.19     peter 	sp->qtype = qtype(cl->cl_q);
   1673       1.19     peter #ifdef ALTQ_RED
   1674       1.19     peter 	if (q_is_red(cl->cl_q))
   1675       1.19     peter 		red_getstats(cl->cl_red, &sp->red[0]);
   1676       1.19     peter #endif
   1677       1.19     peter #ifdef ALTQ_RIO
   1678       1.19     peter 	if (q_is_rio(cl->cl_q))
   1679       1.19     peter 		rio_getstats((rio_t *)cl->cl_red, &sp->red[0]);
   1680       1.19     peter #endif
   1681       1.19     peter }
   1682       1.19     peter 
   1683       1.19     peter /* convert a class handle to the corresponding class pointer */
   1684       1.19     peter static struct hfsc_class *
   1685       1.19     peter clh_to_clp(struct hfsc_if *hif, u_int32_t chandle)
   1686       1.19     peter {
   1687       1.19     peter 	int i;
   1688       1.19     peter 	struct hfsc_class *cl;
   1689       1.19     peter 
   1690       1.19     peter 	if (chandle == 0)
   1691       1.19     peter 		return (NULL);
   1692       1.19     peter 	/*
   1693       1.19     peter 	 * first, try optimistically the slot matching the lower bits of
   1694       1.19     peter 	 * the handle.  if it fails, do the linear table search.
   1695       1.19     peter 	 */
   1696       1.19     peter 	i = chandle % HFSC_MAX_CLASSES;
   1697       1.19     peter 	if ((cl = hif->hif_class_tbl[i]) != NULL && cl->cl_handle == chandle)
   1698       1.19     peter 		return (cl);
   1699       1.19     peter 	for (i = 0; i < HFSC_MAX_CLASSES; i++)
   1700       1.19     peter 		if ((cl = hif->hif_class_tbl[i]) != NULL &&
   1701       1.19     peter 		    cl->cl_handle == chandle)
   1702       1.19     peter 			return (cl);
   1703       1.19     peter 	return (NULL);
   1704       1.19     peter }
   1705       1.19     peter 
   1706       1.19     peter #ifdef ALTQ3_COMPAT
   1707       1.19     peter static struct hfsc_if *
   1708       1.22  christos hfsc_attach(struct ifaltq *ifq, u_int bandwidth)
   1709       1.19     peter {
   1710       1.19     peter 	struct hfsc_if *hif;
   1711       1.19     peter 
   1712       1.19     peter 	hif = malloc(sizeof(struct hfsc_if), M_DEVBUF, M_WAITOK|M_ZERO);
   1713       1.19     peter 	if (hif == NULL)
   1714       1.19     peter 		return (NULL);
   1715       1.19     peter 
   1716       1.19     peter 	hif->hif_eligible = ellist_alloc();
   1717       1.19     peter 	if (hif->hif_eligible == NULL) {
   1718       1.19     peter 		free(hif, M_DEVBUF);
   1719       1.19     peter 		return NULL;
   1720       1.19     peter 	}
   1721       1.19     peter 
   1722       1.19     peter 	hif->hif_ifq = ifq;
   1723       1.19     peter 
   1724       1.19     peter 	/* add this state to the hfsc list */
   1725       1.19     peter 	hif->hif_next = hif_list;
   1726       1.19     peter 	hif_list = hif;
   1727       1.19     peter 
   1728       1.19     peter 	return (hif);
   1729       1.19     peter }
   1730       1.19     peter 
   1731       1.19     peter static int
   1732       1.19     peter hfsc_detach(struct hfsc_if *hif)
   1733       1.19     peter {
   1734       1.19     peter 	(void)hfsc_clear_interface(hif);
   1735       1.19     peter 	(void)hfsc_class_destroy(hif->hif_rootclass);
   1736       1.19     peter 
   1737       1.19     peter 	/* remove this interface from the hif list */
   1738       1.19     peter 	if (hif_list == hif)
   1739       1.19     peter 		hif_list = hif->hif_next;
   1740       1.19     peter 	else {
   1741       1.19     peter 		struct hfsc_if *h;
   1742       1.19     peter 
   1743       1.19     peter 		for (h = hif_list; h != NULL; h = h->hif_next)
   1744       1.19     peter 			if (h->hif_next == hif) {
   1745       1.19     peter 				h->hif_next = hif->hif_next;
   1746       1.19     peter 				break;
   1747       1.19     peter 			}
   1748       1.19     peter 		ASSERT(h != NULL);
   1749       1.19     peter 	}
   1750       1.19     peter 
   1751       1.19     peter 	ellist_destroy(hif->hif_eligible);
   1752       1.19     peter 
   1753       1.19     peter 	free(hif, M_DEVBUF);
   1754       1.19     peter 
   1755       1.19     peter 	return (0);
   1756       1.19     peter }
   1757       1.19     peter 
   1758       1.19     peter static int
   1759       1.19     peter hfsc_class_modify(struct hfsc_class *cl, struct service_curve *rsc,
   1760       1.19     peter     struct service_curve *fsc, struct service_curve *usc)
   1761       1.19     peter {
   1762       1.19     peter 	struct internal_sc *rsc_tmp, *fsc_tmp, *usc_tmp;
   1763       1.19     peter 	u_int64_t cur_time;
   1764       1.19     peter 	int s;
   1765       1.19     peter 
   1766       1.19     peter 	rsc_tmp = fsc_tmp = usc_tmp = NULL;
   1767       1.19     peter 	if (rsc != NULL && (rsc->m1 != 0 || rsc->m2 != 0) &&
   1768       1.19     peter 	    cl->cl_rsc == NULL) {
   1769       1.19     peter 		rsc_tmp = malloc(sizeof(struct internal_sc), M_DEVBUF,
   1770       1.19     peter 		    M_WAITOK);
   1771       1.19     peter 		if (rsc_tmp == NULL)
   1772       1.19     peter 			return (ENOMEM);
   1773       1.19     peter 	}
   1774       1.19     peter 	if (fsc != NULL && (fsc->m1 != 0 || fsc->m2 != 0) &&
   1775       1.19     peter 	    cl->cl_fsc == NULL) {
   1776       1.19     peter 		fsc_tmp = malloc(sizeof(struct internal_sc), M_DEVBUF,
   1777       1.19     peter 		    M_WAITOK);
   1778       1.19     peter 		if (fsc_tmp == NULL)
   1779       1.19     peter 			return (ENOMEM);
   1780       1.19     peter 	}
   1781       1.19     peter 	if (usc != NULL && (usc->m1 != 0 || usc->m2 != 0) &&
   1782       1.19     peter 	    cl->cl_usc == NULL) {
   1783       1.19     peter 		usc_tmp = malloc(sizeof(struct internal_sc), M_DEVBUF,
   1784       1.19     peter 		    M_WAITOK);
   1785       1.19     peter 		if (usc_tmp == NULL)
   1786       1.19     peter 			return (ENOMEM);
   1787       1.19     peter 	}
   1788       1.19     peter 
   1789       1.19     peter 	cur_time = read_machclk();
   1790       1.19     peter 	s = splnet();
   1791       1.19     peter 
   1792       1.19     peter 	if (rsc != NULL) {
   1793       1.19     peter 		if (rsc->m1 == 0 && rsc->m2 == 0) {
   1794       1.19     peter 			if (cl->cl_rsc != NULL) {
   1795       1.19     peter 				if (!qempty(cl->cl_q))
   1796       1.19     peter 					hfsc_purgeq(cl);
   1797       1.19     peter 				free(cl->cl_rsc, M_DEVBUF);
   1798       1.19     peter 				cl->cl_rsc = NULL;
   1799       1.19     peter 			}
   1800       1.19     peter 		} else {
   1801       1.19     peter 			if (cl->cl_rsc == NULL)
   1802       1.19     peter 				cl->cl_rsc = rsc_tmp;
   1803       1.19     peter 			sc2isc(rsc, cl->cl_rsc);
   1804       1.19     peter 			rtsc_init(&cl->cl_deadline, cl->cl_rsc, cur_time,
   1805       1.19     peter 			    cl->cl_cumul);
   1806       1.19     peter 			cl->cl_eligible = cl->cl_deadline;
   1807       1.19     peter 			if (cl->cl_rsc->sm1 <= cl->cl_rsc->sm2) {
   1808       1.19     peter 				cl->cl_eligible.dx = 0;
   1809       1.19     peter 				cl->cl_eligible.dy = 0;
   1810       1.19     peter 			}
   1811       1.19     peter 		}
   1812       1.19     peter 	}
   1813       1.19     peter 
   1814       1.19     peter 	if (fsc != NULL) {
   1815       1.19     peter 		if (fsc->m1 == 0 && fsc->m2 == 0) {
   1816       1.19     peter 			if (cl->cl_fsc != NULL) {
   1817       1.19     peter 				if (!qempty(cl->cl_q))
   1818       1.19     peter 					hfsc_purgeq(cl);
   1819       1.19     peter 				free(cl->cl_fsc, M_DEVBUF);
   1820       1.19     peter 				cl->cl_fsc = NULL;
   1821       1.19     peter 			}
   1822       1.19     peter 		} else {
   1823       1.19     peter 			if (cl->cl_fsc == NULL)
   1824       1.19     peter 				cl->cl_fsc = fsc_tmp;
   1825       1.19     peter 			sc2isc(fsc, cl->cl_fsc);
   1826       1.19     peter 			rtsc_init(&cl->cl_virtual, cl->cl_fsc, cl->cl_vt,
   1827       1.19     peter 			    cl->cl_total);
   1828       1.19     peter 		}
   1829       1.19     peter 	}
   1830       1.19     peter 
   1831       1.19     peter 	if (usc != NULL) {
   1832       1.19     peter 		if (usc->m1 == 0 && usc->m2 == 0) {
   1833       1.19     peter 			if (cl->cl_usc != NULL) {
   1834       1.19     peter 				free(cl->cl_usc, M_DEVBUF);
   1835       1.19     peter 				cl->cl_usc = NULL;
   1836       1.19     peter 				cl->cl_myf = 0;
   1837       1.19     peter 			}
   1838       1.19     peter 		} else {
   1839       1.19     peter 			if (cl->cl_usc == NULL)
   1840       1.19     peter 				cl->cl_usc = usc_tmp;
   1841       1.19     peter 			sc2isc(usc, cl->cl_usc);
   1842       1.19     peter 			rtsc_init(&cl->cl_ulimit, cl->cl_usc, cur_time,
   1843       1.19     peter 			    cl->cl_total);
   1844       1.19     peter 		}
   1845       1.19     peter 	}
   1846       1.19     peter 
   1847       1.19     peter 	if (!qempty(cl->cl_q)) {
   1848       1.19     peter 		if (cl->cl_rsc != NULL)
   1849       1.19     peter 			update_ed(cl, m_pktlen(qhead(cl->cl_q)));
   1850       1.19     peter 		if (cl->cl_fsc != NULL)
   1851       1.19     peter 			update_vf(cl, 0, cur_time);
   1852       1.19     peter 		/* is this enough? */
   1853       1.19     peter 	}
   1854       1.19     peter 
   1855       1.19     peter 	splx(s);
   1856       1.19     peter 
   1857       1.19     peter 	return (0);
   1858       1.19     peter }
   1859       1.19     peter 
   1860        1.1   thorpej /*
   1861        1.1   thorpej  * hfsc device interface
   1862        1.1   thorpej  */
   1863        1.1   thorpej int
   1864       1.22  christos hfscopen(dev_t dev, int flag, int fmt,
   1865       1.22  christos     struct lwp *l)
   1866        1.1   thorpej {
   1867        1.1   thorpej 	if (machclk_freq == 0)
   1868        1.1   thorpej 		init_machclk();
   1869        1.1   thorpej 
   1870        1.1   thorpej 	if (machclk_freq == 0) {
   1871        1.9       wiz 		printf("hfsc: no CPU clock available!\n");
   1872        1.1   thorpej 		return (ENXIO);
   1873        1.1   thorpej 	}
   1874        1.1   thorpej 
   1875        1.1   thorpej 	/* everything will be done when the queueing scheme is attached. */
   1876        1.1   thorpej 	return 0;
   1877        1.1   thorpej }
   1878        1.1   thorpej 
   1879        1.1   thorpej int
   1880       1.22  christos hfscclose(dev_t dev, int flag, int fmt,
   1881       1.22  christos     struct lwp *l)
   1882        1.1   thorpej {
   1883        1.1   thorpej 	struct hfsc_if *hif;
   1884        1.1   thorpej 	int err, error = 0;
   1885        1.1   thorpej 
   1886        1.1   thorpej 	while ((hif = hif_list) != NULL) {
   1887        1.1   thorpej 		/* destroy all */
   1888        1.1   thorpej 		if (ALTQ_IS_ENABLED(hif->hif_ifq))
   1889        1.1   thorpej 			altq_disable(hif->hif_ifq);
   1890        1.1   thorpej 
   1891        1.1   thorpej 		err = altq_detach(hif->hif_ifq);
   1892        1.1   thorpej 		if (err == 0)
   1893        1.1   thorpej 			err = hfsc_detach(hif);
   1894        1.1   thorpej 		if (err != 0 && error == 0)
   1895        1.1   thorpej 			error = err;
   1896        1.1   thorpej 	}
   1897        1.1   thorpej 
   1898        1.1   thorpej 	return error;
   1899        1.1   thorpej }
   1900        1.1   thorpej 
   1901        1.1   thorpej int
   1902       1.23  christos hfscioctl(dev_t dev, ioctlcmd_t cmd, void *addr, int flag,
   1903       1.18  christos     struct lwp *l)
   1904        1.1   thorpej {
   1905        1.1   thorpej 	struct hfsc_if *hif;
   1906        1.1   thorpej 	struct hfsc_interface *ifacep;
   1907        1.1   thorpej 	int	error = 0;
   1908        1.1   thorpej 
   1909        1.1   thorpej 	/* check super-user privilege */
   1910        1.1   thorpej 	switch (cmd) {
   1911        1.1   thorpej 	case HFSC_GETSTATS:
   1912        1.1   thorpej 		break;
   1913        1.1   thorpej 	default:
   1914        1.1   thorpej #if (__FreeBSD_version > 400000)
   1915        1.1   thorpej 		if ((error = suser(p)) != 0)
   1916        1.1   thorpej 			return (error);
   1917        1.1   thorpej #else
   1918       1.21      elad 		if ((error = kauth_authorize_network(l->l_cred,
   1919       1.21      elad 		    KAUTH_NETWORK_ALTQ, KAUTH_REQ_NETWORK_ALTQ_HFSC, NULL,
   1920       1.21      elad 		    NULL, NULL)) != 0)
   1921        1.1   thorpej 			return (error);
   1922        1.1   thorpej #endif
   1923        1.1   thorpej 		break;
   1924        1.1   thorpej 	}
   1925       1.10     perry 
   1926        1.1   thorpej 	switch (cmd) {
   1927        1.1   thorpej 
   1928        1.1   thorpej 	case HFSC_IF_ATTACH:
   1929        1.1   thorpej 		error = hfsccmd_if_attach((struct hfsc_attach *)addr);
   1930        1.1   thorpej 		break;
   1931        1.1   thorpej 
   1932        1.1   thorpej 	case HFSC_IF_DETACH:
   1933        1.1   thorpej 		error = hfsccmd_if_detach((struct hfsc_interface *)addr);
   1934        1.1   thorpej 		break;
   1935        1.1   thorpej 
   1936        1.1   thorpej 	case HFSC_ENABLE:
   1937        1.1   thorpej 	case HFSC_DISABLE:
   1938        1.1   thorpej 	case HFSC_CLEAR_HIERARCHY:
   1939        1.1   thorpej 		ifacep = (struct hfsc_interface *)addr;
   1940        1.1   thorpej 		if ((hif = altq_lookup(ifacep->hfsc_ifname,
   1941        1.1   thorpej 				       ALTQT_HFSC)) == NULL) {
   1942        1.1   thorpej 			error = EBADF;
   1943        1.1   thorpej 			break;
   1944        1.1   thorpej 		}
   1945        1.1   thorpej 
   1946        1.1   thorpej 		switch (cmd) {
   1947        1.1   thorpej 
   1948        1.1   thorpej 		case HFSC_ENABLE:
   1949        1.1   thorpej 			if (hif->hif_defaultclass == NULL) {
   1950       1.19     peter #ifdef ALTQ_DEBUG
   1951        1.1   thorpej 				printf("hfsc: no default class\n");
   1952        1.1   thorpej #endif
   1953        1.1   thorpej 				error = EINVAL;
   1954        1.1   thorpej 				break;
   1955        1.1   thorpej 			}
   1956        1.1   thorpej 			error = altq_enable(hif->hif_ifq);
   1957        1.1   thorpej 			break;
   1958        1.1   thorpej 
   1959        1.1   thorpej 		case HFSC_DISABLE:
   1960        1.1   thorpej 			error = altq_disable(hif->hif_ifq);
   1961        1.1   thorpej 			break;
   1962        1.1   thorpej 
   1963        1.1   thorpej 		case HFSC_CLEAR_HIERARCHY:
   1964        1.1   thorpej 			hfsc_clear_interface(hif);
   1965        1.1   thorpej 			break;
   1966        1.1   thorpej 		}
   1967        1.1   thorpej 		break;
   1968        1.1   thorpej 
   1969        1.1   thorpej 	case HFSC_ADD_CLASS:
   1970        1.1   thorpej 		error = hfsccmd_add_class((struct hfsc_add_class *)addr);
   1971        1.1   thorpej 		break;
   1972        1.1   thorpej 
   1973        1.1   thorpej 	case HFSC_DEL_CLASS:
   1974        1.1   thorpej 		error = hfsccmd_delete_class((struct hfsc_delete_class *)addr);
   1975        1.1   thorpej 		break;
   1976        1.1   thorpej 
   1977        1.1   thorpej 	case HFSC_MOD_CLASS:
   1978        1.1   thorpej 		error = hfsccmd_modify_class((struct hfsc_modify_class *)addr);
   1979        1.1   thorpej 		break;
   1980        1.1   thorpej 
   1981        1.1   thorpej 	case HFSC_ADD_FILTER:
   1982        1.1   thorpej 		error = hfsccmd_add_filter((struct hfsc_add_filter *)addr);
   1983        1.1   thorpej 		break;
   1984        1.1   thorpej 
   1985        1.1   thorpej 	case HFSC_DEL_FILTER:
   1986        1.1   thorpej 		error = hfsccmd_delete_filter((struct hfsc_delete_filter *)addr);
   1987        1.1   thorpej 		break;
   1988        1.1   thorpej 
   1989        1.1   thorpej 	case HFSC_GETSTATS:
   1990        1.1   thorpej 		error = hfsccmd_class_stats((struct hfsc_class_stats *)addr);
   1991        1.1   thorpej 		break;
   1992        1.1   thorpej 
   1993        1.1   thorpej 	default:
   1994        1.1   thorpej 		error = EINVAL;
   1995        1.1   thorpej 		break;
   1996        1.1   thorpej 	}
   1997        1.1   thorpej 	return error;
   1998        1.1   thorpej }
   1999        1.1   thorpej 
   2000        1.1   thorpej static int
   2001       1.19     peter hfsccmd_if_attach(struct hfsc_attach *ap)
   2002        1.1   thorpej {
   2003        1.1   thorpej 	struct hfsc_if *hif;
   2004        1.1   thorpej 	struct ifnet *ifp;
   2005        1.1   thorpej 	int error;
   2006       1.10     perry 
   2007        1.1   thorpej 	if ((ifp = ifunit(ap->iface.hfsc_ifname)) == NULL)
   2008        1.1   thorpej 		return (ENXIO);
   2009        1.1   thorpej 
   2010        1.1   thorpej 	if ((hif = hfsc_attach(&ifp->if_snd, ap->bandwidth)) == NULL)
   2011        1.1   thorpej 		return (ENOMEM);
   2012       1.10     perry 
   2013        1.1   thorpej 	/*
   2014        1.1   thorpej 	 * set HFSC to this ifnet structure.
   2015        1.1   thorpej 	 */
   2016        1.1   thorpej 	if ((error = altq_attach(&ifp->if_snd, ALTQT_HFSC, hif,
   2017        1.1   thorpej 				 hfsc_enqueue, hfsc_dequeue, hfsc_request,
   2018        1.1   thorpej 				 &hif->hif_classifier, acc_classify)) != 0)
   2019        1.1   thorpej 		(void)hfsc_detach(hif);
   2020        1.1   thorpej 
   2021        1.1   thorpej 	return (error);
   2022        1.1   thorpej }
   2023        1.1   thorpej 
   2024        1.1   thorpej static int
   2025       1.19     peter hfsccmd_if_detach(struct hfsc_interface *ap)
   2026        1.1   thorpej {
   2027        1.1   thorpej 	struct hfsc_if *hif;
   2028        1.1   thorpej 	int error;
   2029        1.1   thorpej 
   2030        1.1   thorpej 	if ((hif = altq_lookup(ap->hfsc_ifname, ALTQT_HFSC)) == NULL)
   2031        1.1   thorpej 		return (EBADF);
   2032       1.10     perry 
   2033        1.1   thorpej 	if (ALTQ_IS_ENABLED(hif->hif_ifq))
   2034        1.1   thorpej 		altq_disable(hif->hif_ifq);
   2035        1.1   thorpej 
   2036        1.1   thorpej 	if ((error = altq_detach(hif->hif_ifq)))
   2037        1.1   thorpej 		return (error);
   2038        1.1   thorpej 
   2039        1.1   thorpej 	return hfsc_detach(hif);
   2040        1.1   thorpej }
   2041        1.1   thorpej 
   2042        1.1   thorpej static int
   2043       1.19     peter hfsccmd_add_class(struct hfsc_add_class *ap)
   2044        1.1   thorpej {
   2045        1.1   thorpej 	struct hfsc_if *hif;
   2046        1.1   thorpej 	struct hfsc_class *cl, *parent;
   2047       1.19     peter 	int	i;
   2048        1.1   thorpej 
   2049        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2050        1.1   thorpej 		return (EBADF);
   2051        1.1   thorpej 
   2052       1.19     peter 	if (ap->parent_handle == HFSC_NULLCLASS_HANDLE &&
   2053       1.19     peter 	    hif->hif_rootclass == NULL)
   2054       1.19     peter 		parent = NULL;
   2055       1.19     peter 	else if ((parent = clh_to_clp(hif, ap->parent_handle)) == NULL)
   2056       1.19     peter 		return (EINVAL);
   2057       1.19     peter 
   2058       1.19     peter 	/* assign a class handle (use a free slot number for now) */
   2059       1.19     peter 	for (i = 1; i < HFSC_MAX_CLASSES; i++)
   2060       1.19     peter 		if (hif->hif_class_tbl[i] == NULL)
   2061       1.19     peter 			break;
   2062       1.19     peter 	if (i == HFSC_MAX_CLASSES)
   2063       1.19     peter 		return (EBUSY);
   2064       1.10     perry 
   2065       1.19     peter 	if ((cl = hfsc_class_create(hif, &ap->service_curve, NULL, NULL,
   2066       1.19     peter 	    parent, ap->qlimit, ap->flags, i)) == NULL)
   2067        1.1   thorpej 		return (ENOMEM);
   2068       1.10     perry 
   2069        1.1   thorpej 	/* return a class handle to the user */
   2070       1.19     peter 	ap->class_handle = i;
   2071       1.19     peter 
   2072        1.1   thorpej 	return (0);
   2073        1.1   thorpej }
   2074        1.1   thorpej 
   2075        1.1   thorpej static int
   2076       1.19     peter hfsccmd_delete_class(struct hfsc_delete_class *ap)
   2077        1.1   thorpej {
   2078        1.1   thorpej 	struct hfsc_if *hif;
   2079        1.1   thorpej 	struct hfsc_class *cl;
   2080        1.1   thorpej 
   2081        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2082        1.1   thorpej 		return (EBADF);
   2083        1.1   thorpej 
   2084        1.1   thorpej 	if ((cl = clh_to_clp(hif, ap->class_handle)) == NULL)
   2085        1.1   thorpej 		return (EINVAL);
   2086       1.10     perry 
   2087        1.1   thorpej 	return hfsc_class_destroy(cl);
   2088        1.1   thorpej }
   2089        1.1   thorpej 
   2090        1.1   thorpej static int
   2091       1.19     peter hfsccmd_modify_class(struct hfsc_modify_class *ap)
   2092        1.1   thorpej {
   2093        1.1   thorpej 	struct hfsc_if *hif;
   2094        1.1   thorpej 	struct hfsc_class *cl;
   2095        1.1   thorpej 	struct service_curve *rsc = NULL;
   2096        1.1   thorpej 	struct service_curve *fsc = NULL;
   2097       1.19     peter 	struct service_curve *usc = NULL;
   2098        1.1   thorpej 
   2099        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2100        1.1   thorpej 		return (EBADF);
   2101        1.1   thorpej 
   2102        1.1   thorpej 	if ((cl = clh_to_clp(hif, ap->class_handle)) == NULL)
   2103        1.1   thorpej 		return (EINVAL);
   2104        1.1   thorpej 
   2105        1.1   thorpej 	if (ap->sctype & HFSC_REALTIMESC)
   2106        1.1   thorpej 		rsc = &ap->service_curve;
   2107        1.1   thorpej 	if (ap->sctype & HFSC_LINKSHARINGSC)
   2108        1.1   thorpej 		fsc = &ap->service_curve;
   2109       1.19     peter 	if (ap->sctype & HFSC_UPPERLIMITSC)
   2110       1.19     peter 		usc = &ap->service_curve;
   2111        1.1   thorpej 
   2112       1.19     peter 	return hfsc_class_modify(cl, rsc, fsc, usc);
   2113        1.1   thorpej }
   2114        1.1   thorpej 
   2115        1.1   thorpej static int
   2116       1.19     peter hfsccmd_add_filter(struct hfsc_add_filter *ap)
   2117        1.1   thorpej {
   2118        1.1   thorpej 	struct hfsc_if *hif;
   2119        1.1   thorpej 	struct hfsc_class *cl;
   2120        1.1   thorpej 
   2121        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2122        1.1   thorpej 		return (EBADF);
   2123        1.1   thorpej 
   2124        1.1   thorpej 	if ((cl = clh_to_clp(hif, ap->class_handle)) == NULL)
   2125        1.1   thorpej 		return (EINVAL);
   2126        1.1   thorpej 
   2127        1.1   thorpej 	if (is_a_parent_class(cl)) {
   2128       1.19     peter #ifdef ALTQ_DEBUG
   2129        1.1   thorpej 		printf("hfsccmd_add_filter: not a leaf class!\n");
   2130        1.1   thorpej #endif
   2131        1.1   thorpej 		return (EINVAL);
   2132        1.1   thorpej 	}
   2133        1.1   thorpej 
   2134        1.1   thorpej 	return acc_add_filter(&hif->hif_classifier, &ap->filter,
   2135        1.1   thorpej 			      cl, &ap->filter_handle);
   2136        1.1   thorpej }
   2137        1.1   thorpej 
   2138        1.1   thorpej static int
   2139       1.19     peter hfsccmd_delete_filter(struct hfsc_delete_filter *ap)
   2140        1.1   thorpej {
   2141        1.1   thorpej 	struct hfsc_if *hif;
   2142        1.1   thorpej 
   2143        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2144        1.1   thorpej 		return (EBADF);
   2145        1.1   thorpej 
   2146        1.1   thorpej 	return acc_delete_filter(&hif->hif_classifier,
   2147        1.1   thorpej 				 ap->filter_handle);
   2148        1.1   thorpej }
   2149        1.1   thorpej 
   2150        1.1   thorpej static int
   2151       1.19     peter hfsccmd_class_stats(struct hfsc_class_stats *ap)
   2152        1.1   thorpej {
   2153        1.1   thorpej 	struct hfsc_if *hif;
   2154        1.1   thorpej 	struct hfsc_class *cl;
   2155       1.19     peter 	struct hfsc_classstats stats, *usp;
   2156        1.1   thorpej 	int	n, nclasses, error;
   2157       1.10     perry 
   2158        1.1   thorpej 	if ((hif = altq_lookup(ap->iface.hfsc_ifname, ALTQT_HFSC)) == NULL)
   2159        1.1   thorpej 		return (EBADF);
   2160        1.1   thorpej 
   2161        1.1   thorpej 	ap->cur_time = read_machclk();
   2162       1.19     peter 	ap->machclk_freq = machclk_freq;
   2163        1.1   thorpej 	ap->hif_classes = hif->hif_classes;
   2164        1.1   thorpej 	ap->hif_packets = hif->hif_packets;
   2165        1.1   thorpej 
   2166        1.1   thorpej 	/* skip the first N classes in the tree */
   2167        1.1   thorpej 	nclasses = ap->nskip;
   2168        1.1   thorpej 	for (cl = hif->hif_rootclass, n = 0; cl != NULL && n < nclasses;
   2169        1.1   thorpej 	     cl = hfsc_nextclass(cl), n++)
   2170        1.1   thorpej 		;
   2171        1.1   thorpej 	if (n != nclasses)
   2172        1.1   thorpej 		return (EINVAL);
   2173        1.1   thorpej 
   2174        1.1   thorpej 	/* then, read the next N classes in the tree */
   2175        1.1   thorpej 	nclasses = ap->nclasses;
   2176        1.1   thorpej 	usp = ap->stats;
   2177        1.1   thorpej 	for (n = 0; cl != NULL && n < nclasses; cl = hfsc_nextclass(cl), n++) {
   2178        1.1   thorpej 
   2179        1.1   thorpej 		get_class_stats(&stats, cl);
   2180       1.10     perry 
   2181       1.23  christos 		if ((error = copyout((void *)&stats, (void *)usp++,
   2182        1.1   thorpej 				     sizeof(stats))) != 0)
   2183        1.1   thorpej 			return (error);
   2184        1.1   thorpej 	}
   2185        1.1   thorpej 
   2186        1.1   thorpej 	ap->nclasses = n;
   2187        1.1   thorpej 
   2188        1.1   thorpej 	return (0);
   2189        1.1   thorpej }
   2190        1.1   thorpej 
   2191        1.1   thorpej #ifdef KLD_MODULE
   2192        1.1   thorpej 
   2193        1.1   thorpej static struct altqsw hfsc_sw =
   2194        1.1   thorpej 	{"hfsc", hfscopen, hfscclose, hfscioctl};
   2195        1.1   thorpej 
   2196        1.1   thorpej ALTQ_MODULE(altq_hfsc, ALTQT_HFSC, &hfsc_sw);
   2197       1.19     peter MODULE_DEPEND(altq_hfsc, altq_red, 1, 1, 1);
   2198       1.19     peter MODULE_DEPEND(altq_hfsc, altq_rio, 1, 1, 1);
   2199        1.1   thorpej 
   2200        1.1   thorpej #endif /* KLD_MODULE */
   2201       1.19     peter #endif /* ALTQ3_COMPAT */
   2202        1.1   thorpej 
   2203        1.1   thorpej #endif /* ALTQ_HFSC */
   2204