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altivec.c revision 1.4.2.4
      1  1.4.2.4    skrll /*	$NetBSD: altivec.c,v 1.4.2.4 2005/03/04 16:39:02 skrll Exp $	*/
      2      1.1     matt 
      3      1.1     matt /*
      4      1.1     matt  * Copyright (C) 1996 Wolfgang Solfrank.
      5      1.1     matt  * Copyright (C) 1996 TooLs GmbH.
      6      1.1     matt  * All rights reserved.
      7      1.1     matt  *
      8      1.1     matt  * Redistribution and use in source and binary forms, with or without
      9      1.1     matt  * modification, are permitted provided that the following conditions
     10      1.1     matt  * are met:
     11      1.1     matt  * 1. Redistributions of source code must retain the above copyright
     12      1.1     matt  *    notice, this list of conditions and the following disclaimer.
     13      1.1     matt  * 2. Redistributions in binary form must reproduce the above copyright
     14      1.1     matt  *    notice, this list of conditions and the following disclaimer in the
     15      1.1     matt  *    documentation and/or other materials provided with the distribution.
     16      1.1     matt  * 3. All advertising materials mentioning features or use of this software
     17      1.1     matt  *    must display the following acknowledgement:
     18      1.1     matt  *	This product includes software developed by TooLs GmbH.
     19      1.1     matt  * 4. The name of TooLs GmbH may not be used to endorse or promote products
     20      1.1     matt  *    derived from this software without specific prior written permission.
     21      1.1     matt  *
     22      1.1     matt  * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR
     23      1.1     matt  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     24      1.1     matt  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     25      1.1     matt  * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
     26      1.1     matt  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
     27      1.1     matt  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
     28      1.1     matt  * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
     29      1.1     matt  * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
     30      1.1     matt  * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
     31      1.1     matt  * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     32      1.1     matt  */
     33      1.4   martin 
     34  1.4.2.1    skrll #include <sys/cdefs.h>
     35  1.4.2.4    skrll __KERNEL_RCSID(0, "$NetBSD: altivec.c,v 1.4.2.4 2005/03/04 16:39:02 skrll Exp $");
     36  1.4.2.1    skrll 
     37      1.4   martin #include "opt_multiprocessor.h"
     38      1.4   martin 
     39      1.1     matt #include <sys/param.h>
     40      1.1     matt #include <sys/proc.h>
     41      1.1     matt #include <sys/sa.h>
     42      1.1     matt #include <sys/systm.h>
     43      1.1     matt #include <sys/user.h>
     44      1.1     matt #include <sys/malloc.h>
     45      1.1     matt #include <sys/pool.h>
     46      1.1     matt 
     47      1.3  thorpej #include <uvm/uvm_extern.h>
     48      1.3  thorpej 
     49      1.1     matt #include <powerpc/altivec.h>
     50      1.1     matt #include <powerpc/spr.h>
     51      1.1     matt #include <powerpc/psl.h>
     52      1.1     matt 
     53      1.1     matt void
     54  1.4.2.1    skrll enable_vec(void)
     55      1.1     matt {
     56      1.1     matt 	struct cpu_info *ci = curcpu();
     57      1.1     matt 	struct lwp *l = curlwp;
     58      1.1     matt 	struct pcb *pcb = &l->l_addr->u_pcb;
     59      1.1     matt 	struct trapframe *tf = trapframe(l);
     60      1.2     matt 	struct vreg *vr = &pcb->pcb_vr;
     61      1.2     matt 	register_t msr;
     62      1.1     matt 
     63      1.1     matt 	KASSERT(pcb->pcb_veccpu == NULL);
     64      1.1     matt 
     65      1.2     matt 	pcb->pcb_flags |= PCB_ALTIVEC;
     66      1.1     matt 
     67      1.1     matt 	/*
     68      1.1     matt 	 * Enable AltiVec temporarily (and disable interrupts).
     69      1.1     matt 	 */
     70      1.1     matt 	msr = mfmsr();
     71      1.1     matt 	mtmsr((msr & ~PSL_EE) | PSL_VEC);
     72      1.1     matt 	__asm __volatile ("isync");
     73      1.1     matt 	if (ci->ci_veclwp) {
     74      1.1     matt 		save_vec_cpu();
     75      1.1     matt 	}
     76      1.1     matt 	KASSERT(curcpu()->ci_veclwp == NULL);
     77      1.1     matt 
     78      1.1     matt 	/*
     79      1.1     matt 	 * Restore VSCR by first loading it into a vector and then into VSCR.
     80      1.1     matt 	 * (this needs to done before loading the user's vector registers
     81      1.1     matt 	 * since we need to use a scratch vector register)
     82      1.1     matt 	 */
     83      1.1     matt 	__asm __volatile("vxor %2,%2,%2; lvewx %2,%0,%1; mtvscr %2" \
     84      1.2     matt 	    ::	"b"(vr), "r"(offsetof(struct vreg, vscr)), "n"(0));
     85      1.1     matt 
     86      1.1     matt 	/*
     87      1.1     matt 	 * VRSAVE will be restored when trap frame returns
     88      1.1     matt 	 */
     89      1.1     matt 	tf->tf_xtra[TF_VRSAVE] = vr->vrsave;
     90      1.1     matt 
     91      1.1     matt #define	LVX(n,vr)	__asm /*__volatile*/("lvx %2,%0,%1" \
     92      1.2     matt 	    ::	"b"(vr), "r"(offsetof(struct vreg, vreg[n])), "n"(n));
     93      1.1     matt 
     94      1.1     matt 	/*
     95      1.1     matt 	 * Load all 32 vector registers
     96      1.1     matt 	 */
     97      1.1     matt 	LVX( 0,vr);	LVX( 1,vr);	LVX( 2,vr);	LVX( 3,vr);
     98      1.1     matt 	LVX( 4,vr);	LVX( 5,vr);	LVX( 6,vr);	LVX( 7,vr);
     99      1.1     matt 	LVX( 8,vr);	LVX( 9,vr);	LVX(10,vr);	LVX(11,vr);
    100      1.1     matt 	LVX(12,vr);	LVX(13,vr);	LVX(14,vr);	LVX(15,vr);
    101      1.1     matt 
    102      1.1     matt 	LVX(16,vr);	LVX(17,vr);	LVX(18,vr);	LVX(19,vr);
    103      1.1     matt 	LVX(20,vr);	LVX(21,vr);	LVX(22,vr);	LVX(23,vr);
    104      1.1     matt 	LVX(24,vr);	LVX(25,vr);	LVX(26,vr);	LVX(27,vr);
    105      1.1     matt 	LVX(28,vr);	LVX(29,vr);	LVX(30,vr);	LVX(31,vr);
    106      1.1     matt 	__asm __volatile ("isync");
    107      1.1     matt 
    108      1.1     matt 	/*
    109      1.1     matt 	 * Enable AltiVec when we return to user-mode.
    110      1.1     matt 	 * Record the new ownership of the AltiVec unit.
    111      1.1     matt 	 */
    112      1.1     matt 	curcpu()->ci_veclwp = l;
    113      1.1     matt 	pcb->pcb_veccpu = curcpu();
    114  1.4.2.4    skrll 	pcb->pcb_flags |= PCB_OWNALTIVEC;
    115      1.1     matt 	__asm __volatile ("sync");
    116      1.1     matt 
    117      1.1     matt 	/*
    118      1.1     matt 	 * Restore MSR (turn off AltiVec)
    119      1.1     matt 	 */
    120      1.1     matt 	mtmsr(msr);
    121      1.1     matt }
    122      1.1     matt 
    123      1.1     matt void
    124      1.1     matt save_vec_cpu(void)
    125      1.1     matt {
    126      1.1     matt 	struct cpu_info *ci = curcpu();
    127      1.1     matt 	struct lwp *l;
    128      1.1     matt 	struct pcb *pcb;
    129      1.1     matt 	struct vreg *vr;
    130      1.1     matt 	struct trapframe *tf;
    131      1.2     matt 	register_t msr;
    132      1.1     matt 
    133      1.1     matt 	/*
    134      1.1     matt 	 * Turn on AltiVEC, turn off interrupts.
    135      1.1     matt 	 */
    136      1.1     matt 	msr = mfmsr();
    137      1.1     matt 	mtmsr((msr & ~PSL_EE) | PSL_VEC);
    138      1.1     matt 	__asm __volatile ("isync");
    139      1.1     matt 	l = ci->ci_veclwp;
    140  1.4.2.1    skrll 	if (l == NULL)
    141      1.1     matt 		goto out;
    142      1.1     matt 	pcb = &l->l_addr->u_pcb;
    143      1.2     matt 	vr = &pcb->pcb_vr;
    144      1.1     matt 	tf = trapframe(l);
    145      1.1     matt 
    146      1.1     matt #define	STVX(n,vr)	__asm /*__volatile*/("stvx %2,%0,%1" \
    147      1.2     matt 	    ::	"b"(vr), "r"(offsetof(struct vreg, vreg[n])), "n"(n));
    148      1.1     matt 
    149      1.1     matt 	/*
    150      1.1     matt 	 * Save the vector registers.
    151      1.1     matt 	 */
    152      1.1     matt 	STVX( 0,vr);	STVX( 1,vr);	STVX( 2,vr);	STVX( 3,vr);
    153      1.1     matt 	STVX( 4,vr);	STVX( 5,vr);	STVX( 6,vr);	STVX( 7,vr);
    154      1.1     matt 	STVX( 8,vr);	STVX( 9,vr);	STVX(10,vr);	STVX(11,vr);
    155      1.1     matt 	STVX(12,vr);	STVX(13,vr);	STVX(14,vr);	STVX(15,vr);
    156      1.1     matt 
    157      1.1     matt 	STVX(16,vr);	STVX(17,vr);	STVX(18,vr);	STVX(19,vr);
    158      1.1     matt 	STVX(20,vr);	STVX(21,vr);	STVX(22,vr);	STVX(23,vr);
    159      1.1     matt 	STVX(24,vr);	STVX(25,vr);	STVX(26,vr);	STVX(27,vr);
    160      1.1     matt 	STVX(28,vr);	STVX(29,vr);	STVX(30,vr);	STVX(31,vr);
    161      1.1     matt 
    162      1.1     matt 	/*
    163      1.1     matt 	 * Save VSCR (this needs to be done after save the vector registers
    164      1.1     matt 	 * since we need to use one as scratch).
    165      1.1     matt 	 */
    166      1.1     matt 	__asm __volatile("mfvscr %2; stvewx %2,%0,%1" \
    167      1.2     matt 	    ::	"b"(vr), "r"(offsetof(struct vreg, vscr)), "n"(0));
    168      1.1     matt 
    169      1.1     matt 	/*
    170      1.1     matt 	 * Save VRSAVE
    171      1.1     matt 	 */
    172      1.1     matt 	vr->vrsave = tf->tf_xtra[TF_VRSAVE];
    173      1.1     matt 
    174      1.1     matt 	/*
    175      1.1     matt 	 * Note that we aren't using any CPU resources and stop any
    176      1.1     matt 	 * data streams.
    177      1.1     matt 	 */
    178      1.1     matt 	pcb->pcb_veccpu = NULL;
    179      1.1     matt 	ci->ci_veclwp = NULL;
    180      1.1     matt 	__asm __volatile ("dssall; sync");
    181      1.1     matt 
    182      1.1     matt  out:
    183      1.1     matt 
    184      1.1     matt 	/*
    185      1.1     matt 	 * Restore MSR (turn off AltiVec)
    186      1.1     matt 	 */
    187      1.1     matt 	mtmsr(msr);
    188      1.1     matt }
    189      1.1     matt 
    190      1.1     matt /*
    191      1.1     matt  * Save a process's AltiVEC state to its PCB.  The state may be in any CPU.
    192      1.1     matt  * The process must either be curproc or traced by curproc (and stopped).
    193      1.1     matt  * (The point being that the process must not run on another CPU during
    194      1.1     matt  * this function).
    195      1.1     matt  */
    196      1.1     matt void
    197  1.4.2.1    skrll save_vec_lwp(struct lwp *l, int discard)
    198      1.1     matt {
    199  1.4.2.1    skrll 	struct pcb * const pcb = &l->l_addr->u_pcb;
    200  1.4.2.1    skrll 	struct cpu_info * const ci = curcpu();
    201      1.1     matt 
    202      1.1     matt 	/*
    203      1.1     matt 	 * If it's already in the PCB, there's nothing to do.
    204      1.1     matt 	 */
    205  1.4.2.1    skrll 	if (pcb->pcb_veccpu == NULL)
    206  1.4.2.1    skrll 		return;
    207      1.1     matt 
    208  1.4.2.1    skrll 	/*
    209  1.4.2.1    skrll 	 * If we simply need to discard the information, then don't
    210  1.4.2.1    skrll 	 * to save anything.
    211  1.4.2.1    skrll 	 */
    212  1.4.2.1    skrll 	if (discard) {
    213  1.4.2.1    skrll #ifndef MULTIPROCESSOR
    214  1.4.2.1    skrll 		KASSERT(ci == pcb->pcb_veccpu);
    215  1.4.2.1    skrll #endif
    216  1.4.2.1    skrll 		KASSERT(l == pcb->pcb_veccpu->ci_veclwp);
    217  1.4.2.1    skrll 		pcb->pcb_veccpu->ci_veclwp = NULL;
    218  1.4.2.1    skrll 		pcb->pcb_veccpu = NULL;
    219  1.4.2.4    skrll 		pcb->pcb_flags &= ~PCB_OWNALTIVEC;
    220      1.1     matt 		return;
    221      1.1     matt 	}
    222      1.1     matt 
    223      1.1     matt 	/*
    224      1.1     matt 	 * If the state is in the current CPU, just flush the current CPU's
    225      1.1     matt 	 * state.
    226      1.1     matt 	 */
    227      1.1     matt 	if (l == ci->ci_veclwp) {
    228      1.1     matt 		save_vec_cpu();
    229      1.1     matt 		return;
    230      1.1     matt 	}
    231      1.1     matt 
    232      1.1     matt 
    233  1.4.2.1    skrll #ifdef MULTIPROCESSOR
    234      1.1     matt 	/*
    235      1.1     matt 	 * It must be on another CPU, flush it from there.
    236      1.1     matt 	 */
    237      1.1     matt 
    238      1.1     matt 	mp_save_vec_lwp(l);
    239      1.1     matt #endif
    240      1.1     matt }
    241      1.1     matt 
    242      1.1     matt #define ZERO_VEC	19
    243      1.1     matt 
    244      1.1     matt void
    245      1.1     matt vzeropage(paddr_t pa)
    246      1.1     matt {
    247      1.3  thorpej 	const paddr_t ea = pa + PAGE_SIZE;
    248      1.1     matt 	uint32_t vec[7], *vp = (void *) roundup((uintptr_t) vec, 16);
    249      1.2     matt 	register_t omsr, msr;
    250      1.1     matt 
    251      1.1     matt 	__asm __volatile("mfmsr %0" : "=r"(omsr) :);
    252      1.1     matt 
    253      1.1     matt 	/*
    254      1.1     matt 	 * Turn on AltiVec, turn off interrupts.
    255      1.1     matt 	 */
    256      1.1     matt 	msr = (omsr & ~PSL_EE) | PSL_VEC;
    257      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    258      1.1     matt 
    259      1.1     matt 	/*
    260      1.1     matt 	 * Save the VEC register we are going to use before we disable
    261      1.1     matt 	 * relocation.
    262      1.1     matt 	 */
    263      1.1     matt 	__asm("stvx %1,0,%0" :: "r"(vp), "n"(ZERO_VEC));
    264      1.1     matt 	__asm("vxor %0,%0,%0" :: "n"(ZERO_VEC));
    265      1.1     matt 
    266      1.1     matt 	/*
    267      1.1     matt 	 * Turn off data relocation (DMMU off).
    268      1.1     matt 	 */
    269      1.1     matt 	msr &= ~PSL_DR;
    270      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    271      1.1     matt 
    272      1.1     matt 	/*
    273      1.1     matt 	 * Zero the page using a single cache line.
    274      1.1     matt 	 */
    275      1.1     matt 	do {
    276      1.2     matt 		__asm("stvx %2,%0,%1" ::  "b"(pa), "r"( 0), "n"(ZERO_VEC));
    277      1.2     matt 		__asm("stvxl %2,%0,%1" :: "b"(pa), "r"(16), "n"(ZERO_VEC));
    278      1.2     matt 		__asm("stvx %2,%0,%1" ::  "b"(pa), "r"(32), "n"(ZERO_VEC));
    279      1.2     matt 		__asm("stvxl %2,%0,%1" :: "b"(pa), "r"(48), "n"(ZERO_VEC));
    280      1.1     matt 		pa += 64;
    281      1.1     matt 	} while (pa < ea);
    282      1.1     matt 
    283      1.1     matt 	/*
    284      1.1     matt 	 * Restore data relocation (DMMU on);
    285      1.1     matt 	 */
    286      1.1     matt 	msr |= PSL_DR;
    287      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    288      1.1     matt 
    289      1.1     matt 	/*
    290      1.1     matt 	 * Restore VEC register (now that we can access the stack again).
    291      1.1     matt 	 */
    292      1.1     matt 	__asm("lvx %1,0,%0" :: "r"(vp), "n"(ZERO_VEC));
    293      1.1     matt 
    294      1.1     matt 	/*
    295      1.1     matt 	 * Restore old MSR (AltiVec OFF).
    296      1.1     matt 	 */
    297      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(omsr));
    298      1.1     matt }
    299      1.1     matt 
    300      1.1     matt #define LO_VEC	16
    301      1.1     matt #define HI_VEC	17
    302      1.1     matt 
    303      1.1     matt void
    304      1.1     matt vcopypage(paddr_t dst, paddr_t src)
    305      1.1     matt {
    306      1.3  thorpej 	const paddr_t edst = dst + PAGE_SIZE;
    307      1.1     matt 	uint32_t vec[11], *vp = (void *) roundup((uintptr_t) vec, 16);
    308      1.2     matt 	register_t omsr, msr;
    309      1.1     matt 
    310      1.1     matt 	__asm __volatile("mfmsr %0" : "=r"(omsr) :);
    311      1.1     matt 
    312      1.1     matt 	/*
    313      1.1     matt 	 * Turn on AltiVec, turn off interrupts.
    314      1.1     matt 	 */
    315      1.1     matt 	msr = (omsr & ~PSL_EE) | PSL_VEC;
    316      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    317      1.1     matt 
    318      1.1     matt 	/*
    319      1.1     matt 	 * Save the VEC registers we will be using before we disable
    320      1.1     matt 	 * relocation.
    321      1.1     matt 	 */
    322      1.2     matt 	__asm("stvx %2,%1,%0" :: "b"(vp), "r"( 0), "n"(LO_VEC));
    323      1.2     matt 	__asm("stvx %2,%1,%0" :: "b"(vp), "r"(16), "n"(HI_VEC));
    324      1.1     matt 
    325      1.1     matt 	/*
    326      1.1     matt 	 * Turn off data relocation (DMMU off).
    327      1.1     matt 	 */
    328      1.1     matt 	msr &= ~PSL_DR;
    329      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    330      1.1     matt 
    331      1.1     matt 	/*
    332      1.1     matt 	 * Copy the page using a single cache line.  On most PPCs, two
    333      1.1     matt 	 * vector registers occupy one cache line.
    334      1.1     matt 	 */
    335      1.1     matt 	do {
    336      1.2     matt 		__asm("lvx %2,%0,%1"   :: "b"(src), "r"( 0), "n"(LO_VEC));
    337      1.2     matt 		__asm("stvx %2,%0,%1"  :: "b"(dst), "r"( 0), "n"(LO_VEC));
    338      1.2     matt 		__asm("lvxl %2,%0,%1"  :: "b"(src), "r"(16), "n"(HI_VEC));
    339      1.2     matt 		__asm("stvxl %2,%0,%1" :: "b"(dst), "r"(16), "n"(HI_VEC));
    340      1.1     matt 		src += 32;
    341      1.1     matt 		dst += 32;
    342      1.1     matt 	} while (dst < edst);
    343      1.1     matt 
    344      1.1     matt 	/*
    345      1.1     matt 	 * Restore data relocation (DMMU on);
    346      1.1     matt 	 */
    347      1.1     matt 	msr |= PSL_DR;
    348      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(msr));
    349      1.1     matt 
    350      1.1     matt 	/*
    351      1.1     matt 	 * Restore VEC registers (now that we can access the stack again).
    352      1.1     matt 	 */
    353      1.2     matt 	__asm("lvx %2,%1,%0" :: "b"(vp), "r"( 0), "n"(LO_VEC));
    354      1.2     matt 	__asm("lvx %2,%1,%0" :: "b"(vp), "r"(16), "n"(HI_VEC));
    355      1.1     matt 
    356      1.1     matt 	/*
    357      1.1     matt 	 * Restore old MSR (AltiVec OFF).
    358      1.1     matt 	 */
    359      1.1     matt 	__asm __volatile("sync; mtmsr %0; isync" :: "r"(omsr));
    360      1.1     matt }
    361