/* * This routine clears to zero a linear memory buffer in user space. * * Inputs: * in0: address of buffer * in1: length of buffer in bytes * Outputs: * r8: number of bytes that didn't get cleared due to a fault * * Copyright (C) 1998, 1999, 2001 Hewlett-Packard Co * Stephane Eranian */ #include // // arguments // #define buf r32 #define len r33 // // local registers // #define cnt r16 #define buf2 r17 #define saved_lc r18 #define saved_pfs r19 #define tmp r20 #define len2 r21 #define len3 r22 // // Theory of operations: // - we check whether or not the buffer is small, i.e., less than 17 // in which case we do the byte by byte loop. // // - Otherwise we go progressively from 1 byte store to 8byte store in // the head part, the body is a 16byte store loop and we finish we the // tail for the last 15 bytes. // The good point about this breakdown is that the long buffer handling // contains only 2 branches. // // The reason for not using shifting & masking for both the head and the // tail is to stay semantically correct. This routine is not supposed // to write bytes outside of the buffer. While most of the time this would // be ok, we can't tolerate a mistake. A classical example is the case // of multithreaded code were to the extra bytes touched is actually owned // by another thread which runs concurrently to ours. Another, less likely, // example is with device drivers where reading an I/O mapped location may // have side effects (same thing for writing). // GLOBAL_ENTRY(__do_clear_user) .prologue .save ar.pfs, saved_pfs alloc saved_pfs=ar.pfs,2,0,0,0 cmp.eq p6,p0=r0,len // check for zero length .save ar.lc, saved_lc mov saved_lc=ar.lc // preserve ar.lc (slow) .body ;; // avoid WAW on CFM adds tmp=-1,len // br.ctop is repeat/until mov ret0=len // return value is length at this point (p6) br.ret.spnt.many rp ;; cmp.lt p6,p0=16,len // if len > 16 then long memset mov ar.lc=tmp // initialize lc for small count (p6) br.cond.dptk .long_do_clear ;; // WAR on ar.lc // // worst case 16 iterations, avg 8 iterations // // We could have played with the predicates to use the extra // M slot for 2 stores/iteration but the cost the initialization // the various counters compared to how long the loop is supposed // to last on average does not make this solution viable. // 1: EX( .Lexit1, st1 [buf]=r0,1 ) adds len=-1,len // countdown length using len br.cloop.dptk 1b ;; // avoid RAW on ar.lc // // .Lexit4: comes from byte by byte loop // len contains bytes left .Lexit1: mov ret0=len // faster than using ar.lc mov ar.lc=saved_lc br.ret.sptk.many rp // end of short clear_user // // At this point we know we have more than 16 bytes to copy // so we focus on alignment (no branches required) // // The use of len/len2 for countdown of the number of bytes left // instead of ret0 is due to the fact that the exception code // changes the values of r8. // .long_do_clear: tbit.nz p6,p0=buf,0 // odd alignment (for long_do_clear) ;; EX( .Lexit3, (p6) st1 [buf]=r0,1 ) // 1-byte aligned (p6) adds len=-1,len;; // sync because buf is modified tbit.nz p6,p0=buf,1 ;; EX( .Lexit3, (p6) st2 [buf]=r0,2 ) // 2-byte aligned (p6) adds len=-2,len;; tbit.nz p6,p0=buf,2 ;; EX( .Lexit3, (p6) st4 [buf]=r0,4 ) // 4-byte aligned (p6) adds len=-4,len;; tbit.nz p6,p0=buf,3 ;; EX( .Lexit3, (p6) st8 [buf]=r0,8 ) // 8-byte aligned (p6) adds len=-8,len;; shr.u cnt=len,4 // number of 128-bit (2x64bit) words ;; cmp.eq p6,p0=r0,cnt adds tmp=-1,cnt (p6) br.cond.dpnt .dotail // we have less than 16 bytes left ;; adds buf2=8,buf // setup second base pointer mov ar.lc=tmp ;; // // 16bytes/iteration core loop // // The second store can never generate a fault because // we come into the loop only when we are 16-byte aligned. // This means that if we cross a page then it will always be // in the first store and never in the second. // // // We need to keep track of the remaining length. A possible (optimistic) // way would be to use ar.lc and derive how many byte were left by // doing : left= 16*ar.lc + 16. this would avoid the addition at // every iteration. // However we need to keep the synchronization point. A template // M;;MB does not exist and thus we can keep the addition at no // extra cycle cost (use a nop slot anyway). It also simplifies the // (unlikely) error recovery code // 2: EX(.Lexit3, st8 [buf]=r0,16 ) ;; // needed to get len correct when error st8 [buf2]=r0,16 adds len=-16,len br.cloop.dptk 2b ;; mov ar.lc=saved_lc // // tail correction based on len only // // We alternate the use of len3,len2 to allow parallelism and correct // error handling. We also reuse p6/p7 to return correct value. // The addition of len2/len3 does not cost anything more compared to // the regular memset as we had empty slots. // .dotail: mov len2=len // for parallelization of error handling mov len3=len tbit.nz p6,p0=len,3 ;; EX( .Lexit2, (p6) st8 [buf]=r0,8 ) // at least 8 bytes (p6) adds len3=-8,len2 tbit.nz p7,p6=len,2 ;; EX( .Lexit2, (p7) st4 [buf]=r0,4 ) // at least 4 bytes (p7) adds len2=-4,len3 tbit.nz p6,p7=len,1 ;; EX( .Lexit2, (p6) st2 [buf]=r0,2 ) // at least 2 bytes (p6) adds len3=-2,len2 tbit.nz p7,p6=len,0 ;; EX( .Lexit2, (p7) st1 [buf]=r0 ) // only 1 byte left mov ret0=r0 // success br.ret.sptk.many rp // end of most likely path // // Outlined error handling code // // // .Lexit3: comes from core loop, need restore pr/lc // len contains bytes left // // // .Lexit2: // if p6 -> coming from st8 or st2 : len2 contains what's left // if p7 -> coming from st4 or st1 : len3 contains what's left // We must restore lc/pr even though might not have been used. .Lexit2: .pred.rel "mutex", p6, p7 (p6) mov len=len2 (p7) mov len=len3 ;; // // .Lexit4: comes from head, need not restore pr/lc // len contains bytes left // .Lexit3: mov ret0=len mov ar.lc=saved_lc br.ret.sptk.many rp END(__do_clear_user)