PNG  IHDRQgAMA a cHRMz&u0`:pQ<bKGDgmIDATxwUﹻ& ^CX(J I@ "% (** BX +*i"]j(IH{~R)[~>h{}gy)I$Ij .I$I$ʊy@}x.: $I$Ii}VZPC)I$IF ^0ʐJ$I$Q^}{"r=OzI$gRZeC.IOvH eKX $IMpxsk.쒷/&r[޳<v| .I~)@$updYRa$I |M.e JaֶpSYR6j>h%IRز if&uJ)M$I vLi=H;7UJ,],X$I1AҒJ$ XY XzI@GNҥRT)E@;]K*Mw;#5_wOn~\ DC&$(A5 RRFkvIR}l!RytRl;~^ǷJj اy뷦BZJr&ӥ8Pjw~vnv X^(I;4R=P[3]J,]ȏ~:3?[ a&e)`e*P[4]T=Cq6R[ ~ޤrXR Հg(t_HZ-Hg M$ãmL5R uk*`%C-E6/%[t X.{8P9Z.vkXŐKjgKZHg(aK9ڦmKjѺm_ \#$5,)-  61eJ,5m| r'= &ڡd%-]J on Xm|{ RҞe $eڧY XYrԮ-a7RK6h>n$5AVڴi*ֆK)mѦtmr1p| q:흺,)Oi*ֺK)ܬ֦K-5r3>0ԔHjJئEZj,%re~/z%jVMڸmrt)3]J,T K֦OvԒgii*bKiNO~%PW0=dii2tJ9Jݕ{7"I P9JKTbu,%r"6RKU}Ij2HKZXJ,妝 XYrP ެ24c%i^IK|.H,%rb:XRl1X4Pe/`x&P8Pj28Mzsx2r\zRPz4J}yP[g=L) .Q[6RjWgp FIH*-`IMRaK9TXcq*I y[jE>cw%gLRԕiFCj-ďa`#e~I j,%r,)?[gp FI˨mnWX#>mʔ XA DZf9,nKҲzIZXJ,L#kiPz4JZF,I,`61%2s $,VOϚ2/UFJfy7K> X+6 STXIeJILzMfKm LRaK9%|4p9LwJI!`NsiazĔ)%- XMq>pk$-$Q2x#N ؎-QR}ᶦHZډ)J,l#i@yn3LN`;nڔ XuX5pF)m|^0(>BHF9(cզEerJI rg7 4I@z0\JIi䵙RR0s;$s6eJ,`n 䂦0a)S)A 1eJ,堌#635RIgpNHuTH_SԕqVe ` &S)>p;S$魁eKIuX`I4춒o}`m$1":PI<[v9^\pTJjriRŭ P{#{R2,`)e-`mgj~1ϣLKam7&U\j/3mJ,`F;M'䱀 .KR#)yhTq;pcK9(q!w?uRR,n.yw*UXj#\]ɱ(qv2=RqfB#iJmmL<]Y͙#$5 uTU7ӦXR+q,`I}qL'`6Kͷ6r,]0S$- [RKR3oiRE|nӦXR.(i:LDLTJjY%o:)6rxzҒqTJjh㞦I.$YR.ʼnGZ\ֿf:%55 I˼!6dKxm4E"mG_ s? .e*?LRfK9%q#uh$)i3ULRfK9yxm܌bj84$i1U^@Wbm4uJ,ҪA>_Ij?1v32[gLRD96oTaR׿N7%L2 NT,`)7&ƝL*꽙yp_$M2#AS,`)7$rkTA29_Iye"|/0t)$n XT2`YJ;6Jx".e<`$) PI$5V4]29SRI>~=@j]lp2`K9Jaai^" Ԋ29ORI%:XV5]JmN9]H;1UC39NI%Xe78t)a;Oi Ҙ>Xt"~G>_mn:%|~ޅ_+]$o)@ǀ{hgN;IK6G&rp)T2i୦KJuv*T=TOSV>(~D>dm,I*Ɛ:R#ۙNI%D>G.n$o;+#RR!.eU˽TRI28t)1LWϚ>IJa3oFbu&:tJ*(F7y0ZR ^p'Ii L24x| XRI%ۄ>S1]Jy[zL$adB7.eh4%%누>WETf+3IR:I3Xה)3אOۦSRO'ٺ)S}"qOr[B7ϙ.edG)^ETR"RtRݜh0}LFVӦDB^k_JDj\=LS(Iv─aTeZ%eUAM-0;~˃@i|l @S4y72>sX-vA}ϛBI!ݎߨWl*)3{'Y|iSlEڻ(5KtSI$Uv02,~ԩ~x;P4ցCrO%tyn425:KMlD ^4JRxSهF_}شJTS6uj+ﷸk$eZO%G*^V2u3EMj3k%)okI]dT)URKDS 7~m@TJR~荪fT"֛L \sM -0T KfJz+nإKr L&j()[E&I ߴ>e FW_kJR|!O:5/2跌3T-'|zX ryp0JS ~^F>-2< `*%ZFP)bSn"L :)+pʷf(pO3TMW$~>@~ū:TAIsV1}S2<%ޟM?@iT ,Eūoz%i~g|`wS(]oȤ8)$ ntu`өe`6yPl IzMI{ʣzʨ )IZ2= ld:5+請M$-ї;U>_gsY$ÁN5WzWfIZ)-yuXIfp~S*IZdt;t>KūKR|$#LcԀ+2\;kJ`]YǔM1B)UbG"IRߊ<xܾӔJ0Z='Y嵤 Leveg)$znV-º^3Ւof#0Tfk^Zs[*I꯳3{)ˬW4Ւ4 OdpbZRS|*I 55#"&-IvT&/윚Ye:i$ 9{LkuRe[I~_\ؠ%>GL$iY8 9ܕ"S`kS.IlC;Ҏ4x&>u_0JLr<J2(^$5L s=MgV ~,Iju> 7r2)^=G$1:3G< `J3~&IR% 6Tx/rIj3O< ʔ&#f_yXJiގNSz; Tx(i8%#4 ~AS+IjerIUrIj362v885+IjAhK__5X%nV%Iͳ-y|7XV2v4fzo_68"S/I-qbf; LkF)KSM$ Ms>K WNV}^`-큧32ŒVؙGdu,^^m%6~Nn&͓3ŒVZMsRpfEW%IwdǀLm[7W&bIRL@Q|)* i ImsIMmKmyV`i$G+R 0tV'!V)֏28vU7͒vHꦼtxꗞT ;S}7Mf+fIRHNZUkUx5SAJㄌ9MqμAIRi|j5)o*^'<$TwI1hEU^c_j?Е$%d`z cyf,XO IJnTgA UXRD }{H}^S,P5V2\Xx`pZ|Yk:$e ~ @nWL.j+ϝYb퇪bZ BVu)u/IJ_ 1[p.p60bC >|X91P:N\!5qUB}5a5ja `ubcVxYt1N0Zzl4]7­gKj]?4ϻ *[bg$)+À*x쳀ogO$~,5 زUS9 lq3+5mgw@np1sso Ӻ=|N6 /g(Wv7U;zωM=wk,0uTg_`_P`uz?2yI!b`kĸSo+Qx%!\οe|އԁKS-s6pu_(ֿ$i++T8=eY; צP+phxWQv*|p1. ά. XRkIQYP,drZ | B%wP|S5`~́@i޾ E;Չaw{o'Q?%iL{u D?N1BD!owPHReFZ* k_-~{E9b-~P`fE{AܶBJAFO wx6Rox5 K5=WwehS8 (JClJ~ p+Fi;ŗo+:bD#g(C"wA^ r.F8L;dzdIHUX݆ϞXg )IFqem%I4dj&ppT{'{HOx( Rk6^C٫O.)3:s(۳(Z?~ٻ89zmT"PLtw䥈5&b<8GZ-Y&K?e8,`I6e(֍xb83 `rzXj)F=l($Ij 2*(F?h(/9ik:I`m#p3MgLaKjc/U#n5S# m(^)=y=đx8ŬI[U]~SцA4p$-F i(R,7Cx;X=cI>{Km\ o(Tv2vx2qiiDJN,Ҏ!1f 5quBj1!8 rDFd(!WQl,gSkL1Bxg''՞^ǘ;pQ P(c_ IRujg(Wz bs#P­rz> k c&nB=q+ؔXn#r5)co*Ũ+G?7< |PQӣ'G`uOd>%Mctz# Ԫڞ&7CaQ~N'-P.W`Oedp03C!IZcIAMPUۀ5J<\u~+{9(FbbyAeBhOSܳ1 bÈT#ŠyDžs,`5}DC-`̞%r&ڙa87QWWp6e7 Rϫ/oY ꇅ Nܶըtc!LA T7V4Jsū I-0Pxz7QNF_iZgúWkG83 0eWr9 X]㾮݁#Jˢ C}0=3ݱtBi]_ &{{[/o[~ \q鯜00٩|cD3=4B_b RYb$óBRsf&lLX#M*C_L܄:gx)WΘsGSbuL rF$9';\4Ɍq'n[%p.Q`u hNb`eCQyQ|l_C>Lb꟟3hSb #xNxSs^ 88|Mz)}:](vbۢamŖ࿥ 0)Q7@0=?^k(*J}3ibkFn HjB׻NO z x}7p 0tfDX.lwgȔhԾŲ }6g E |LkLZteu+=q\Iv0쮑)QٵpH8/2?Σo>Jvppho~f>%bMM}\//":PTc(v9v!gոQ )UfVG+! 35{=x\2+ki,y$~A1iC6#)vC5^>+gǵ@1Hy٪7u;p psϰu/S <aʸGu'tD1ԝI<pg|6j'p:tպhX{o(7v],*}6a_ wXRk,O]Lܳ~Vo45rp"N5k;m{rZbΦ${#)`(Ŵg,;j%6j.pyYT?}-kBDc3qA`NWQū20/^AZW%NQ MI.X#P#,^Ebc&?XR tAV|Y.1!؅⨉ccww>ivl(JT~ u`ٵDm q)+Ri x/x8cyFO!/*!/&,7<.N,YDŽ&ܑQF1Bz)FPʛ?5d 6`kQձ λc؎%582Y&nD_$Je4>a?! ͨ|ȎWZSsv8 j(I&yj Jb5m?HWp=g}G3#|I,5v珿] H~R3@B[☉9Ox~oMy=J;xUVoj bUsl_35t-(ՃɼRB7U!qc+x4H_Qo֮$[GO<4`&č\GOc[.[*Af%mG/ ňM/r W/Nw~B1U3J?P&Y )`ѓZ1p]^l“W#)lWZilUQu`-m|xĐ,_ƪ|9i:_{*(3Gѧ}UoD+>m_?VPۅ15&}2|/pIOʵ> GZ9cmíتmnz)yߐbD >e}:) r|@R5qVSA10C%E_'^8cR7O;6[eKePGϦX7jb}OTGO^jn*媓7nGMC t,k31Rb (vyܴʭ!iTh8~ZYZp(qsRL ?b}cŨʊGO^!rPJO15MJ[c&~Z`"ѓޔH1C&^|Ш|rʼ,AwĴ?b5)tLU)F| &g٣O]oqSUjy(x<Ϳ3 .FSkoYg2 \_#wj{u'rQ>o;%n|F*O_L"e9umDds?.fuuQbIWz |4\0 sb;OvxOSs; G%T4gFRurj(֍ڑb uԖKDu1MK{1^ q; C=6\8FR艇!%\YÔU| 88m)֓NcLve C6z;o&X x59:q61Z(T7>C?gcļxѐ Z oo-08jہ x,`' ҔOcRlf~`jj".Nv+sM_]Zk g( UOPyεx%pUh2(@il0ݽQXxppx-NS( WO+轾 nFߢ3M<;z)FBZjciu/QoF 7R¥ ZFLF~#ȣߨ^<쩡ݛкvџ))ME>ώx4m#!-m!L;vv#~Y[đKmx9.[,UFS CVkZ +ߟrY٧IZd/ioi$%͝ب_ֶX3ܫhNU ZZgk=]=bbJS[wjU()*I =ώ:}-蹞lUj:1}MWm=̛ _ ¾,8{__m{_PVK^n3esw5ӫh#$-q=A̟> ,^I}P^J$qY~Q[ Xq9{#&T.^GVj__RKpn,b=`żY@^՝;z{paVKkQXj/)y TIc&F;FBG7wg ZZDG!x r_tƢ!}i/V=M/#nB8 XxЫ ^@CR<{䤭YCN)eKOSƟa $&g[i3.C6xrOc8TI;o hH6P&L{@q6[ Gzp^71j(l`J}]e6X☉#͕ ׈$AB1Vjh㭦IRsqFBjwQ_7Xk>y"N=MB0 ,C #o6MRc0|$)ف"1!ixY<B9mx `,tA>)5ػQ?jQ?cn>YZe Tisvh# GMމȇp:ԴVuږ8ɼH]C.5C!UV;F`mbBk LTMvPʍϤj?ԯ/Qr1NB`9s"s TYsz &9S%U԰> {<ؿSMxB|H\3@!U| k']$U+> |HHMLޢ?V9iD!-@x TIî%6Z*9X@HMW#?nN ,oe6?tQwڱ.]-y':mW0#!J82qFjH -`ѓ&M0u Uγmxϵ^-_\])@0Rt.8/?ٰCY]x}=sD3ojަЫNuS%U}ԤwHH>ڗjܷ_3gN q7[q2la*ArǓԖ+p8/RGM ]jacd(JhWko6ڎbj]i5Bj3+3!\j1UZLsLTv8HHmup<>gKMJj0@H%,W΃7R) ">c, xixј^ aܖ>H[i.UIHc U1=yW\=S*GR~)AF=`&2h`DzT󑓶J+?W+}C%P:|0H܆}-<;OC[~o.$~i}~HQ TvXΈr=b}$vizL4:ȰT|4~*!oXQR6Lk+#t/g lԁߖ[Jڶ_N$k*". xsxX7jRVbAAʯKҎU3)zSNN _'s?f)6X!%ssAkʱ>qƷb hg %n ~p1REGMHH=BJiy[<5 ǁJҖgKR*倳e~HUy)Ag,K)`Vw6bRR:qL#\rclK/$sh*$ 6덤 KԖc 3Z9=Ɣ=o>X Ώ"1 )a`SJJ6k(<c e{%kϊP+SL'TcMJWRm ŏ"w)qc ef꒵i?b7b('"2r%~HUS1\<(`1Wx9=8HY9m:X18bgD1u ~|H;K-Uep,, C1 RV.MR5άh,tWO8WC$ XRVsQS]3GJ|12 [vM :k#~tH30Rf-HYݺ-`I9%lIDTm\ S{]9gOڒMNCV\G*2JRŨ;Rҏ^ڽ̱mq1Eu?To3I)y^#jJw^Ńj^vvlB_⋌P4x>0$c>K†Aļ9s_VjTt0l#m>E-,,x,-W)سo&96RE XR.6bXw+)GAEvL)͞K4$p=Ũi_ѱOjb HY/+@θH9޼]Nԥ%n{ &zjT? Ty) s^ULlb,PiTf^<À] 62R^V7)S!nllS6~͝V}-=%* ʻ>G DnK<y&>LPy7'r=Hj 9V`[c"*^8HpcO8bnU`4JȪAƋ#1_\ XϘHPRgik(~G~0DAA_2p|J묭a2\NCr]M_0 ^T%e#vD^%xy-n}-E\3aS%yN!r_{ )sAw ڼp1pEAk~v<:`'ӭ^5 ArXOI驻T (dk)_\ PuA*BY]yB"l\ey hH*tbK)3 IKZ򹞋XjN n *n>k]X_d!ryBH ]*R 0(#'7 %es9??ښFC,ՁQPjARJ\Ρw K#jahgw;2$l*) %Xq5!U᢯6Re] |0[__64ch&_}iL8KEgҎ7 M/\`|.p,~`a=BR?xܐrQ8K XR2M8f ?`sgWS%" Ԉ 7R%$ N}?QL1|-эټwIZ%pvL3Hk>,ImgW7{E xPHx73RA @RS CC !\ȟ5IXR^ZxHл$Q[ŝ40 (>+ _C >BRt<,TrT {O/H+˟Pl6 I B)/VC<6a2~(XwV4gnXR ϱ5ǀHٻ?tw똤Eyxp{#WK qG%5],(0ӈH HZ])ג=K1j&G(FbM@)%I` XRg ʔ KZG(vP,<`[ Kn^ SJRsAʠ5xՅF`0&RbV tx:EaUE/{fi2;.IAwW8/tTxAGOoN?G}l L(n`Zv?pB8K_gI+ܗ #i?ޙ.) p$utc ~DžfՈEo3l/)I-U?aԅ^jxArA ΧX}DmZ@QLےbTXGd.^|xKHR{|ΕW_h] IJ`[G9{).y) 0X YA1]qp?p_k+J*Y@HI>^?gt.06Rn ,` ?);p pSF9ZXLBJPWjgQ|&)7! HjQt<| ؅W5 x W HIzYoVMGP Hjn`+\(dNW)F+IrS[|/a`K|ͻ0Hj{R,Q=\ (F}\WR)AgSG`IsnAR=|8$}G(vC$)s FBJ?]_u XRvύ6z ŨG[36-T9HzpW̞ú Xg큽=7CufzI$)ki^qk-) 0H*N` QZkk]/tnnsI^Gu't=7$ Z;{8^jB% IItRQS7[ϭ3 $_OQJ`7!]W"W,)Iy W AJA;KWG`IY{8k$I$^%9.^(`N|LJ%@$I}ֽp=FB*xN=gI?Q{٥4B)mw $Igc~dZ@G9K X?7)aK%݅K$IZ-`IpC U6$I\0>!9k} Xa IIS0H$I H ?1R.Чj:4~Rw@p$IrA*u}WjWFPJ$I➓/6#! LӾ+ X36x8J |+L;v$Io4301R20M I$-E}@,pS^ޟR[/s¹'0H$IKyfŸfVOπFT*a$I>He~VY/3R/)>d$I>28`Cjw,n@FU*9ttf$I~<;=/4RD~@ X-ѕzἱI$: ԍR a@b X{+Qxuq$IЛzo /~3\8ڒ4BN7$IҀj V]n18H$IYFBj3̵̚ja pp $Is/3R Ӻ-Yj+L;.0ŔI$Av? #!5"aʄj}UKmɽH$IjCYs?h$IDl843.v}m7UiI=&=0Lg0$I4: embe` eQbm0u? $IT!Sƍ'-sv)s#C0:XB2a w I$zbww{."pPzO =Ɔ\[ o($Iaw]`E).Kvi:L*#gР7[$IyGPI=@R 4yR~̮´cg I$I/<tPͽ hDgo 94Z^k盇΄8I56^W$I^0̜N?4*H`237}g+hxoq)SJ@p|` $I%>-hO0eO>\ԣNߌZD6R=K ~n($I$y3D>o4b#px2$yڪtzW~a $I~?x'BwwpH$IZݑnC㧄Pc_9sO gwJ=l1:mKB>Ab<4Lp$Ib o1ZQ@85b̍ S'F,Fe,^I$IjEdù{l4 8Ys_s Z8.x m"+{~?q,Z D!I$ϻ'|XhB)=…']M>5 rgotԎ 獽PH$IjIPhh)n#cÔqA'ug5qwU&rF|1E%I$%]!'3AFD/;Ck_`9 v!ٴtPV;x`'*bQa w I$Ix5 FC3D_~A_#O݆DvV?<qw+I$I{=Z8".#RIYyjǪ=fDl9%M,a8$I$Ywi[7ݍFe$s1ՋBVA?`]#!oz4zjLJo8$I$%@3jAa4(o ;p,,dya=F9ً[LSPH$IJYЉ+3> 5"39aZ<ñh!{TpBGkj}Sp $IlvF.F$I z< '\K*qq.f<2Y!S"-\I$IYwčjF$ w9 \ߪB.1v!Ʊ?+r:^!I$BϹB H"B;L'G[ 4U#5>੐)|#o0aڱ$I>}k&1`U#V?YsV x>{t1[I~D&(I$I/{H0fw"q"y%4 IXyE~M3 8XψL}qE$I[> nD?~sf ]o΁ cT6"?'_Ἣ $I>~.f|'!N?⟩0G KkXZE]ޡ;/&?k OۘH$IRۀwXӨ<7@PnS04aӶp.:@\IWQJ6sS%I$e5ڑv`3:x';wq_vpgHyXZ 3gЂ7{{EuԹn±}$I$8t;b|591nءQ"P6O5i }iR̈́%Q̄p!I䮢]O{H$IRϻ9s֧ a=`- aB\X0"+5"C1Hb?߮3x3&gşggl_hZ^,`5?ߎvĸ%̀M!OZC2#0x LJ0 Gw$I$I}<{Eb+y;iI,`ܚF:5ܛA8-O-|8K7s|#Z8a&><a&/VtbtLʌI$I$I$I$I$I$IRjDD%tEXtdate:create2022-05-31T04:40:26+00:00!Î%tEXtdate:modify2022-05-31T04:40:26+00:00|{2IENDB`Mini Shell

HOME


Mini Shell 1.0
DIR:/proc/self/root/usr/share/guile/2.0/language/tree-il/
Upload File :
Current File : //proc/self/root/usr/share/guile/2.0/language/tree-il/cse.scm
;;; Common Subexpression Elimination (CSE) on Tree-IL

;; Copyright (C) 2011, 2012, 2013 Free Software Foundation, Inc.

;;;; This library is free software; you can redistribute it and/or
;;;; modify it under the terms of the GNU Lesser General Public
;;;; License as published by the Free Software Foundation; either
;;;; version 3 of the License, or (at your option) any later version.
;;;; 
;;;; This library is distributed in the hope that it will be useful,
;;;; but WITHOUT ANY WARRANTY; without even the implied warranty of
;;;; MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
;;;; Lesser General Public License for more details.
;;;; 
;;;; You should have received a copy of the GNU Lesser General Public
;;;; License along with this library; if not, write to the Free Software
;;;; Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA

(define-module (language tree-il cse)
  #:use-module (language tree-il)
  #:use-module (language tree-il primitives)
  #:use-module (language tree-il effects)
  #:use-module (ice-9 vlist)
  #:use-module (ice-9 match)
  #:use-module (srfi srfi-1)
  #:use-module (srfi srfi-9)
  #:use-module (srfi srfi-11)
  #:use-module (srfi srfi-26)
  #:export (cse))

;;;
;;; This pass eliminates common subexpressions in Tree-IL.  It works
;;; best locally -- within a function -- so it is meant to be run after
;;; partial evaluation, which usually inlines functions and so opens up
;;; a bigger space for CSE to work.
;;;
;;; The algorithm traverses the tree of expressions, returning two
;;; values: the newly rebuilt tree, and a "database".  The database is
;;; the set of expressions that will have been evaluated as part of
;;; evaluating an expression.  For example, in:
;;;
;;;   (1- (+ (if a b c) (* x y)))
;;;
;;; We can say that when it comes time to evaluate (1- <>), that the
;;; subexpressions +, x, y, and (* x y) must have been evaluated in
;;; values context.  We know that a was evaluated in test context, but
;;; we don't know if it was true or false.
;;;
;;; The expressions in the database /dominate/ any subsequent
;;; expression: FOO dominates BAR if evaluation of BAR implies that any
;;; effects associated with FOO have already occured.
;;;
;;; When adding expressions to the database, we record the context in
;;; which they are evaluated.  We treat expressions in test context
;;; specially: the presence of such an expression indicates that the
;;; expression is true.  In this way we can elide duplicate predicates.
;;;
;;; Duplicate predicates are not common in code that users write, but
;;; can occur quite frequently in macro-generated code.
;;;
;;; For example:
;;;
;;;   (and (foo? x) (foo-bar x))
;;;   => (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;          (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;              (struct-ref x 1)
;;;              (throw 'not-a-foo))
;;;          #f))
;;;   => (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;          (struct-ref x 1)
;;;          #f)
;;;
;;; A conditional bailout in effect context also has the effect of
;;; adding predicates to the database:
;;;
;;;   (begin (foo-bar x) (foo-baz x))
;;;   => (begin
;;;        (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;            (struct-ref x 1)
;;;            (throw 'not-a-foo))
;;;        (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;            (struct-ref x 2)
;;;            (throw 'not-a-foo)))
;;;   => (begin
;;;        (if (and (struct? x) (eq? (struct-vtable x) <foo>))
;;;            (struct-ref x 1)
;;;            (throw 'not-a-foo))
;;;        (struct-ref x 2))
;;;
;;; When removing code, we have to ensure that the semantics of the
;;; source program and the residual program are the same.  It's easy to
;;; ensure that they have the same value, because those manipulations
;;; are just algebraic, but the tricky thing is to ensure that the
;;; expressions exhibit the same ordering of effects.  For that, we use
;;; the effects analysis of (language tree-il effects).  We only
;;; eliminate code if the duplicate code commutes with all of the
;;; dominators on the path from the duplicate to the original.
;;;
;;; The implementation uses vhashes as the fundamental data structure.
;;; This can be seen as a form of global value numbering.  This
;;; algorithm currently spends most of its time in vhash-assoc.  I'm not
;;; sure whether that is due to our bad hash function in Guile 2.0, an
;;; inefficiency in vhashes, or what.  Overall though the complexity
;;; should be linear, or N log N -- whatever vhash-assoc's complexity
;;; is.  Walking the dominators is nonlinear, but that only happens when
;;; we've actually found a common subexpression so that should be OK.
;;;

;; Logging helpers, as in peval.
;;
(define-syntax *logging* (identifier-syntax #f))
;; (define %logging #f)
;; (define-syntax *logging* (identifier-syntax %logging))
(define-syntax log
  (syntax-rules (quote)
    ((log 'event arg ...)
     (if (and *logging*
              (or (eq? *logging* #t)
                  (memq 'event *logging*)))
         (log* 'event arg ...)))))
(define (log* event . args)
  (let ((pp (module-ref (resolve-interface '(ice-9 pretty-print))
                        'pretty-print)))
    (pp `(log ,event . ,args))
    (newline)
    (values)))

;; A pre-pass on the source program to determine the set of assigned
;; lexicals.
;;
(define* (build-assigned-var-table exp #:optional (table vlist-null))
  (tree-il-fold
   (lambda (exp res)
     res)
   (lambda (exp res)
     (match exp
       (($ <lexical-set> src name gensym exp)
        (vhash-consq gensym #t res))
       (_ res)))
   (lambda (exp res) res)
   table exp))

(define (boolean-valued-primitive? primitive)
  (or (negate-primitive primitive)
      (eq? primitive 'not)
      (let ((chars (symbol->string primitive)))
        (eqv? (string-ref chars (1- (string-length chars)))
              #\?))))

(define (boolean-valued-expression? x ctx)
  (match x
    (($ <application> _
        ($ <primitive-ref> _ (? boolean-valued-primitive?))) #t)
    (($ <const> _ (? boolean?)) #t)
    (_ (eq? ctx 'test))))

(define (singly-valued-expression? x ctx)
  (match x
    (($ <const>) #t)
    (($ <lexical-ref>) #t)
    (($ <void>) #t)
    (($ <lexical-ref>) #t)
    (($ <primitive-ref>) #t)
    (($ <module-ref>) #t)
    (($ <toplevel-ref>) #t)
    (($ <application> _
        ($ <primitive-ref> _ (? singly-valued-primitive?))) #t)
    (($ <application> _ ($ <primitive-ref> _ 'values) (val)) #t)
    (($ <lambda>) #t)
    (_ (eq? ctx 'value))))

(define* (cse exp)
  "Eliminate common subexpressions in EXP."

  (define assigned-lexical?
    (let ((table (build-assigned-var-table exp)))
      (lambda (sym)
        (vhash-assq sym table))))

  (define %compute-effects
    (make-effects-analyzer assigned-lexical?))

  (define (negate exp ctx)
    (match exp
      (($ <const> src x)
       (make-const src (not x)))
      (($ <void> src)
       (make-const src #f))
      (($ <conditional> src test consequent alternate)
       (make-conditional src test (negate consequent ctx) (negate alternate ctx)))
      (($ <application> _ ($ <primitive-ref> _ 'not)
          ((and x (? (cut boolean-valued-expression? <> ctx)))))
       x)
      (($ <application> src
          ($ <primitive-ref> _ (and pred (? negate-primitive)))
          args)
       (make-application src
                         (make-primitive-ref #f (negate-primitive pred))
                         args))
      (_
       (make-application #f (make-primitive-ref #f 'not) (list exp)))))

  
  (define (hasher n)
    (lambda (x size) (modulo n size)))

  (define (add-to-db exp effects ctx db)
    (let ((v (vector exp effects ctx))
          (h (tree-il-hash exp)))
      (vhash-cons v h db (hasher h))))

  (define (control-flow-boundary db)
    (let ((h (hashq 'lambda most-positive-fixnum)))
      (vhash-cons 'lambda h db (hasher h))))

  (define (find-dominating-expression exp effects ctx db)
    (define (entry-matches? v1 v2)
      (match (if (vector? v1) v1 v2)
        (#(exp* effects* ctx*)
         (and (tree-il=? exp exp*)
              (or (not ctx) (eq? ctx* ctx))))
        (_ #f)))
      
    (let ((len (vlist-length db))
          (h (tree-il-hash exp)))
      (and (vhash-assoc #t db entry-matches? (hasher h))
           (let lp ((n 0))
             (and (< n len)
                  (match (vlist-ref db n)
                    (('lambda . h*)
                     ;; We assume that lambdas can escape and thus be
                     ;; called from anywhere.  Thus code inside a lambda
                     ;; only has a dominating expression if it does not
                     ;; depend on any effects.
                     (and (not (depends-on-effects? effects &all-effects))
                          (lp (1+ n))))
                    ((#(exp* effects* ctx*) . h*)
                     (log 'walk (unparse-tree-il exp) effects
                          (unparse-tree-il exp*) effects* ctx*)
                     (or (and (= h h*)
                              (or (not ctx) (eq? ctx ctx*))
                              (tree-il=? exp exp*))
                         (and (effects-commute? effects effects*)
                              (lp (1+ n)))))))))))

  ;; Return #t if EXP is dominated by an instance of itself.  In that
  ;; case, we can exclude *type-check* effects, because the first
  ;; expression already caused them if needed.
  (define (has-dominating-effect? exp effects db)
    (or (constant? effects)
        (and
         (effect-free?
          (exclude-effects effects
                           (logior &zero-values
                                   &allocation
                                   &type-check)))
         (find-dominating-expression exp effects #f db))))

  (define (find-dominating-test exp effects db)
    (and
     (effect-free?
      (exclude-effects effects (logior &allocation
                                       &type-check)))
     (match exp
       (($ <const> src val)
        (if (boolean? val)
            exp
            (make-const src (not (not val)))))
       ;; For (not FOO), try to prove FOO, then negate the result.
       (($ <application> src ($ <primitive-ref> _ 'not) (exp*))
        (match (find-dominating-test exp* effects db)
          (($ <const> _ val)
           (log 'inferring exp (not val))
           (make-const src (not val)))
          (_
           #f)))
       (_
        (cond
         ((find-dominating-expression exp effects 'test db)
          ;; We have an EXP fact, so we infer #t.
          (log 'inferring exp #t)
          (make-const (tree-il-src exp) #t))
         ((find-dominating-expression (negate exp 'test) effects 'test db)
          ;; We have a (not EXP) fact, so we infer #f.
          (log 'inferring exp #f)
          (make-const (tree-il-src exp) #f))
         (else
          ;; Otherwise we don't know.
          #f))))))

  (define (add-to-env exp name sym db env)
    (let* ((v (vector exp name sym (vlist-length db)))
           (h (tree-il-hash exp)))
      (vhash-cons v h env (hasher h))))

  (define (augment-env env names syms exps db)
    (if (null? names)
        env
        (let ((name (car names)) (sym (car syms)) (exp (car exps)))
          (augment-env (if (or (assigned-lexical? sym)
                               (lexical-ref? exp))
                           env
                           (add-to-env exp name sym db env))
                       (cdr names) (cdr syms) (cdr exps) db))))

  (define (find-dominating-lexical exp effects env db)
    (define (entry-matches? v1 v2)
      (match (if (vector? v1) v1 v2)
        (#(exp* name sym db)
         (tree-il=? exp exp*))
        (_ #f)))
      
    (define (unroll db base n)
      (or (zero? n)
          (match (vlist-ref db base)
            (('lambda . h*)
             ;; See note in find-dominating-expression.
             (and (not (depends-on-effects? effects &all-effects))
                  (unroll db (1+ base) (1- n))))
            ((#(exp* effects* ctx*) . h*)
             (and (effects-commute? effects effects*)
                  (unroll db (1+ base) (1- n)))))))

    (let ((h (tree-il-hash exp)))
      (and (effect-free? (exclude-effects effects &type-check))
           (vhash-assoc exp env entry-matches? (hasher h))
           (let ((env-len (vlist-length env))
                 (db-len (vlist-length db)))
             (let lp ((n 0) (m 0))
               (and (< n env-len)
                    (match (vlist-ref env n)
                      ((#(exp* name sym db-len*) . h*)
                       (let ((niter (- (- db-len db-len*) m)))
                         (and (unroll db m niter)
                              (if (and (= h h*) (tree-il=? exp* exp))
                                  (make-lexical-ref (tree-il-src exp) name sym)
                                  (lp (1+ n) (- db-len db-len*)))))))))))))

  (define (lookup-lexical sym env)
    (let ((env-len (vlist-length env)))
      (let lp ((n 0))
        (and (< n env-len)
             (match (vlist-ref env n)
               ((#(exp _ sym* _) . _)
                (if (eq? sym sym*)
                    exp
                    (lp (1+ n)))))))))

  (define (intersection db+ db-)
    (vhash-fold-right
     (lambda (k h out)
       (if (vhash-assoc k db- equal? (hasher h))
           (vhash-cons k h out (hasher h))
           out))
     vlist-null
     db+))

  (define (concat db1 db2)
    (vhash-fold-right (lambda (k h tail)
                        (vhash-cons k h tail (hasher h)))
                      db2 db1))

  (let visit ((exp   exp)
              (db vlist-null) ; dominating expressions: #(exp effects ctx) -> hash
              (env vlist-null) ; named expressions: #(exp name sym db) -> hash
              (ctx 'values)) ; test, effect, value, or values
    
    (define (parallel-visit exps db env ctx)
      (let lp ((in exps) (out '()) (db* vlist-null))
        (if (pair? in)
            (call-with-values (lambda () (visit (car in) db env ctx))
              (lambda (x db**)
                (lp (cdr in) (cons x out) (concat db** db*))))
            (values (reverse out) db*))))

    (define (compute-effects exp)
      (%compute-effects exp (lambda (sym) (lookup-lexical sym env))))

    (define (bailout? exp)
      (causes-effects? (compute-effects exp) &definite-bailout))

    (define (return exp db*)
      (let ((effects (compute-effects exp)))
        (cond
         ((and (eq? ctx 'effect)
               (not (lambda-case? exp))
               (or (effect-free?
                    (exclude-effects effects
                                     (logior &zero-values
                                             &allocation)))
                   (has-dominating-effect? exp effects db)))
          (cond
           ((void? exp)
            (values exp db*))
           (else
            (log 'elide ctx (unparse-tree-il exp))
            (values (make-void #f) db*))))
         ((and (boolean-valued-expression? exp ctx)
               (find-dominating-test exp effects db))
          => (lambda (exp)
               (log 'propagate-test ctx (unparse-tree-il exp))
               (values exp db*)))
         ((and (singly-valued-expression? exp ctx)
               (find-dominating-lexical exp effects env db))
          => (lambda (exp)
               (log 'propagate-value ctx (unparse-tree-il exp))
               (values exp db*)))
         ((and (constant? effects) (memq ctx '(value values)))
          ;; Adds nothing to the db.
          (values exp db*))
         (else
          (log 'return ctx effects (unparse-tree-il exp) db*)
          (values exp
                  (add-to-db exp effects ctx db*))))))

    (log 'visit ctx (unparse-tree-il exp) db env)

    (match exp
      (($ <const>)
       (return exp vlist-null))
      (($ <void>)
       (return exp vlist-null))
      (($ <lexical-ref> _ _ gensym)
       (return exp vlist-null))
      (($ <lexical-set> src name gensym exp)
       (let*-values (((exp db*) (visit exp db env 'value)))
         (return (make-lexical-set src name gensym exp)
                 db*)))
      (($ <let> src names gensyms vals body)
       (let*-values (((vals db*) (parallel-visit vals db env 'value))
                     ((body db**) (visit body (concat db* db)
                                         (augment-env env names gensyms vals db)
                                         ctx)))
         (return (make-let src names gensyms vals body)
                 (concat db** db*))))
      (($ <letrec> src in-order? names gensyms vals body)
       (let*-values (((vals db*) (parallel-visit vals db env 'value))
                     ((body db**) (visit body (concat db* db)
                                         (augment-env env names gensyms vals db)
                                         ctx)))
         (return (make-letrec src in-order? names gensyms vals body)
                 (concat db** db*))))
      (($ <fix> src names gensyms vals body)
       (let*-values (((vals db*) (parallel-visit vals db env 'value))
                     ((body db**) (visit body (concat db* db) env ctx)))
         (return (make-fix src names gensyms vals body)
                 (concat db** db*))))
      (($ <let-values> src producer consumer)
       (let*-values (((producer db*) (visit producer db env 'values))
                     ((consumer db**) (visit consumer (concat db* db) env ctx)))
         (return (make-let-values src producer consumer)
                 (concat db** db*))))
      (($ <dynwind> src winder body unwinder)
       (let*-values (((pre db*) (visit winder db env 'value))
                     ((body db**) (visit body (concat db* db) env ctx))
                     ((post db***) (visit unwinder db env 'value)))
         (return (make-dynwind src pre body post)
                 (concat db* (concat db** db***)))))
      (($ <dynlet> src fluids vals body)
       (let*-values (((fluids db*) (parallel-visit fluids db env 'value))
                     ((vals db**) (parallel-visit vals db env 'value))
                     ((body db***) (visit body (concat db** (concat db* db))
                                          env ctx)))
         (return (make-dynlet src fluids vals body)
                 (concat db*** (concat db** db*)))))
      (($ <dynref> src fluid)
       (let*-values (((fluid db*) (visit fluid db env 'value)))
         (return (make-dynref src fluid)
                 db*)))
      (($ <dynset> src fluid exp)
       (let*-values (((fluid db*) (visit fluid db env 'value))
                     ((exp db**) (visit exp db env 'value)))
         (return (make-dynset src fluid exp)
                 (concat db** db*))))
      (($ <toplevel-ref>)
       (return exp vlist-null))
      (($ <module-ref>)
       (return exp vlist-null))
      (($ <module-set> src mod name public? exp)
       (let*-values (((exp db*) (visit exp db env 'value)))
         (return (make-module-set src mod name public? exp)
                 db*)))
      (($ <toplevel-define> src name exp)
       (let*-values (((exp db*) (visit exp db env 'value)))
         (return (make-toplevel-define src name exp)
                 db*)))
      (($ <toplevel-set> src name exp)
       (let*-values (((exp db*) (visit exp db env 'value)))
         (return (make-toplevel-set src name exp)
                 db*)))
      (($ <primitive-ref>)
       (return exp vlist-null))
      (($ <conditional> src test consequent alternate)
       (let*-values
           (((test db+) (visit test db env 'test))
            ((converse db-) (visit (negate test 'test) db env 'test))
            ((consequent db++) (visit consequent (concat db+ db) env ctx))
            ((alternate db--) (visit alternate (concat db- db) env ctx)))
         (match (make-conditional src test consequent alternate)
           (($ <conditional> _ ($ <const> _ exp))
            (if exp
                (return consequent (concat db++ db+))
                (return alternate (concat db-- db-))))
           ;; (if FOO A A) => (begin FOO A)
           (($ <conditional> src _
               ($ <const> _ a) ($ <const> _ (? (cut equal? a <>))))
            (visit (make-sequence #f (list test (make-const #f a)))
                   db env ctx))
           ;; (if FOO #t #f) => FOO for boolean-valued FOO.
           (($ <conditional> src
               (? (cut boolean-valued-expression? <> ctx))
               ($ <const> _ #t) ($ <const> _ #f))
            (return test db+))
           ;; (if FOO #f #t) => (not FOO)
           (($ <conditional> src _ ($ <const> _ #f) ($ <const> _ #t))
            (visit (negate test ctx) db env ctx))

           ;; Allow "and"-like conditions to accumulate in test context.
           ((and c ($ <conditional> _ _ _ ($ <const> _ #f)))
            (return c (if (eq? ctx 'test) (concat db++ db+) vlist-null)))
           ((and c ($ <conditional> _ _ ($ <const> _ #f) _))
            (return c (if (eq? ctx 'test) (concat db-- db-) vlist-null)))

           ;; Conditional bailouts turn expressions into predicates.
           ((and c ($ <conditional> _ _ _ (? bailout?)))
            (return c (concat db++ db+)))
           ((and c ($ <conditional> _ _ (? bailout?) _))
            (return c (concat db-- db-)))

           (c
            (return c (intersection (concat db++ db+) (concat db-- db-)))))))
      (($ <application> src proc args)
       (let*-values (((proc db*) (visit proc db env 'value))
                     ((args db**) (parallel-visit args db env 'value)))
         (return (make-application src proc args)
                 (concat db** db*))))
      (($ <lambda> src meta body)
       (let*-values (((body _) (if body
                                   (visit body (control-flow-boundary db)
                                          env 'values)
                                   (values #f #f))))
         (return (make-lambda src meta body)
                 vlist-null)))
      (($ <lambda-case> src req opt rest kw inits gensyms body alt)
       (let*-values (((inits _) (parallel-visit inits db env 'value))
                     ((body db*) (visit body db env ctx))
                     ((alt _) (if alt
                                  (visit alt db env ctx)
                                  (values #f #f))))
         (return (make-lambda-case src req opt rest kw inits gensyms body alt)
                 (if alt vlist-null db*))))
      (($ <sequence> src exps)
       (let lp ((in exps) (out '()) (db* vlist-null))
         (match in
           ((last)
            (let*-values (((last db**) (visit last (concat db* db) env ctx)))
              (if (null? out)
                  (return last (concat db** db*))
                  (return (make-sequence src (reverse (cons last out)))
                          (concat db** db*)))))
           ((head . rest)
            (let*-values (((head db**) (visit head (concat db* db) env 'effect)))
              (cond
               ((sequence? head)
                (lp (append (sequence-exps head) rest) out db*))
               ((void? head)
                (lp rest out db*))
               (else
                (lp rest (cons head out) (concat db** db*)))))))))
      (($ <prompt> src tag body handler)
       (let*-values (((tag db*) (visit tag db env 'value))
                     ((body _) (visit body (concat db* db) env 'values))
                     ((handler _) (visit handler (concat db* db) env ctx)))
         (return (make-prompt src tag body handler)
                 db*)))
      (($ <abort> src tag args tail)
       (let*-values (((tag db*) (visit tag db env 'value))
                     ((args db**) (parallel-visit args db env 'value))
                     ((tail db***) (visit tail db env 'value)))
         (return (make-abort src tag args tail)
                 (concat db* (concat db** db***))))))))