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Branden Robinson" To: groff@gnu.org, tuhs@tuhs.org Message-ID: <20241017000202.5l5adjemjvqa4ilb@illithid> MIME-Version: 1.0 Content-Type: multipart/signed; micalg=pgp-sha256; protocol="application/pgp-signature"; boundary="nlowaqhhe3hvimpe" Content-Disposition: inline Message-ID-Hash: YZIIECXZ6KQVGBEN4IF5XAZPRG4TLOAJ X-Message-ID-Hash: YZIIECXZ6KQVGBEN4IF5XAZPRG4TLOAJ X-MailFrom: g.branden.robinson@gmail.com X-Mailman-Rule-Misses: dmarc-mitigation; no-senders; approved; emergency; loop; banned-address; member-moderation; header-match-tuhs.tuhs.org-0; nonmember-moderation; administrivia; implicit-dest; max-recipients; max-size; news-moderation; no-subject; digests; suspicious-header X-Mailman-Version: 3.3.6b1 Precedence: list Subject: [TUHS] Draft v5: London and Reiser's UNIX VAX port paper, reconstructed List-Id: The Unix Heritage Society mailing list Archived-At: List-Archive: List-Help: List-Owner: List-Post: List-Subscribe: List-Unsubscribe: --nlowaqhhe3hvimpe Content-Type: multipart/mixed; protected-headers=v1; boundary="lzaaavv6czszmmbl" Content-Disposition: inline Subject: Draft v5: London and Reiser's UNIX VAX port paper, reconstructed MIME-Version: 1.0 --lzaaavv6czszmmbl Content-Type: text/plain; charset=us-ascii Content-Disposition: inline Hi folks, A few months ago I reported on my efforts to reconstruct London & Reiser's paper on their port of Unix to the VAX-11/780.[1] I formerly characterized this as "the UNIX/32V port", but since London & Reiser's paper predates the release of Seventh Edition Unix by about six months, UNIX/32V came _after_ Seventh Edition by about the same number of months, and the pace of Unix development was particularly ferocious in this period[2], I felt that my identification of London & Reiser's work with UNIX/32V may have been hasty. I also may have overinterpreted Dennis Ritchie's words on the subject. "Tom London and John Reiser, working from the 7th Edition and the Interdata 8/32 system, generated a VAX 11/780 version of the system, which, in its distribution format, would be called 32V." That phrase "in its distribution format" could cover a variety of changes, some of which perhaps did not match London & Reiser's intentions or views expressed in their paper. More conservative implications seemed prudent. I'd thus like to present what I consider to be my "final" draft, subject of course to feedback from these mailing lists. I'm pleased to report that I've addressed all of the XXX points I identified in the source of my first draft, points where I felt groff mm could be enhanced to aid the rendering of historical documents like this. I consequently expect groff 1.24's mm package to support several new features prompted specifically by this work. Quoting the forthcoming NEWS file... * The m (mm) macro package now supports a user-definable hook macro `AFX`, which if defined is called by `AF` in lieu of the latter's normal operation. Applications include customization of letterhead. * The m (mm) macro package now supports a user-definable hook macro `RPX`, which if defined is called by `RP` to format the reference list caption string `Rp` instead of the default formatting. * The m (mm) macro package now supports an `Aumt` string to suppress the appearance of positional arguments to the `AU` macro in the document heading used by memorandum types 0-3 and 6. By default, all such arguments appear, except the second (author initials). For example, a value of "3 4" more accurately reproduces London & Reiser's 1978 paper describing the porting of Unix to the VAX-11/780. * The m (mm) macro package now supports an `Rpfmt` string specifying the `LB` macro arguments that the package uses to format the items in a reference list. * The m (mm) macro package no longer superscripts _and_ brackets a reference mark (the `Rf` string). Instead, the new `Rfstyle` register controls its formatting. The default, 0, selects bracketing in nroff mode and superscripting in troff mode. Set `Rfstyle` to 3 in a document to obtain groff mm's previous mark formatting behavior. [I might still update or revert the changed default; I want to research the behavior of historical mm implementations.] The "32vscan.pdf" document from which I prepared this reconstruction is available at Dennis Ritchie's memorial home page.[3] I have attached the reconstructed mm source document and two PDFs, rendered with groff 1.23.0 (the current stable release), and groff Git HEAD (exercising the new features listed above).[4] I offer the caveat that these cannot be pixel-perfect recreations because (1) I have no information about the precise paper dimensions or margins London & Reiser used[5]; (2) the fonts employed in rendering the documents are not identical, metrically or otherwise; and (3) AT&T and GNU troffs use different hyphenation systems and therefore sometimes break words differently. These factors all impact the placement of line and page breaks, and these are avowedly and clearly distinguishable. There are furthermore a few discrepancies that I decided weren't worth the trouble at this time to reconcile, like selective encroachment of cover sheet material beyond the page margins. None affect the utility of the document (in my opinion). With that large disclaimer in place, I welcome feedback on the quality of the reproduction. Finally, I reiterate my encouragement that the document be _read_. In my opinion, the final two sections "Commands" and "Software portability" are well worth consideration in hindsight. To the extent that we continue to boast, sometimes glibly, of C as a "portable assembly language", be it in its current ISO C23 incarnation; as ANSI C89, the last revision blessed by Ritchie; or in the form used when London and Reiser wrote, their experiences and recommendations laid out a program of better delivering on that promise. Regards, Branden [1] https://www.tuhs.org/pipermail/tuhs/2024-June/030041.html [2] 1980, for example, saw releases of 3BSD, System III, PWB/UNIX 2.0, and 4BSD. [3] https://www.bell-labs.com/usr/dmr/www/portpapers.html [4] You may notice a difference in the sizes of the two PDFs, surprising in light of their shared source document. This is thanks to a new feature forthcoming in Deri James's gropdf(1) output driver: font subsetting. [5] ...or where, if anywhere, the authors "cheated" the margins temporarily, for instance with `ll` or `pl` requests. Even with mm macro package sources available, such things would be invisible to the reconstructor. --lzaaavv6czszmmbl Content-Type: application/x-freemind Content-Description: unix-vax-port-reconstructed-v5.mm Content-Disposition: attachment; filename="unix-vax-port-reconstructed-v5.mm" Content-Transfer-Encoding: quoted-printable =2E\" groff -t -rO1.25i -rW6i -mm=0A.\" nroff -t -rW65n -mm=0A.\"=0A.\" Lon= don & Reiser's UNIX/32V porting paper=0A.\"=0A.\" Reconstruction in groff m= m (but DWB 3.3 mm compatible) from=0A.\" "32vscan.pdf" by G. Branden Robins= on, June 2024.=0A.\"=0A.\" The scan shows no evidence of superscript usage,= except on the cover=0A.\" sheet where "TM" superscripts "UNIX".=0A.\"=0A.\= " Some differences may arise due to changes in the mm macro package=0A.\" i= tself from its PWB incarnation (ca. 1978) and DWB 3.3 (July 1992).=0A.\" Th= anks to Dan Plassche for the history.=0A.\" https://www.tuhs.org/pipermail/= tuhs/2022-March/025545.html=0A.\"=0A.\" The groff reimplementation of mm wa= s undertaken mostly from=0A.\" 1991-1999 (by Joergen Haegg), based on the D= WB documentation and=0A.\" James Clark's reimplementation of the ms macro p= ackage. It added=0A.\" features but also parameterized even more aspects o= f package=0A.\" behavior, for example to facilitate easy localization. Lat= er,=0A.\" Werner Lemberg and G. Branden Robinson contributed enhancements, = bug=0A.\" fixes, and improvements to the groff mm package and man page.=0A.= \"=0A.\" groff Git, October 2024, supports an `RPX` hook macro permitting t= he=0A.\" document to assume responsibility for laying out the caption of th= e=0A.\" accumulated reference list.=0A.do ds XX \" empty; dummy string for = ending macros=0A.ie \n(.g .do de RPX XX=0A.el .ig XX=0A.SP 3=0A.HU Re= ferences=0A.XX=0A.nr Pt 1=0A.nr Hy 1=0A.nr Hu 1=0A.ds HF 3=0A.\" Override: = "By default, ... bold stand-alone headings are printed=0A.\" in a size one = point smaller than the body." (DWB 3.3 mm manual)=0A.ds HP 10=0A.ds UX UNIX= \"=0A.ds pD PDP-11\"=0A.ds vX VAX-11\"=0A.ds iD Interdata\ 8/32\"=0A.nr y4 = 1900+\n(yr=0A.af y4 0000=0A.af mo 00=0A.af dy 00=0A.PF "''\s8Reconstructed = by GBR \n(y4-\n(mo-\n(dy\s0''"=0A.TL=0AA \*(UX\*(Tm Operating System for th= e DEC \*(vX/780 Computer=0A.AU "Thomas B.\& London" tbl HO 1353=0A.AU "John= F.\& Reiser" jfr HO 1353=0A.do ds Aumt 3 4\" suppress these AU fields from= metadata block=0A.do nr Rfstyle 1=0A.ds Rpfmt \\n[Li] 0 0 1 0 0 0\"=0A.TM = 78-1353-4=0A.ND "July 7, 1978"=0A.if !\n(.g .ig=0A.do de AFX=0A. do in \\n= [cov*column3-hpos]u \" groff mm "0.MT' internal register=0A. ft B=0A. ps = 72=0A. sp |1i=0A. if t .do nop \(ci=0A. sp |1i+1.5v=0A. ps=0A. ps 12= =0A. do nop Bell Laboratories=0A. ps=0A. ft=0A. do in=0A..=0A.\" groff = <=3D 1.23 typesets the cover "page" (more like a header)=0A.\" messily. In= nroff mode, it's outright horrific. Fixed in groff=0A.\" Git, June 2024.= =0A.\"=0A.\" The scan lays out the "affiliated firm" (`AF` macro content)= =0A.\" differently than DWB 3.3. DWB draws a long rule starting at the=0A.= \" left margin and overdrawing the right one by an inch, maybe. It=0A.\" a= lso sets the firm name in larger type than the body, possibly bold,=0A.\" a= nd aligned with the right-hand column of document metadata. DWB=0A.\" 3.3 = sets it under the rule at the left margin in Helvetica roman.=0A.\"=0A.\" T= he 1978 AT&T logo also appears in the document. GBR has no=0A.\" appetite = for trademark entanglements, though Tadziu Hoffman has=0A.\" prepared a rec= onstruction of it in PostScript, which could be=0A.\" included with groff's= `PSPIC` or `PDFPIC` macros...=0A.\"=0A.\" groff Git, July 2024, supports a= n `AFX` hook macro permitting the=0A.\" document to assume responsibility f= or laying out the affiliated=0A.\" firm/letterhead.=0A.\"=0A.\" Scan capita= lizes "Subject:"; DWB 3.3 renders it in full lowercase.=0A.\" GBR thinks th= is is not worth parameterizing in groff.=0A.\"=0A.\" To reproduce this docu= ment better, groff mm implements a string to=0A.\" keep some `AU` arguments= from printing in the cover header. We=0A.\" can't just drop them from the= reconstruction because they are also=0A.\" used to the construct the secre= tarial annotation produced by `SG`.=0A.\" groff Git, September 2024, suppor= ts `Aumt` for this purpose.=0A.\"=0A.\" In the scan, the right column of th= e cover header happily overrruns=0A.\" the right margin. GBR thinks this i= s not worth parameterizing in=0A.\" groff.=0A.\"=0A.\" (In fact, the size a= nd placement of the right column appear to be=0A.\" computed to precisely f= it the words "Bell Laboratories" in the font=0A.\" used. This practice obv= iously does not generalize well.)=0A.\"=0A.\" Scan bears a "TM:" heading fo= r the technical memorandum number(s).=0A.\" DWB 3.3 lacks it. GBR thinks t= his is not worth parameterizing in=0A.\" groff.=0A.\"=0A.\" groff mm <=3D 1= =2E23 organizes the department and site name differently=0A.\" from DWB 3.3= in the cover header; GBR didn't see any reason for it=0A.\" to. Fixed in = groff Git, June 2024.=0A.\"=0A.\" Memorandum captions may have changed from= PWB to DWB 3.3 mm. groff=0A.\" mm was updated in Git (June 2024) to use t= he captions documented in=0A.\" the DWB 3.3 manual. Here, we override the = default for authenticity.=0A.ie \n(.g .MT "MEMORANDUM FOR FILE"=0A.el = .MT=0A.H 1 Introduction=0AThe \*(vX/780 \*(Rf=0A.RS=0ADigital Equipment Co= rporation,=0A.I "\*(vX/780 Architecture Handbook" .=0AMaynard,=0AMassachuse= tts,=0A1977.=0A.RF=0Ais a new,=0Ageneral-purpose,=0Astored-program electron= ic digital computer=0Amanufactured by Digital Equipment Corporation.=0AAt m= inicomputer prices=0Ait provides addresses and data which are 32 bits wide;= =0Athe traditional minicomputer address space bound of 64K is gone.=0AThis = memorandum describes the \*(vX/780 and=0Athe implementation of a \*(UX=0Aop= erating system and complete user environment for it.=0ASection 2 contains a= n overview=0Asuitable for general consumption;=0Adetails normally of intere= st only=0Ato devotees of computer system architecture appear in Section 3.= =0AThe authors comment on software portability in Section 4.=0A.H 1 Overvie= w=0A.B Environment.=0AA user of \*(UX and C software on the \*(pD will find= that=0Athe \*(vX/780 provides a very similar environment.=0AThere are no a= pparent differences in the command language=0Aor the vast majority of progr= ams=0Awhich are customarily invoked directly from the shell.=0AA casual use= r probably will not be able to distinguish=0Athe hardware,=0Aexcept by issu= ing the command "who am i" \" straight quotes in scan=0A(which identifies t= he hardware and the current user)=0Aor by noting that one of the columns pr= inted=0Aby the process status command=0A.I ps=0Ais in hexadecimal rather th= an octal.=0AThe C language programmer will find that=0A.B int ,=0A.B long ,= =0Aand pointer data types all occupy 4 bytes=0A(a=0A.B short=0Astill occupi= es 2 bytes),=0Aand that a=0A.B long=0Ahas its two halves=0Astored in a diff= erent order on the \*(pD than on the \*(vX.=0ACharacters still suffer sign = extension when converted=0Ato longer integer types,=0Abut one may use the d= eclaration=0A.B "unsigned char" .=0A.P=0A.B Hardware.=0AThe \*(vX is a foll= ow-on computer to the \*(pD.=0AThe architecture seen=0Aby the user-mode ass= embly-language programmer of a \*(vX=0Ais "culturally compatible" \" straig= ht quotes in scan=0Awith the \*(pD.=0ASpecific details differ,=0Abut a prog= rammer familiar with the \*(pD=0Acan quickly understand the differences.=0A= The \*(vX provides UNIBUS and MASSBUS interfaces=0Aand uses the same input/= output peripheral devices as a \*(pD.=0A.P=0ASignificant new features of th= e \*(vX include an extended=0Avirtual address space,=0Aintelligent console,= =0Aand dramatically improved physical packaging.=0AThe address space of a p= rocess=0Ais divided into a few gigantic segments.=0AEach segment is further= divided=0Ainto a large number of small pages.=0ASufficient hardware exists= to make demand paging=0Aa viable memory management strategy.=0AAll console= functions are handled by=0Aan LSI-11 microcomputer=0Athrough a standard AS= CII terminal.=0AThe terminal may be remotely located from the processor=0Aa= nd can still halt,=0Aboot,=0Aor diagnose the \*(vX.=0AThe mechanical and ph= ysical design of the \*(vX/780 is well done.=0AThe processor contains no sl= iding drawers or moving cables.=0AAll parts are easily accessible for servi= cing.=0AAdequate airflow is maintained even under maintenance conditions.= =0A.P=0A.br=0A.ne 2v=0A.B Configuration.=0AThe actual configuration purchas= ed by Department 1353 is:=0A.br=0A.\" Either `VL` worked differently in 197= 8 mm, or didn't exist, or=0A.\" somebody wanted this list _just so_.=0A.\"V= L \n(Pi 0 1=0A.LB \n(Pi "" "" 0 0 0=0A.\" DWB mm requires the list item to = be an unadjustable space to get the=0A.\" effect desired here. groff mm to= lerates an ordinary space.=0A.LI "\ "=0A\*(vX/780 cpu=0A.LI "\ "=0A0.5 mega= bytes memory with battery backup=0A.LI "\ "=0Afloating-point accelerator=0A= =2ELI "\ "=0A12Kbyte user-writeable control store=0A.LI "\ "=0AUNIBUS adapt= or with DZ11 (8 RS-232C lines)=0A.LI "\ "=0AMASSBUS adaptor with TE16 tape = drive (800/1600 bpi)=0A.LI "\ "=0AMASSBUS adaptor with two RP06 disk spindl= es (176M bytes per spindle)=0A.LI "\ "=0Aadditional BA11KE UNIBUS box=0A.LE= =0AThe list price of the above configuration in February 1978 was $241,255;= =0Athe price=0Aincluding a DEC discount to a Bell Labs purchaser was $200,2= 42.=0A.P=0A.B Software.=0AWe have implemented a \*(UX operating system \*(R= f=0A.RS=0AD.\ M.\ Ritchie and K.\ Thompson,=0AThe \*(UX Time-Sharing System= ,=0ACACM=0A.IR 17 ,=0A7 (July 1974),=0A365-375.=0ASee also BSTJ 57,=0A6 (Ju= ly-August 1978),=0A1905-1929.=0A.RF=0Aand complete user software environmen= t on the \*(vX/780.=0AThe operating system is Research version 7 as of Apri= l 15, 1978.=0AThe environment includes the Bourne shell,=0AC compiler,=0Aco= de improver=0A.I c2 ,=0Aassembler,=0Aloader,=0Adebugger,=0Astandard I/O sub= routine library=0A.B libS ,=0AC subroutine library=0A.B libc ,=0Asource cod= e control system SCCS,=0A.I nroff/troff ,=0Aand more than 130 commands.=0AM= aintenance programs for file system checking,=0Abootstrapping,=0Aand physic= al disk pack handling have also been implemented.=0A.P=0AWe began with the = C language code of Research version 7=0Aof the \*(UX operating system,=0Aan= d a \*(pD/45 running \*(UX as a bootstrap machine.=0ACreating a C compiler= =0Awhich produced \*(vX native-mode assembly code=0Awas the first task.=0AT= he code generator portion of the portable C compiler=0Awas rewritten to do = this.=0AAn assembler and loader,=0Abased on similar code for the \*(iD,=0Ac= ompleted the basic support software.=0AExisting \*(pD/70 device drivers=0Af= or disk,=0Atape,=0Aand terminal communication lines=0Awere adapted to the \= *(vX/780.=0AAssembly language interfaces=0A(trap handlers,=0Ahardware initi= alization,=0Aetc.)=0Awere completely rewritten.=0AWe then created magnetic = tapes=0Ain the proper format=0Afor an initial file system and for deadstart= load,=0Aand physically carried these tapes from the=0A\*(pD/45 to the \*(v= X/780.=0A.P=0AWork on the C compiler began in mid-December 1977.=0AThe hard= ware arrived on March 3.=0AWe held a party on May 19=0Ato celebrate success= ful multiuser operation of the system.=0A.P=0A.B Performance.=0AIdentical d= ocuments were formatted by=0A.I nroff=0Aon our \*(vX/780=0Aand on a \*(pD/7= 0 running Research version 7 \*(UX;=0Aboth systems used RP06 disks.=0AIdent= ical C programs were compiled and assembled=0Aon the \*(vX/780=0Aand on the= \*(pD/70.=0AAs reported by the=0A.I time=0Acommand,=0Athe results=0A(conve= rted to seconds)=0Awere:=0A.TS=0Acenter;=0AC S S S=0AL N N N.=0Anroff \-ms = \-e \-T450\-12 ios.r >/dev/null=0A\&=0A\& real user sys=0A\*(vX/780 47.0 28= =2E6 8.7=0A\*(pD/70 54.0 36.9 7.9=0A.TE=0A.TS=0Acenter;=0AC S S S=0AL N N N= =2E=0Acc \-c \-O pftn.c=0A\&=0A\& real user sys=0A\*(pD/70 (Ritchie compile= r) 86.0 43.5 11.8=0A\*(vX/780 (portable compiler) 82.0 64.0 10.5=0A\*(pD/70= (portable compiler 153.0 114.6 16.6=0A for \*(iD)=0A.TE=0A.P=0AFrom the s= tatistics on=0A.I nroff=0Aone should conclude that,=0Abased on user-mode CP= U time,=0Athe \*(vX/780 can execute the code produced by the \*(vX C compil= er=0Aapproximately 22% faster=0Athan the \*(pD/70 can execute the code=0Apr= oduced by the \*(pD C compiler.=0AThis is a measure of the combined power o= f the hardware=0Aand efficiency of the code generated by the=0Acompiler.=0A= Except as an upper limit,=0Athe figures give no indication as to the throug= hput,=0Aresponse time,=0Aor efficiency of the operating system.=0AThe diffe= rences in real time and system time=0Abetween the \*(vX/780 and the \*(pD/7= 0=0Aare not significant.=0A.P=0AThe times given for compilation of the file= =0A.I pftn.c=0Aare an attempt at a "black box" \" straight quotes in scan= =0Acomparison of apples and oranges.=0AThe black box is any program (compil= er) which takes C language=0Ainput and produces executable instructions.=0A= The black-box comparison is that the current=0A\*(vX C compiler running on = the \*(vX/780=0Aand compiling code for the \*(vX requires=0A49% more user-m= ode CPU time=0Athan the current \*(pD C compiler running on the \*(pD/70=0A= and compiling code for the \*(pD.=0AThe apples and oranges aspect arises be= cause=0Athe two compilers,=0Awhile equivalent from the black box viewpoint,= =0Aare=0A(on the inside)=0Atotally different pieces of software.=0AThe \*(p= D compiler is a production compiler=0Awritten by D.\ M\. Ritchie;=0Athe \*(= vX compiler is a portable compiler=0Abased on work by S.\ C.\ Johnson.=0AT= he figures for the portable compiler running on the \*(pD/70=0Aand compilin= g for the \*(iD=0Aare included for those who wish to compare two portable c= ompilers.=0AWe have no \*(vX equivalent to the Ritchie compiler,=0Aand thus= cannot run the tests which would enable comparison=0Aof two production com= pilers.=0A.P=0AThe loaded size in bytes of the operating system=0Aand seven= other programs appears in Table 1.=0AOne should note the general similarit= y=0Abetween the text (instructions) sizes=0Aon the \*(pD and on the \*(vX,= =0Aand between the bss=0A(uninitialized data)=0Asizes on the \*(vX and on t= he \*(iD.=0AThe particular \*(pD UNIX system chosen=0Ahas several more inpu= t/output device drivers=0Aand experimental multiplexing software=0Anot in t= he \*(vX system,=0Awhich accounts for its larger text size.=0AIf many globa= l integer variables=0A(or large arrays)=0Aare used,=0Athere is a tendency f= or the data and bss portions to double=0Ain size when going from a \*(pD to= a \*(vX=0Aor an \*(iD=0Abecause an=0A.B int=0Aoccupies two bytes on the \*= (pD=0Aand four bytes on the other machines.=0AHowever,=0Acharacter arrays o= ccupy the same amount of space on all machines.=0AAn unusually large number= of references=0Ato global variables in the=0A.I nroff=0Aprogram accounts f= or its increase in text size on the \*(vX=0Acompared with the \*(pD.=0AA pr= ogram can be written=0Ato automatically change the addressing modes=0Aused = in the \*(vX code=0Aso that most references to global data become shorter t= han at present,=0Abut this has not been done.=0A.P=0A.B Evaluation.=0AWe be= lieve that the \*(vX/780 provides=0Aan excellent hardware environment for r= unning \*(UX and C software.=0AWith the software in its current state,=0Awe= view the system as operationally equivalent=0Ato a \*(pD/70 running \*(UX = software,=0Aexcept that the 64K limit on process address space=0Ais gone an= d programs run faster.=0AWe believe that the advanced memory management=0Aa= nd user/system communication capabilities of the \*(vX/780 offer an=0Aoppor= tunity to construct future \*(UX-like systems=0Awith substantially higher t= hroughput=0Athan provided by today's \*(UX on a \*(pD/70.=0A.H 1 Details=0A= =2EHU Hardware=0A.P=0AFour main subsystems \(em the central processor,=0Aco= nsole,=0Amain memory,=0Aand input/output \(em constitute the \*(vX/780 comp= uter system.=0AThe central processor,=0Amemory,=0Aand=0Ainput/output subsys= tems are connected=0Aby the Synchronous Backplane Interconnect (SBI),=0Aan = internal synchronous bus=0Awith a maximum data throughput of 13.3 megabytes= per second.=0AThe SBI deals in physical addresses which are 30 bits wide.= =0AHalf of the SBI address space is reserved for memory addresses,=0Aand ha= lf for input/output device registers.=0AArbitration for bus cycles on the S= BI is distributed;=0Aeach subsystem decides if it will use the next bus cyc= le.=0A.P=0AThe central processor=0Ais a microprogrammed 32-bit general-regi= ster computer.=0AThe architecture seen by the user-mode assembly-language p= rogrammer=0Ais "culturally compatible" \" straight quotes in scan=0Awith th= e \*(pD;=0Aan expert programmer familiar with the \*(pD=0Acan learn and und= erstand the differences in one day or less.=0AThe processor handles binary = integers of 8, 16, and 32 bits;=0Asingle precision=0A(32 bit)=0Aand double = precision=0A(64 bit)=0Afloating-point numbers;=0Acharacter strings=0Aup to = 65535 bytes long;=0Abit fields up to 32 bits wide;=0Aand IBM-style packed d= ecimal strings up to 31 digits long.=0ABit fields have no alignment restric= tions whatsoever;=0Aall other data types require alignment only to a byte= =0A(8 bit)=0Aboundary.=0AThe central processor provides sixteen 32-bit gene= ral registers.=0ARegister 15 is the program counter=0A.B pc .=0ASoftware op= erating in one of the privileged access modes=0A(see below)=0Amust use regi= ster 14 as a stack pointer=0A.B sp .=0AThe instructions which implement hig= h-level procedure call and return=0A.RB ( pushl ,=0A.B calls ,=0A.B callg ,= =0A.B ret )=0Aassume a convention about the use of=0A.B sp ,=0Aregister 13= =0A.RB ( fp ,=0Athe frame pointer)=0Aand register 12=0A.RB ( ap ,=0Athe arg= ument pointer).=0AThe instructions which handle character=0Aand packed deci= mal strings=0Ause registers 0 through 5 to hold pointers and counters,=0Aso= as to be interruptible.=0AFloating-point operations may use the general re= gisters;=0Athere are no separate floating-point registers.=0AInstructions t= ake from zero to six operands.=0AThe operation code occupies one byte=0Aand= is followed by the operands,=0Awhich require from one to nine bytes each.= =0ANine addressing modes=0A(including all the \*(pD modes except *\-(r))=0A= are allowed,=0Aand the addressing modes are independent of the operation co= de.=0AWhen the central processor is executing in the context of a process,= =0Athere are four access privilege modes=0A(user,=0Asupervisor,=0Aexecutive= ,=0Akernel),=0Aeach with its own stack pointer;=0Asoftware which desires a = per-process kernel stack=0Ais easy to implement.=0AA fifth stack pointer is= used=0Awhen executing in a special system-wide interrupt context.=0AThe \*= (vX/780 processor includes an eight kilobyte,=0Atwo-way set associative,=0A= write-through,=0Amemory data cache;=0Aan eight-byte instruction stream buff= er;=0Aand a 128-address virtual address translation buffer.=0AMost of the p= rocessor is implemented in Schottky TTL MSI logic.=0AA programmable realtim= e clock and a time-of-year clock=0A(battery operated during loss of line vo= ltage)=0Aare standard equipment.=0AOptions include a hardwired floating-poi= nt accelerator=0Aand user-writeable control store.=0A.P=0AThe console subsy= stem consists of an LSI-11 computer,=0Alocal memory,=0Afloppy disk,=0ADECwr= iter terminal,=0Aand remote-access communications port.=0AThe console is co= nnected directly to=0Athe central processor and performs all the functions= =0Aof a conventional "lights and switches" \" straight quotes in scan=0Afro= nt panel.=0AThe floppy disk serves as the initial bootstrap device=0Afor no= rmal operation=0Aand holds special microcode for diagnostic operation.=0AWh= en activated by a key switch on the central processor,=0Athe remote-access = port becomes the console.=0AA terminal connected through the remote-access = port=0Acan halt the central processor,=0Aboot it,=0Adiagnose it,=0Aetc.=0A.= P=0AThe virtual address space of a process=0Arunning on the \*(vX/780 consi= sts of 2**32 8-bit bytes.=0AThe two high-order bits of a 32-bit address=0Ad= etermine one of four segments.=0ATwo of these segments are system segments= =0Acommon to the address space of all processes.=0AOne of the system segmen= ts is reserved for future use.=0AThe other two segments are separately defi= ned for each process=0Aand are automatically managed by the context switchi= ng instructions.=0AOne of the per-process segments is designed for a stack= =0Awhich grows towards lower-numbered memory addresses.=0ASegments are divi= ded into pages of 512 bytes.=0AMemory mapping hardware translates virtual a= ddresses=0Ainto physical addresses using page tables.=0AA page table contai= ns one four-byte entry for each page mapped;=0Athe entry contains a valid b= it,=0Aa four-bit field which encodes access privileges,=0Aa modify bit,=0Aa= nd the physical page-frame number where the page is mapped.=0A(There is no = reference bit which is maintained by hardware!)=0AA base register and a lim= it register=0Adescribe the page table of each segment.=0AThe base register = of a per-process segment=0Acontains a virtual address within the system seg= ment;=0Athe base register for the system segment=0Acontains a physical memo= ry address.=0AThe \*(vX/780 central processor=0Acontains a virtual address = translation buffer=0Aholding 128 virtual address-page frame number pairs=0A= which eliminates the need for extra memory references=0Aduring address=0Atr= anslation for (typically) 98% of all memory references.=0AThe memory is imp= lemented using MOS semiconductor RAMs=0Awith an error correcting code=0Awhi= ch corrects all single-bit errors=0Aand detects all double-bit errors=0Aand= 70% of all greater-than-double bit errors.=0AA memory controller can handl= e 8 memory boards;=0Ausing 4K chips each board can hold 128K bytes.=0AThere= can be two memory controllers,=0Athus the maximum amount of physical memor= y is currently 2 megabytes.=0AWhen 16K chips are used=0A[forecasted for lat= e 1978],=0Aeach board will hold 512K,=0Aand physical memory can=0Abe 8 mega= bytes.=0AThere is a battery backup option=0Afor maintaining data in the eve= nt of a power failure.=0AEach optional battery will maintain 1 megabyte for= 10 minutes.=0A.P=0AThe input/output subsystem consists=0Aof UNIBUS adaptor= s and MASSBUS adaptors.=0AA UNIBUS adaptor (UBA) is an interface=0Abetween = a standard UNIBUS and the SBI.=0AThe UBA does the bus arbitration and every= thing else necessary to=0Aadminister the UNIBUS.=0AIt also contains a set o= f registers=0Afor mapping UNIBUS addresses to and from SBI addresses.=0AThe= maximum throughput on a UBA is 1.5 megabytes per second.=0AA MASSBUS adapt= or (MBA) is an interface=0Abetween the SBI and MASSBUS devices=0A(RP06 disk= ,=0ATE16 tape,=0Aetc.).=0AAn MBA would be more properly called an RH-780 co= ntroller,=0Aanalogous to the RH-11 controller on a \*(pD/70 MASSBUS;=0Aonly= one unit may transfer data at a time,=0Aalthough several similar units=0Ac= onnected to the same MBA can execute control functions simultaneously.=0ATh= e MBA contains the device control registers=0Anormally found in an RH contr= oller.=0AThe registers lie in the I/O section of SBI addresses.=0AAn MBA al= so contains a set of mapping registers=0Awhich translate device byte addres= ses to and from SBI addresses.=0AThe maximum throughput on a MBA is 2.0 meg= abytes per second.=0AThe published limits are 1 UBA and 4 MBAs per system.= =0ATheoretically one could have any number of either kind=0Aas long as the = sum of the number of central processors,=0Amemory controllers,=0AMBAs,=0Aan= d twice the number of UBAs were 15 or less,=0Asince the SBI has 15 "ports".= \" straight quotes in scan=0A.P=0AThe physical packaging of the system=0Ah= as been dramatically improved=0Acompared with the \*(pD.=0AThe \*(vX/780 pr= ocessor cabinet contains no drawers or moving cables.=0AThe SBI is fixed an= d rigid.=0AThree one-third horsepower squirrel-cage blowers provide=0Asuffi= cient air flow \(em even while servicing the CPU.=0AAny logic card,=0Apower= supply,=0Aor blower can be replaced=0Awithin twenty minutes=0Aby one perso= n using only a screwdriver.=0AThe CPU stands 1.53m x 1.17m x 0.77m (HWD);= =0Acabinets housing the CPU,=0AUNIBUS devices,=0Aand tape drive are usually= bolted together=0Ato form a single unit 1.53m x 2.51m x 0.77m.=0AOur confi= guration=0A(see section 2)=0Aweighs 3452 pounds and requires 42050 BTU/hr c= ooling.=0A.HU "C Compiler"=0AA \*(vX "native mode" \" straight quotes in sc= an=0AC compiler was constructed using S.\ C.\ Johnson's=0Aportable compiler= as a base.=0AAfter one month,=0Aa reasonable version began to evolve:=0Ait= produced code which was good enough to exercise the assembler,=0Aloader,= =0Aand debugger=0A(on the=0Abootstrap \*(pD/45).=0AThis initial version did= not make use of \*(vX indexed addressing=0A(which does single-level array = subscripting=0Aincluding appropriate index shifts),=0Abit field instruction= s,=0Aor autoincrement/decrement addressing.=0AIt contained its share of bug= s,=0Aparticularly since the hardware had not arrived=0Aand could not be use= d to actually run the generated code.=0A.P=0ASubstantial effort has been su= bsequently directed=0Atowards improving all aspects of the compiler:=0Abugs= have been corrected,=0Aroutines have been made to execute more efficiently= ,=0Aand the quality of the generated code has been improved.=0AAll addressi= ng modes are supported,=0Abit-field instructions are used for programmer-de= fined bit fields,=0Aand autoincrement and autodecrement addressing=0Aas wel= l as three-address instructions are used.=0A.P=0AOverall,=0Aour experience = with the compiler has been very favorable.=0AWhen the \*(vX/780 was deliver= ed,=0Athe compiler worked well enough to compile itself,=0Athe \*(UX kernel= ,=0Aand many user-level commands.=0AIn fact,=0Asince the delivery of the ma= chine,=0Aonly about a half-dozen serious bugs have been detected.=0AAdditio= nally,=0Athe framework of the compiler has proven itself to be flexible:=0A= a compiler for the \*(iD was transformed=0Ainto a compiler for the \*(vX/78= 0,=0Asome improvements and extensions were easily added,=0Aand,=0Ain genera= l,=0Aa quickly evolving compiler has remained stable and productive.=0AThe = authors feel that,=0Awith a few extensions to the model of the compiler=0Aa= nd a certain amount of tuning,=0Athe current \*(vX compiler could easily re= main=0Aas the production \*(vX compiler.=0A.P=0AThere are still some defici= encies=0Ain the current version of the compiler,=0Aas well as in the basic = "product" itself. \" straight quotes in scan=0AThe compiler is slow and qui= te large;=0Asee the statistics in section\ 2 and Table\ 1.=0ASome of the bl= ame for the size and lethargy=0Aof the first pass can be attributed=0Ato th= e use of=0A.I lex=0Afor the scanner and=0A.I yacc=0Afor the parser,=0Aand t= o the use of ASCII to communicate information between passes.=0ABoth=0A.I l= ex=0Aand=0A.I yacc=0Aproduce large routines:=0Athe scanner is 17K bytes in = length=0A(over 4.5K bytes of instructions),=0Aand the parser is 16K bytes l= ong=0A(over 5.5K bytes of instructions).=0AOn the average,=0Athe first pass= spends 20% of its time in the lexical scanner,=0A.I yylook ,=0Aand 9% of i= ts time in the parser=0A.I yyparse .=0A.P=0AUsing ASCII to communicate betw= een the two passes=0Acauses an additional speed penalty for character conve= rsion.=0AOn typical programs,=0Athe first pass (parser)=0Aspends roughly 30= % of its time performing output services=0A(i.e.,=0Acalls to=0A.I _doprnt= =0A(18%),=0A.I _strout=0A(8%),=0Aand=0A.I printf=0A(4%)),=0Awhile the secon= d pass=0A(code generator)=0Aspends roughly 21% of its time=0Areading it bac= k in=0A(i.e.,=0Acalls to=0A.I read=0A(18%)=0Aand=0A.I rdin=0A(3%)).=0A(Addi= tionally,=0Athe routine used to convert=0Afrom ASCII to binary=0Acontained = a bug=0Awhich caused "\-2147483648" \" straight quotes in scan=0A(which is = \-(2**31) )=0Ato be read as zero on our \*(pD/45.)=0A.P=0AThe above problem= s are not inherent to the compiler model.=0ATo speedup compilation,=0Athe s= canner can be hand-coded=0A(as in the standard \*(pD compiler),=0Aand the i= nterpass data can be formatted in binary=0A(or the two passes can be combin= ed).=0AWith these simple modifications=0A(some are already in progress),=0A= it should be possible to produce a compiler almost twice as fast=0Aas the c= urrent one.=0A.P=0ATwo features of the \*(vX architecture \(em=0Athree-addr= ess instructions and indexed addressing mode \(em=0Awere difficult to model= within the basic structure of the compiler.=0AThe full=0Aimplementation of= three-address instructions proved to be=0Aso difficult that it was not rea= lly attempted.=0AInstead,=0A.I c2 ,=0Athe assembly language code improver,= =0Atries to merge several instructions=0Ainto an appropriate three-address = instruction.=0AFor example,=0Athe statement=0A.I "a =3D b + c"=0Acompiles= =0A.DS=0A addl3 b,c,r0=0A movl r0,a=0A.DE=0Awhich the improver can change t= o:=0A.DS=0A addl3 b,c,a=0A.DE=0Afor a savings of three bytes and over 400 n= anoseconds.=0AHowever,=0A.I c2=0Awill not always succeed in this shortening= =2E=0AIt cannot tell the difference between=0A.DS=0A a =3D b + c;=0A return= =0A.DE=0Aand=0A.DS=0A return( a =3D b + c );=0A.DE=0Asince register=0A.B r0= =0Amust be considered "live" \" straight quotes in scan=0A(i.e.,=0Acontains= a value which may be required later)=0Aacross the return statement.=0A.P= =0AThe \*(vX has six indexed addressing modes=0Awhich yield the address of = an element=0Aof a one-dimensional array of a base type=0A.RB ( char ,=0A.B = short ,=0A.B int ,=0A.B long ,=0Apointer,=0A.B float ,=0Aor=0A.B double ).= =0AThe=0Astatement=0A.DS=0A a[i] =3D b[j] * c[k];=0A.DE=0Awhere=0A.I i ,=0A= =2EI j ,=0Aand=0A.I k=0Aare declared=0A.B "register int"=0Aand=0A.I a ,=0A.= I b ,=0Aand=0A.I c=0Aare=0A.B double=0Aarrays=0A(either external or local)= =0Acan be compiled into the single instruction:=0A.DS=0A muld3 b[j],c[k],a[= i]=0A.DE=0AAlthough the index specifier=0A(e.g.=0A.I i=0Ain the above examp= le)=0Amust be a register,=0Athe base address specifier can be any addressin= g mode=0Aexcept register,=0Aliteral,=0Aor another indexed mode.=0AFor examp= le,=0Athe C-language constructs=0A.I a[i] ,=0A.I (*p)[i] ,=0A.I (\-\-p)[i] = ,=0A.I (p++)[i] ,=0Aand=0A.I (*p++)[i]=0A(or their equivalents=0A.I *(a+i) = ,=0A.I *(*p+i) ,=0A.I *(--p+i) , \" recte: *(\-\-p+i)=0A.I "*(p++ +i)" ,=0A= and=0A.I "*(*p++ +i)" ,=0Arespectively)=0Aall can be done with a single \*(= vX address=0A(where=0A.I a=0Ais an array of base type,=0A.I p=0Ais a pointe= r to the same type,=0Aand=0A.I i=0Ais of type=0A.B "register int" ).=0AIt i= s usually difficult to recognize=0Aor conveniently represent such construct= s=0A(e.g.,=0A.I (*p++)[i]=0Ais fun),=0Aor generate the possible cases=0A(e.= g.,=0A.I a[i]=0Awhere=0A.I a=0Ais not=0Areadily addressable).=0A.P=0AThe fa= ct that the code generator=0Acan easily recognize only expression trees of = height one=0A(two if OREG and UNARY MUL nodes are taken into account)=0Acau= ses substantial difficulty in making use of indexed mode,=0Athree address i= nstructions,=0Aand indirect addressing.=0AExpression trees of non-trivial h= eight occur not infrequently=0A(e.g. as a worst case,=0Athe statement=0A.DS= =0A a =3D b + (*p++)[i];=0A.DE=0Ahas an expression tree of height six,=0Abu= t can be compiled into the single instruction=0A.DS=0A addl3 b,*(p)+[i],a= =0A.DE=0Aif=0A.I p=0Aand=0A.I i=0Aare=0A.B register=0Avariables).=0AThe com= plexity of the code generator is raised=0Aby forcing the compression of sub= trees into single nodes=0Awhich are then treated with special checks,=0Aspe= cial code, etc.=0A.P=0AThe size and alignment attributes of data objects=0A= are logically independent,=0Aeven though=0Aprevious hardware architectures= =0A(IBM 360,=0A\*(pD,=0A\*(iD, ...) \" bad ellipsis spacing in scan=0Ahave = imposed alignment restrictions based on size.=0AThe VAX 11/780 \" - in "VAX= -11" missing; error in text or scanner fubar?=0Ahas no such restrictions,= =0Aalthough programs run faster with data aligned on natural boundaries.=0A= The C language has little notion of alignment;=0Abecause of run-time penalt= ies,=0Athe \*(vX C compiler aligns all the basic data types=0Aon address bo= undaries which are a multiple of=0A.B sizeof=0Athe basic type.=0ADue to que= stions about alignment,=0Aboth the language and the compiler have difficult= y=0Awith the declaration=0A.I "char c:10;" .=0A.P=0AThe decision to natural= ly align most data items=0Ahas undesirable side effects which cannot be ign= ored.=0AConsider the structure declaration=0A.DS=0A struct foo {=0A char c= ;=0A float f;=0A } bar;=0A.DE=0AOn the \*(pD,=0A.BR sizeof (\c=0A.I foo )= =0Ais 6 bytes while on the \*(vX,=0A.BR sizeof (\c=0A.I foo )=0Ais currentl= y 8 bytes=0A(the offset of=0A.I f=0Awithin=0A.I bar=0Ais 2 and 4 respective= ly).=0A.BR sizeof (\c=0A.I foo )=0Acould be 5 bytes in each case.=0AAlthoug= h both machines use the same data formats=0Afor chars and floats,=0Athe dif= fering alignment imposed by the the \*(vX C compiler=0Ameans that the two m= achines cannot speak directly=0Ato one another using media which record str= uctures=0Acontaining binary information.=0ASince alignment is important,=0A= we feel that it ought to be specifiable in the C language.=0A.HU "Operating= system conversion"=0AA \*(UX system running on a \*(pD/45 was used as the = base=0Afor transporting software to the \*(vX/780.=0AThe software itself or= iginated with the code=0Aproduced by members of Center 127,=0AComputing Sci= ence Research,=0Afor the \*(iD.=0APrograms were cross-compiled,=0Aassembled= ,=0Aloaded,=0Aand put on magnetic tape in=0A.I tp=0Aformat;=0Aabsolute bit-= string files=0Awere put on tape in=0A.I dd=0Aformat.=0ATapes were then carr= ied across the room to the \*(vX/780.=0AAn absolute tape boot=0A(in machine= language),=0A.I tp=0Aboot and primary disk boot=0A(in assembly language),= =0Asecondary disk boot=0A(in C),=0Aand stand-alone utilities=0A(disk format= ter,=0Adisk verifier,=0Atape-to-disk,=0Adisk-to-tape,=0Adisk-to-disk,=0Aand= disk-to-console,=0Aall in C)=0Awere then used to bring up the system.=0A.P= =0AEstablishing an initial file system on the disk=0Atook longer than expec= ted.=0AThe \*(pD/45 was running USG issue 3 of the \*(UX=0Aoperating system= with a "16-bit" \" straight quotes in scan=0Afile system=0Aand the \*(vX/7= 80 was to have a Research version 7=0A"32-bit" \" straight quotes in scan= =0Afile system.=0AAlso,=0AC-language code on the \*(vX=0Aexpects the bytes = of a 32-bit integer to be stored in a different order=0Athan C-language cod= e on the \*(pD.=0AWe swallowed these two red herrings hard,=0Aand suffered.= =0AWe now know that the proper way=0Ato create an initial file system=0Ais = to modify the program=0A.I mkfs=0Aso that its output=0A(on the bootstrap ma= chine)=0Ais a file containing the proper bits,=0Aput that file on tape,=0Aa= nd use the tape-to-disk utility on the target machine.=0A.P=0AMapping the s= oftware architecture of the \*(UX operating=0Asystem onto the hardware arch= itecture of the \*(vX=0Arequired a number of decisions.=0ACommentary on the= se decisions follows.=0AThe SCB=0A(system context base)=0Aprocessor registe= r contains a page-aligned=0Aphysical memory address which is the base of th= e hardware=0Ainterrupt vector.=0AThe \*(UX system puts this vector at physi= cal memory address zero.=0A.P=0AOperating system code,=0Adata,=0Akernel sta= cks,=0Aand interrupt stack occupy the \*(vX/780 system segment=0A(virtual a= ddresses 80000000 to bfffffff).=0AUser code and data are loaded into segmen= t zero=0A(0 to 3fffffff)=0Aand the user stack is initialized in segment one= =0A(7fffffff to 40000000).=0AUser processes pass arguments to system servic= e code using the ordinary=0A.B calls=0Asubroutine calling sequence.=0AThe= =0A.B chmk=0Ainstruction is then used to gain kernel privileges.=0AThe=0A.B= chmk=0Ainstruction switches the stack pointer=0A.B sp=0Afrom the user stac= k to the kernel stack,=0Abut does not change the argument pointer=0A.B ap= =0Aor the frame pointer=0A.B fp .=0AThe kernel uses the value in=0A.B ap=0A= to copy the arguments into=0A.I u.u_arg .=0AThe \*(vX hardware allows the v= alues to be directly addressed,=0Abut the kernel software requires the copy= =2E=0A.P=0AThe=0A.I "u area"=0Ais a per-process data structure=0Ain which t= he operating system=0Akeeps swappable information about a process.=0AThe ke= rnel virtual address of the=0A.I "u area"=0Amust be a constant across all p= rocesses.=0AThe \*(pD implementation puts the=0A.I "u area"=0Aat kernel add= ress 0160000;=0Awhen process switching occurs=0Athe=0A.I "u area"=0Ais swit= ched by changing a kernel data space segmentation register.=0ASince the ope= rating system can address user memory on a \*(vX,=0Athe=0A.I "u area"=0Acou= ld be placed in (protected) user memory,=0Asay at address 0 or at 7fffe000.= =0AHowever,=0Ait was desirable for the first implementation=0Ato make the p= age tables for user segments part of the=0A.I "u area" ,=0Awhich creates ti= ming problems unless the=0A.I "u area"=0Alies in system space.=0AThe base o= f the=0A.I "u area"=0Awas assigned kernel virtual address 80020000.=0AWhen = process switching occurs,=0Athe=0A.I "u area"=0Ais changed by changing the = system-space page table=0Aand invalidating the page-table translation cache= =0Afor the appropriate pages.=0A.P=0ASince the operating system can directl= y address the memory=0Aof the current user process,=0Athe procedures=0A.I f= ubyte ,=0A.I subyte ,=0A.I fuword ,=0Aetc.,=0Aare unnecessary and could be = made into macros=0Awhich would merely do the appropriate load or store.=0AH= owever,=0Athese procedures=0A(along with=0A.I copyin=0Aand=0A.I copyout)=0A= were kept to ensure that each access to user space is valid.=0A.P=0AA \*(vX= /780 internal processor register called the PCB=0A(process context base)=0A= points to an area in which the \*(vX/780=0Asaves the hardware state of the = machine=0A(96 bytes)=0Awhen switching context.=0AThis save area was put in = the=0A.I "u area"=0Aas=0A.I u_rsav .=0A.P=0AThe implementation of context s= witching required major effort.=0AThe \*(vX has two very nice instructions= =0A.RB ( svpctx ,=0Asave process context;=0Aand=0A.B ldpctx ,=0Aload proces= s context)=0Awhich facilitate context switching.=0AUnfortunately,=0Athey do= not implement the mechanism which the \*(UX system expects.=0A(The mechani= sm used by \*(UX is so dispersed and intricately detailed=0Athat it is hard= to imagine any hardware which implements it directly.)=0AThe temptation to= drastically change the \*(UX code=0Ahas been resisted so far.=0AThe=0A.IR = savu / retu / aretu=0Atar pit was VAX-inated,=0Abut it took more than a wee= k.=0AThe newer=0A.IR save / restore=0Aprimitive does make the C-language co= de prettier,=0Abut the assembly-language side=0A(at least for the \*(vX)=0A= is just as dirty as ever.=0AThe \*(UX context switching mechanism=0Arequire= s three state save areas,=0A.I u.u_rsav ,=0A.I u.u_ssav ,=0Aand=0A.I u.u_qs= av=0Abecause the same mechanism is also used for abnormal returns.=0AThe \*= (vX context switching instructions=0Ause only a single state save area.=0AT= o make use of the \*(vX instructions,=0Athe software simulates a great deal= of microcode=0Aand bastardizes call frames in a most ugly manner.=0AContex= t switching is certainly high on the list of things=0Ato rewrite in the sec= ond implementation=0A(even for the \*(pD!).=0A.P=0AThe procedures=0A.I sure= g=0Aand=0A.I estabur=0Awere also tricky to implement.=0AThey were designed = with the assumption that only a small number=0A(16 or fewer)=0Aof registers= would be needed=0Ato map the address space of a user process,=0Awhile on t= he \*(vX a 32K process requires 64 page table entries.=0AFurthermore,=0Athe= memory map of a process is diddled in tricky ways,=0Aparticularly in=0A.I = expand=0Aand=0A.I getxfile .=0A.P=0AHandling DMA I/O hardware was the other= major implementation bottleneck.=0AThe UBA and MBA mapping registers conta= in physical memory page numbers,=0Aand physical addresses are hard to handl= e.=0AIt is not pleasant to deal with the hardware=0Awhich implements the ma= pping registers.=0AIf an I/O transfer is in progress=0Athen the mapping reg= isters may be neither read nor written;=0Athis applies even to registers wh= ich would not be used by the transfer.=0AAs a result,=0Athe map for the nex= t I/O operation=0Acannot be setup during the current I/O operation.=0AFurth= ermore,=0Aa single transfer is limited to 64K bytes=0Abecause the byte coun= ter is only 16 bits wide.=0AThus swapping a process to the disk can require= multiple I/O operations.=0AThe solution to these problems=0Ainvolved perma= nently reserving the last 129 registers in each map=0Ato service both swap = and physical I/O operations.=0AThe remaining map registers are available to= map the system buffers,=0Aand are loaded at system initialization time.=0A= Disk ECC error correction is currently done=0Aonly for I/O involving the sy= stem buffers.=0ADisk errors on raw I/O cause process termination;=0Athe swa= p area on disk had better be error-free.=0A.P=0ALike the \*(UX system for t= he \*(pD,=0Athe current implementation for the \*(vX/780=0Amaintains each p= rocess in contiguous physical memory=0Aand swaps processes to disk=0Awhen t= here is not enough physical memory to contain them all.=0AReducing external= memory fragmentation=0Ato zero by utilizing the \*(vX/780 memory mapping h= ardware=0Afor scatter loading is high on the list of things to do=0Ain the = second implementation pass.=0ATo simplify kernel memory allocation,=0Athe s= ize of the user-segment memory map=0Ais an assembly parameter which current= ly allows=0Athree pages of page table or 192K bytes total for text,=0Adata,= =0Aand stack.=0AThis also deserves to be rewritten,=0Aboth to allow varying= process size,=0Aand to allow processes larger than physical memory=0Athrou= gh demand paging.=0ADynamic page table size=0Awould mean dynamic=0A.I "u ar= ea"=0Asize if the page table remained part of the=0A.I "u area" .=0A.P=0ATh= e code in=0A.I \%sendsig=0Afor sending a signal to a process involves a ted= ious simulation of the=0A.B calls=0Ainstruction due to the problem=0Aof "in= ward return" \" straight quotes in scan=0Aacross privilege modes upon termi= nation of the routine=0Awhich handles the signal.=0AMaking a portion of the= kernel code readable by a=0Auser-mode process would simplify=0A.I \%sendsi= g .=0AMotivated by a problem with the Bourne shell,=0Athe signal number is = passed as a parameter to the signalled routine.=0A.P=0AInterprocess communi= cation via signals=0A.RI ( signal=0Aand=0A.I kill )=0Auses the low-order bi= t of a machine address=0Afor something other than addressing.=0AThis implie= s that a procedure which=0Ahandles signals must start on an even byte bound= ary,=0Awhich means that every procedure=0Amust start on an even byte bounda= ry.=0AThe C compiler thus issues a pseudo-op to the assembler=0Ato align th= e beginning of each procedure.=0AThis can waste memory on a \*(vX.=0AIt als= o imposes a nontrivial requirement on the assembler,=0Asince if the resolut= ion of conditional jump instructions=0Acan change the parity of the length = of a procedure=0Athen the alignment directive must also=0Abe handled like a= conditional jump.=0AIn hindsight,=0Ait would have been better if a distinc= t value=0A(say +1 or -1) \" recte: \-1=0Awere used for=0A.I ignore ,=0Arath= er than multiplexing the bottom bit.=0A.P=0AThe \*(vX/780 provides a (non-m= askable) trap=0Afor integer division by zero.=0AThe system would like to tu= rn this=0Ainto a signal to the process.=0AA similar situation exists for su= bscript range trap.=0AInteger overflow,=0Afloating overflow,=0Afloating und= erflow,=0Aand reserved operand also need signal numbers.=0APerhaps only one= "error" signal \" straight quotes in scan=0Ais needed with some other mean= s for determining the true fault.=0AThe whole business of interrupts,=0Asig= nals,=0Aasynchronous I/O,=0Aand the use of the hardware AST mechanism deser= ves more attention.=0A.P=0AA bug was discovered in the \*(UX code for proce= ss termination=0Ainvolving the=0A.I proc=0Aand=0A.I xproc=0Astructures.=0A(= The problem also existed on the \*(pD,=0Abut it would only be noticed=0Aif = a process had accumulated more than 65535 ticks of system time,=0Awhich is = highly unlikely.)=0AWhen a process dies its resource=0Autilization statisti= cs=0A(currently only=0Aexit status,=0Asystem,=0Aand process CPU time)=0Aare= temporarily saved so that they can be added to=0Athe totals for the descen= dents \" sic=0Aof the parent process.=0AThe actual accumulation is done by = the kernel=0Awhen the parent process issues a=0A.B wait=0Asystem call;=0Ath= e child process is then completely erased.=0AThe kernel was overlaying the = statistics=0Ain a part of the=0A.I proc=0Astructure normally used by the sc= heduler to contain the pointer=0A.I p_textp .=0AOrdinarily the exit was pro= cessed immediately,=0Acausing no harm.=0ABut if the system was loaded so th= at swapping was necessary,=0Athen the scheduler could sneak in=0Aafter the = child exited and before the parent read the statistics,=0Aand would interpr= et the timing data=0Ain the zombie=0A.I xproc=0Astructure as a pointer.=0AT= his invariably caused an illegal memory reference=0Afrom kernel mode on the= \*(vX/780.=0A.P=0AOne of the greatest disappointments with the current sys= tem=0Astems from a design quirk=0Ain the FP-11 floating-point processor for= the \*(pD.=0AWhen converting between floating-point and 32-bit integer,=0A= the FP-11 expects the high-order 16 bits of the integer=0Ato be stored at t= he lower memory address;=0Athis is not in line=0Awith the general "right to= left" design \" straight quotes in scan=0Aof the \*(pD,=0Awhich would plac= e the low-order 16 bits in the lower memory address.=0AC code for the \*(pD= uses the FP-11 convention for storing=0A.B long=0Aintegers.=0AThe \*(vX ha= rdware stores=0Athe least significant bit of=0A.I any=0Ainteger data type i= n the lowest addressed byte.=0AC code for the \*(vX uses the hardware conve= ntion.=0AThis means that files containing long integers represented=0Ain th= e local convention are not binary compatible=0Abetween a \*(UX system on th= e \*(vX and a \*(UX system on the \*(pD.=0AThis is the only exception for d= ata types common to both machines:=0A.BR char ,=0A.BR short ,=0A.BR float ,= =0Aand=0A.B double=0Aall have a common representation.=0AExcept for this=0A= (and the structure alignment problem noted earlier),=0Adisk packs containin= g 32-bit file systems,=0Atapes,=0Aetc.,=0Awould have been interchangeable.= =0AThe fact that DEC's Fortran-IV Plus=0Afor the \*(pD avoided the FP-11 co= nvention,=0Aand that RSX-11 files=0A.I are=0Abinary compatible between the = \*(vX and the \*(pD,=0Ais only salt on an open wound!=0A.HU "Subroutine lib= raries"=0A.B libc.=0AConversion of the system-call interface routines=0Awas= straightforward but tedious.=0AMost routines are merely=0A.DS=0A .word 0x= 0000=0A chmk $nn=0A bcc L1=0A jmp cerror=0A L1: ret=0A.DE=0AThe routines= =0A.I printf ,=0A.I ecvt ,=0Aand=0A.I fcvt=0Awere left to=0A.B libS=0Aand w= ere not implemented in=0A.B libc .=0A.P=0A.B libS.=0AConversion of the stan= dard input/output library=0A.B libS=0Aposed no problems=0Aexcept for=0A.I _= doprnt ,=0Athe routine which constructs character representations=0Aof othe= r datatypes for the printing routines=0A.I printf ,=0A.I fprintf ,=0Aand=0A= =2EI sprintf .=0ASince many programs spend 15% to 20% of their execution ti= me within=0A.I _doprnt ,=0Ait pays to code the routine for speed in assembl= y language.=0APacked-decimal instructions handle decimal,=0Aunsigned,=0Aand= floating-point conversions.=0AThe algorithm=0Achosen for converting from f= loating-point to character string revealed a=0Amicrocode bug in the \*(vX/7= 80's=0A.B ashp=0A(arithmetic shift and round packed)=0Ainstruction.=0AUnder= certain conditions a carry from the rounded digit=0Apropagated both to the= adjacent digit and to the digit eight places=0Afurther left.=0AThis usuall= y caused an overflow,=0Asince the destination packed-decimal string=0Awas t= ypically not long enough to represent the spurious carry.=0ADEC claims to h= ave a fix=0Afor the bug,=0Abut the FCO has not arrived.=0AIn the meantime a= five-instruction patch=0Adetects and corrects the spurious overflow.=0A.HU= Commands=0A.B "as, ld."=0ACode developed by Center 127 for the \*(iD=0Awas= the model for an interpretation by a \*(vX/780 artist.=0AThe assembler use= s an algorithm described in \*(Rf=0A.RS=0AW.\& Wulf,=0AR.\& K.\& Johnsson,= =0AC.\& B.\& Weinstock,=0AS.\& O.\& Hobbs,=0Aand=0AC.\& M.\& Geschke,=0A.I = "The Design of an Optimizing Compiler" .=0AAmerican Elsevier,=0ANew York,= =0A1975.=0A.RF=0Awith heuristic improvement of \*(Rf=0A.RS=0AJ.\& F.\& Reis= er,=0ACommon Instances of Pathological Span-dependent Instructions,=0ATM 78= -1353-3.=0A.RF=0Ato resolve conditional jump pseudoinstructions.=0AVariable= -length,=0Aunaligned instructions and address constants=0Aforced the reloca= tion information in object files=0Ato include the explicit segment-relative= address=0Afor each relocatable datum,=0Arather than=0Adeducing=0Athe addre= ss from a one-to-one correspondence=0Abetween the position in the segment= =0Aand the corresponding position in the relocation table.=0AThis caused a = slight change in the header information=0Awithin object files.=0A.P=0A.B c2= =2E=0AThe code improver for the assembly language=0Agenerated by the \*(vX = C compiler=0Ais based on a similar program for the \*(pD.=0AA "backwards" r= egister usage pass, \" straight quotes in scan=0Aperformed once and before = anything else,=0Awas a major addition.=0AKnowing that no temporary register= is live across a backwards jump,=0Athe register usage pass introduces thre= e-address instructions=0Awhere ever \" sic=0Apossible.=0AIt also recognizes= situations where=0Ajump on bit=0A.RB ( jbc ,=0A.BR jbs ,=0A.BR jlbc ,=0A.B= R jlbs ),=0Aextract field=0A.RB ( extzv ,=0A.BR movzbl ),=0Aand move addres= s=0A.RB ( moval,=0A.BR movab ,=0A.BR pushal ,=0A.BR pushab )=0Ainstructions= can be used.=0AThe code for insertion of fancy loop control instructions= =0A.BR sob ,=0A.BR aob ,=0A.BR acb=0Awas also extended.=0A.P=0A.B adb.=0ATh= e most significant change to the symbolic debugging routine=0Awas the writi= ng of a disassembler for \*(vX native-mode instructions.=0AAdditionally,=0A= the character input and output routines=0Awere modified to use a default ra= dix for all numeric values.=0AThe radix is initialized to sixteen.=0A.P=0A.= B sh.=0AThe (Bourne) shell is the standard user command interpreter.=0AIt r= equired by far the largest conversion effort=0Aof any supposedly portable p= rogram,=0Afor the simple reason that it is not portable.=0ACritical portion= s are coded in assembly language=0Aand had to be painstakingly rewritten.= =0AThe shell uses its own=0A.I sbrk=0Awhich is functionally different from = the standard routine in=0A.B libc .=0AThe shell wants the routine which fie= lds a signal=0Ato be passed a parameter=0Agiving the number of the signal b= eing caught;=0A.I signal=0Awas also a private routine.=0AThis was handled b= y having the operating system=0Aprovide the parameter in the first place,= =0Adoing away with the private code for=0A.I signal .=0AThe code in=0A.I fi= xargs=0A(for constructing the argument list to an=0A.B exec=0Asystem call)= =0Ahad to be diddled.=0A.P=0A.B "ps, iostat."=0AThe process and input/outpu= t status commands=0Aconsistently referenced=0A.I /dev/mem=0A(physical memor= y)=0Awhen they should have referred to=0A.I /dev/kmem=0A(kernel virtual mem= ory).=0A.I iostat=0Aalso assumed that certain variables maintained by the k= ernel=0Awere allocated contiguously,=0Aeven though they were not declared a= s part of a structure.=0A.P=0A.B pr.=0AThe command which formats and prints= files=0Ahad a bug that caused a division by zero=0Awhen it was asked to pr= int several files=0Aand the first file in the list did not exist.=0AOn a \*= (pD division by zero returns the dividend,=0Abut on a \*(vX it gives an unm= askable trap.=0A.P=0A.B "cat, dc."=0AThese two commands did not count=0Athe= ir arguments using the first parameter=0A.I argc ,=0Abut rather assumed tha= t an additional argument=0A.RI ( argv[argc],=0Ainitialized as -1) \" recte:= \-1=0Acould be used as a pointer.=0AOn the \*(pD the resulting address=0Ar= eferences the fixed end of the stack;=0Aon the \*(vX,=0A-1 \" recte: \-1=0A= is an illegal address.=0A.P=0A.B "nroff/troff."=0AThe source code=0Afor the= document preparation and phototypesetter commands=0Ais not portable;=0Asev= eral weeks were required to produce properly running version \" sic=0Aof th= ese commands.=0AUse of the explicit=0A(or worse,=0Aimplicit)=0Aconstant "2"= \" straight quotes in scan=0Ainstead of=0A.B sizeof(int)=0Awas quite commo= n.=0AThe code assumes that variables=0Awhich are adjacent in external decla= rations=0Aoccupy contiguous memory at execution time.=0ASeveral tables are = initialized by assembly-language programs.=0AConverting the tables was mere= ly tedious;=0Achanging the=0Acode which=0Athought it knew the=0Aformat of a= n=0A.I a.out=0Afile required some effort.=0AThis memorandum=0Awas created u= sing the converted=0A.I nroff/troff=0Aprograms on the \*(vX/780.=0A.P=0A.B = SCCS.=0AVersion 4 of the Source Code Control System \*(Rf=0A.RS=0A.I "SCCS/= PWB User's Manual, The Source Code Control System" .=0A.RF=0Ais used to pro= vide version backup for software=0Ain case disastrous bugs are introduced.= =0AThe source for SCCS itself=0Ahad not quite been converted to version 7 \= *(UX,=0Aand the header files required some massaging.=0AThe PWB routines=0A= =2EI logname=0Aand=0A.I pexec=0Ahad to be simulated.=0AThe utility procedur= es for dynamic storage allocation=0Arequired some work to integrate them wi= th=0A.B libS=0Aand to remove \*(pD dialect.=0AThe exit status of the=0A.I d= iff=0Acommand changed in version 7,=0Acausing=0A.I delta=0Ato bomb.=0AThe c= ode implicitly assumed that all checksums=0Awere computed modulo 65536.=0AT= he documentation is incorrect:=0Aeverywhere "99999" appears \" straight quo= tes in scan=0Ait should really say "65535". \" straight quotes in scan=0ATh= e procedure=0A.I satoi=0Areturns two values,=0Astoring one of them indirect= ly through a pointer parameter.=0ANaturally,=0A.I satoi=0Aand its callers d= id not agree on=0A.B sizeof=0Athe stored value;=0Athis took a day to track = down.=0A.HU "Software portability"=0AWe thank the members of Center 127,=0A= Computing Science Research,=0Afor their efforts in producing the basic soft= ware=0Aand for their recent efforts towards making the software portable.= =0AThe fact that people other than the original developers=0Acan quickly cr= eate a running system for a new machine=0Ais a tribute to how well the orig= inal work was done.=0A.P=0AYet in our effort to transport a complete \*(UX = system=0Ato the \*(vX/780 we stumbled=0Aacross a large number of nonportabl= e constructions=0Aand were dismayed by the seeming lack of appropriate faci= lities=0Ato detect and prevent them.=0ABased on our experience,=0Awe strong= ly recommend that the C language and its compilers=0Abe enhanced so that=0A= =2EP=0A.\" Either `AL` worked differently in 1978 mm, or didn't exist, or= =0A.\" somebody wanted this list _just so_.=0A.\"AL "" 5=0A.LB 5 0 0 1 1=0A= =2ELI=0AThe actual arguments in a procedure call=0Aare type checked against= the procedure declaration,=0Aand a "dummy" declaration \" straight quotes = in scan=0Awhich specifies types=0Ais permitted even if the called procedure= =0Ais not actually declared in the same compilation.=0A.LI=0AThe '\->' oper= ator is checked to insure=0Athat the structure element on the right=0Ais a = member of a structure to which the pointer on the left may point.=0A.LI=0AA= structure element may be declared with any name=0Aas long as the name is u= nique=0Awithin the immediately surrounding structure.=0A(The current requir= ement=0Athat a structure element name=0Amust uniquely correspond=0Ato an of= fset from the beginning of the structure,=0Aacross all structures in a comp= ilation,=0Acreates naming problems and frequently leads=0Ato errors of the = type noted in item 2 above.)=0A.LI=0AThe issue of alignment to an even-byte= =0A(or other)=0Aboundary is brought into the open,=0Aso that arbitrary data= structures can be accurately described.=0A.LE=0A.P=0AThere is a program ca= lled=0A.I lint=0A\*(Rf=0A.RS=0AS.\& C.\& Johnson,=0A.I lint ,=0Aa C Program= Checker.=0AComputing Science Technical Report #65,=0ABell Laboratories,=0A= December 1977.=0A.RF=0Awhich,=0Aif conscientiously used throughout the life= of a piece of software,=0Aprovides type checking which partially addresses= =0Athe first two points in the above list.=0AThe problem is that=0A.I lint= =0Ais big,=0Anoisy,=0Arelatively recent and unknown,=0Aand=0A(partially as = a result)=0Ainfrequently used.=0AThere is little incentive for the average = programmer=0Ato use=0A.I lint=0Aas a matter of course.=0AThe authors believ= e that type checking belongs=0Ain the everyday compiler as the default,=0Aw= here it is very inexpensive to implement.=0AThose who wish to do "dirty" wo= rk \" straight quotes in scan=0Amay request that type checking be disabled;= =0Athose who wish to bless their dirty work may use type casts.=0A.P=0AWe b= elieve that these four enhancements=0Awould go a long way towards making C = language software=0Aportable as a rule rather than as an exception,=0Athus = preserving Bell Laboratories'=0Ainvestment in present and future C software= =2E=0A.bp=0A.P=0A.I Acknowledgments.=0AThank you,=0AD.\& M.\& Ritchie and S= =2E\& C.\& Johnson,=0Afor answering questions at key moments;=0AG.\& K.\& S= wanson,=0Afor assistance with boot procedures and stand-alone utilities;=0A= J.\& F.\& Jarvis,=0Afor the mathematical function library;=0Aand=0AD.\& K.\= & Sharma,=0Afor help in bringing up user-level commands.=0AAdditional thank= s go to many other members of Centers 127 and 135,=0Aand Department 8234,= =0Afor helpful comments and suggestions.=0A.P=0A.I "2024 Reconstruction Not= es."=0ADennis Ritchie made available a scan of the original London/Reiser p= aper=0Acirca 2003,=0Athe basis of this reconstruction.=0AUnfortunately,=0An= o=0A.I mm=0Asource document was offered;=0ARitchie made available new PDF a= nd PostScript versions=0Athat appear to have been converted to the=0A.I ms= =0Amacro package or similar,=0Aand introduced an abstract.=0A.P=0A.I "2024 = Reconstruction Acknowledgments."=0ANaoki Hamada prepared=0Aan HTML conversi= on of Ritchie's converted form of the paper=0Athat proved invaluable in det= ecting OCR and transcription errors.=0AThanks to=0AArnold Robbins=0Aand=0AD= amian McGuckin=0Afor catching typographical errors.=0AMcGuckin also spotted= clumsy=0A.I mm=0Amacro usage.=0AJonathan Gray kindly reminded this reconst= ructor=0Aof Ritchie's resource page,\c=0A.ds fM \s-2\v'-.3m'*\v'+.3m'\s0=0A= \*(fM=0A.FS \*(fM=0Ahttps://www.bell\-labs.com/usr/dmr/www/portpapers.html= =0A.FE=0Awhich may be the origin of the numerous copies of=0A.I 32vscan.pdf= =0Aon the Web.=0A.\" Scan has signatures set farther to the right, not left= -aligned at=0A.\" the page's vertical centerline where DWB 3.3 mm sets them= =2E groff mm=0A.\" follows DWB here.=0A.\"=0A.\" Scan and DWB 3.3 put the = signature names in bold; groff <=3D 1.23 sets=0A.\" them at normal weight. = Fixed in groff Git, June 2024.=0A.\"=0A.\" Scan has a couple of vees betwe= en the signature line and the flush=0A.\" left secretarial annotation (cont= aining arguments after the second=0A.\" to `AU` macro calls). groff mm set= s the annotation on the same line=0A.\" as the last author. DWB 3.3 omits = the secretarial annotation=0A.\" altogether. GBR thinks this is not worth = parameterizing in groff.=0A.SG=0A.\" Scan says "Att:" with a colon, whereas= DWB 3.3 spells it "Att.".=0A.\" GBR thinks this is not worth parameterizin= g in groff.=0A.NS 3=0AReferences=0ATable 1=0A.NE=0A.RP "" 2=0A.\" DWB 3.3 a= nd Heirloom mm don't seem to honor `.RP "" 2` as the DWB=0A.\" manual docum= ents. They start the table immediately after the=0A.\" reference list and = go haywire boxing the table. 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