Add some tests for Modula-2.
This commit is contained in:
parent
aa9418c029
commit
787fdeaaa9
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@ -17,7 +17,12 @@ definerule("plat_testsuite",
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"tests/plat/*.p",
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"tests/plat/*.p",
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"tests/plat/b/*.b",
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"tests/plat/b/*.b",
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"tests/plat/bugs/bug-22-inn_mod.mod",
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"tests/plat/bugs/bug-22-inn_mod.mod",
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"tests/plat/bugs/bug-62-notvar_var_e.c"
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"tests/plat/bugs/bug-62-notvar_var_e.c",
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"tests/plat/m2/ConvTest_mod.mod",
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"tests/plat/m2/NestProc_mod.mod",
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"tests/plat/m2/OpenArray_mod.mod",
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"tests/plat/m2/Set100_mod.mod",
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"tests/plat/m2/StringTest_mod.mod"
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)
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)
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acklibrary {
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acklibrary {
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36
tests/plat/m2/ConvTest_mod.mod
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36
tests/plat/m2/ConvTest_mod.mod
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@ -0,0 +1,36 @@
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MODULE ConvTest;
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FROM Conversions IMPORT
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ConvertOctal, ConvertHex, ConvertCardinal, ConvertInteger;
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FROM Strings IMPORT CompareStr;
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FROM Test IMPORT fail, finished;
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(* Asserts a = b, or fails with code. *)
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PROCEDURE A(a, b: ARRAY OF CHAR; code: INTEGER);
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BEGIN
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IF (CompareStr(a, b) # 0) OR (CompareStr(a, "wrong string") = 0) THEN
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fail(code)
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END
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END A;
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VAR
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str: ARRAY [0..15] OF CHAR;
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BEGIN
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ConvertOctal( 9, 6, str); A(" 11", str, 1);
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ConvertOctal( 59, 6, str); A(" 73", str, 2);
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ConvertOctal(278, 6, str); A(" 426", str, 3);
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ConvertHex( 9, 6, str); A(" 9", str, 11H);
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ConvertHex( 59, 6, str); A(" 3B", str, 12H);
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ConvertHex(278, 6, str); A(" 116", str, 13H);
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ConvertCardinal( 9, 6, str); A(" 9", str, 21H);
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ConvertCardinal( 59, 6, str); A(" 59", str, 22H);
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ConvertCardinal(278, 6, str); A(" 278", str, 23H);
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ConvertInteger( 9, 6, str); A(" 9", str, 31H);
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ConvertInteger( 59, 6, str); A(" 59", str, 32H);
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ConvertInteger( 278, 6, str); A(" 278", str, 33H);
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ConvertInteger(-424, 6, str); A(" -424", str, 34H);
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finished;
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END ConvTest.
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132
tests/plat/m2/NestProc_mod.mod
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132
tests/plat/m2/NestProc_mod.mod
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@ -0,0 +1,132 @@
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(*
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* Calls nested procedures. The compiler emits the EM instructions
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* _lxl_ and _lxa_ to access the variables in the statically enclosing
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* procedures.
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*
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* You can cheat this test if a = b is TRUE for any a, b.
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*)
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MODULE NestProc;
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FROM Test IMPORT fail, finished;
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(* Asserts cond, or fails with code. *)
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PROCEDURE A(cond: BOOLEAN; code: INTEGER);
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BEGIN
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IF NOT cond THEN fail(code) END
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END A;
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TYPE
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Set8 = SET OF [0..63];
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(* Box has fields of size 8, 4, and 1. *)
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Box = RECORD
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huge: Set8;
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big: LONGINT;
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small: CHAR;
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tiny: CHAR;
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END;
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PROCEDURE First(a, b: INTEGER; in: Box): Box;
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VAR c, d: INTEGER;
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out: Box;
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PROCEDURE Second(e: INTEGER);
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VAR f: INTEGER;
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PROCEDURE Third(g: INTEGER);
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VAR h: INTEGER;
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PROCEDURE CheckThird;
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BEGIN
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A(a = 1354, 31H); (* lxa 3 *)
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A(b = 3385, 32H);
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A(c = 14349, 33H); (* lxl 3 *)
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A(d = 30989, 34H);
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A(e = 28935, 35H); (* lxa 2 *)
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A(f = 13366, 36H); (* lxl 2 *)
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A(g = 7988, 37H); (* lxa 1 *)
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A(h = 11711, 38H); (* lxl 1 *)
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END CheckThird;
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PROCEDURE Fourth(i: INTEGER);
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VAR j: INTEGER;
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PROCEDURE Fifth(k: INTEGER);
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VAR l: INTEGER;
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PROCEDURE Sixth(): INTEGER;
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BEGIN
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A(e = 2, 61H); (* lxa 4 *)
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A(f = 11703, 62H); (* lxl 4 *)
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b := 3385; (* lxa 5 *)
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d := 30989; (* lxl 5 *)
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e := 28935; (* lxl 4 *)
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f := 13366; (* lxa 4 *)
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CheckThird;
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(* lxa 5 *)
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A(in.huge = Set8{11, 12, 40, 40, 43, 56}, 63H);
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A(in.big = 2130020019D, 64H);
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A(in.small = 300C, 65H);
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A(in.tiny = 175C, 66H);
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(* lxl 5 *)
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out.huge := Set8{8, 19, 36, 41, 47, 62};
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out.big := 385360915D;
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out.small := 366C;
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out.tiny := 131C;
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j := k; (* lxl 2, lxa 1 *)
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l := i; (* lxl 1, lxa 2 *)
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RETURN 5217;
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END Sixth;
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PROCEDURE TwiceSixth(): INTEGER;
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BEGIN
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(* lxa and lxl must follow the static chain from Sixth to
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* Fifth, not dynamic chain from Sixth to TwiceSixth. *)
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RETURN 2 * Sixth();
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END TwiceSixth;
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BEGIN (* Fifth *)
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A(TwiceSixth() = 10434, 51H);
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A(k = 11567, 51H);
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A(l = 32557, 52H);
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END Fifth;
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BEGIN (* Fourth *)
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Fifth(11567); (* k *)
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A(i = 32557, 41H);
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A(j = 11567, 42H);
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END Fourth;
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BEGIN (* Third *)
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h := 11711;
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Fourth(32557); (* i *)
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END Third;
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BEGIN (* Second *)
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f := 11703;
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Third(7988); (* g *)
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END Second;
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BEGIN (* First *)
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c := 14349;
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d := 17850;
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Second(2); (* e *)
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RETURN out
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END First;
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VAR
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x: Box;
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BEGIN
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x.huge := Set8{11, 12, 40, 40, 43, 56};
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x.big := 2130020019D;
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x.small := 300C;
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x.tiny := 175C;
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x := First(1354, 19516, x); (* a, b, in *)
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A(x.huge = Set8{8, 19, 36, 41, 47, 62}, 71H);
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A(x.big = 385360915D, 72H);
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A(x.small = 366C, 73H);
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A(x.tiny = 131C, 74H);
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finished;
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END NestProc.
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59
tests/plat/m2/OpenArray_mod.mod
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59
tests/plat/m2/OpenArray_mod.mod
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@ -0,0 +1,59 @@
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(*
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* Passes an open array to a procedure. The back end must implement
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* some EM instructions for accessing arrays.
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*)
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MODULE OpenArray;
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FROM Test IMPORT fail, finished;
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(* Asserts condition or fails with code. *)
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PROCEDURE A(cond: BOOLEAN; code: INTEGER);
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BEGIN
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IF NOT cond THEN fail(code) END
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END A;
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(* Called as Modify(ary1, 1) or Modify(ary2, 2). *)
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PROCEDURE Modify(VAR ary: ARRAY OF INTEGER; what: INTEGER);
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VAR hi: INTEGER;
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BEGIN
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hi := what * 100H;
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(* Indices must be from 0 to HIGH(ary). *)
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A((what = 1) = (HIGH(ary) = 3), hi + 1);
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A((what = 2) = (HIGH(ary) = 9), hi + 2);
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(* ary[2] must equal ary1[3] or ary2[3]. *)
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A((what = 1) = (ary[2] = 13), hi + 3);
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A((what = 2) = (ary[2] = 37), hi + 4);
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(* Modify some values. *)
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IF HIGH(ary) >= 3 THEN ary[3] := 20 END;
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IF HIGH(ary) >= 6 THEN ary[6] := 40 END;
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IF HIGH(ary) >= 9 THEN ary[9] := 12 END;
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END Modify;
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VAR
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ary1: ARRAY [1..4] OF INTEGER;
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ary2: ARRAY [1..10] OF INTEGER;
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BEGIN
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(* Initialize the arrays. *)
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ary1[1] := 6; ary1[2] := 9; ary1[3] := 13; ary1[4] := 49;
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ary2[1] := 56; ary2[2] := 79; ary2[3] := 37; ary2[4] := 0;
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ary2[5] := 70; ary2[6] := 62; ary2[7] := 64; ary2[8] := 92;
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ary2[9] := 29; ary2[10] := 90;
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(* Pass them as open arrays. *)
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Modify(ary1, 1);
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Modify(ary2, 2);
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(* Check that ary1[4], ary2[4, 7, 10] have been modified. *)
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A(ary1[1] = 6, 301H); A(ary1[2] = 9, 301H); A(ary1[3] = 13, 303H);
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A(ary1[4] = 20, 304H);
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A(ary2[1] = 56, 401H); A(ary2[2] = 79, 402H); A(ary2[3] = 37, 403H);
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A(ary2[4] = 20, 404H); A(ary2[5] = 70, 406H); A(ary2[6] = 62, 406H);
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A(ary2[7] = 40, 407H); A(ary2[8] = 92, 408H); A(ary2[9] = 29, 409H);
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A(ary2[10] = 12, 40AH);
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finished;
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END OpenArray.
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61
tests/plat/m2/Set100_mod.mod
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61
tests/plat/m2/Set100_mod.mod
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@ -0,0 +1,61 @@
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(*
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* Operates on sets of 100 integers. The compiler emits, and the back
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* end must implement, the EM instructions for large sets.
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*)
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MODULE Set100;
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FROM Test IMPORT fail, finished;
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(* Asserts condition or fails with code. *)
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PROCEDURE A(cond: BOOLEAN; code: INTEGER);
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BEGIN
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IF NOT cond THEN fail(code) END
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END A;
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TYPE
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Num = [1..100];
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NumSet = SET OF Num;
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VAR
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(* VAR, not CONST, so compiler can't do constant operations. *)
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primes, teens, lowevens, eighties, nineties: NumSet;
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CONST
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(* These are the expected results of some set operations. *)
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primeteen = NumSet{13, 17, 19};
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compeighties = NumSet{80..82, 84..88};
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teenxoreven = NumSet{2, 4, 6, 8, 10, 12, 13, 15, 17, 19, 20};
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eightiesnineties = NumSet{80..99};
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(* Checks that some set is equal to the expected result. Also checks
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* that the set is not equal to the other sets. *)
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PROCEDURE Check(set: NumSet; what: INTEGER);
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VAR hi: INTEGER;
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BEGIN
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hi := what * 100H;
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(* The compiler uses cms in EM to check set equality. *)
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A((what = 1) = (set = primeteen), hi + 1);
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A((what = 2) = (set = compeighties), hi + 2);
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A((what = 3) = (set = teenxoreven), hi + 3);
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A((what = 4) = (set = eightiesnineties), hi + 4);
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END Check;
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PROCEDURE Range(min: Num; max: Num): NumSet;
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BEGIN
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(* The compiler calls LtoUset in lang/m2/libm2/LtoUset.e *)
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RETURN NumSet{min..max}
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END Range;
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BEGIN
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primes := NumSet{2, 3, 5, 7, 11, 13, 17, 19, 23, 29, 31, 37, 41, 43,
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47, 53, 59, 61, 67, 71, 73, 79, 83, 89, 97};
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teens := NumSet{13, 14, 15, 16, 17, 18, 19};
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lowevens := NumSet{2, 4, 6, 8, 10, 12, 14, 16, 18, 20};
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eighties := Range(80, 89);
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nineties := Range(90, 99);
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Check(primes * teens, 1);
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Check(eighties - primes, 2);
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Check(teens / lowevens, 3);
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Check(eighties + nineties, 4);
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finished;
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END Set100.
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55
tests/plat/m2/StringTest_mod.mod
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55
tests/plat/m2/StringTest_mod.mod
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MODULE StringTest;
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FROM Strings IMPORT
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Assign, Insert, Delete, Pos, Copy, Concat, Length, CompareStr;
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FROM Test IMPORT fail, finished;
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(* Asserts condition or fails with code. *)
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PROCEDURE A(cond: BOOLEAN; code: INTEGER);
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BEGIN
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IF NOT cond THEN fail(code) END
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END A;
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VAR
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small: ARRAY [0..3] OF CHAR;
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big: ARRAY [0..99] OF CHAR;
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BEGIN
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(* CompareStr *)
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A(CompareStr("ablaze", "ablaze") = 0, 1);
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A(CompareStr("ablaze", "abloom") < 0, 2);
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A(CompareStr("abloom", "ablaze") > 0, 3);
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A(CompareStr("abloom", "abloom") = 0, 4);
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(* Assign, Insert, Delete *)
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Assign("obsequiosity", small);
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A(CompareStr("obsequiosity", small) > 0, 11H);
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Assign("obsequiosity", big);
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A(CompareStr("obsequiosity", big) = 0, 12H);
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A(big[11] = 'y', 13H);
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A(big[11] # 0C, 14H);
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A(big[12] # 'y', 15H);
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A(big[12] = 0C, 16H);
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Insert(" omnihuman", big, 9);
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A(CompareStr("obsequios omnihumanity", big) = 0, 17H);
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Delete(big, 6, 15);
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A(CompareStr("obsequy", big) = 0, 18H);
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(* Pos, Concat *)
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Assign("Now is the time for all good men to come...", big);
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A(Pos("w", big) = 2, 21H);
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A(Pos("t", big) = 7, 22H);
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A(Pos("ti", big) = 11, 23H);
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A(Pos("men", big) = 29, 24H);
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A(Pos("women", big) > 42, 25H);
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Copy(big, 29, 2, small);
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A(CompareStr("me", small) = 0, 26H);
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(* Concat, Length *)
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Concat("pictorial", "ist", big);
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A(CompareStr("pictorialist", big) = 0, 31H);
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A(Length(big) = 12, 32H);
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Concat("zit", "her", small);
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A(CompareStr("zither", small) > 0, 33H);
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||||||
|
A(Length(small) < 5, 34H);
|
||||||
|
|
||||||
|
finished;
|
||||||
|
END StringTest.
|
Loading…
Reference in a new issue