sysstr.inc 62 KB

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  1. {
  2. *********************************************************************
  3. Copyright (C) 1997, 1998 Gertjan Schouten
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the Free Software
  14. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  15. *********************************************************************
  16. System Utilities For Free Pascal
  17. }
  18. { NewStr creates a new PString and assigns S to it
  19. if length(s) = 0 NewStr returns Nil }
  20. function NewStr(const S: string): PString;
  21. begin
  22. if (S='') then
  23. Result:=nil
  24. else
  25. begin
  26. new(result);
  27. if (Result<>nil) then
  28. Result^:=s;
  29. end;
  30. end;
  31. { DisposeStr frees the memory occupied by S }
  32. procedure DisposeStr(S: PString);
  33. begin
  34. if S <> Nil then
  35. begin
  36. dispose(s);
  37. S:=nil;
  38. end;
  39. end;
  40. { AssignStr assigns S to P^ }
  41. procedure AssignStr(var P: PString; const S: string);
  42. begin
  43. P^ := s;
  44. end ;
  45. { AppendStr appends S to Dest }
  46. procedure AppendStr(var Dest: String; const S: string);
  47. begin
  48. Dest := Dest + S;
  49. end ;
  50. { UpperCase returns a copy of S where all lowercase characters ( from a to z )
  51. have been converted to uppercase }
  52. Function UpperCase(Const S : String) : String;
  53. Var
  54. i : Integer;
  55. P : PChar;
  56. begin
  57. Result := S;
  58. UniqueString(Result);
  59. P:=Pchar(Result);
  60. for i := 1 to Length(Result) do
  61. begin
  62. if (P^ in ['a'..'z']) then P^ := char(byte(p^) - 32);
  63. Inc(P);
  64. end;
  65. end;
  66. { LowerCase returns a copy of S where all uppercase characters ( from A to Z )
  67. have been converted to lowercase }
  68. Function Lowercase(Const S : String) : String;
  69. Var
  70. i : Integer;
  71. P : PChar;
  72. begin
  73. Result := S;
  74. UniqueString(Result);
  75. P:=Pchar(Result);
  76. for i := 1 to Length(Result) do
  77. begin
  78. if (P^ in ['A'..'Z']) then P^ := char(byte(p^) + 32);
  79. Inc(P);
  80. end;
  81. end;
  82. function LowerCase(const V: variant): string; overload;{$ifdef SYSUTILSINLINE}inline;{$endif}
  83. begin
  84. result:=LowerCase(ansistring(V));
  85. end;
  86. { CompareStr compares S1 and S2, the result is the based on
  87. substraction of the ascii values of the characters in S1 and S2
  88. case result
  89. S1 < S2 < 0
  90. S1 > S2 > 0
  91. S1 = S2 = 0 }
  92. function CompareStr(const S1, S2: string): Integer;
  93. var count, count1, count2: integer;
  94. begin
  95. result := 0;
  96. Count1 := Length(S1);
  97. Count2 := Length(S2);
  98. if Count1>Count2 then
  99. Count:=Count2
  100. else
  101. Count:=Count1;
  102. result := CompareMemRange(Pointer(S1),Pointer(S2), Count);
  103. if result=0 then
  104. result:=Count1-Count2;
  105. end;
  106. { CompareMemRange returns the result of comparison of Length bytes at P1 and P2
  107. case result
  108. P1 < P2 < 0
  109. P1 > P2 > 0
  110. P1 = P2 = 0 }
  111. function CompareMemRange(P1, P2: Pointer; Length: cardinal): integer;
  112. var
  113. i: cardinal;
  114. begin
  115. i := 0;
  116. result := 0;
  117. while (result=0) and (I<length) do
  118. begin
  119. result:=byte(P1^)-byte(P2^);
  120. P1:=pchar(P1)+1; // VP compat.
  121. P2:=pchar(P2)+1;
  122. i := i + 1;
  123. end ;
  124. end ;
  125. function CompareMem(P1, P2: Pointer; Length: cardinal): Boolean;
  126. var
  127. i: cardinal;
  128. begin
  129. Result:=True;
  130. I:=0;
  131. If (P1)<>(P2) then
  132. While Result and (i<Length) do
  133. begin
  134. Result:=PByte(P1)^=PByte(P2)^;
  135. Inc(I);
  136. Inc(pchar(P1));
  137. Inc(pchar(P2));
  138. end;
  139. end;
  140. { CompareText compares S1 and S2, the result is the based on
  141. substraction of the ascii values of characters in S1 and S2
  142. comparison is case-insensitive
  143. case result
  144. S1 < S2 < 0
  145. S1 > S2 > 0
  146. S1 = S2 = 0 }
  147. function CompareText(const S1, S2: string): integer;
  148. var
  149. i, count, count1, count2: integer; Chr1, Chr2: byte;
  150. begin
  151. result := 0;
  152. Count1 := Length(S1);
  153. Count2 := Length(S2);
  154. if (Count1>Count2) then
  155. Count := Count2
  156. else
  157. Count := Count1;
  158. i := 0;
  159. while (result=0) and (i<count) do
  160. begin
  161. inc (i);
  162. Chr1 := byte(s1[i]);
  163. Chr2 := byte(s2[i]);
  164. if Chr1 in [97..122] then
  165. dec(Chr1,32);
  166. if Chr2 in [97..122] then
  167. dec(Chr2,32);
  168. result := Chr1 - Chr2;
  169. end ;
  170. if (result = 0) then
  171. result:=(count1-count2);
  172. end;
  173. function SameText(const s1,s2:String):Boolean;
  174. begin
  175. Result:=CompareText(S1,S2)=0;
  176. end;
  177. {==============================================================================}
  178. { Ansi string functions }
  179. { these functions rely on the character set loaded by the OS }
  180. {==============================================================================}
  181. function GenericAnsiUpperCase(const s: string): string;
  182. var
  183. len, i: integer;
  184. begin
  185. len := length(s);
  186. SetLength(result, len);
  187. for i := 1 to len do
  188. result[i] := UpperCaseTable[ord(s[i])];
  189. end;
  190. function GenericAnsiLowerCase(const s: string): string;
  191. var
  192. len, i: integer;
  193. begin
  194. len := length(s);
  195. SetLength(result, len);
  196. for i := 1 to len do
  197. result[i] := LowerCaseTable[ord(s[i])];
  198. end;
  199. function GenericAnsiCompareStr(const S1, S2: string): PtrInt;
  200. Var
  201. I,L1,L2 : SizeInt;
  202. begin
  203. Result:=0;
  204. L1:=Length(S1);
  205. L2:=Length(S2);
  206. I:=1;
  207. While (Result=0) and ((I<=L1) and (I<=L2)) do
  208. begin
  209. Result:=Ord(S1[I])-Ord(S2[I]); //!! Must be replaced by ansi characters !!
  210. Inc(I);
  211. end;
  212. If Result=0 Then
  213. Result:=L1-L2;
  214. end;
  215. function GenericAnsiCompareText(const S1, S2: string): PtrInt;
  216. Var
  217. I,L1,L2 : SizeInt;
  218. begin
  219. Result:=0;
  220. L1:=Length(S1);
  221. L2:=Length(S2);
  222. I:=1;
  223. While (Result=0) and ((I<=L1) and (I<=L2)) do
  224. begin
  225. Result:=Ord(LowerCaseTable[Ord(S1[I])])-Ord(LowerCaseTable[Ord(S2[I])]); //!! Must be replaced by ansi characters !!
  226. Inc(I);
  227. end;
  228. If Result=0 Then
  229. Result:=L1-L2;
  230. end;
  231. function AnsiSameText(const s1,s2:String):Boolean;{$ifdef SYSUTILSINLINE}inline;{$endif}
  232. begin
  233. AnsiSameText:=AnsiCompareText(S1,S2)=0;
  234. end;
  235. function AnsiSameStr(const s1,s2:String):Boolean;{$ifdef SYSUTILSINLINE}inline;{$endif}
  236. begin
  237. AnsiSameStr:=AnsiCompareStr(S1,S2)=0;
  238. end;
  239. function GenericAnsiStrComp(S1, S2: PChar): PtrInt;
  240. begin
  241. Result:=0;
  242. If S1=Nil then
  243. begin
  244. If S2=Nil Then Exit;
  245. result:=-1;
  246. exit;
  247. end;
  248. If S2=Nil then
  249. begin
  250. Result:=1;
  251. exit;
  252. end;
  253. Repeat
  254. Result:=Ord(S1^)-Ord(S2^); //!! Must be replaced by ansi characters !!
  255. Inc(S1);
  256. Inc(S2);
  257. Until (Result<>0) or (S1^=#0) or (S2^=#0);
  258. if (Result=0) and (S1^<>S2^) then // loop ended because exactly one has #0
  259. if S1^=#0 then // shorter string is smaller
  260. result:=-1
  261. else
  262. result:=1;
  263. end;
  264. function GenericAnsiStrIComp(S1, S2: PChar): PtrInt;
  265. begin
  266. Result:=0;
  267. If S1=Nil then
  268. begin
  269. If S2=Nil Then Exit;
  270. result:=-1;
  271. exit;
  272. end;
  273. If S2=Nil then
  274. begin
  275. Result:=1;
  276. exit;
  277. end;
  278. Repeat
  279. Result:=Ord(LowerCaseTable[Ord(S1[0])])-Ord(LowerCaseTable[Ord(S2[0])]); //!! Must be replaced by ansi characters !!
  280. Inc(S1);
  281. Inc(S2);
  282. Until (Result<>0) or ((S1[0]=#0) or (S2[0]=#0))
  283. end;
  284. function GenericAnsiStrLComp(S1, S2: PChar; MaxLen: PtrUInt): PtrInt;
  285. Var I : cardinal;
  286. begin
  287. Result:=0;
  288. If MaxLen=0 then exit;
  289. If S1=Nil then
  290. begin
  291. If S2=Nil Then Exit;
  292. result:=-1;
  293. exit;
  294. end;
  295. If S2=Nil then
  296. begin
  297. Result:=1;
  298. exit;
  299. end;
  300. I:=0;
  301. Repeat
  302. Result:=Ord(S1[0])-Ord(S2[0]); //!! Must be replaced by ansi characters !!
  303. Inc(S1);
  304. Inc(S2);
  305. Inc(I);
  306. Until (Result<>0) or ((S1[0]=#0) or (S2[0]=#0)) or (I=MaxLen)
  307. end;
  308. function GenericAnsiStrLIComp(S1, S2: PChar; MaxLen: PtrUInt): PtrInt;
  309. Var I : cardinal;
  310. begin
  311. Result:=0;
  312. If MaxLen=0 then exit;
  313. If S1=Nil then
  314. begin
  315. If S2=Nil Then Exit;
  316. result:=-1;
  317. exit;
  318. end;
  319. If S2=Nil then
  320. begin
  321. Result:=1;
  322. exit;
  323. end;
  324. I:=0;
  325. Repeat
  326. Result:=Ord(LowerCaseTable[Ord(S1[0])])-Ord(LowerCaseTable[Ord(S2[0])]); //!! Must be replaced by ansi characters !!
  327. Inc(S1);
  328. Inc(S2);
  329. Inc(I);
  330. Until (Result<>0) or ((S1[0]=#0) or (S2[0]=#0)) or (I=MaxLen)
  331. end;
  332. function GenericAnsiStrLower(Str: PChar): PChar;
  333. begin
  334. result := Str;
  335. if Str <> Nil then begin
  336. while Str^ <> #0 do begin
  337. Str^ := LowerCaseTable[byte(Str^)];
  338. Str := Str + 1;
  339. end;
  340. end;
  341. end;
  342. function GenericAnsiStrUpper(Str: PChar): PChar;
  343. begin
  344. result := Str;
  345. if Str <> Nil then begin
  346. while Str^ <> #0 do begin
  347. Str^ := UpperCaseTable[byte(Str^)];
  348. Str := Str + 1;
  349. end ;
  350. end ;
  351. end ;
  352. function AnsiLastChar(const S: string): PChar;
  353. begin
  354. //!! No multibyte yet, so we return the last one.
  355. result:=StrEnd(Pchar(S));
  356. Dec(Result);
  357. end ;
  358. function AnsiStrLastChar(Str: PChar): PChar;
  359. begin
  360. //!! No multibyte yet, so we return the last one.
  361. result:=StrEnd(Str);
  362. Dec(Result);
  363. end ;
  364. function AnsiUpperCase(const s: string): string;{$ifdef SYSUTILSINLINE}inline;{$endif}
  365. begin
  366. result:=widestringmanager.UpperAnsiStringProc(s);
  367. end;
  368. function AnsiLowerCase(const s: string): string;{$ifdef SYSUTILSINLINE}inline;{$endif}
  369. begin
  370. result:=widestringmanager.LowerAnsiStringProc(s);
  371. end;
  372. function AnsiCompareStr(const S1, S2: string): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  373. begin
  374. result:=widestringmanager.CompareStrAnsiStringProc(s1,s2);
  375. end;
  376. function AnsiCompareText(const S1, S2: string): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  377. begin
  378. result:=widestringmanager.CompareTextAnsiStringProc(s1,s2);
  379. end;
  380. function AnsiStrComp(S1, S2: PChar): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  381. begin
  382. result:=widestringmanager.StrCompAnsiStringProc(s1,s2);
  383. end;
  384. function AnsiStrIComp(S1, S2: PChar): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  385. begin
  386. result:=widestringmanager.StrICompAnsiStringProc(s1,s2);
  387. end;
  388. function AnsiStrLComp(S1, S2: PChar; MaxLen: cardinal): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  389. begin
  390. result:=widestringmanager.StrLCompAnsiStringProc(s1,s2,maxlen);
  391. end;
  392. function AnsiStrLIComp(S1, S2: PChar; MaxLen: cardinal): integer;{$ifdef SYSUTILSINLINE}inline;{$endif}
  393. begin
  394. result:=widestringmanager.StrLICompAnsiStringProc(s1,s2,maxlen);
  395. end;
  396. function AnsiStrLower(Str: PChar): PChar;{$ifdef SYSUTILSINLINE}inline;{$endif}
  397. begin
  398. result:=widestringmanager.StrLowerAnsiStringProc(Str);
  399. end;
  400. function AnsiStrUpper(Str: PChar): PChar;{$ifdef SYSUTILSINLINE}inline;{$endif}
  401. begin
  402. result:=widestringmanager.StrUpperAnsiStringProc(Str);
  403. end;
  404. {==============================================================================}
  405. { End of Ansi functions }
  406. {==============================================================================}
  407. { Trim returns a copy of S with blanks characters on the left and right stripped off }
  408. Const WhiteSpace = [#0..' '];
  409. function Trim(const S: string): string;
  410. var Ofs, Len: integer;
  411. begin
  412. len := Length(S);
  413. while (Len>0) and (S[Len] in WhiteSpace) do
  414. dec(Len);
  415. Ofs := 1;
  416. while (Ofs<=Len) and (S[Ofs] in WhiteSpace) do
  417. Inc(Ofs);
  418. result := Copy(S, Ofs, 1 + Len - Ofs);
  419. end ;
  420. { TrimLeft returns a copy of S with all blank characters on the left stripped off }
  421. function TrimLeft(const S: string): string;
  422. var i,l:integer;
  423. begin
  424. l := length(s);
  425. i := 1;
  426. while (i<=l) and (s[i] in whitespace) do
  427. inc(i);
  428. Result := copy(s, i, l);
  429. end ;
  430. { TrimRight returns a copy of S with all blank characters on the right stripped off }
  431. function TrimRight(const S: string): string;
  432. var l:integer;
  433. begin
  434. l := length(s);
  435. while (l>0) and (s[l] in whitespace) do
  436. dec(l);
  437. result := copy(s,1,l);
  438. end ;
  439. { QuotedStr returns S quoted left and right and every single quote in S
  440. replaced by two quotes }
  441. function QuotedStr(const S: string): string;
  442. begin
  443. result := AnsiQuotedStr(s, '''');
  444. end ;
  445. { AnsiQuotedStr returns S quoted left and right by Quote,
  446. and every single occurance of Quote replaced by two }
  447. function AnsiQuotedStr(const S: string; Quote: char): string;
  448. var i, j, count: integer;
  449. begin
  450. result := '' + Quote;
  451. count := length(s);
  452. i := 0;
  453. j := 0;
  454. while i < count do begin
  455. i := i + 1;
  456. if S[i] = Quote then begin
  457. result := result + copy(S, 1 + j, i - j) + Quote;
  458. j := i;
  459. end ;
  460. end ;
  461. if i <> j then
  462. result := result + copy(S, 1 + j, i - j);
  463. result := result + Quote;
  464. end ;
  465. { AnsiExtractQuotedStr returns a copy of Src with quote characters
  466. deleted to the left and right and double occurances
  467. of Quote replaced by a single Quote }
  468. function AnsiExtractQuotedStr(var Src: PChar; Quote: Char): string;
  469. var
  470. P,Q,R: PChar;
  471. begin
  472. P := Src;
  473. Q := StrEnd(P);
  474. result:='';
  475. if P=Q then exit;
  476. if P^<>quote then exit;
  477. inc(p);
  478. setlength(result,(Q-P)+1);
  479. R:=@Result[1];
  480. while P <> Q do
  481. begin
  482. R^:=P^;
  483. inc(R);
  484. if (P^ = Quote) then
  485. begin
  486. P := P + 1;
  487. if (p^ <> Quote) then
  488. begin
  489. dec(R);
  490. break;
  491. end;
  492. end;
  493. P := P + 1;
  494. end ;
  495. src:=p;
  496. SetLength(result, (R-pchar(@Result[1])));
  497. end ;
  498. { AdjustLineBreaks returns S with all CR characters not followed by LF
  499. replaced with CR/LF }
  500. // under Linux all CR characters or CR/LF combinations should be replaced with LF
  501. function AdjustLineBreaks(const S: string): string;
  502. begin
  503. Result:=AdjustLineBreaks(S,DefaultTextLineBreakStyle);
  504. end;
  505. function AdjustLineBreaks(const S: string; Style: TTextLineBreakStyle): string;
  506. var
  507. Source,Dest: PChar;
  508. DestLen: Integer;
  509. I,J,L: Longint;
  510. begin
  511. Source:=Pointer(S);
  512. L:=Length(S);
  513. DestLen:=L;
  514. I:=1;
  515. while (I<=L) do
  516. begin
  517. case S[i] of
  518. #10: if (Style=tlbsCRLF) then
  519. Inc(DestLen);
  520. #13: if (Style=tlbsCRLF) then
  521. if (I<L) and (S[i+1]=#10) then
  522. Inc(I)
  523. else
  524. Inc(DestLen)
  525. else if (I<L) and (S[I+1]=#10) then
  526. Dec(DestLen);
  527. end;
  528. Inc(I);
  529. end;
  530. if (DestLen=L) then
  531. Result:=S
  532. else
  533. begin
  534. SetLength(Result, DestLen);
  535. FillChar(Result[1],DestLen,0);
  536. Dest := Pointer(Result);
  537. J:=0;
  538. I:=0;
  539. While I<L do
  540. case Source[I] of
  541. #10: begin
  542. if Style=tlbsCRLF then
  543. begin
  544. Dest[j]:=#13;
  545. Inc(J);
  546. end;
  547. Dest[J] := #10;
  548. Inc(J);
  549. Inc(I);
  550. end;
  551. #13: begin
  552. if Style=tlbsCRLF then
  553. begin
  554. Dest[j] := #13;
  555. Inc(J);
  556. end;
  557. Dest[j]:=#10;
  558. Inc(J);
  559. Inc(I);
  560. if Source[I]=#10 then
  561. Inc(I);
  562. end;
  563. else
  564. Dest[j]:=Source[i];
  565. Inc(J);
  566. Inc(I);
  567. end;
  568. end;
  569. end;
  570. { IsValidIdent returns true if the first character of Ident is in:
  571. 'A' to 'Z', 'a' to 'z' or '_' and the following characters are
  572. on of: 'A' to 'Z', 'a' to 'z', '0'..'9' or '_' }
  573. function IsValidIdent(const Ident: string): boolean;
  574. var i, len: integer;
  575. begin
  576. result := false;
  577. len := length(Ident);
  578. if len <> 0 then begin
  579. result := Ident[1] in ['A'..'Z', 'a'..'z', '_'];
  580. i := 1;
  581. while (result) and (i < len) do begin
  582. i := i + 1;
  583. result := result and (Ident[i] in ['A'..'Z', 'a'..'z', '0'..'9', '_']);
  584. end ;
  585. end ;
  586. end ;
  587. { IntToStr returns a string representing the value of Value }
  588. function IntToStr(Value: integer): string;
  589. begin
  590. System.Str(Value, result);
  591. end ;
  592. function IntToStr(Value: int64): string;
  593. begin
  594. System.Str(Value, result);
  595. end ;
  596. function IntToStr(Value: QWord): string;
  597. begin
  598. System.Str(Value, result);
  599. end ;
  600. { IntToHex returns a string representing the hexadecimal value of Value }
  601. const
  602. HexDigits: array[0..15] of char = '0123456789ABCDEF';
  603. function IntToHex(Value: integer; Digits: integer): string;
  604. var i: integer;
  605. begin
  606. SetLength(result, digits);
  607. for i := 0 to digits - 1 do
  608. begin
  609. result[digits - i] := HexDigits[value and 15];
  610. value := value shr 4;
  611. end ;
  612. while value <> 0 do begin
  613. result := HexDigits[value and 15] + result;
  614. value := value shr 4;
  615. end;
  616. end ;
  617. function IntToHex(Value: int64; Digits: integer): string;
  618. var i: integer;
  619. begin
  620. SetLength(result, digits);
  621. for i := 0 to digits - 1 do
  622. begin
  623. result[digits - i] := HexDigits[value and 15];
  624. value := value shr 4;
  625. end ;
  626. while value <> 0 do begin
  627. result := HexDigits[value and 15] + result;
  628. value := value shr 4;
  629. end;
  630. end ;
  631. function TryStrToInt(const s: string; var i : integer) : boolean;
  632. var Error : word;
  633. begin
  634. Val(s, i, Error);
  635. TryStrToInt:=Error=0
  636. end;
  637. { StrToInt converts the string S to an integer value,
  638. if S does not represent a valid integer value EConvertError is raised }
  639. function StrToInt(const S: string): integer;
  640. var Error: word;
  641. begin
  642. Val(S, result, Error);
  643. if Error <> 0 then raise EConvertError.createfmt(SInvalidInteger,[S]);
  644. end ;
  645. function StrToInt64(const S: string): int64;
  646. var Error: word;
  647. begin
  648. Val(S, result, Error);
  649. if Error <> 0 then raise EConvertError.createfmt(SInvalidInteger,[S]);
  650. end;
  651. function TryStrToInt64(const s: string; var i : int64) : boolean;
  652. var Error : word;
  653. begin
  654. Val(s, i, Error);
  655. TryStrToInt64:=Error=0
  656. end;
  657. function StrToQWord(const s: string): QWord;
  658. var Error: word;
  659. begin
  660. Val(S, result, Error);
  661. if Error <> 0 then raise EConvertError.createfmt(SInvalidInteger,[S]);
  662. end;
  663. function TryStrToQWord(const s: string; var Q: QWord): boolean;
  664. var Error : word;
  665. begin
  666. Val(s, Q, Error);
  667. TryStrToQWord:=Error=0
  668. end;
  669. { StrToIntDef converts the string S to an integer value,
  670. Default is returned in case S does not represent a valid integer value }
  671. function StrToIntDef(const S: string; Default: integer): integer;
  672. var Error: word;
  673. begin
  674. Val(S, result, Error);
  675. if Error <> 0 then result := Default;
  676. end ;
  677. { StrToInt64Def converts the string S to an int64 value,
  678. Default is returned in case S does not represent a valid int64 value }
  679. function StrToInt64Def(const S: string; Default: int64): int64;
  680. var Error: word;
  681. begin
  682. Val(S, result, Error);
  683. if Error <> 0 then result := Default;
  684. end ;
  685. { StrToQWordDef converts the string S to an QWord value,
  686. Default is returned in case S does not represent a valid QWord value }
  687. function StrToQWordDef(const S: string; Default: QWord): QWord;
  688. var Error: word;
  689. begin
  690. Val(S, result, Error);
  691. if Error <> 0 then result := Default;
  692. end;
  693. { LoadStr returns the string resource Ident. }
  694. function LoadStr(Ident: integer): string;
  695. begin
  696. result:='';
  697. end ;
  698. { FmtLoadStr returns the string resource Ident and formats it accordingly }
  699. function FmtLoadStr(Ident: integer; const Args: array of const): string;
  700. begin
  701. result:='';
  702. end;
  703. Const
  704. feInvalidFormat = 1;
  705. feMissingArgument = 2;
  706. feInvalidArgIndex = 3;
  707. {$ifdef fmtdebug}
  708. Procedure Log (Const S: String);
  709. begin
  710. Writeln (S);
  711. end;
  712. {$endif}
  713. Procedure DoFormatError (ErrCode : Longint);
  714. Var
  715. S : String;
  716. begin
  717. //!! must be changed to contain format string...
  718. S:='';
  719. Case ErrCode of
  720. feInvalidFormat : raise EConvertError.Createfmt(SInvalidFormat,[s]);
  721. feMissingArgument : raise EConvertError.Createfmt(SArgumentMissing,[s]);
  722. feInvalidArgIndex : raise EConvertError.Createfmt(SInvalidArgIndex,[s]);
  723. end;
  724. end;
  725. { we've no templates, but with includes we can simulate this :) }
  726. {$macro on}
  727. {$define INFORMAT}
  728. {$define TFormatString:=ansistring}
  729. {$define TFormatChar:=char}
  730. Function Format (Const Fmt : AnsiString; const Args : Array of const) : AnsiString;
  731. {$i sysformt.inc}
  732. {$undef TFormatString}
  733. {$undef TFormatChar}
  734. {$undef INFORMAT}
  735. {$macro off}
  736. Function FormatBuf (Var Buffer; BufLen : Cardinal;
  737. Const Fmt; fmtLen : Cardinal;
  738. Const Args : Array of const) : Cardinal;
  739. Var S,F : String;
  740. begin
  741. Setlength(F,fmtlen);
  742. if fmtlen > 0 then
  743. Move(fmt,F[1],fmtlen);
  744. S:=Format (F,Args);
  745. If Cardinal(Length(S))<Buflen then
  746. Result:=Length(S)
  747. else
  748. Result:=Buflen;
  749. Move(S[1],Buffer,Result);
  750. end;
  751. Procedure FmtStr(Var Res: String; Const Fmt : String; Const args: Array of const);
  752. begin
  753. Res:=Format(fmt,Args);
  754. end;
  755. Function StrFmt(Buffer,Fmt : PChar; Const args: Array of const) : Pchar;
  756. begin
  757. Buffer[FormatBuf(Buffer^,Maxint,Fmt^,strlen(fmt),args)]:=#0;
  758. Result:=Buffer;
  759. end;
  760. Function StrLFmt(Buffer : PCHar; Maxlen : Cardinal;Fmt : PChar; Const args: Array of const) : Pchar;
  761. begin
  762. Buffer[FormatBuf(Buffer^,MaxLen,Fmt^,strlen(fmt),args)]:=#0;
  763. Result:=Buffer;
  764. end;
  765. Function StrToFloat(Const S: String): Extended;
  766. Begin
  767. If Not TextToFloat(Pchar(S),Result) then
  768. Raise EConvertError.createfmt(SInValidFLoat,[S]);
  769. End;
  770. function StrToFloatDef(const S: string; const Default: Extended): Extended;
  771. begin
  772. if not TextToFloat(PChar(S),Result,fvExtended) then
  773. Result:=Default;
  774. end;
  775. Function TextToFloat(Buffer: PChar; Var Value: Extended): Boolean;
  776. Var
  777. E,P : Integer;
  778. S : String;
  779. Begin
  780. S:=StrPas(Buffer);
  781. P:=Pos(DecimalSeparator,S);
  782. If (P<>0) Then
  783. S[P] := '.';
  784. Val(trim(S),Value,E);
  785. Result:=(E=0);
  786. End;
  787. Function TextToFloat(Buffer: PChar; Var Value; ValueType: TFloatValue): Boolean;
  788. Var
  789. E,P : Integer;
  790. S : String;
  791. TempValue: extended;
  792. Begin
  793. S:=StrPas(Buffer);
  794. P:=Pos(ThousandSeparator,S);
  795. While (P<>0) do
  796. begin
  797. Delete(S,P,1);
  798. P:=Pos(ThousandSeparator,S);
  799. end;
  800. P:=Pos(DecimalSeparator,S);
  801. If (P<>0) Then
  802. S[P] := '.';
  803. case ValueType of
  804. fvCurrency:
  805. begin
  806. // needed for platforms where Currency = Int64
  807. Val(S,TempValue,E);
  808. Currency(Value) := TempValue;
  809. end;
  810. fvExtended:
  811. Val(S,Extended(Value),E);
  812. fvDouble:
  813. Val(S,Double(Value),E);
  814. fvSingle:
  815. Val(S,Single(Value),E);
  816. fvComp:
  817. Val(S,Comp(Value),E);
  818. fvReal:
  819. Val(S,Real(Value),E);
  820. end;
  821. Result:=(E=0);
  822. End;
  823. Function TryStrToFloat(Const S : String; Var Value: Single): Boolean;
  824. Begin
  825. Result := TextToFloat(PChar(S), Value, fvSingle);
  826. End;
  827. Function TryStrToFloat(Const S : String; Var Value: Double): Boolean;
  828. Begin
  829. Result := TextToFloat(PChar(S), Value, fvDouble);
  830. End;
  831. {$ifdef FPC_HAS_TYPE_EXTENDED}
  832. Function TryStrToFloat(Const S : String; Var Value: Extended): Boolean;
  833. Begin
  834. Result := TextToFloat(PChar(S), Value);
  835. End;
  836. {$endif FPC_HAS_TYPE_EXTENDED}
  837. const
  838. {$ifdef FPC_HAS_TYPE_EXTENDED}
  839. maxdigits = 17;
  840. {$else}
  841. maxdigits = 14;
  842. {$endif}
  843. Function FloatToStrFIntl(Value: Extended; format: TFloatFormat; Precision, Digits: Integer; ValueType: TFloatValue): String;
  844. Var
  845. P: Integer;
  846. Negative, TooSmall, TooLarge: Boolean;
  847. Begin
  848. Case format Of
  849. ffGeneral:
  850. Begin
  851. If (Precision = -1) Or (Precision > maxdigits) Then Precision := maxdigits;
  852. TooSmall := (Abs(Value) < 0.00001) and (Value>0.0);
  853. If Not TooSmall Then
  854. Begin
  855. case ValueType of
  856. fvDouble:
  857. Str(Double(Value):digits:precision, Result);
  858. fvSingle:
  859. Str(Single(Value):digits:precision, Result);
  860. else
  861. Str(Extended(Value):digits:precision, Result);
  862. end;
  863. P := Pos('.', Result);
  864. if P<>0 then
  865. Result[P] := DecimalSeparator;
  866. TooLarge :=(P > Precision + 1) or (Pos('E', Result)<>0);
  867. End;
  868. If TooSmall Or TooLarge Then
  869. begin
  870. Result := FloatToStrF(Value, ffExponent, Precision, Digits);
  871. // Strip unneeded zeroes.
  872. P:=Pos('E',result)-1;
  873. If P<>-1 then
  874. begin
  875. { delete superfluous +? }
  876. if result[p+2]='+' then
  877. system.Delete(Result,P+2,1);
  878. While (P>1) and (Result[P]='0') do
  879. begin
  880. system.Delete(Result,P,1);
  881. Dec(P);
  882. end;
  883. If (P>0) and (Result[P]=DecimalSeparator) Then
  884. begin
  885. system.Delete(Result,P,1);
  886. Dec(P);
  887. end;
  888. end;
  889. end
  890. else if (P<>0) then // we have a decimalseparator
  891. begin
  892. { it seems that in this unit "precision" must mean "number of }
  893. { significant digits" rather than "number of digits after the }
  894. { decimal point" (as it does in the system unit) -> adjust }
  895. { (precision+1 to count the decimal point character) }
  896. if (Length(Result) > Precision + 1) and
  897. (Precision + 1 > P) then
  898. begin
  899. P := Precision + 1;
  900. SetLength(Result,P);
  901. end;
  902. P := Length(Result);
  903. While (P>0) and (Result[P] = '0') Do
  904. Dec(P);
  905. If (P>0) and (Result[P]=DecimalSeparator) Then
  906. Dec(P);
  907. SetLength(Result, P);
  908. end;
  909. End;
  910. ffExponent:
  911. Begin
  912. If (Precision = -1) Or (Precision > maxdigits) Then Precision := maxdigits;
  913. case ValueType of
  914. fvDouble:
  915. Str(Double(Value):Precision+8, Result);
  916. fvSingle:
  917. Str(Single(Value):Precision+8, Result);
  918. else
  919. Str(Extended(Value):Precision+8, Result);
  920. end;
  921. Result[3] := DecimalSeparator;
  922. P:=4;
  923. While (P>0) and (Digits < P) And (Result[Precision + 5] = '0') do
  924. Begin
  925. If P<>1 then
  926. system.Delete(Result, Precision + 5, 1)
  927. else
  928. system.Delete(Result, Precision + 3, 3);
  929. Dec(P);
  930. end;
  931. If Result[1] = ' ' Then
  932. System.Delete(Result, 1, 1);
  933. End;
  934. ffFixed:
  935. Begin
  936. If Digits = -1 Then Digits := 2
  937. Else If Digits > 18 Then Digits := 18;
  938. case ValueType of
  939. fvDouble:
  940. Str(Double(Value):0:Digits, Result);
  941. fvSingle:
  942. Str(Single(Value):0:Digits, Result);
  943. else
  944. Str(Extended(Value):0:Digits, Result);
  945. end;
  946. If Result[1] = ' ' Then
  947. System.Delete(Result, 1, 1);
  948. P := Pos('.', Result);
  949. If P <> 0 Then Result[P] := DecimalSeparator;
  950. End;
  951. ffNumber:
  952. Begin
  953. If Digits = -1 Then Digits := 2
  954. Else If Digits > maxdigits Then Digits := maxdigits;
  955. case ValueType of
  956. fvDouble:
  957. Str(Double(Value):0:Digits, Result);
  958. fvSingle:
  959. Str(Single(Value):0:Digits, Result);
  960. else
  961. Str(Extended(Value):0:Digits, Result);
  962. end;
  963. If Result[1] = ' ' Then System.Delete(Result, 1, 1);
  964. P := Pos('.', Result);
  965. If P <> 0 Then
  966. Result[P] := DecimalSeparator
  967. else
  968. P := Length(Result)+1;
  969. Dec(P, 3);
  970. While (P > 1) Do
  971. Begin
  972. If Result[P - 1] <> '-' Then Insert(ThousandSeparator, Result, P);
  973. Dec(P, 3);
  974. End;
  975. End;
  976. ffCurrency:
  977. Begin
  978. If Value < 0 Then
  979. Begin
  980. Negative := True;
  981. Value := -Value;
  982. End
  983. Else Negative := False;
  984. If Digits = -1 Then Digits := CurrencyDecimals
  985. Else If Digits > 18 Then Digits := 18;
  986. case ValueType of
  987. fvDouble:
  988. Str(Double(Value):0:Digits, Result);
  989. fvSingle:
  990. Str(Single(Value):0:Digits, Result);
  991. else
  992. Str(Extended(Value):0:Digits, Result);
  993. end;
  994. If Result[1] = ' ' Then System.Delete(Result, 1, 1);
  995. P := Pos('.', Result);
  996. If P <> 0 Then Result[P] := DecimalSeparator;
  997. Dec(P, 3);
  998. While (P > 1) Do
  999. Begin
  1000. Insert(ThousandSeparator, Result, P);
  1001. Dec(P, 3);
  1002. End;
  1003. If Not Negative Then
  1004. Begin
  1005. Case CurrencyFormat Of
  1006. 0: Result := CurrencyString + Result;
  1007. 1: Result := Result + CurrencyString;
  1008. 2: Result := CurrencyString + ' ' + Result;
  1009. 3: Result := Result + ' ' + CurrencyString;
  1010. End
  1011. End
  1012. Else
  1013. Begin
  1014. Case NegCurrFormat Of
  1015. 0: Result := '(' + CurrencyString + Result + ')';
  1016. 1: Result := '-' + CurrencyString + Result;
  1017. 2: Result := CurrencyString + '-' + Result;
  1018. 3: Result := CurrencyString + Result + '-';
  1019. 4: Result := '(' + Result + CurrencyString + ')';
  1020. 5: Result := '-' + Result + CurrencyString;
  1021. 6: Result := Result + '-' + CurrencyString;
  1022. 7: Result := Result + CurrencyString + '-';
  1023. 8: Result := '-' + Result + ' ' + CurrencyString;
  1024. 9: Result := '-' + CurrencyString + ' ' + Result;
  1025. 10: Result := CurrencyString + ' ' + Result + '-';
  1026. End;
  1027. End;
  1028. End;
  1029. End;
  1030. End;
  1031. {$ifdef FPC_HAS_TYPE_EXTENDED}
  1032. Function FloatToStr(Value: Extended): String;
  1033. Begin
  1034. Result := FloatToStrFIntl(Value, ffGeneral, 15, 0, fvExtended);
  1035. End;
  1036. {$endif FPC_HAS_TYPE_EXTENDED}
  1037. Function FloatToStr(Value: Currency): String;
  1038. Begin
  1039. Result := FloatToStrFIntl(Value, ffGeneral, 15, 0, fvCurrency);
  1040. End;
  1041. Function FloatToStr(Value: Double): String;
  1042. Begin
  1043. Result := FloatToStrFIntl(Value, ffGeneral, 15, 0, fvDouble);
  1044. End;
  1045. Function FloatToStr(Value: Single): String;
  1046. Begin
  1047. Result := FloatToStrFIntl(Value, ffGeneral, 15, 0, fvSingle);
  1048. End;
  1049. Function FloatToStr(Value: Comp): String;
  1050. Begin
  1051. Result := FloatToStrFIntl(Value, ffGeneral, 15, 0, fvComp);
  1052. End;
  1053. {$ifndef FPC_COMP_IS_INT64}
  1054. Function FloatToStr(Value: Int64): String;
  1055. Begin
  1056. Result := FloatToStrFIntl(Comp(Value), ffGeneral, 15, 0, fvComp);
  1057. End;
  1058. {$endif FPC_COMP_IS_INT64}
  1059. Function FloatToText(Buffer: PChar; Value: Extended; format: TFloatFormat; Precision, Digits: Integer): Longint;
  1060. Var
  1061. Tmp: String[40];
  1062. Begin
  1063. Tmp := FloatToStrF(Value, format, Precision, Digits);
  1064. Result := Length(Tmp);
  1065. Move(Tmp[1], Buffer[0], Result);
  1066. End;
  1067. {$ifdef FPC_HAS_TYPE_EXTENDED}
  1068. Function FloatToStrF(Value: Extended; format: TFloatFormat; Precision, Digits: Integer): String;
  1069. begin
  1070. result := FloatToStrFIntl(value,format,precision,digits,fvExtended);
  1071. end;
  1072. {$endif}
  1073. Function FloatToStrF(Value: Currency; format: TFloatFormat; Precision, Digits: Integer): String;
  1074. begin
  1075. result := FloatToStrFIntl(value,format,precision,digits,fvCurrency);
  1076. end;
  1077. Function FloatToStrF(Value: Double; format: TFloatFormat; Precision, Digits: Integer): String;
  1078. begin
  1079. result := FloatToStrFIntl(value,format,precision,digits,fvDouble);
  1080. end;
  1081. Function FloatToStrF(Value: Single; format: TFloatFormat; Precision, Digits: Integer): String;
  1082. begin
  1083. result := FloatToStrFIntl(value,format,precision,digits,fvSingle);
  1084. end;
  1085. Function FloatToStrF(Value: Comp; format: TFloatFormat; Precision, Digits: Integer): String;
  1086. begin
  1087. result := FloatToStrFIntl(value,format,precision,digits,fvComp);
  1088. end;
  1089. {$ifndef FPC_COMP_IS_INT64}
  1090. Function FloatToStrF(Value: Int64; format: TFloatFormat; Precision, Digits: Integer): String;
  1091. begin
  1092. result := FloatToStrFIntl(Comp(value),format,precision,digits,fvComp);
  1093. end;
  1094. {$endif FPC_COMP_IS_INT64}
  1095. Function CurrToStrF(Value: Currency; Format: TFloatFormat; Digits: Integer): string;
  1096. begin
  1097. result:=FloatToStrF(Value,Format,19,Digits);
  1098. end;
  1099. Function FloatToDateTime (Const Value : Extended) : TDateTime;
  1100. begin
  1101. If (Value<MinDateTime) or (Value>MaxDateTime) then
  1102. Raise EConvertError.CreateFmt (SInvalidDateTime,[Value]);
  1103. Result:=Value;
  1104. end;
  1105. function TryFloatToCurr(const Value: Extended; var AResult: Currency): Boolean;
  1106. begin
  1107. Result:=(Value>=MinCurrency) and (Value<=MaxCurrency);
  1108. if Result then
  1109. AResult := Value;
  1110. end;
  1111. function FloatToCurr(const Value: Extended): Currency;
  1112. begin
  1113. if not TryFloatToCurr(Value, Result) then
  1114. Raise EConvertError.CreateFmt(SInvalidCurrency, [FloatToStr(Value)]);
  1115. end;
  1116. Function CurrToStr(Value: Currency): string;
  1117. begin
  1118. Result:=FloatToStrF(Value,ffNumber,15,2);
  1119. end;
  1120. function AnsiDequotedStr(const S: string; AQuote: Char): string;
  1121. var p : pchar;
  1122. begin
  1123. p:=pchar(s); // work around CONST
  1124. result:=AnsiExtractquotedStr(p,AQuote);
  1125. if result='' Then
  1126. result:=s;
  1127. end;
  1128. function StrToCurr(const S: string): Currency;
  1129. begin
  1130. if not TextToFloat(PChar(S), Result, fvCurrency) then
  1131. Raise EConvertError.createfmt(SInValidFLoat,[S]);
  1132. end;
  1133. Function TryStrToCurr(Const S : String; Var Value: Currency): Boolean;
  1134. Begin
  1135. Result := TextToFloat(PChar(S), Value, fvCurrency);
  1136. End;
  1137. function StrToCurrDef(const S: string; Default : Currency): Currency;
  1138. begin
  1139. if not TextToFloat(PChar(S), Result, fvCurrency) then
  1140. Result:=Default;
  1141. end;
  1142. function StrToBool(const S: string): Boolean;
  1143. begin
  1144. if not(TryStrToBool(S,Result)) then
  1145. Raise EConvertError.CreateFmt(SInvalidBoolean,[S]);
  1146. end;
  1147. function BoolToStr(B: Boolean;UseBoolStrs:Boolean=False): string;
  1148. procedure CheckStrs;
  1149. begin
  1150. If Length(TrueBoolStrs)=0 then
  1151. begin
  1152. SetLength(TrueBoolStrs,1);
  1153. TrueBoolStrs[0]:='True';
  1154. end;
  1155. If Length(FalseBoolStrs)=0 then
  1156. begin
  1157. SetLength(FalseBoolStrs,1);
  1158. FalseBoolStrs[0]:='False';
  1159. end;
  1160. end;
  1161. begin
  1162. if UseBoolStrs Then
  1163. begin
  1164. CheckStrs;
  1165. if B then
  1166. Result:=TrueBoolStrs[0]
  1167. else
  1168. Result:=FalseBoolStrs[0];
  1169. end
  1170. else
  1171. If B then
  1172. Result:='-1'
  1173. else
  1174. Result:='0';
  1175. end;
  1176. function StrToBoolDef(const S: string; Default: Boolean): Boolean;
  1177. begin
  1178. if not(TryStrToBool(S,Result)) then
  1179. Result:=Default;
  1180. end;
  1181. function TryStrToBool(const S: string; out Value: Boolean): Boolean;
  1182. Var
  1183. Temp : String;
  1184. D : Double;
  1185. Code: word;
  1186. begin
  1187. Temp:=upcase(S);
  1188. Val(temp,D,code);
  1189. Result:=true;
  1190. If Code=0 then
  1191. Value:=(D<>0.0)
  1192. else If Temp='TRUE' then
  1193. Value:=true
  1194. else if Temp='FALSE' then
  1195. Value:=false
  1196. else
  1197. Result:=false;
  1198. end;
  1199. Function FloatToTextFmt(Buffer: PChar; Value: Extended; format: PChar): Integer;
  1200. Var
  1201. Digits: String[40]; { String Of Digits }
  1202. Exponent: String[8]; { Exponent strin }
  1203. FmtStart, FmtStop: PChar; { Start And End Of relevant part }
  1204. { Of format String }
  1205. ExpFmt, ExpSize: Integer; { Type And Length Of }
  1206. { exponential format chosen }
  1207. Placehold: Array[1..4] Of Integer; { Number Of placeholders In All }
  1208. { four Sections }
  1209. thousand: Boolean; { thousand separators? }
  1210. UnexpectedDigits: Integer; { Number Of unexpected Digits that }
  1211. { have To be inserted before the }
  1212. { First placeholder. }
  1213. DigitExponent: Integer; { Exponent Of First digit In }
  1214. { Digits Array. }
  1215. { Find end of format section starting at P. False, if empty }
  1216. Function GetSectionEnd(Var P: PChar): Boolean;
  1217. Var
  1218. C: Char;
  1219. SQ, DQ: Boolean;
  1220. Begin
  1221. Result := False;
  1222. SQ := False;
  1223. DQ := False;
  1224. C := P[0];
  1225. While (C<>#0) And ((C<>';') Or SQ Or DQ) Do
  1226. Begin
  1227. Result := True;
  1228. Case C Of
  1229. #34: If Not SQ Then DQ := Not DQ;
  1230. #39: If Not DQ Then SQ := Not SQ;
  1231. End;
  1232. Inc(P);
  1233. C := P[0];
  1234. End;
  1235. End;
  1236. { Find start and end of format section to apply. If section doesn't exist,
  1237. use section 1. If section 2 is used, the sign of value is ignored. }
  1238. Procedure GetSectionRange(section: Integer);
  1239. Var
  1240. Sec: Array[1..3] Of PChar;
  1241. SecOk: Array[1..3] Of Boolean;
  1242. Begin
  1243. Sec[1] := format;
  1244. SecOk[1] := GetSectionEnd(Sec[1]);
  1245. If section > 1 Then
  1246. Begin
  1247. Sec[2] := Sec[1];
  1248. If Sec[2][0] <> #0 Then
  1249. Inc(Sec[2]);
  1250. SecOk[2] := GetSectionEnd(Sec[2]);
  1251. If section > 2 Then
  1252. Begin
  1253. Sec[3] := Sec[2];
  1254. If Sec[3][0] <> #0 Then
  1255. Inc(Sec[3]);
  1256. SecOk[3] := GetSectionEnd(Sec[3]);
  1257. End;
  1258. End;
  1259. If Not SecOk[1] Then
  1260. FmtStart := Nil
  1261. Else
  1262. Begin
  1263. If Not SecOk[section] Then
  1264. section := 1
  1265. Else If section = 2 Then
  1266. Value := -Value; { Remove sign }
  1267. If section = 1 Then FmtStart := format Else
  1268. Begin
  1269. FmtStart := Sec[section - 1];
  1270. Inc(FmtStart);
  1271. End;
  1272. FmtStop := Sec[section];
  1273. End;
  1274. End;
  1275. { Find format section ranging from FmtStart to FmtStop. }
  1276. Procedure GetFormatOptions;
  1277. Var
  1278. Fmt: PChar;
  1279. SQ, DQ: Boolean;
  1280. area: Integer;
  1281. Begin
  1282. SQ := False;
  1283. DQ := False;
  1284. Fmt := FmtStart;
  1285. ExpFmt := 0;
  1286. area := 1;
  1287. thousand := False;
  1288. Placehold[1] := 0;
  1289. Placehold[2] := 0;
  1290. Placehold[3] := 0;
  1291. Placehold[4] := 0;
  1292. While Fmt < FmtStop Do
  1293. Begin
  1294. Case Fmt[0] Of
  1295. #34:
  1296. Begin
  1297. If Not SQ Then
  1298. DQ := Not DQ;
  1299. Inc(Fmt);
  1300. End;
  1301. #39:
  1302. Begin
  1303. If Not DQ Then
  1304. SQ := Not SQ;
  1305. Inc(Fmt);
  1306. End;
  1307. Else
  1308. { This was 'if not SQ or DQ'. Looked wrong... }
  1309. If Not SQ Or DQ Then
  1310. Begin
  1311. Case Fmt[0] Of
  1312. '0':
  1313. Begin
  1314. Case area Of
  1315. 1:
  1316. area := 2;
  1317. 4:
  1318. Begin
  1319. area := 3;
  1320. Inc(Placehold[3], Placehold[4]);
  1321. Placehold[4] := 0;
  1322. End;
  1323. End;
  1324. Inc(Placehold[area]);
  1325. Inc(Fmt);
  1326. End;
  1327. '#':
  1328. Begin
  1329. If area=3 Then
  1330. area:=4;
  1331. Inc(Placehold[area]);
  1332. Inc(Fmt);
  1333. End;
  1334. '.':
  1335. Begin
  1336. If area<3 Then
  1337. area:=3;
  1338. Inc(Fmt);
  1339. End;
  1340. ',':
  1341. Begin
  1342. thousand := True;
  1343. Inc(Fmt);
  1344. End;
  1345. 'e', 'E':
  1346. If ExpFmt = 0 Then
  1347. Begin
  1348. If (Fmt[0]='E') Then
  1349. ExpFmt:=1
  1350. Else
  1351. ExpFmt := 3;
  1352. Inc(Fmt);
  1353. If (Fmt<FmtStop) Then
  1354. Begin
  1355. Case Fmt[0] Of
  1356. '+':
  1357. Begin
  1358. End;
  1359. '-':
  1360. Inc(ExpFmt);
  1361. Else
  1362. ExpFmt := 0;
  1363. End;
  1364. If ExpFmt <> 0 Then
  1365. Begin
  1366. Inc(Fmt);
  1367. ExpSize := 0;
  1368. While (Fmt<FmtStop) And
  1369. (ExpSize<4) And
  1370. (Fmt[0] In ['0'..'9']) Do
  1371. Begin
  1372. Inc(ExpSize);
  1373. Inc(Fmt);
  1374. End;
  1375. End;
  1376. End;
  1377. End
  1378. Else
  1379. Inc(Fmt);
  1380. Else { Case }
  1381. Inc(Fmt);
  1382. End; { Case }
  1383. End; { Begin }
  1384. End; { Case }
  1385. End; { While .. Begin }
  1386. End;
  1387. Procedure FloatToStr;
  1388. Var
  1389. I, J, Exp, Width, Decimals, DecimalPoint, len: Integer;
  1390. Begin
  1391. If ExpFmt = 0 Then
  1392. Begin
  1393. { Fixpoint }
  1394. Decimals:=Placehold[3]+Placehold[4];
  1395. Width:=Placehold[1]+Placehold[2]+Decimals;
  1396. If (Decimals=0) Then
  1397. Str(Value:Width:0,Digits)
  1398. Else
  1399. Str(Value:Width+1:Decimals,Digits);
  1400. len:=Length(Digits);
  1401. { Find the decimal point }
  1402. If (Decimals=0) Then
  1403. DecimalPoint:=len+1
  1404. Else
  1405. DecimalPoint:=len-Decimals;
  1406. { If value is very small, and no decimal places
  1407. are desired, remove the leading 0. }
  1408. If (Abs(Value) < 1) And (Placehold[2] = 0) Then
  1409. Begin
  1410. If (Placehold[1]=0) Then
  1411. Delete(Digits,DecimalPoint-1,1)
  1412. Else
  1413. Digits[DecimalPoint-1]:=' ';
  1414. End;
  1415. { Convert optional zeroes to spaces. }
  1416. I:=len;
  1417. J:=DecimalPoint+Placehold[3];
  1418. While (I>J) And (Digits[I]='0') Do
  1419. Begin
  1420. Digits[I] := ' ';
  1421. Dec(I);
  1422. End;
  1423. { If integer value and no obligatory decimal
  1424. places, remove decimal point. }
  1425. If (DecimalPoint < len) And (Digits[DecimalPoint + 1] = ' ') Then
  1426. Digits[DecimalPoint] := ' ';
  1427. { Convert spaces left from obligatory decimal point to zeroes. }
  1428. I:=DecimalPoint-Placehold[2];
  1429. While (I<DecimalPoint) And (Digits[I]=' ') Do
  1430. Begin
  1431. Digits[I] := '0';
  1432. Inc(I);
  1433. End;
  1434. Exp := 0;
  1435. End
  1436. Else
  1437. Begin
  1438. { Scientific: exactly <Width> Digits With <Precision> Decimals
  1439. And adjusted Exponent. }
  1440. If Placehold[1]+Placehold[2]=0 Then
  1441. Placehold[1]:=1;
  1442. Decimals := Placehold[3] + Placehold[4];
  1443. Width:=Placehold[1]+Placehold[2]+Decimals;
  1444. Str(Value:Width+8,Digits);
  1445. { Find and cut out exponent. Always the
  1446. last 6 characters in the string.
  1447. -> 0000E+0000 }
  1448. I:=Length(Digits)-5;
  1449. Val(Copy(Digits,I+1,5),Exp,J);
  1450. Exp:=Exp+1-(Placehold[1]+Placehold[2]);
  1451. Delete(Digits, I, 6);
  1452. { Str() always returns at least one digit after the decimal point.
  1453. If we don't want it, we have to remove it. }
  1454. If (Decimals=0) And (Placehold[1]+Placehold[2]<= 1) Then
  1455. Begin
  1456. If (Digits[4]>='5') Then
  1457. Begin
  1458. Inc(Digits[2]);
  1459. If (Digits[2]>'9') Then
  1460. Begin
  1461. Digits[2] := '1';
  1462. Inc(Exp);
  1463. End;
  1464. End;
  1465. Delete(Digits, 3, 2);
  1466. DecimalPoint := Length(Digits) + 1;
  1467. End
  1468. Else
  1469. Begin
  1470. { Move decimal point at the desired position }
  1471. Delete(Digits, 3, 1);
  1472. DecimalPoint:=2+Placehold[1]+Placehold[2];
  1473. If (Decimals<>0) Then
  1474. Insert('.',Digits,DecimalPoint);
  1475. End;
  1476. { Convert optional zeroes to spaces. }
  1477. I := Length(Digits);
  1478. J := DecimalPoint + Placehold[3];
  1479. While (I > J) And (Digits[I] = '0') Do
  1480. Begin
  1481. Digits[I] := ' ';
  1482. Dec(I);
  1483. End;
  1484. { If integer number and no obligatory decimal paces, remove decimal point }
  1485. If (DecimalPoint<Length(Digits)) And
  1486. (Digits[DecimalPoint+1]=' ') Then
  1487. Digits[DecimalPoint]:=' ';
  1488. If (Digits[1]=' ') Then
  1489. Begin
  1490. Delete(Digits, 1, 1);
  1491. Dec(DecimalPoint);
  1492. End;
  1493. { Calculate exponent string }
  1494. Str(Abs(Exp), Exponent);
  1495. While Length(Exponent)<ExpSize Do
  1496. Insert('0',Exponent,1);
  1497. If Exp >= 0 Then
  1498. Begin
  1499. If (ExpFmt In [1,3]) Then
  1500. Insert('+', Exponent, 1);
  1501. End
  1502. Else
  1503. Insert('-',Exponent,1);
  1504. If (ExpFmt<3) Then
  1505. Insert('E',Exponent,1)
  1506. Else
  1507. Insert('e',Exponent,1);
  1508. End;
  1509. DigitExponent:=DecimalPoint-2;
  1510. If (Digits[1]='-') Then
  1511. Dec(DigitExponent);
  1512. UnexpectedDigits:=DecimalPoint-1-(Placehold[1]+Placehold[2]);
  1513. End;
  1514. Function PutResult: LongInt;
  1515. Var
  1516. SQ, DQ: Boolean;
  1517. Fmt, Buf: PChar;
  1518. Dig, N: Integer;
  1519. Begin
  1520. SQ := False;
  1521. DQ := False;
  1522. Fmt := FmtStart;
  1523. Buf := Buffer;
  1524. Dig := 1;
  1525. While (Fmt<FmtStop) Do
  1526. Begin
  1527. //Write(Fmt[0]);
  1528. Case Fmt[0] Of
  1529. #34:
  1530. Begin
  1531. If Not SQ Then
  1532. DQ := Not DQ;
  1533. Inc(Fmt);
  1534. End;
  1535. #39:
  1536. Begin
  1537. If Not DQ Then
  1538. SQ := Not SQ;
  1539. Inc(Fmt);
  1540. End;
  1541. Else
  1542. If Not (SQ Or DQ) Then
  1543. Begin
  1544. Case Fmt[0] Of
  1545. '0', '#', '.':
  1546. Begin
  1547. If (Dig=1) And (UnexpectedDigits>0) Then
  1548. Begin
  1549. { Everything unexpected is written before the first digit }
  1550. For N := 1 To UnexpectedDigits Do
  1551. Begin
  1552. Buf[0] := Digits[N];
  1553. Inc(Buf);
  1554. If thousand And (Digits[N]<>'-') Then
  1555. Begin
  1556. If (DigitExponent Mod 3 = 0) And (DigitExponent>0) Then
  1557. Begin
  1558. Buf[0] := ThousandSeparator;
  1559. Inc(Buf);
  1560. End;
  1561. Dec(DigitExponent);
  1562. End;
  1563. End;
  1564. Inc(Dig, UnexpectedDigits);
  1565. End;
  1566. If (Digits[Dig]<>' ') Then
  1567. Begin
  1568. If (Digits[Dig]='.') Then
  1569. Buf[0] := DecimalSeparator
  1570. Else
  1571. Buf[0] := Digits[Dig];
  1572. Inc(Buf);
  1573. If thousand And (DigitExponent Mod 3 = 0) And (DigitExponent > 0) Then
  1574. Begin
  1575. Buf[0] := ThousandSeparator;
  1576. Inc(Buf);
  1577. End;
  1578. End;
  1579. Inc(Dig);
  1580. Dec(DigitExponent);
  1581. Inc(Fmt);
  1582. End;
  1583. 'e', 'E':
  1584. Begin
  1585. If ExpFmt <> 0 Then
  1586. Begin
  1587. Inc(Fmt);
  1588. If Fmt < FmtStop Then
  1589. Begin
  1590. If Fmt[0] In ['+', '-'] Then
  1591. Begin
  1592. Inc(Fmt, ExpSize);
  1593. For N:=1 To Length(Exponent) Do
  1594. Buf[N-1] := Exponent[N];
  1595. Inc(Buf,Length(Exponent));
  1596. ExpFmt:=0;
  1597. End;
  1598. Inc(Fmt);
  1599. End;
  1600. End
  1601. Else
  1602. Begin
  1603. { No legal exponential format.
  1604. Simply write the 'E' to the result. }
  1605. Buf[0] := Fmt[0];
  1606. Inc(Buf);
  1607. Inc(Fmt);
  1608. End;
  1609. End;
  1610. Else { Case }
  1611. { Usual character }
  1612. If (Fmt[0]<>',') Then
  1613. Begin
  1614. Buf[0] := Fmt[0];
  1615. Inc(Buf);
  1616. End;
  1617. Inc(Fmt);
  1618. End; { Case }
  1619. End
  1620. Else { IF }
  1621. Begin
  1622. { Character inside single or double quotes }
  1623. Buf[0] := Fmt[0];
  1624. Inc(Buf);
  1625. Inc(Fmt);
  1626. End;
  1627. End; { Case }
  1628. End; { While .. Begin }
  1629. Result:=PtrInt(Buf)-PtrInt(Buffer);
  1630. End;
  1631. Begin
  1632. If (Value>0) Then
  1633. GetSectionRange(1)
  1634. Else If (Value<0) Then
  1635. GetSectionRange(2)
  1636. Else
  1637. GetSectionRange(3);
  1638. If FmtStart = Nil Then
  1639. Begin
  1640. Result := FloatToText(Buffer, Value, ffGeneral, 15, 4);
  1641. End
  1642. Else
  1643. Begin
  1644. GetFormatOptions;
  1645. If (ExpFmt = 0) And (Abs(Value) >= 1E18) Then
  1646. Result := FloatToText(Buffer, Value, ffGeneral, 15, 4)
  1647. Else
  1648. Begin
  1649. FloatToStr;
  1650. Result := PutResult;
  1651. End;
  1652. End;
  1653. End;
  1654. Procedure FloatToDecimal(Out Result: TFloatRec; const Value; ValueType: TFloatValue; Precision, Decimals : integer);
  1655. var
  1656. Buffer: String[254]; //Though str func returns only 25 chars, this might change in the future
  1657. Error, N, L, Start, C: Integer;
  1658. GotNonZeroBeforeDot, BeforeDot : boolean;
  1659. begin
  1660. case ValueType of
  1661. fvExtended:
  1662. Str(Extended(Value):25, Buffer);
  1663. fvDouble,
  1664. fvReal:
  1665. Str(Double(Value):23, Buffer);
  1666. fvSingle:
  1667. Str(Single(Value):16, Buffer);
  1668. fvCurrency:
  1669. Str(Currency(Value):25, Buffer);
  1670. fvComp:
  1671. Str(Currency(Value):23, Buffer);
  1672. end;
  1673. N := 1;
  1674. L := Byte(Buffer[0]);
  1675. while Buffer[N]=' ' do
  1676. Inc(N);
  1677. Result.Negative := (Buffer[N] = '-');
  1678. if Result.Negative then
  1679. Inc(N);
  1680. Start := N; //Start of digits
  1681. Result.Exponent := 0; BeforeDot := true;
  1682. GotNonZeroBeforeDot := false;
  1683. while (L>=N) and (Buffer[N]<>'E') do
  1684. begin
  1685. if Buffer[N]='.' then
  1686. BeforeDot := false
  1687. else
  1688. begin
  1689. if BeforeDot then
  1690. begin // Currently this is always 1 char
  1691. Inc(Result.Exponent);
  1692. Result.Digits[N-Start] := Buffer[N];
  1693. if Buffer[N] <> '0' then
  1694. GotNonZeroBeforeDot := true;
  1695. end
  1696. else
  1697. Result.Digits[N-Start-1] := Buffer[N]
  1698. end;
  1699. Inc(N);
  1700. end;
  1701. Inc(N); // Pass through 'E'
  1702. if N<=L then
  1703. begin
  1704. Val(Copy(Buffer, N, L-N+1), C, Error); // Get exponent after 'E'
  1705. Inc(Result.Exponent, C);
  1706. end;
  1707. // Calculate number of digits we have from str
  1708. if BeforeDot then
  1709. N := N - Start - 1
  1710. else
  1711. N := N - Start - 2;
  1712. L := SizeOf(Result.Digits);
  1713. if N<L then
  1714. FillChar(Result.Digits[N], L-N, '0'); //Zero remaining space
  1715. if Decimals + Result.Exponent < Precision Then //After this it is the same as in FloatToDecimal
  1716. N := Decimals + Result.Exponent
  1717. Else
  1718. N := Precision;
  1719. if N >= L Then
  1720. N := L-1;
  1721. if N = 0 Then
  1722. begin
  1723. if Result.Digits[0] >= '5' Then
  1724. begin
  1725. Result.Digits[0] := '1';
  1726. Result.Digits[1] := #0;
  1727. Inc(Result.Exponent);
  1728. end
  1729. Else
  1730. Result.Digits[0] := #0;
  1731. end //N=0
  1732. Else if N > 0 Then
  1733. begin
  1734. if Result.Digits[N] >= '5' Then
  1735. begin
  1736. Repeat
  1737. Result.Digits[N] := #0;
  1738. Dec(N);
  1739. Inc(Result.Digits[N]);
  1740. Until (N = 0) Or (Result.Digits[N] < ':');
  1741. If Result.Digits[0] = ':' Then
  1742. begin
  1743. Result.Digits[0] := '1';
  1744. Inc(Result.Exponent);
  1745. end;
  1746. end
  1747. Else
  1748. begin
  1749. Result.Digits[N] := '0';
  1750. While (N > -1) And (Result.Digits[N] = '0') Do
  1751. begin
  1752. Result.Digits[N] := #0;
  1753. Dec(N);
  1754. end;
  1755. end;
  1756. end //N>0
  1757. Else
  1758. Result.Digits[0] := #0;
  1759. if (Result.Digits[0] = #0) and
  1760. not GotNonZeroBeforeDot then
  1761. begin
  1762. Result.Exponent := 0;
  1763. Result.Negative := False;
  1764. end;
  1765. end;
  1766. Procedure FloatToDecimal(Out Result: TFloatRec; Value: Extended; Precision, Decimals : integer);
  1767. begin
  1768. FloatToDecimal(Result,Value,fvExtended,Precision,Decimals);
  1769. end;
  1770. Function FormatFloat(Const format: String; Value: Extended): String;
  1771. Var
  1772. buf : Array[0..1024] of char;
  1773. Begin
  1774. Buf[FloatToTextFmt(@Buf[0],Value,Pchar(Format))]:=#0;
  1775. Result:=StrPas(@Buf[0]);
  1776. End;
  1777. function FormatCurr(const Format: string; Value: Currency): string;
  1778. begin
  1779. Result := FormatFloat(Format, Value);
  1780. end;
  1781. {==============================================================================}
  1782. { extra functions }
  1783. {==============================================================================}
  1784. { LeftStr returns Count left-most characters from S }
  1785. function LeftStr(const S: string; Count: integer): string;
  1786. begin
  1787. result := Copy(S, 1, Count);
  1788. end ;
  1789. { RightStr returns Count right-most characters from S }
  1790. function RightStr(const S: string; Count: integer): string;
  1791. begin
  1792. If Count>Length(S) then
  1793. Count:=Length(S);
  1794. result := Copy(S, 1 + Length(S) - Count, Count);
  1795. end;
  1796. { BCDToInt converts the BCD value Value to an integer }
  1797. function BCDToInt(Value: integer): integer;
  1798. var i, j: integer;
  1799. begin
  1800. result := 0;
  1801. j := 1;
  1802. for i := 0 to SizeOf(Value) shr 1 - 1 do begin
  1803. result := result + j * (Value and 15);
  1804. j := j * 10;
  1805. Value := Value shr 4;
  1806. end ;
  1807. end ;
  1808. Function LastDelimiter(const Delimiters, S: string): Integer;
  1809. begin
  1810. Result:=Length(S);
  1811. While (Result>0) and (Pos(S[Result],Delimiters)=0) do
  1812. Dec(Result);
  1813. end;
  1814. Function StringReplace(const S, OldPattern, NewPattern: string; Flags: TReplaceFlags): string;
  1815. var
  1816. Srch,OldP,RemS: string; // Srch and Oldp can contain uppercase versions of S,OldPattern
  1817. P : Integer;
  1818. begin
  1819. Srch:=S;
  1820. OldP:=OldPattern;
  1821. if rfIgnoreCase in Flags then
  1822. begin
  1823. Srch:=AnsiUpperCase(Srch);
  1824. OldP:=AnsiUpperCase(OldP);
  1825. end;
  1826. RemS:=S;
  1827. Result:='';
  1828. while (Length(Srch)<>0) do
  1829. begin
  1830. P:=AnsiPos(OldP, Srch);
  1831. if P=0 then
  1832. begin
  1833. Result:=Result+RemS;
  1834. Srch:='';
  1835. end
  1836. else
  1837. begin
  1838. Result:=Result+Copy(RemS,1,P-1)+NewPattern;
  1839. P:=P+Length(OldP);
  1840. RemS:=Copy(RemS,P,Length(RemS)-P+1);
  1841. if not (rfReplaceAll in Flags) then
  1842. begin
  1843. Result:=Result+RemS;
  1844. Srch:='';
  1845. end
  1846. else
  1847. Srch:=Copy(Srch,P,Length(Srch)-P+1);
  1848. end;
  1849. end;
  1850. end;
  1851. Function IsDelimiter(const Delimiters, S: string; Index: Integer): Boolean;
  1852. begin
  1853. Result:=False;
  1854. If (Index>0) and (Index<=Length(S)) then
  1855. Result:=Pos(S[Index],Delimiters)<>0; // Note we don't do MBCS yet
  1856. end;
  1857. Function ByteToCharLen(const S: string; MaxLen: Integer): Integer;
  1858. begin
  1859. Result:=Length(S);
  1860. If Result>MaxLen then
  1861. Result:=MaxLen;
  1862. end;
  1863. Function ByteToCharIndex(const S: string; Index: Integer): Integer;
  1864. begin
  1865. Result:=Index;
  1866. end;
  1867. Function CharToByteLen(const S: string; MaxLen: Integer): Integer;
  1868. begin
  1869. Result:=Length(S);
  1870. If Result>MaxLen then
  1871. Result:=MaxLen;
  1872. end;
  1873. Function CharToByteIndex(const S: string; Index: Integer): Integer;
  1874. begin
  1875. Result:=Index;
  1876. end;
  1877. Function ByteType(const S: string; Index: Integer): TMbcsByteType;
  1878. begin
  1879. Result:=mbSingleByte;
  1880. end;
  1881. Function StrByteType(Str: PChar; Index: Cardinal): TMbcsByteType;
  1882. begin
  1883. Result:=mbSingleByte;
  1884. end;
  1885. Function StrCharLength(const Str: PChar): Integer;
  1886. begin
  1887. result:=widestringmanager.CharLengthPCharProc(Str);
  1888. end;
  1889. Function FindCmdLineSwitch(const Switch: string; const Chars: TSysCharSet;IgnoreCase: Boolean): Boolean;
  1890. Var
  1891. I,L : Integer;
  1892. S,T : String;
  1893. begin
  1894. Result:=False;
  1895. S:=Switch;
  1896. If IgnoreCase then
  1897. S:=UpperCase(S);
  1898. I:=ParamCount;
  1899. While (Not Result) and (I>0) do
  1900. begin
  1901. L:=Length(Paramstr(I));
  1902. If (L>0) and (ParamStr(I)[1] in Chars) then
  1903. begin
  1904. T:=Copy(ParamStr(I),2,L-1);
  1905. If IgnoreCase then
  1906. T:=UpperCase(T);
  1907. Result:=S=T;
  1908. end;
  1909. Dec(i);
  1910. end;
  1911. end;
  1912. Function FindCmdLineSwitch(const Switch: string; IgnoreCase: Boolean): Boolean;
  1913. begin
  1914. Result:=FindCmdLineSwitch(Switch,SwitchChars,IgnoreCase);
  1915. end;
  1916. Function FindCmdLineSwitch(const Switch: string): Boolean;
  1917. begin
  1918. Result:=FindCmdLineSwitch(Switch,SwitchChars,False);
  1919. end;
  1920. function WrapText(const Line, BreakStr: string; const BreakChars: TSysCharSet; MaxCol: Integer): string;
  1921. const
  1922. Quotes = ['''', '"'];
  1923. Var
  1924. L : String;
  1925. C,LQ,BC : Char;
  1926. P,BLen,Len : Integer;
  1927. HB,IBC : Boolean;
  1928. begin
  1929. Result:='';
  1930. L:=Line;
  1931. Blen:=Length(BreakStr);
  1932. If (BLen>0) then
  1933. BC:=BreakStr[1]
  1934. else
  1935. BC:=#0;
  1936. Len:=Length(L);
  1937. While (Len>0) do
  1938. begin
  1939. P:=1;
  1940. LQ:=#0;
  1941. HB:=False;
  1942. IBC:=False;
  1943. While ((P<=Len) and ((P<=MaxCol) or not IBC)) and ((LQ<>#0) or Not HB) do
  1944. begin
  1945. C:=L[P];
  1946. If (C=LQ) then
  1947. LQ:=#0
  1948. else If (C in Quotes) then
  1949. LQ:=C;
  1950. If (LQ<>#0) then
  1951. Inc(P)
  1952. else
  1953. begin
  1954. HB:=((C=BC) and (BreakStr=Copy(L,P,BLen)));
  1955. If HB then
  1956. Inc(P,Blen)
  1957. else
  1958. begin
  1959. If (P>MaxCol) then
  1960. IBC:=C in BreakChars;
  1961. Inc(P);
  1962. end;
  1963. end;
  1964. // Writeln('"',C,'" : IBC : ',IBC,' HB : ',HB,' LQ : ',LQ,' P>MaxCol : ',P>MaxCol);
  1965. end;
  1966. Result:=Result+Copy(L,1,P-1);
  1967. If Not HB then
  1968. Result:=Result+BreakStr;
  1969. Delete(L,1,P-1);
  1970. Len:=Length(L);
  1971. end;
  1972. end;
  1973. function WrapText(const Line: string; MaxCol: Integer): string;
  1974. begin
  1975. Result:=WrapText(Line,sLineBreak, [' ', '-', #9], MaxCol);
  1976. end;
  1977. {
  1978. Case Translation Tables
  1979. Can be used in internationalization support.
  1980. Although these tables can be obtained through system calls
  1981. it is better to not use those, since most implementation are not 100%
  1982. WARNING:
  1983. before modifying a translation table make sure that the current codepage
  1984. of the OS corresponds to the one you make changes to
  1985. }
  1986. const
  1987. { upper case translation table for character set 850 }
  1988. CP850UCT: array[128..255] of char =
  1989. ('€', 'š', '�', '¶', 'Ž', '¶', '�', '€', 'Ò', 'Ó', 'Ô', 'Ø', '×', 'Þ', 'Ž', '�',
  1990. '�', '’', '’', 'â', '™', 'ã', 'ê', 'ë', 'Y', '™', 'š', '�', 'œ', '�', 'ž', 'Ÿ',
  1991. 'µ', 'Ö', 'à', 'é', '¥', '¥', '¦', '§', '¨', '©', 'ª', '«', '¬', '­', '®', '¯',
  1992. '°', '±', '²', '³', '´', 'µ', '¶', '·', '¸', '¹', 'º', '»', '¼', '½', '¾', '¿',
  1993. 'À', 'Á', 'Â', 'Ã', 'Ä', 'Å', 'Ç', 'Ç', 'È', 'É', 'Ê', 'Ë', 'Ì', 'Í', 'Î', 'Ï',
  1994. 'Ð', 'Ñ', 'Ò', 'Ó', 'Ô', 'Õ', 'Ö', '×', 'Ø', 'Ù', 'Ú', 'Û', 'Ü', 'Ý', 'Þ', 'ß',
  1995. 'à', 'á', 'â', 'ã', 'å', 'å', 'æ', 'í', 'è', 'é', 'ê', 'ë', 'í', 'í', 'î', 'ï',
  1996. 'ð', 'ñ', 'ò', 'ó', 'ô', 'õ', 'ö', '÷', 'ø', 'ù', 'ú', 'û', 'ü', 'ý', 'þ', 'ÿ');
  1997. { lower case translation table for character set 850 }
  1998. CP850LCT: array[128..255] of char =
  1999. ('‡', '�', '‚', 'ƒ', '„', '…', '†', '‡', 'ˆ', '‰', 'Š', '‹', 'Œ', '�', '„', '†',
  2000. '‚', '‘', '‘', '“', '”', '•', '–', '—', '˜', '”', '�', '›', 'œ', '›', 'ž', 'Ÿ',
  2001. ' ', '¡', '¢', '£', '¤', '¤', '¦', '§', '¨', '©', 'ª', '«', '¬', '­', '®', '¯',
  2002. '°', '±', '²', '³', '´', ' ', 'ƒ', '…', '¸', '¹', 'º', '»', '¼', '½', '¾', '¿',
  2003. 'À', 'Á', 'Â', 'Ã', 'Ä', 'Å', 'Æ', 'Æ', 'È', 'É', 'Ê', 'Ë', 'Ì', 'Í', 'Î', 'Ï',
  2004. 'Ð', 'Ñ', 'ˆ', '‰', 'Š', 'Õ', '¡', 'Œ', '‹', 'Ù', 'Ú', 'Û', 'Ü', 'Ý', '�', 'ß',
  2005. '¢', 'á', '“', '•', 'ä', 'ä', 'æ', 'í', 'è', '£', '–', '—', 'ì', 'ì', 'î', 'ï',
  2006. 'ð', 'ñ', 'ò', 'ó', 'ô', 'õ', 'ö', '÷', 'ø', 'ù', 'ú', 'û', 'ü', 'ý', 'þ', 'ÿ');
  2007. { upper case translation table for character set ISO 8859/1 Latin 1 }
  2008. CPISO88591UCT: array[192..255] of char =
  2009. ( #192, #193, #194, #195, #196, #197, #198, #199,
  2010. #200, #201, #202, #203, #204, #205, #206, #207,
  2011. #208, #209, #210, #211, #212, #213, #214, #215,
  2012. #216, #217, #218, #219, #220, #221, #222, #223,
  2013. #192, #193, #194, #195, #196, #197, #198, #199,
  2014. #200, #201, #202, #203, #204, #205, #206, #207,
  2015. #208, #209, #210, #211, #212, #213, #214, #247,
  2016. #216, #217, #218, #219, #220, #221, #222, #89 );
  2017. { lower case translation table for character set ISO 8859/1 Latin 1 }
  2018. CPISO88591LCT: array[192..255] of char =
  2019. ( #224, #225, #226, #227, #228, #229, #230, #231,
  2020. #232, #233, #234, #235, #236, #237, #238, #239,
  2021. #240, #241, #242, #243, #244, #245, #246, #215,
  2022. #248, #249, #250, #251, #252, #253, #254, #223,
  2023. #224, #225, #226, #227, #228, #229, #230, #231,
  2024. #232, #233, #234, #235, #236, #237, #238, #239,
  2025. #240, #241, #242, #243, #244, #245, #246, #247,
  2026. #248, #249, #250, #251, #252, #253, #254, #255 );
  2027. function sscanf(const s: string; const fmt : string;const Pointers : array of Pointer) : Integer;
  2028. var
  2029. i,j,n,m : SizeInt;
  2030. s1 : string;
  2031. function GetInt(unsigned : boolean=false) : Integer;
  2032. begin
  2033. s1 := '';
  2034. while (s[n] = ' ') and (Length(s) > n) do
  2035. inc(n);
  2036. { read sign }
  2037. if (Length(s)>= n) and (s[n] in ['+', '-']) then
  2038. begin
  2039. { don't accept - when reading unsigned }
  2040. if unsigned and (s[n]='-') then
  2041. begin
  2042. result:=length(s1);
  2043. exit;
  2044. end
  2045. else
  2046. begin
  2047. s1:=s1+s[n];
  2048. inc(n);
  2049. end;
  2050. end;
  2051. { read numbers }
  2052. while (s[n] in ['0'..'9'])
  2053. and (Length(s) >= n) do
  2054. begin
  2055. s1 := s1+s[n];
  2056. inc(n);
  2057. end;
  2058. Result := Length(s1);
  2059. end;
  2060. function GetFloat : Integer;
  2061. begin
  2062. s1 := '';
  2063. while (s[n] = ' ') and (Length(s) > n) do
  2064. inc(n);
  2065. while (s[n] in ['0'..'9', '+', '-', '.', 'e', 'E'])
  2066. and (Length(s) >= n) do
  2067. begin
  2068. s1 := s1+s[n];
  2069. inc(n);
  2070. end;
  2071. Result := Length(s1);
  2072. end;
  2073. function GetString : Integer;
  2074. begin
  2075. s1 := '';
  2076. while (s[n] = ' ') and (Length(s) > n) do
  2077. inc(n);
  2078. while (s[n] <> ' ') and (Length(s) >= n) do
  2079. begin
  2080. s1 := s1+s[n];
  2081. inc(n);
  2082. end;
  2083. Result := Length(s1);
  2084. end;
  2085. function ScanStr(c : Char) : Boolean;
  2086. begin
  2087. while (s[n] <> c) and (Length(s) > n) do
  2088. inc(n);
  2089. inc(n);
  2090. If (n <= Length(s)) then
  2091. Result := True
  2092. else
  2093. Result := False;
  2094. end;
  2095. function GetFmt : Integer;
  2096. begin
  2097. Result := -1;
  2098. while true do
  2099. begin
  2100. while (fmt[m] = ' ') and (Length(fmt) > m) do
  2101. inc(m);
  2102. if (m >= Length(fmt)) then
  2103. break;
  2104. if (fmt[m] = '%') then
  2105. begin
  2106. inc(m);
  2107. case fmt[m] of
  2108. 'd':
  2109. Result:=vtInteger;
  2110. 'f':
  2111. Result:=vtExtended;
  2112. 's':
  2113. Result:=vtString;
  2114. 'c':
  2115. Result:=vtChar;
  2116. else
  2117. raise EFormatError.CreateFmt(SInvalidFormat,[fmt]);
  2118. end;
  2119. inc(m);
  2120. break;
  2121. end;
  2122. if not(ScanStr(fmt[m])) then
  2123. break;
  2124. inc(m);
  2125. end;
  2126. end;
  2127. begin
  2128. n := 1;
  2129. m := 1;
  2130. Result := 0;
  2131. for i:=0 to High(Pointers) do
  2132. begin
  2133. j := GetFmt;
  2134. case j of
  2135. vtInteger :
  2136. begin
  2137. if GetInt>0 then
  2138. begin
  2139. pLongint(Pointers[i])^:=StrToInt(s1);
  2140. inc(Result);
  2141. end
  2142. else
  2143. break;
  2144. end;
  2145. vtchar :
  2146. begin
  2147. if Length(s)>n then
  2148. begin
  2149. pchar(Pointers[i])^:=s[n];
  2150. inc(n);
  2151. inc(Result);
  2152. end
  2153. else
  2154. break;
  2155. end;
  2156. vtExtended :
  2157. begin
  2158. if GetFloat>0 then
  2159. begin
  2160. pextended(Pointers[i])^:=StrToFloat(s1);
  2161. inc(Result);
  2162. end
  2163. else
  2164. break;
  2165. end;
  2166. vtString :
  2167. begin
  2168. if GetString > 0 then
  2169. begin
  2170. pansistring(Pointers[i])^:=s1;
  2171. inc(Result);
  2172. end
  2173. else
  2174. break;
  2175. end;
  2176. else
  2177. break;
  2178. end;
  2179. end;
  2180. end;