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集合中的每个元素其实只占一个二进制位, 不足 8 个元素的集合只需要 1 个字节. 先观察集合的大小: Type TSet1 = set of (a1,a2,a3,a4,a5,a6,a7,a8); {刚好对应一个字节的 8 个位} TSet2 = set of (b1,b2,b3); {只用一个字节中的 3 个位, 也要占一个字节} TSet3 = set of (c1,c2,c3,c4,c5,c6,c7,c8,c9); {需要 9 个位, 一个字节容不下了} TSet4 = set of Char; procedure TForm1.Button1Click(Sender: TObject); begin ShowMessageFmt('%d, %d, %d, %d', [SizeOf(TSet1), //1 SizeOf(TSet2), //1 SizeOf(TSet3), //2 SizeOf(TSet4) //32 ]); end; 洞察集合的二进制表示: {查看二进制的函数} function ToBin(p: PByteArray; b: Integer): string; var i,j: Integer; begin Result := StringOfChar('0', b * 8); for i := 0 to b - 1 do for j := 0 to 7 do if Odd(p^[b-1-i] shr j) then Result[i*8 + 8 - j] := '1'; end; procedure TForm1.Button1Click(Sender: TObject); var set1: set of (A,B,C,D,E,F,G,H); begin set1 := []; ShowMessage(ToBin(@set1, SizeOf(set1))); //00000000 set1 := [A,B,C,D,E,F,G,H]; ShowMessage(ToBin(@set1, SizeOf(set1))); //11111111 set1 := [A,B,C]; ShowMessage(ToBin(@set1, SizeOf(set1))); //00000111 set1 := [A,B,C,H]; ShowMessage(ToBin(@set1, SizeOf(set1))); //10000111 end; 甚至可以把集合看成一个数字: procedure TForm1.Button1Click(Sender: TObject); type TSet = set of (A,B,C,D,E,F,G,H); var s1,s2,s3,s4: TSet; begin s1 := []; s2 := [A,B,C,D,E,F,G,H]; s3 := [A,B,C]; s4 := [A,B,C,H]; ShowMessage(IntToStr(Byte(s1))); //0 ShowMessage(IntToStr(Byte(s2))); //255 ShowMessage(IntToStr(Byte(s3))); //7 ShowMessage(IntToStr(Byte(s4))); //135 end; 用集合的方式重新做前一次的例子(窗体设计与测试效果同前): var set1: set of 0..7; {准备用自定义的集合变量 set1 储存下面的 8 种状态} procedure TForm1.FormCreate(Sender: TObject); begin CheckListBox1.Items.CommaText := 'A,B,C,D,E,F,G,H'; Button1.Caption := '保存状态'; Button2.Caption := '恢复状态'; Button3.Caption := '全选'; Button4.Caption := '全不选'; Button1.Tag := 1; Button2.Tag := 2; Button3.Tag := 3; Button4.Tag := 4; Button2.OnClick := Button1.OnClick; Button3.OnClick := Button1.OnClick; Button4.OnClick := Button1.OnClick; end; procedure TForm1.Button1Click(Sender: TObject); var i: Integer; begin if TButton(Sender).Tag = 1 then set1 := []; for i := 0 to CheckListBox1.Count - 1 do case TButton(Sender).Tag of 1: if CheckListBox1.Checked[i] then Include(set1, i); 2: CheckListBox1.Checked[i] := i in set1; 3: CheckListBox1.Checked[i] := True; 4: CheckListBox1.Checked[i] := False; end; end; 实例观察 TFontStyles 集合: {查看二进制的函数} function ToBin(p: PByteArray; b: Integer): string; var i,j: Integer; begin Result := StringOfChar('0', b * 8); for i := 0 to b - 1 do for j := 0 to 7 do if Odd(p^[b-1-i] shr j) then Result[i*8 + 8 - j] := '1'; end; procedure TForm1.Button1Click(Sender: TObject); var fs: TFontStyles; begin Font.Style := [fsBold, fsItalic, fsUnderline]; fs := Font.Style; Text := ToBin(@fs, SizeOf(fs)); end; procedure TForm1.Button2Click(Sender: TObject); var fs: TFontStyles; begin Font.Style := []; fs := Font.Style; Text := ToBin(@fs, SizeOf(fs)); end; TFontStyles 集合的测试效果图: 接下来学习 TBits 类; 对 "位" 的操作 TBits 应该是最直观的. |
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