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вернуться в форумStatement of this problem is not very clear, isn't it? At first: what boundings for sizes of already placed ships? Can it be 0 or greater than 5? At second: my solution is not very fast and based on small size and quantity of already placed ships. Idea is simple: i have two arrays for verticals and horizontals and sets true if vertical or horizontal is empty and false otherwise. Then i look for all verticals and horizontals, trying locate vertical ship in all verticals and horizontal ship in all horizontals ( if number of decks of placing ship is 1 then i divide output value by 2 ). If current vertical (horizontal) line is empty, i just increment total value by "n- k+1"("m-k+1"), otherwise use full enumeration for line. I can predict TL, but always got a WA... =( I searched for bug many times and conclused, that i have bug in understanding statement of problem. Thank you for reading that. Could anyone help me? =) Code below: {$APPTYPE CONSOLE} var cur, i, j, n, m, l, k, r: longint; ships: array[1..100] of record x, y, d: longint; o: char; end; st: string; total: extended; curline, vempty, hempty: array[0..30001] of boolean; {} begin { assign( input, 'p1212.in' ); reset( input ); assign( output, 'p1212.out' ); rewrite( output );} {} readln( n, m, l ); for i := 1 to l do begin read( ships[i].x, ships[i].y, ships[i].d ); readln( st ); if ( ( pos( 'V', st ) = 0 ) and ( pos( 'v', st ) = 0 ) ) then ships[i].o := 'H' else ships[i].o := 'V'; end; read( k ); {} for i := 0 to 30001 do begin curline[i] := true; vempty[i] := true; hempty[i] := true; end; {} for i := 1 to l do begin case ( ships[i].o ) of 'V': begin for j := ( ships[i].y - 1 ) to ( ships[i].y + ships [i].d ) do hempty[j] := false; vempty[ships[i].x - 1] := false; vempty[ships[i].x] := false; vempty[ships[i].x + 1] := false; end; 'H': begin for j := ( ships[i].x - 1 ) to ( ships[i].x + ships [i].d ) do vempty[j] := false; hempty[ships[i].y - 1] := false; hempty[ships[i].y] := false; hempty[ships[i].y + 1] := false; end; end; end; {} total := 0; {} for i := 1 to n do begin if ( hempty[i] ) then total := total + m - k + 1 else begin for j := 0 to 30001 do curline[j] := true; curline[0] := false; curline[m+1] := false; for j := 1 to l do begin case ( ships[j].o ) of 'V': begin if ( ( ships[j].y - 1 <= i ) and ( ( ships[j].y + ships[j].d ) >= i ) ) then begin curline[ships[j].x-1] := false; curline[ships[j].x] := false; curline[ships[j].x+1] := false; end; end; 'H': begin if ( ( ( ships[j].y - 1 ) = i ) or ( ( ships [j].y ) = i ) or ( ( ships[j].y + 1 ) = i ) ) then for r := ( ships[j].x - 1 ) to ( ships[j].x + ships[j].d ) do curline[r] := false; end; end; end; {} cur := 0; for j := 1 to ( m + 1 ) do if ( curline[j] ) then inc( cur ) else begin if ( cur >= k ) then total := total + cur - k + 1; cur := 0; end; end; end; {} for i := 1 to m do begin if ( vempty[i] ) then total := total + n - k |
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