题面:
思路:
代码:
uses math; var a:array[1..5000] of longint; f:array[1..5000] of longint; max:double; i,j,n,m:longint; begin assign(input,'ski.in'); reset(input); assign(output,'ski.out'); rewrite(output); read(n,m); for i:=1 to n do read(a[i]); f[1]:=1; for j:=1 to n-1 do begin max:=-maxlongint; for i:=1 to min(m,n-j) do if max<=(a[i+j]-a[j])/i then begin if (f[i+j]=0) or (f[i+j]>f[j]+1) then f[i+j]:=f[j]+1; max:=(a[i+j]-a[j])/i; end; end; writeln(f[n]); close(input);close(output); end.
