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📄 user_logic1.vhd

📁 基于FPGA嵌入式开发实现的VGA接口
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-------------------------------------------------------------------------------- user_logic.vhd - entity/architecture pair---------------------------------------------------------------------------------- ***************************************************************************-- ** Copyright (c) 1995-2006 Xilinx, Inc.  All rights reserved.            **-- **                                                                       **-- ** Xilinx, Inc.                                                          **-- ** XILINX IS PROVIDING THIS DESIGN, CODE, OR INFORMATION "AS IS"         **-- ** AS A COURTESY TO YOU, SOLELY FOR USE IN DEVELOPING PROGRAMS AND       **-- ** SOLUTIONS FOR XILINX DEVICES.  BY PROVIDING THIS DESIGN, CODE,        **-- ** OR INFORMATION AS ONE POSSIBLE IMPLEMENTATION OF THIS FEATURE,        **-- ** APPLICATION OR STANDARD, XILINX IS MAKING NO REPRESENTATION           **-- ** THAT THIS IMPLEMENTATION IS FREE FROM ANY CLAIMS OF INFRINGEMENT,     **-- ** AND YOU ARE RESPONSIBLE FOR OBTAINING ANY RIGHTS YOU MAY REQUIRE      **-- ** FOR YOUR IMPLEMENTATION.  XILINX EXPRESSLY DISCLAIMS ANY              **-- ** WARRANTY WHATSOEVER WITH RESPECT TO THE ADEQUACY OF THE               **-- ** IMPLEMENTATION, INCLUDING BUT NOT LIMITED TO ANY WARRANTIES OR        **-- ** REPRESENTATIONS THAT THIS IMPLEMENTATION IS FREE FROM CLAIMS OF       **-- ** INFRINGEMENT, IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS       **-- ** FOR A PARTICULAR PURPOSE.                                             **-- **                                                                       **-- ***************************************************************************---------------------------------------------------------------------------------- Filename:          user_logic.vhd-- Version:           1.00.a-- Description:       User logic.-- Date:              Fri Jun 15 08:53:04 2007 (by Create and Import Peripheral Wizard)-- VHDL Standard:     VHDL'93-------------------------------------------------------------------------------- Naming Conventions:--   active low signals:                    "*_n"--   clock signals:                         "clk", "clk_div#", "clk_#x"--   reset signals:                         "rst", "rst_n"--   generics:                              "C_*"--   user defined types:                    "*_TYPE"--   state machine next state:              "*_ns"--   state machine current state:           "*_cs"--   combinatorial signals:                 "*_com"--   pipelined or register delay signals:   "*_d#"--   counter signals:                       "*cnt*"--   clock enable signals:                  "*_ce"--   internal version of output port:       "*_i"--   device pins:                           "*_pin"--   ports:                                 "- Names begin with Uppercase"--   processes:                             "*_PROCESS"--   component instantiations:              "<ENTITY_>I_<#|FUNC>"-------------------------------------------------------------------------------- DO NOT EDIT BELOW THIS LINE --------------------library ieee;use ieee.std_logic_1164.all;use ieee.std_logic_arith.all;use ieee.std_logic_unsigned.all;library proc_common_v2_00_a;use proc_common_v2_00_a.proc_common_pkg.all;-- DO NOT EDIT ABOVE THIS LINE ----------------------USER libraries added here-------------------------------------------------------------------------------- Entity section-------------------------------------------------------------------------------- Definition of Generics:--   C_DWIDTH                     -- User logic data bus width--   C_NUM_CE                     -- User logic chip enable bus width---- Definition of Ports:--   Bus2IP_Clk                   -- Bus to IP clock--   Bus2IP_Reset                 -- Bus to IP reset--   Bus2IP_Data                  -- Bus to IP data bus for user logic--   Bus2IP_BE                    -- Bus to IP byte enables for user logic--   Bus2IP_RdCE                  -- Bus to IP read chip enable for user logic--   Bus2IP_WrCE                  -- Bus to IP write chip enable for user logic--   IP2Bus_Data                  -- IP to Bus data bus for user logic--   IP2Bus_Ack                   -- IP to Bus acknowledgement--   IP2Bus_Retry                 -- IP to Bus retry response--   IP2Bus_Error                 -- IP to Bus error response--   IP2Bus_ToutSup               -- IP to Bus timeout suppress------------------------------------------------------------------------------entity user_logic is  generic  (    -- ADD USER GENERICS BELOW THIS LINE ---------------    --USER generics added here    -- ADD USER GENERICS ABOVE THIS LINE ---------------    -- DO NOT EDIT BELOW THIS LINE ---------------------    -- Bus protocol parameters, do not add to or delete    C_DWIDTH                       : integer              := 32;    C_NUM_CE                       : integer              := 3    -- DO NOT EDIT ABOVE THIS LINE ---------------------  );  port  (    -- ADD USER PORTS BELOW THIS LINE ------------------    VGA_HS								  : out std_logic;	 VGA_VS								  : out std_logic;	 RGB									  : out std_logic_vector(0 to 7);    -- ADD USER PORTS ABOVE THIS LINE ------------------    -- DO NOT EDIT BELOW THIS LINE ---------------------    -- Bus protocol ports, do not add to or delete    Bus2IP_Clk                     : in  std_logic;    Bus2IP_Reset                   : in  std_logic;    Bus2IP_Data                    : in  std_logic_vector(0 to C_DWIDTH-1);    Bus2IP_BE                      : in  std_logic_vector(0 to C_DWIDTH/8-1);    Bus2IP_RdCE                    : in  std_logic_vector(0 to C_NUM_CE-1);    Bus2IP_WrCE                    : in  std_logic_vector(0 to C_NUM_CE-1);    IP2Bus_Data                    : out std_logic_vector(0 to C_DWIDTH-1);    IP2Bus_Ack                     : out std_logic;    IP2Bus_Retry                   : out std_logic;    IP2Bus_Error                   : out std_logic;    IP2Bus_ToutSup                 : out std_logic    -- DO NOT EDIT ABOVE THIS LINE ---------------------  );end entity user_logic;-------------------------------------------------------------------------------- Architecture section------------------------------------------------------------------------------architecture IMP of user_logic is  --USER signal declarations added here, as needed for user logic  ------------------------------------------  -- Signals for user logic slave model s/w accessible register example  ------------------------------------------  signal slv_reg0                       : std_logic_vector(0 to C_DWIDTH-1);  signal slv_reg1                       : std_logic_vector(0 to C_DWIDTH-1);  signal slv_reg2                       : std_logic_vector(0 to C_DWIDTH-1);  signal slv_reg_write_select           : std_logic_vector(0 to 2);  signal slv_reg_read_select            : std_logic_vector(0 to 2);  signal slv_ip2bus_data                : std_logic_vector(0 to C_DWIDTH-1);  signal slv_read_ack                   : std_logic;  signal slv_write_ack                  : std_logic;  signal VGA_CLK : std_logic;  signal HS_CLK  : std_logic;  signal M: std_logic_vector(0 to 1);  signal N: std_logic_vector(0 to 9);  signal K: std_logic_vector(0 to 9);  signal BRAM_ADDR : std_logic_vector(0 to 31);begin  Process(Bus2IP_Clk)   begin	if (Bus2IP_Clk'event and Bus2IP_Clk='1') then 		M <= M + 1;	end if;  end process;	VGA_CLK <= M(1);      Process(VGA_CLK)  begin--	if Bus2IP_reset = '0' then--		N := (others => '0');--		VGA_HS <= '0';	if (VGA_CLK'event and VGA_CLK='1') then 		N <= N + 1;		if N = 808 then			N <= (others => '0');		end if;		if N < 664 then			HS_CLK <= '0';		elsif N > 665 and N < 760 then			HS_CLK <= '1';					elsif N >= 760 and N < 808 then 		   HS_CLK <= '0';		end if;		if N<630 then			RGB <= slv_reg1(24 to 31);		else										--if N>320 and N<640 then			RGB <= (others=>'0');		end if;		if N<640 then			BRAM_ADDR(25 to 31) <= N(0 to 6);		end if;	end if;  end process;   VGA_HS <= HS_CLK;    Process(HS_CLK)  begin--	if Bus2IP_reset = '0' then--		N := (others => '0');--		VGA_VS <= '0';	if (HS_CLK'event and HS_CLK='1') then 		K <= K + 1;		if K = 522 then			K <= (others => '0');		end if;		if K < 494 then			VGA_VS <= '0';		elsif K >= 494 and K < 497 then			VGA_VS <= '1';		elsif K >= 497 and K <= 522 then         VGA_VS <= '0';				end if;		if M<480 then			BRAM_ADDR(19 to 24) <= K(1 to 6);		end if;	end if;  end process;  ------------------------------------------  -- Example code to read/write user logic slave model s/w accessible registers  --   -- Note:  -- The example code presented here is to show you one way of reading/writing  -- software accessible registers implemented in the user logic slave model.  -- Each bit of the Bus2IP_WrCE/Bus2IP_RdCE signals is configured to correspond  -- to one software accessible register by the top level template. For example,  -- if you have four 32 bit software accessible registers in the user logic, you  -- are basically operating on the following memory mapped registers:  --   --    Bus2IP_WrCE or   Memory Mapped  --       Bus2IP_RdCE   Register  --            "1000"   C_BASEADDR + 0x0  --            "0100"   C_BASEADDR + 0x4  --            "0010"   C_BASEADDR + 0x8  --            "0001"   C_BASEADDR + 0xC  --   ------------------------------------------  slv_reg_write_select <= Bus2IP_WrCE(0 to 2);  slv_reg_read_select  <= Bus2IP_RdCE(0 to 2);  slv_write_ack        <= Bus2IP_WrCE(0) or Bus2IP_WrCE(1) or Bus2IP_WrCE(2);  slv_read_ack         <= Bus2IP_RdCE(0) or Bus2IP_RdCE(1) or Bus2IP_RdCE(2);  -- implement slave model register(s)  SLAVE_REG_WRITE_PROC : process( Bus2IP_Clk ) is  begin    if Bus2IP_Clk'event and Bus2IP_Clk = '1' then      if Bus2IP_Reset = '1' then        slv_reg0 <= (others => '0');        slv_reg1 <= (others => '0');        slv_reg2 <= (others => '0');      else        case slv_reg_write_select is          when "100" =>            for byte_index in 0 to (C_DWIDTH/8)-1 loop              if ( Bus2IP_BE(byte_index) = '1' ) then                slv_reg0(byte_index*8 to byte_index*8+7) <= Bus2IP_Data(byte_index*8 to byte_index*8+7);              end if;            end loop;          when "010" =>            for byte_index in 0 to (C_DWIDTH/8)-1 loop              if ( Bus2IP_BE(byte_index) = '1' ) then                slv_reg1(byte_index*8 to byte_index*8+7) <= Bus2IP_Data(byte_index*8 to byte_index*8+7);              end if;            end loop;          when "001" =>            for byte_index in 0 to (C_DWIDTH/8)-1 loop              if ( Bus2IP_BE(byte_index) = '1' ) then                slv_reg2(byte_index*8 to byte_index*8+7) <= Bus2IP_Data(byte_index*8 to byte_index*8+7);              end if;            end loop;          when others => null;        end case;      end if;    end if;  end process SLAVE_REG_WRITE_PROC;  -- implement slave model register read mux  SLAVE_REG_READ_PROC : process( slv_reg_read_select, slv_reg0, slv_reg1, slv_reg2 ) is  begin    case slv_reg_read_select is      when "100" => slv_ip2bus_data <= BRAM_ADDR;		--slv_reg0;      when "010" => slv_ip2bus_data <= slv_reg1;      when "001" => slv_ip2bus_data <= slv_reg2;      when others => slv_ip2bus_data <= (others => '0');    end case;  end process SLAVE_REG_READ_PROC;  ------------------------------------------  -- Example code to drive IP to Bus signals  ------------------------------------------  IP2Bus_Data        <= slv_ip2bus_data;  IP2Bus_Ack         <= slv_write_ack or slv_read_ack;  IP2Bus_Error       <= '0';  IP2Bus_Retry       <= '0';  IP2Bus_ToutSup     <= '0';end IMP;

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