如何解决VHDL中的5位Johnson Johnson模拟仅打印零
文件jk_flipflop.vhd:
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity JK_FlipFlop is
Port (J,K,clk: IN STD_LOGIC;
Q,Qn: OUT STD_LOGIC);
end entity;
architecture behavioral of JK_FlipFlop is
Signal current_state: STD_LOGIC := '0';
begin
Process (J,K) Is
begin
If J='0' and K='1' Then
current_state<='0';
ElsIf J='1' and K='0' Then
current_state<='1';
ElsIf J='1' and K='1' Then
current_state<=not(current_state);
Else
current_state<=current_state;
End If;
End process;
Process (clk) Is
begin
If rising_edge(clk) Then
Q<=current_state;
Else
Q<=not(current_state);
End if;
end process;
end architecture;
文件johnson_counter.vhd:
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity johnson_counter is
port(clk: in STD_LOGIC;
b0,b1,b2,b3,b4: out STD_LOGIC);
end entity;
architecture structural of johnson_counter is
signal q0 : STD_LOGIC := '0';
signal qn0 : STD_LOGIC := '1';
signal q1 : STD_LOGIC := '0';
signal qn1 : STD_LOGIC := '1';
signal q2 : STD_LOGIC := '0';
signal qn2 : STD_LOGIC := '1';
signal q3 : STD_LOGIC :='0';
signal qn3 : STD_LOGIC :='1';
signal q4 : STD_LOGIC :='0';
signal qn4 : STD_LOGIC :='1';
begin
s0: ENTITY work.jk_flipflop Port map(qn4,q4,clk,q0,qn0);
s1: ENTITY work.jk_flipflop Port map(q0,qn0,q1,qn1);
s2: ENTITY work.jk_flipflop Port map(q1,qn1,q2,qn2);
s3: ENTITY work.jk_flipflop Port map(q2,qn2,q3,qn3);
s4: ENTITY work.jk_flipflop Port map(q3,qn3,qn4);
b0 <= q0;
b1 <= q1;
b2 <= q2;
b3 <= q3;
b4 <= q4;
end architecture;
文件tester.vhd:
Library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity tester is end entity;
architecture behavioral of tester is
Signal flipflops : STD_LOGIC_VECTOR(4 downto 0) := "00000";
Signal clk: STD_LOGIC := '0';
begin
s1: entity work.johnson_counter port map(clk,flipflops(0),flipflops(1),flipflops(2),flipflops(3),flipflops(4)
);
process
variable output: String(1 to 5);
variable i: Integer;
variable j: Integer;
begin
j:=0;
while j<20 loop
clk<=not(clk);
if clk='1' then
i:=1;
while i<=5 loop
if flipflops(i-1)='1' then
output(i):='1';
else
output(i):='0';
end if;
i:=i+1;
end loop;
report output;
end if;
wait for 50 ns;
j:=j+1;
end loop;
wait;
end process;
end architecture;
预期输出为:
00000
10000
11000
11100
11110
11111
01111
00111
00011
00001
但是,我得到的输出是:
tester.vhd:35:17:@50ns:(report note): 00000
tester.vhd:35:17:@150ns:(report note): 00000
tester.vhd:35:17:@250ns:(report note): 00000
tester.vhd:35:17:@350ns:(report note): 00000
tester.vhd:35:17:@450ns:(report note): 00000
tester.vhd:35:17:@550ns:(report note): 00000
tester.vhd:35:17:@650ns:(report note): 00000
tester.vhd:35:17:@750ns:(report note): 00000
tester.vhd:35:17:@850ns:(report note): 00000
tester.vhd:35:17:@950ns:(report note): 00000
我在做什么错了?
解决方法
抱歉,这是JK触发器中的一个愚蠢错误。这是它的正确实现:
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity JK_FlipFlop is
Port (J,K,clk: IN STD_LOGIC;
Q,Qn: OUT STD_LOGIC);
end entity;
architecture behavioral of JK_FlipFlop is
Signal current_state: STD_LOGIC := '0';
begin
Process (J,K) Is
begin
If J='0' and K='1' Then
current_state<='0';
ElsIf J='1' and K='0' Then
current_state<='1';
ElsIf J='1' and K='1' Then
current_state<=not(current_state);
Else
current_state<=current_state;
End If;
End process;
Process (clk) Is
begin
If rising_edge(clk) Then
Q<=current_state;
Qn<=not(current_state);
End if;
end process;
end architecture;
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