Files
RTR532/ld3/dds_vhdl/sin_gen_sum.vhd
T
2020-06-10 21:39:10 +03:00

124 lines
4.6 KiB
VHDL

-----------------------------
-- Author - Imants Pulkstenis
-- Date - 08.06.2020
-- Project name - Lab work No3
-- Module name - sin_gen_sum
--
-- Detailed module description:
-- This is sum module adding signals from
-- signal genrators
-- and prepare this signal for FIR and IIR filter
--
-- Revision:
-- A - initial design
-- B - add overflow and unferflow check
-- C - Remove sin_gen module out of this module
-- add aditional inputs from top module
-- to compensate changes
-----------------------------
library ieee; --always use this library
use ieee.std_logic_1164.all; --always use this library
use ieee.numeric_std.all; --use this library if arithmetic required
--define connections to outside
entity sin_gen_sum is
generic
(
phase_width : integer := 9;
data_width : integer := 16--;
--phase_incr_one : integer := 37;
--phase_incr_two : integer := 57
);
port
(
clk : in std_logic; --100mhz clock
--rst : in std_logic; --rst
signal_in_one : in std_Logic_vector(data_width - 1 downto 0);
signal_in_two : in std_Logic_vector(data_width - 1 downto 0);
signal_out : out std_Logic_vector(data_width - 1 downto 0)
);
end sin_gen_sum;
--define inside of the module
architecture behavioral of sin_gen_sum is
--define inside use signals
--signal signal_out_one : std_Logic_vector(data_width - 1 downto 0) := (others => '0');
--signal signal_out_two : std_Logic_vector(data_width - 1 downto 0) := (others => '0');
signal signal_summ : signed(data_width - 1 downto 0) := (others => '0'); -- 16bit word
--define components to use
-- component sin_gen is
-- generic
-- (
-- phase_width : integer := 9;
-- data_width : integer := 16
-- );
-- port
-- (
-- clk : in std_logic; --100mhz clock
-- rst : in std_logic; --rst
-- --phase_incr : in std_Logic_vector(phase_width - 1 downto 0); --"frequency"
-- signal_f_one : out std_Logic_vector(data_width - 1 downto 0); --
-- signal_f_two : out std_Logic_vector(data_width - 1 downto 0);
-- --phase_out : out std_Logic_vector(phase_width - 1 downto 0);
-- signal_out : out std_Logic_vector(data_width - 1 downto 0)
-- );
-- end component;
begin --define the operation of the module!
--signal output
signal_out <= std_logic_Vector(signal_summ);
-- sin_gen_one : sin_gen
-- generic map
-- (
-- phase_width => phase_width,
-- data_width => data_width
-- )
-- port map
-- (
-- clk => clk,
-- rst => rst,
-- phase_incr => std_logic_Vector(To_unsigned(phase_incr_one,phase_width)),
-- --phase_out => phase_out,
-- signal_out => signal_out_one
-- );
-- sin_gen_two : sin_gen
-- generic map
-- (
-- phase_width => phase_width,
-- data_width => data_width
-- )
-- port map
-- (
-- clk => clk,
-- rst => rst,
-- phase_incr => std_logic_Vector(To_unsigned(phase_incr_two,phase_width)),
-- --phase_out => phase_out,
-- signal_out => signal_out_two
-- );
--adder
process(clk)
begin
if rising_edge(clk) then
if ((std_logic(signal_in_one(data_width-1)) and std_logic(signal_in_two(data_width-1))) = '1' ) and -- check is bouth numbers negative
(signed(signal_in_one) + signed(signal_in_two) > x"0000" ) -- check sum is positive
then --max negative
signal_summ <= x"8000"; --underflow
else if (std_logic(signal_in_one(data_width-1)) nor std_logic(signal_in_two(data_width-1))) = '1' and -- check is bouth numbers positive
(signed(signal_in_one) + signed(signal_in_two) < x"0000" ) -- check sum is negative
then --max positive
signal_summ <= x"7fff"; --overflow
else
signal_summ <= signed(signal_in_one) + signed(signal_in_two); -- noramal sum
end if;
end if;
end if;
end process;
end behavioral;