Cores originate from https://github.com/secworks/sha256. Original-commit: c43c72db097cbb5ebe29b7fa81484cbeaf19516b
557 lines
15 KiB
Verilog
557 lines
15 KiB
Verilog
//======================================================================
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//
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// sha256_core.v
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// -------------
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// Verilog 2001 implementation of the SHA-256 hash function.
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// This is the internal core with wide interfaces.
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//
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//
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// Author: Joachim Strombergson
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// Copyright (c) 2013, Secworks Sweden AB
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// All rights reserved.
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//
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// Redistribution and use in source and binary forms, with or
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// without modification, are permitted provided that the following
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// conditions are met:
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//
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// 1. Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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//
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// 2. Redistributions in binary form must reproduce the above copyright
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// notice, this list of conditions and the following disclaimer in
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// the documentation and/or other materials provided with the
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// distribution.
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//
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
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// FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE
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// COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
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// INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
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// BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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// LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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// CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
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// STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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// ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
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// ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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//
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//======================================================================
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`default_nettype none
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module sha256_core(
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input wire clk,
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input wire reset_n,
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input wire init,
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input wire next,
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input wire mode,
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input wire [511 : 0] block,
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output wire ready,
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output wire [255 : 0] digest,
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output wire digest_valid
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);
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//----------------------------------------------------------------
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// Internal constant and parameter definitions.
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//----------------------------------------------------------------
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localparam SHA224_H0_0 = 32'hc1059ed8;
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localparam SHA224_H0_1 = 32'h367cd507;
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localparam SHA224_H0_2 = 32'h3070dd17;
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localparam SHA224_H0_3 = 32'hf70e5939;
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localparam SHA224_H0_4 = 32'hffc00b31;
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localparam SHA224_H0_5 = 32'h68581511;
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localparam SHA224_H0_6 = 32'h64f98fa7;
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localparam SHA224_H0_7 = 32'hbefa4fa4;
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localparam SHA256_H0_0 = 32'h6a09e667;
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localparam SHA256_H0_1 = 32'hbb67ae85;
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localparam SHA256_H0_2 = 32'h3c6ef372;
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localparam SHA256_H0_3 = 32'ha54ff53a;
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localparam SHA256_H0_4 = 32'h510e527f;
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localparam SHA256_H0_5 = 32'h9b05688c;
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localparam SHA256_H0_6 = 32'h1f83d9ab;
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localparam SHA256_H0_7 = 32'h5be0cd19;
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localparam SHA256_ROUNDS = 63;
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localparam CTRL_IDLE = 0;
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localparam CTRL_ROUNDS = 1;
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localparam CTRL_DONE = 2;
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//----------------------------------------------------------------
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// Registers including update variables and write enable.
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//----------------------------------------------------------------
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reg [31 : 0] a_reg;
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reg [31 : 0] a_new;
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reg [31 : 0] b_reg;
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reg [31 : 0] b_new;
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reg [31 : 0] c_reg;
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reg [31 : 0] c_new;
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reg [31 : 0] d_reg;
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reg [31 : 0] d_new;
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reg [31 : 0] e_reg;
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reg [31 : 0] e_new;
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reg [31 : 0] f_reg;
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reg [31 : 0] f_new;
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reg [31 : 0] g_reg;
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reg [31 : 0] g_new;
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reg [31 : 0] h_reg;
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reg [31 : 0] h_new;
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reg a_h_we;
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reg [31 : 0] H0_reg;
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reg [31 : 0] H0_new;
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reg [31 : 0] H1_reg;
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reg [31 : 0] H1_new;
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reg [31 : 0] H2_reg;
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reg [31 : 0] H2_new;
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reg [31 : 0] H3_reg;
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reg [31 : 0] H3_new;
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reg [31 : 0] H4_reg;
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reg [31 : 0] H4_new;
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reg [31 : 0] H5_reg;
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reg [31 : 0] H5_new;
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reg [31 : 0] H6_reg;
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reg [31 : 0] H6_new;
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reg [31 : 0] H7_reg;
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reg [31 : 0] H7_new;
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reg H_we;
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reg [5 : 0] t_ctr_reg;
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reg [5 : 0] t_ctr_new;
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reg t_ctr_we;
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reg t_ctr_inc;
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reg t_ctr_rst;
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reg digest_valid_reg;
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reg digest_valid_new;
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reg digest_valid_we;
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reg [1 : 0] sha256_ctrl_reg;
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reg [1 : 0] sha256_ctrl_new;
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reg sha256_ctrl_we;
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//----------------------------------------------------------------
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// Wires.
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//----------------------------------------------------------------
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reg digest_init;
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reg digest_update;
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reg state_init;
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reg state_update;
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reg first_block;
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reg ready_flag;
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reg [31 : 0] t1;
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reg [31 : 0] t2;
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wire [31 : 0] k_data;
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reg w_init;
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reg w_next;
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reg [5 : 0] w_round;
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wire [31 : 0] w_data;
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//----------------------------------------------------------------
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// Module instantiantions.
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//----------------------------------------------------------------
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sha256_k_constants k_constants_inst(
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.round(t_ctr_reg),
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.K(k_data)
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);
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sha256_w_mem w_mem_inst(
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.clk(clk),
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.reset_n(reset_n),
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.block(block),
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.round(t_ctr_reg),
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.init(w_init),
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.next(w_next),
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.w(w_data)
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);
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//----------------------------------------------------------------
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// Concurrent connectivity for ports etc.
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//----------------------------------------------------------------
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assign ready = ready_flag;
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assign digest = {H0_reg, H1_reg, H2_reg, H3_reg,
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H4_reg, H5_reg, H6_reg, H7_reg};
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assign digest_valid = digest_valid_reg;
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//----------------------------------------------------------------
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// reg_update
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// Update functionality for all registers in the core.
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// All registers are positive edge triggered with asynchronous
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// active low reset. All registers have write enable.
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//----------------------------------------------------------------
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always @ (posedge clk or negedge reset_n)
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begin : reg_update
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if (!reset_n)
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begin
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a_reg <= 32'h0;
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b_reg <= 32'h0;
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c_reg <= 32'h0;
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d_reg <= 32'h0;
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e_reg <= 32'h0;
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f_reg <= 32'h0;
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g_reg <= 32'h0;
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h_reg <= 32'h0;
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H0_reg <= 32'h0;
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H1_reg <= 32'h0;
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H2_reg <= 32'h0;
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H3_reg <= 32'h0;
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H4_reg <= 32'h0;
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H5_reg <= 32'h0;
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H6_reg <= 32'h0;
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H7_reg <= 32'h0;
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digest_valid_reg <= 0;
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t_ctr_reg <= 6'h0;
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sha256_ctrl_reg <= CTRL_IDLE;
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end
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else
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begin
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if (a_h_we)
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begin
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a_reg <= a_new;
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b_reg <= b_new;
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c_reg <= c_new;
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d_reg <= d_new;
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e_reg <= e_new;
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f_reg <= f_new;
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g_reg <= g_new;
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h_reg <= h_new;
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end
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if (H_we)
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begin
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H0_reg <= H0_new;
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H1_reg <= H1_new;
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H2_reg <= H2_new;
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H3_reg <= H3_new;
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H4_reg <= H4_new;
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H5_reg <= H5_new;
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H6_reg <= H6_new;
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H7_reg <= H7_new;
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end
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if (t_ctr_we)
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t_ctr_reg <= t_ctr_new;
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if (digest_valid_we)
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digest_valid_reg <= digest_valid_new;
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if (sha256_ctrl_we)
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sha256_ctrl_reg <= sha256_ctrl_new;
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end
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end // reg_update
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//----------------------------------------------------------------
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// digest_logic
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//
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// The logic needed to init as well as update the digest.
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//----------------------------------------------------------------
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always @*
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begin : digest_logic
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H0_new = 32'h0;
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H1_new = 32'h0;
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H2_new = 32'h0;
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H3_new = 32'h0;
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H4_new = 32'h0;
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H5_new = 32'h0;
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H6_new = 32'h0;
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H7_new = 32'h0;
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H_we = 0;
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if (digest_init)
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begin
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H_we = 1;
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if (mode)
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begin
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H0_new = SHA256_H0_0;
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H1_new = SHA256_H0_1;
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H2_new = SHA256_H0_2;
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H3_new = SHA256_H0_3;
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H4_new = SHA256_H0_4;
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H5_new = SHA256_H0_5;
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H6_new = SHA256_H0_6;
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H7_new = SHA256_H0_7;
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end
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else
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begin
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H0_new = SHA224_H0_0;
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H1_new = SHA224_H0_1;
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H2_new = SHA224_H0_2;
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H3_new = SHA224_H0_3;
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H4_new = SHA224_H0_4;
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H5_new = SHA224_H0_5;
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H6_new = SHA224_H0_6;
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H7_new = SHA224_H0_7;
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end
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end
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if (digest_update)
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begin
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H0_new = H0_reg + a_reg;
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H1_new = H1_reg + b_reg;
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H2_new = H2_reg + c_reg;
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H3_new = H3_reg + d_reg;
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H4_new = H4_reg + e_reg;
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H5_new = H5_reg + f_reg;
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H6_new = H6_reg + g_reg;
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H7_new = H7_reg + h_reg;
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H_we = 1;
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end
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end // digest_logic
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//----------------------------------------------------------------
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// t1_logic
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//
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// The logic for the T1 function.
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//----------------------------------------------------------------
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always @*
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begin : t1_logic
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reg [31 : 0] sum1;
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reg [31 : 0] ch;
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sum1 = {e_reg[5 : 0], e_reg[31 : 6]} ^
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{e_reg[10 : 0], e_reg[31 : 11]} ^
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{e_reg[24 : 0], e_reg[31 : 25]};
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ch = (e_reg & f_reg) ^ ((~e_reg) & g_reg);
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t1 = h_reg + sum1 + ch + w_data + k_data;
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end // t1_logic
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//----------------------------------------------------------------
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// t2_logic
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//
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// The logic for the T2 function
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//----------------------------------------------------------------
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always @*
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begin : t2_logic
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reg [31 : 0] sum0;
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reg [31 : 0] maj;
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sum0 = {a_reg[1 : 0], a_reg[31 : 2]} ^
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{a_reg[12 : 0], a_reg[31 : 13]} ^
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{a_reg[21 : 0], a_reg[31 : 22]};
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maj = (a_reg & b_reg) ^ (a_reg & c_reg) ^ (b_reg & c_reg);
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t2 = sum0 + maj;
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end // t2_logic
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//----------------------------------------------------------------
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// state_logic
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//
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// The logic needed to init as well as update the state during
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// round processing.
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//----------------------------------------------------------------
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always @*
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begin : state_logic
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a_new = 32'h0;
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b_new = 32'h0;
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c_new = 32'h0;
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d_new = 32'h0;
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e_new = 32'h0;
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f_new = 32'h0;
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g_new = 32'h0;
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h_new = 32'h0;
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a_h_we = 0;
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if (state_init)
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begin
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a_h_we = 1;
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if (first_block)
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begin
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if (mode)
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begin
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a_new = SHA256_H0_0;
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b_new = SHA256_H0_1;
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c_new = SHA256_H0_2;
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d_new = SHA256_H0_3;
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e_new = SHA256_H0_4;
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f_new = SHA256_H0_5;
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g_new = SHA256_H0_6;
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h_new = SHA256_H0_7;
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end
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else
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begin
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a_new = SHA224_H0_0;
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b_new = SHA224_H0_1;
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c_new = SHA224_H0_2;
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d_new = SHA224_H0_3;
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e_new = SHA224_H0_4;
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f_new = SHA224_H0_5;
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g_new = SHA224_H0_6;
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h_new = SHA224_H0_7;
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end
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end
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else
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begin
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a_new = H0_reg;
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b_new = H1_reg;
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c_new = H2_reg;
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d_new = H3_reg;
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e_new = H4_reg;
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f_new = H5_reg;
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g_new = H6_reg;
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h_new = H7_reg;
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end
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end
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if (state_update)
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begin
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a_new = t1 + t2;
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b_new = a_reg;
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c_new = b_reg;
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d_new = c_reg;
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e_new = d_reg + t1;
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f_new = e_reg;
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g_new = f_reg;
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h_new = g_reg;
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a_h_we = 1;
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end
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end // state_logic
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//----------------------------------------------------------------
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// t_ctr
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//
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// Update logic for the round counter, a monotonically
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// increasing counter with reset.
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//----------------------------------------------------------------
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always @*
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begin : t_ctr
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t_ctr_new = 0;
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t_ctr_we = 0;
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if (t_ctr_rst)
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begin
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t_ctr_new = 0;
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t_ctr_we = 1;
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end
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if (t_ctr_inc)
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begin
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t_ctr_new = t_ctr_reg + 1'b1;
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t_ctr_we = 1;
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end
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end // t_ctr
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//----------------------------------------------------------------
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// sha256_ctrl_fsm
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//
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// Logic for the state machine controlling the core behaviour.
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//----------------------------------------------------------------
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always @*
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begin : sha256_ctrl_fsm
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digest_init = 0;
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digest_update = 0;
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state_init = 0;
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state_update = 0;
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first_block = 0;
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ready_flag = 0;
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w_init = 0;
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w_next = 0;
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t_ctr_inc = 0;
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t_ctr_rst = 0;
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digest_valid_new = 0;
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digest_valid_we = 0;
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sha256_ctrl_new = CTRL_IDLE;
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sha256_ctrl_we = 0;
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case (sha256_ctrl_reg)
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CTRL_IDLE:
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begin
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ready_flag = 1;
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if (init)
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begin
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digest_init = 1;
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w_init = 1;
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state_init = 1;
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first_block = 1;
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t_ctr_rst = 1;
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digest_valid_new = 0;
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digest_valid_we = 1;
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sha256_ctrl_new = CTRL_ROUNDS;
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sha256_ctrl_we = 1;
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end
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if (next)
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begin
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t_ctr_rst = 1;
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w_init = 1;
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state_init = 1;
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digest_valid_new = 0;
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digest_valid_we = 1;
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sha256_ctrl_new = CTRL_ROUNDS;
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sha256_ctrl_we = 1;
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end
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end
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CTRL_ROUNDS:
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begin
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w_next = 1;
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state_update = 1;
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t_ctr_inc = 1;
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if (t_ctr_reg == SHA256_ROUNDS)
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begin
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sha256_ctrl_new = CTRL_DONE;
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sha256_ctrl_we = 1;
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end
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end
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CTRL_DONE:
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begin
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digest_update = 1;
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digest_valid_new = 1;
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digest_valid_we = 1;
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sha256_ctrl_new = CTRL_IDLE;
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sha256_ctrl_we = 1;
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end
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endcase // case (sha256_ctrl_reg)
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end // sha256_ctrl_fsm
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endmodule // sha256_core
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`default_nettype wire
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//======================================================================
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// EOF sha256_core.v
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//======================================================================
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