1 | module amplitude
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2 | #(
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3 | parameter width = 12 // bit width of the input data
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4 | )
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5 | (
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6 | input wire clock, frame, reset,
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7 | input wire [width-1:0] min_data,
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8 | input wire [width-1:0] max_data,
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9 | input wire [width-1:0] inp_data,
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10 | output wire [width-1:0] out_data,
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11 | output wire [1:0] out_flag
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12 | );
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13 |
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14 | reg int_case_reg, int_case_next;
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15 | reg out_flag_reg, out_flag_next;
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16 | reg int_flag_reg, int_flag_next;
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17 | reg [width-1:0] int_mini_reg, int_mini_next;
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18 | reg [width-1:0] out_data_reg, out_data_next;
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19 | reg [width-1:0] inp_data_reg [1:0], inp_data_next [1:0];
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20 |
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21 | wire [1:0] int_comp_wire;
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22 | reg int_comp_reg, int_comp_next;
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23 |
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24 | reg [5:0] int_cntr_reg, int_cntr_next;
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25 |
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26 | assign int_comp_wire[0] = (inp_data_reg[1] < inp_data);
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27 | assign int_comp_wire[1] = (inp_data_reg[1] < max_data);
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28 |
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29 | always @(posedge clock)
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30 | begin
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31 | if (reset)
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32 | begin
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33 | int_case_reg <= 1'b0;
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34 | int_mini_reg <= {(width){1'b0}};
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35 | inp_data_reg[0] <= {(width){1'b0}};
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36 | inp_data_reg[1] <= {(width){1'b0}};
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37 | out_data_reg <= {(width){1'b0}};
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38 | out_flag_reg <= 1'b0;
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39 | int_flag_reg <= 1'b0;
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40 | int_comp_reg <= 1'b0;
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41 | int_cntr_reg <= 6'd0;
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42 | end
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43 | else
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44 | begin
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45 | int_case_reg <= int_case_next;
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46 | int_mini_reg <= int_mini_next;
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47 | inp_data_reg[0] <= inp_data_next[0];
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48 | inp_data_reg[1] <= inp_data_next[1];
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49 | out_data_reg <= out_data_next;
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50 | out_flag_reg <= out_flag_next;
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51 | int_flag_reg <= int_flag_next;
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52 | int_comp_reg <= int_comp_next;
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53 | int_cntr_reg <= int_cntr_next;
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54 | end
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55 | end
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56 |
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57 | always @*
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58 | begin
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59 | int_case_next = int_case_reg;
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60 | int_mini_next = int_mini_reg;
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61 | inp_data_next[0] = inp_data_reg[0];
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62 | inp_data_next[1] = inp_data_reg[1];
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63 | out_data_next = out_data_reg;
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64 | out_flag_next = out_flag_reg;
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65 | int_flag_next = int_flag_reg;
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66 | int_comp_next = int_comp_reg;
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67 | int_cntr_next = int_cntr_reg;
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68 |
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69 | case (int_case_reg)
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70 | 0:
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71 | begin
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72 | if (frame)
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73 | begin
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74 | inp_data_next[0] = inp_data;
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75 | inp_data_next[1] = inp_data_reg[0];
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76 | int_comp_next = int_comp_wire[0];
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77 | out_data_next = {(width){1'b0}};
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78 | out_flag_next = 1'b0;
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79 | // minimum
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80 | if ((~int_comp_reg) & (int_comp_wire[0]) & int_cntr_reg[5])
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81 | begin
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82 | int_mini_next = inp_data_reg[0];
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83 | int_flag_next = 1'b1;
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84 | end
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85 | // maximum after minimum
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86 | else if ((int_comp_reg) & (~int_comp_wire[0]) & (int_flag_reg))
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87 | begin
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88 | out_data_next = inp_data_reg[0] - int_mini_reg;
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89 | // int_flag_next = 1'b0;
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90 | int_case_next = 1'b1;
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91 | end
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92 | else if (~int_cntr_reg[5])
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93 | begin
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94 | int_cntr_next = int_cntr_reg + 6'd1;
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95 | end
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96 | end
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97 | end
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98 |
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99 | 1:
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100 | begin
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101 | if (out_data_reg > min_data)
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102 | begin
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103 | int_cntr_next = 6'b0;
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104 | // out_flag_next = 1'b1;
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105 | out_flag_next = int_comp_wire[1];
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106 | int_flag_next = ~int_comp_wire[1];
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107 | end
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108 | int_case_next = 1'b0;
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109 | end
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110 |
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111 | endcase
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112 | end
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113 |
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114 | assign out_data = out_data_reg;
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115 | assign out_flag = {~int_cntr_reg[5], out_flag_reg};
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116 |
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117 | endmodule
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