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Rev | Author | Line No. | Line |
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2 | mjames | 1 | #include <cstdint> |
2 | #include <assert.h> |
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3 | #include "libIgnTiming/timing.h" |
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12 | mjames | 4 | #include "libIgnTiming/basemap.h" |
11 | mjames | 5 | |
6 | |||
7 | mjames | 7 | #if defined __cplusplus |
8 | extern "C" |
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2 | mjames | 9 | { |
7 | mjames | 10 | #endif |
2 | mjames | 11 | |
7 | mjames | 12 | namespace |
13 | { |
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11 | mjames | 14 | int8_t timingAdjust = 0 * TIMING_SCALE; // in TIMING_SCALE |
12 | mjames | 15 | // local copy of the data structure |
16 | timingTable_t timingMap = baseTimingMap; |
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2 | mjames | 17 | |
11 | mjames | 18 | int16_t constexpr MAX_ADVANCE = 50 * TIMING_SCALE; |
19 | int16_t constexpr MIN_ADVANCE = 7 * TIMING_SCALE; |
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2 | mjames | 20 | |
12 | mjames | 21 | |
7 | mjames | 22 | } |
6 | mjames | 23 | |
7 | mjames | 24 | uint8_t getTimingAdjust() { return timingAdjust; }; |
6 | mjames | 25 | |
7 | mjames | 26 | void setTimingAdjust(int8_t adjust) { timingAdjust = adjust; } |
6 | mjames | 27 | |
7 | mjames | 28 | int16_t getRpmMap(unsigned int i) |
29 | { |
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30 | if (i >= 0 && i < MAX_RPM_POINTS) |
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12 | mjames | 31 | return timingMap.rpmMap[i]; |
7 | mjames | 32 | else |
33 | return 0; |
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34 | } |
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6 | mjames | 35 | |
12 | mjames | 36 | |
37 | void setBaseMap(timingTable_t * map) |
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38 | { |
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39 | timingMap = *map; |
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40 | } |
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41 | |||
42 | |||
43 | |||
7 | mjames | 44 | void setRpmMap(unsigned int i, uint16_t val) |
45 | { |
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11 | mjames | 46 | #if WRITABLE_TABLE |
7 | mjames | 47 | if (i >= 0 && i < MAX_RPM_POINTS) |
12 | mjames | 48 | timingMap.rpmMap[i] = val; |
11 | mjames | 49 | #endif |
7 | mjames | 50 | } |
6 | mjames | 51 | |
7 | mjames | 52 | uint16_t getVacuumMap(unsigned int i) |
53 | { |
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54 | if (i >= 0 && i < MAX_VACUUM_POINTS) |
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12 | mjames | 55 | return timingMap.vacuumMap[i]; |
7 | mjames | 56 | else |
57 | return 0; |
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58 | } |
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6 | mjames | 59 | |
7 | mjames | 60 | void setVacuumMap(unsigned int i, uint16_t val) |
61 | { |
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11 | mjames | 62 | #if WRITABLE_TABLE |
7 | mjames | 63 | if (i >= 0 && i < MAX_VACUUM_POINTS) |
12 | mjames | 64 | timingMap.vacuumMap[i] = val; |
11 | mjames | 65 | #endif |
7 | mjames | 66 | } |
6 | mjames | 67 | |
7 | mjames | 68 | void setTiming(unsigned int vacuumIndex, unsigned int rpmIndex, uint8_t value) |
2 | mjames | 69 | { |
11 | mjames | 70 | |
71 | #if WRITABLE_TABLE |
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7 | mjames | 72 | if (vacuumIndex < 0 && vacuumIndex >= MAX_VACUUM_POINTS) |
73 | return; |
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74 | if (rpmIndex < 0 && rpmIndex >= MAX_RPM_POINTS) |
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75 | return; |
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12 | mjames | 76 | timingMap.mapping[vacuumIndex][rpmIndex] = value; |
11 | mjames | 77 | #endif |
2 | mjames | 78 | } |
79 | |||
7 | mjames | 80 | uint8_t getTiming(unsigned int vacuumIndex, unsigned int rpmIndex) |
2 | mjames | 81 | { |
7 | mjames | 82 | if (vacuumIndex < 0 && vacuumIndex >= MAX_VACUUM_POINTS) |
83 | return 0; |
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84 | if (rpmIndex < 0 && rpmIndex >= MAX_RPM_POINTS) |
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85 | return 0; |
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12 | mjames | 86 | return timingMap.mapping[vacuumIndex][rpmIndex]; |
2 | mjames | 87 | } |
7 | mjames | 88 | |
11 | mjames | 89 | /// @brief Lookup a point in a 1 dimensional array - |
90 | /// @param point Value to lookup |
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91 | /// @param curve Lookup table |
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92 | /// @param size Size of lookup table |
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93 | /// @param [out] frac fraction of distance from first point in array |
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94 | /// @return index in array or NO_DATA if operations fail |
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7 | mjames | 95 | int lookup(int point, int16_t const curve[], int size, int16_t *frac) |
2 | mjames | 96 | { |
7 | mjames | 97 | // check lower bounds |
98 | if (point < curve[0]) |
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2 | mjames | 99 | { |
7 | mjames | 100 | *frac = 0; |
101 | return 0; |
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102 | } |
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103 | // check upper bounds |
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104 | // find the upper boundary by looking for non -1 points |
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105 | int upper = size - 1; |
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8 | mjames | 106 | while (upper != 0 && curve[upper] == NO_DATA) |
7 | mjames | 107 | upper--; |
2 | mjames | 108 | |
7 | mjames | 109 | if (point >= curve[upper]) |
110 | { |
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111 | *frac = 0; |
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112 | return upper; |
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113 | } |
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114 | for (int pt = 1; pt <= upper; pt++) |
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115 | { |
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116 | if ((point >= curve[pt - 1]) && (point < curve[pt])) |
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117 | { |
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2 | mjames | 118 | |
7 | mjames | 119 | int range1 = curve[pt] - curve[pt - 1]; |
2 | mjames | 120 | |
7 | mjames | 121 | if (range1 == 0) |
122 | { |
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123 | *frac = 0; |
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124 | return pt - 1; |
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125 | } |
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126 | |||
127 | // how far along axis ? |
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128 | int offset = point - curve[pt - 1]; |
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129 | |||
130 | int range2 = INTERP_SCALE; |
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131 | |||
132 | *frac = ((offset * range2) / range1); |
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133 | return pt - 1; |
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134 | } |
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2 | mjames | 135 | } |
7 | mjames | 136 | *frac = 0; |
11 | mjames | 137 | return NO_DATA; // give up. |
7 | mjames | 138 | }; |
2 | mjames | 139 | |
7 | mjames | 140 | extern "C" |
2 | mjames | 141 | { |
142 | |||
7 | mjames | 143 | int mapTiming(int rpm, int vacuumMb) |
144 | { |
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145 | int angle = 0; |
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146 | /* lookup the interpolated RPM point */ |
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147 | int16_t rpm_frac = 0; |
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12 | mjames | 148 | int rpm_index = lookup(rpm, timingMap.rpmMap, MAX_RPM_POINTS, &rpm_frac); |
7 | mjames | 149 | if (rpm_index == NO_DATA) |
150 | return timingAdjust + MIN_ADVANCE; |
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2 | mjames | 151 | |
7 | mjames | 152 | /* lookup the interpolated vacuum point */ |
153 | int16_t vacuum_frac = 0; |
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12 | mjames | 154 | int vacuum_index = lookup(vacuumMb, timingMap.vacuumMap, MAX_VACUUM_POINTS, &vacuum_frac); |
7 | mjames | 155 | /* if there is a problem, bail out */ |
156 | if (vacuum_index == NO_DATA) |
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157 | return timingAdjust + MIN_ADVANCE; |
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2 | mjames | 158 | |
7 | mjames | 159 | /* perform a bilinear mapping */ |
160 | int top_advance; |
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161 | // we now have a position between two points in X and Y |
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162 | if (rpm_frac == 0) |
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12 | mjames | 163 | top_advance = timingMap.mapping[vacuum_index][rpm_index] * INTERP_SCALE; |
7 | mjames | 164 | // if fractional part then interpolate points off the map |
165 | else |
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12 | mjames | 166 | top_advance = timingMap.mapping[vacuum_index][rpm_index] * (INTERP_SCALE - rpm_frac) + |
167 | timingMap.mapping[vacuum_index][rpm_index + 1] * rpm_frac; |
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7 | mjames | 168 | |
169 | int bottom_advance; |
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170 | // if no fractional part, then the top and bottom advance point is the same |
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171 | if (vacuum_frac == 0) |
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172 | { |
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12 | mjames | 173 | angle = top_advance * TIMING_SCALE / INTERP_SCALE; |
7 | mjames | 174 | } |
175 | else |
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176 | { |
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12 | mjames | 177 | bottom_advance = timingMap.mapping[vacuum_index + 1][rpm_index] * (INTERP_SCALE - rpm_frac) + |
178 | timingMap.mapping[vacuum_index + 1][rpm_index + 1] * rpm_frac; |
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7 | mjames | 179 | /* interpolate down Y axis this time */ |
180 | int advance = top_advance * (INTERP_SCALE - vacuum_frac) + bottom_advance * vacuum_frac; |
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181 | /* point is scaled by two multiplications */ |
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12 | mjames | 182 | angle = advance * TIMING_SCALE / (INTERP_SCALE * INTERP_SCALE); |
7 | mjames | 183 | } |
184 | |||
185 | if (angle < MIN_ADVANCE) |
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186 | angle = MIN_ADVANCE; |
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187 | if (angle > MAX_ADVANCE) |
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188 | angle = MAX_ADVANCE; |
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189 | |||
190 | return angle + timingAdjust; |
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2 | mjames | 191 | } |
192 | } |
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7 | mjames | 193 | #if defined __cplusplus |
2 | mjames | 194 | } |
7 | mjames | 195 | #endif |