Project

General

Profile

Statistics
| Revision:

root / branches / analog / code / projects / libdragonfly / analog.c @ 1387

History | View | Annotate | Download (10 KB)

1
/**
2
 * Copyright (c) 2007 Colony Project
3
 * 
4
 * Permission is hereby granted, free of charge, to any person
5
 * obtaining a copy of this software and associated documentation
6
 * files (the "Software"), to deal in the Software without
7
 * restriction, including without limitation the rights to use,
8
 * copy, modify, merge, publish, distribute, sublicense, and/or sell
9
 * copies of the Software, and to permit persons to whom the
10
 * Software is furnished to do so, subject to the following
11
 * conditions:
12
 * 
13
 * The above copyright notice and this permission notice shall be
14
 * included in all copies or substantial portions of the Software.
15
 * 
16
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
17
 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES
18
 * OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
19
 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT
20
 * HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY,
21
 * WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
22
 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
23
 * OTHER DEALINGS IN THE SOFTWARE.
24
 **/
25

    
26
/**
27
 * @file analog.c
28
 * @brief Analog input and output
29
 *
30
 * Contains functions for manipulating the ADC on the Dragonfly board.
31
 * 
32
 * @author Colony Project, CMU Robotics Club
33
 * originally taken from fwr analog file (author: Tom Lauwers)
34
 * loop code written by Kevin Woo and James Kong
35
 **/
36

    
37
#include <util/delay.h>
38
#include <avr/interrupt.h>
39
#include "analog.h"
40
#include "serial.h"
41
// Internal Function Prototypes
42
void set_adc_mux(int which);
43

    
44
/**
45
 * @defgroup analog Analog
46
 * Functions for manipulation the ADC on the dragonfly board.
47
 * All definitions may be found in analog.h.
48
 *
49
 * @{
50
 **/
51

    
52
int adc_loop_status = ADC_LOOP_STOPPED;
53
int adc_sig_stop_loop = 0;
54
int adc_current_port = 0;
55
adc_t an_val[11];
56

    
57
/**
58
 * Initializes the ADC.
59
 * Call analog_init before reading from the analog ports.
60
 *
61
 * @see analog8, analog10, analog_get8, analog_get10
62
 *
63
 * @bug First conversion takes a performance penalty of
64
 * 25 vs. 13 ADC clock cycles of successive conversions.
65
 * Analog_init should run a dummy conversion to pre-empt
66
 * this.
67
 *
68
 * For good 10-bit precision, ACD clock must be between
69
 * 50kHz and 200kHz. Currently, ADC clock is fixed at
70
 * 125kHz using 1/64prescalar. However, most code uses
71
 * 8-bit precision which can work at ADC clock speeds
72
 * higher than 200kHz. Experimental tests needed to
73
 * determine highest clock speed for accurate 8-bit ADC.
74
 *
75
 **/
76
void analog_init(int start_conversion) {
77
        for (int i = 0; i < 11; i++) {
78
                an_val[i].adc10 = 0;
79
                an_val[i].adc8 = 0;
80
        }
81

    
82
        // ADMUX register
83
        // Bit 7,6 - Set voltage reference to AVcc (0b01)
84
        // Bit 5 - ADLAR set to simplify moving from register
85
        // Bit 4 - X
86
        // Bit 3:0 - Sets the current channel
87
        // Initializes to read from AN1 first (AN0 is reservered for the BOM)
88
        ADMUX = 0;
89
        ADMUX |= ADMUX_OPT | _BV(MUX0);
90

    
91
        // ADC Status Register A
92
        // Bit 7 - ADEN is set (enables analog)
93
        // Bit 6 - Start conversion bit is set (must be done once for free-running mode)
94
        // Bit 5 - Enable Auto Trigger (for free running mode) NOT DOING THIS RIGHT NOW
95
        // Bit 4 - ADC interrupt flag, 0
96
        // Bit 3 - Enable ADC Interrupt (required to run free-running mode)
97
        // Bits 2-0 - Set to create a clock divisor of 128, to make ADC clock = 8,000,000/64 = 125kHz
98
        ADCSRA = 0;
99
        ADCSRA |= _BV(ADEN) | _BV(ADPS2) | _BV(ADPS1) | _BV(ADPS0);
100
        
101
        // Set external mux lines to outputs
102
        DDRG |= 0x1C;
103
        
104
        // Set up first port for conversions
105
        set_adc_mux(0x00);
106
        adc_current_port = AN1;
107

    
108
        //Start the conversion loop if requested
109
        if (start_conversion)
110
                analog_start_loop();
111
                
112
        //Conversion loop disabled by default
113
}        
114

    
115
/**
116
 * Returns the 8-bit analog conversion of which from
117
 * the lookup table. If the requested port is the BOM_PORT
118
 * you will get an automatic 0 since the BOM_PORT is not
119
 * read in the loop and not stored. If you need that port
120
 * you should use the functions in bom.c. There is an analog_get8
121
 * function which for instant lookups but should be avoided unless
122
 * you know what you're doing.
123
 *
124
 * @param which the port that you want to read
125
 *
126
 * @bug may cause a seg fault if which is a larger value
127
 * than exists in an_val table. Not sure if we should fix
128
 * this or not since it would add overhead.
129
 *
130
 * @return 8-bit analog value for the which port requested
131
 *
132
 * @see analog10, analog_get8, analog_get10
133
 **/
134
unsigned int analog8(int which) {
135
        if (which == BOM_PORT) {
136
                return 0;
137
        } else {
138
                return an_val[which - 1].adc8;
139
        }
140
}
141

    
142
/**
143
 * Returns the 10-bit analog conversion of which from
144
 * the lookup table. If the requested port is the BOM_PORT
145
 * you will get an automatic 0 since the BOM_PORT is not
146
 * read in the loop and not stored. If you need that port
147
 * you should use the functions in bom.c. There is an analog_get10
148
 * function which for instant lookups but should be avoided unless
149
 * you know what you are doing.
150
 *
151
 * @param which the port that you want to read
152
 *
153
 * @bug may cause a seg fault if which is a larger value
154
 * than exists in an_val table. Not sure if we should fix
155
 * this or not since it would add overhead.
156
 *
157
 * @return 10-bit analog value for the which port requested
158
 *
159
 * @see analog8, analog_get8, analog_get10
160
 **/
161
unsigned int analog10(int which) {
162
        if (which == BOM_PORT) {
163
                return 0;
164
        } else {
165
                return an_val[which - 1].adc10;
166
        }
167
}
168

    
169
/**
170
 * Starts the analog update loop. Will continue to run
171
 * until analog_stop_loop is called.
172
 *
173
 * @see analog_stop_loop, analog_loop_status
174
 **/
175
void analog_start_loop(void) {
176
        //Start the conversion, enable ADC interrupt
177
        ADCSRA |= _BV(ADSC) | _BV(ADIE);
178
        adc_loop_status = ADC_LOOP_RUNNING;
179
}
180

    
181
/**
182
 * Stops the analog update loop. If there is a current
183
 * read, it will finish up and be stored before the loop
184
 * is interrupted. No further updates will be made until
185
 * the loop is started again.
186
 *
187
 * @see analog_start_loop, analog_loop_status
188
 **/
189
void analog_stop_loop() {
190
        //Signal to stop after the next conversion
191
        adc_sig_stop_loop = 1;
192
}
193

    
194
/**
195
 * Returns the status of loop. 0 for stopped.
196
 * 1 for running. 2 for paused.
197
 *
198
 * @see analog_start_loop, analog_stop_loop
199
 **/
200
int analog_loop_status(void) {
201
        return adc_loop_status;
202
}
203

    
204
/**
205
 * Reads an 8-bit number from an analog port.
206
 * analog_init must be called before using this function.
207
 * The analog loop must also be stopped before using this
208
 * function or you will mess up the lookup table. You
209
 * must also reenabled the loop when you are done unless
210
 * you are doing more instant reads. See analog_stop_loop
211
 * and analog_start_loop for more information about the loop.
212
 * 
213
 * @param which the analog port to read from. One of
214
 * the constants AN0 - AN7.
215
 *
216
 * @return the 8-bit input to the specified port
217
 *
218
 * @see analog_init, analog_get10, analog8, analog_stop_loop,
219
 * analog_start_loop
220
 **/
221
unsigned int analog_get8(int which) {        
222
        // Let any previous conversion finish
223
        while (ADCSRA & _BV(ADSC));
224
        
225
        if(which < EXT_MUX) {
226
                ADMUX = ADMUX_OPT + which;
227
        } else {
228
                ADMUX = ADMUX_OPT + EXT_MUX;
229
                set_adc_mux(which - 8);
230
        }
231
        
232
        // Start the conversion
233
        ADCSRA |= _BV(ADSC);
234

    
235
        // Wait for the conversion to finish
236
        while (ADCSRA & _BV(ADSC));
237

    
238
        return ADCH; //since we left aligned the data, ADCH is the 8 MSB.
239
}
240

    
241
/**
242
 * Reads an 10-bit number from an analog port.
243
 * analog_init must be called before using this function.
244
 * The analog loop must also be stopped before using this
245
 * function or you will mess up the lookup table. You
246
 * must also reenabled the loop when you are done unless
247
 * you are doing more instant reads. See analog_stop_loop
248
 * and analog_start_loop for more information about the loop.
249
 * 
250
 *
251
 * @param which the analog port to read from. Typically
252
 * a constant, one of AN0 - AN7.
253
 *
254
 * @return the 10-bit number input to the specified port
255
 * 
256
 * @see analog_init, analog_get8, analog10, analog_stop_loop,
257
 * analog_start_loop
258
 **/
259
unsigned int analog_get10(int which) {
260
        int adc_h;
261
        int adc_l;
262
        
263
        // Let any previous conversion finish
264
        while (ADCSRA & _BV(ADSC));
265

    
266
        if(which < EXT_MUX) {
267
                ADMUX = ADMUX_OPT + which;
268
        } else {
269
                ADMUX = ADMUX_OPT + EXT_MUX;
270
                set_adc_mux(which - 8);
271
        }
272
        
273
        // Start the conversion
274
        ADCSRA |= _BV(ADSC);
275

    
276
        // Wait for the conversion to finish
277
        while (ADCSRA & _BV(ADSC));
278
        
279
        adc_l = ADCL;
280
        adc_h = ADCH;
281

    
282
        return ((adc_h << 2) | (adc_l >> 6));
283
}
284

    
285
/**
286
 * Returns the current position of the wheel, as an integer
287
 * in the range 0 - 255.
288
 * analog_init must be called before using this function.
289
 *
290
 * @return the orientation of the wheel, as an integer in
291
 * the range 0 - 255.
292
 *
293
 * @see analog_init
294
 **/
295
int wheel(void) {
296
        return analog8(WHEEL_PORT);
297
}
298

    
299

    
300
/**
301
 * Sets the value of the external analog mux. Values are read
302
 *         on AN7 physical port. (AN8 - AN15 are "virtual" ports).
303
 *
304
 * @param which which analog mux port (0-7) which corresponds
305
 *                   to AN8-AN15.
306
 *
307
 * @bug FIX THIS IN THE NEXT BOARD REVISION:
308
 *                ADDR2 ADDR1 ADDR0
309
 *                G2.G4.G3 set mux to port 0-7 via vinary selection
310
 *                math would be much cleaner if it was G4.G3.G2
311
 *
312
 * @see analog_init
313
 **/
314
void set_adc_mux(int which) {  
315
  // mask so only proper bits are possible.  
316
  PORTG = (PORTG & 0xE3) | ((which & 0x03) << 3) | (which & 0x04);
317
}
318

    
319
/**@}**/ //end defgroup
320

    
321

    
322
ISR(ADC_vect) {
323
        int adc_h = 0;
324
        int adc_l = 0;
325

    
326
        //Store the value only if this read isn't for the BOM
327
        if (ADMUX != BOM_PORT) {
328
                adc_l = ADCL;
329
                adc_h = ADCH;
330
        
331
                an_val[adc_current_port - 1].adc10 = (adc_h << 2) | (adc_l >> 6);
332
                an_val[adc_current_port - 1].adc8 = adc_h;
333
        }
334
        
335
        //Skip AN7 because it is not a real port
336
        if (adc_current_port == AN6) {
337
                ADMUX = ADMUX_OPT | EXT_MUX;
338
                set_adc_mux(AN8 - 8);
339
                adc_current_port = AN8;
340
        //Wrap around
341
        } else if (adc_current_port == AN11) {
342
                adc_current_port = AN1;
343
                ADMUX = ADMUX_OPT | adc_current_port;
344
        //Normal increment
345
        } else {
346
                adc_current_port++;
347
        
348
                if(adc_current_port < EXT_MUX) {
349
                        ADMUX = ADMUX_OPT | adc_current_port;
350
                } else {
351
                        ADMUX = ADMUX_OPT | EXT_MUX;
352
                        set_adc_mux(adc_current_port - 8);
353
                }
354
        }
355

    
356
        //Stop loop if signal is set
357
        if(adc_sig_stop_loop) {
358
                //Disable the interrupt
359
                ADCSRA &= _BV(ADIE);
360
                adc_sig_stop_loop = 0;
361
                adc_loop_status = ADC_LOOP_STOPPED;
362
                return;
363
        }
364
        
365
        //Start next conversion
366
        ADCSRA |= _BV(ADSC);
367
}
368